Showing posts with label Velocette engine. Show all posts
Showing posts with label Velocette engine. Show all posts

Saturday, December 20, 2008

I wrote the following for the current owner of the late Keith Smith's special squish cylinder head racing Velocette.....
Included are letters from the 1960s to Bertie Goodman of Velocette and photos of interest, including the photograph I had professionally taken of the cylinder head and piston to send to Veloce Ltd.
Left click to enlarge the images....
From memory either Sid Lawrence or a chap in Melbourne, whose name escapes me at present both developed a squish head Venom in the early 1960s.
I am unsure if it was as a result of speaking to each other or they came upon the idea independently.
Basically the engine was a pushrod version of a late1950s/early 1960s Manx Norton in combustion chamber shape and piston profile.
The Manx Norton squish idea was developed by the Polish engineer, Leo Kusmicki, who initially worked at Norton as a cleaner I believe immediately following WW2 in which he was a Spitfire pilot in the Polish Airforce, but came to the attention of Joe Craig who utilised him in the race shop and many believe used his ideas as his own. Certainly Kusmicki rarely featured in the press and seems unknown to many people, including Norton enthusiasts.
Eric Hinton knew him from the time the Hintons were involved with Norton racing in UK and Europe and Eric told me Leo was the brains behind Nortons racing success once the squish engines were developed.
The squish head used by Norton and the three Velocettes in Australia, all had machined deep lands in the hemispherical combustion chamber. See the photograph of the Velo head, taken by me at CSIRO, Division of Animal Physiology, Prospect, NSW in 1964.
The piston has opposite lands on it and goes into the cylinder head to almost make contact with the head at these lands.
The most effective gap between piston and cylinder head over these lands is around 0.035”.
The so called squish clearance.
Too little and in operation the piston will hit the head, too little and the squish effect becomes lost.
After we photographed the squish Velocette head, we sent a photograph with a letter to Bertie Goodman, then Sales Director of Veloce Ltd.
Years later he replied that they had used this idea in a batch of 12 special engines built for the Velocette Venom Thruxton.
In fact the L.J. Stevens sponsored Thruxton that won the 500cc class of the Production TT in the IOM in 1967 used one. The head resulted in an additional 4½ bhp from the engine.
My involvement was with the late Keith Smith.
Keith ordered a new Velocette Venom Clubman Veeline( called a Mk.1 version now) in late 1963 from the then Velocette agent in NSW, Hazell & Moore Pty. Ltd.
Few Velocettes were sold in NSW from around 1960 when the then State Government made what to motorcyclists were draconian alterations to the compulsory Third Party Insurance on motor vehicle registrations. Bikes over 250cc were particularly disadvantaged with large premium increases.
I can’t remember the figures now, but 350cc machines and most 500cc machines disappeared overnight. Few were imported. Victoria and other States were different and Frank Mussett Motorcycles in Melbourne, Victoria continued to sell Velocettes ok.
Keith took delivery of his new Clubman in the packing crate as it was sent from Veloce Ltd in early 1964.
I was at his house when they arrived from the docks and we excitedly opened the crate. To reduce the freight volume, the wheels had been removed and bolted to the inside of the crate near the top. Somebody in the packing section at Veloce had nailed the lid on and the nail went offset and into the tyre, so we had a puncture before we even started!
Then..Hazell & Moore were really reluctant to accept the problem and only wanted to patch the tube!! After we just bought a new motorcycle off them…
Keith rode the bike on the road briefly before he decided he would convert it into a road racer.
He was very friendly with Sid Lawrence, who I mentioned earlier had developed a squish cylinder head. Sid was extremely secretive over it and I recall if he had to remove the cylinder head from the bike in the pits at a race meeting he had a large canvas cover that he spread over the bike, crawled under it and worked there in the semi dark and heat in the Australian summer so prying eyes didn’t get a look….
Somehow Sid revealed the details to Keith who machined the head to Sid’s dimensions, we fitted valves into the head and poured bees wax into the combustion chamber to make a mould of it. Then took the mould to Sid Willis, ex successful Velocette racer from the 1950s who was “Mr piston” in NSW and Sid cast a special piston to utilise.
We fitted the head and left the next weekend on a shakedown ride to northern NSW, myself on my 1958 MSS.
The bike was plagued with overheating problems, pinged etc. In desperation at Armidale we found an old chap with a workshop and fabricated a thick copper head gasket and limped back to Sydney.
The problem was the ignition timing we were using.
Never having done this before and not finding out what Norton used, we used the 38° BTDC recommended by Veloce for all Venoms.
However with the better combustion efficiency we were able to come back to 28° BTDC and all was well.
Sid Lawrence was an A grade rider ( Australia used a grading system then for racing in all classes. The top riders were “A”, then “B” and “C” ). Keith was a “B” grader and enjoyed success on his Velocette. Sid Lawrence would regularly finish in the top 4 or 5 positions in the title races he contested.
Handling of the Velocette frame was inferior to the Norton “Fetherbed”.
At Bathurst, west of Sydney, NSW, which then had a slightly downhill straight of 1¼ miles long, the squish head Velo was timed at 134mph, Manx Nortons and G50 were in the 132-136mph range during title races.
Keith’s squish Velo from memory was timed at 128mph.
Tragedy struck shortly after with Keith’s untimely death while riding his brothers 7R AJS special at a private practice session at the Oran Park motor racing circuit south of Sydney.
The motorcycle was used on occasions by his brother Terry in conjunction with the 7R, but he soon retired from racing and the bike was sold to Ken Wall of Torquay in Victoria.
Ken rode it on occasions, but with no major success and just before his eventual death it was sold on to Velo club member John Davies with a broken crankcase.

The first photo is of the cylinder head and piston sent to Veloce Ltd., with the first letter illustrated.

The second letter ( 2 pages ) is a reply from Bertie Goodman as is the third letter ( also 2 pages)

The second photograph is taken at Bathurst NSW, Easter 1964 races, myself to the left and Keith Smith to the right behind his now drastically modified Venom Clubman.

The last photo shows Keith at Oran Park circuit in 1966, shortly before his death.

Saturday, November 22, 2008

In the 1950s an innovative young engineer, Allan Russell of Sydney, a Velocette enthusiast and assistant to the late Sid Willis, champion Aussie 250 class road racer on Velocettes, started to build a twin cylinder MAC Velocette engine, SOHC valve operation and made many of the casting patterns needed, then cast the cylinder heads, cambox, bevel box, prepared drawings of two ways to drive the overhead cam gear from the MAC timing chest.



Then he fell in love, married Margaret ( they are still together...) ,all work on the MAC ceased and the MAC engine languished in a large drawer in his workshop for over 50 years.




I'd briefly seen the drawer pulled open in the 1960s to illustrate a point in a discussion, but it stayed there until 2005, when my best friend, Velo enthusiast Jim Day suggested we ask Allan to get it out and we would feature it on a display table during the final night meeting at the Australian Velocette Centenary Rally at Richmond, west of Sydney.
Prior to it's return to Allan, we assembled it and I photographed it...

Where is it now....?

Back in Allan's drawer....awaiting the time Allan can find to continue with it....

Interesting "bit of kit" as they say...

Left click on photographs to enlarge....





















































Tuesday, October 21, 2008

BMG motorcycles were a motorcycle dealer in Ilford, Essex, on the outskirts of London.
When I lived in the UK in the early 1970s, I occasionally rode over to there and purchased the odd part.
I never really became interested in the desmodromic valve set-up they marketed until I returned to Australia and wrote to BMG.
I’d read a little of the information over their kit and recalled seeing a Venom Clubman at the Southern Cross motorcycle rally at Burrumbeet Park, Ballarat in Victoria, Australia in February 1966 with one fitted.
The reply from Mr. Woods of BMG, which I still have, was quite scathing of Veloce Ltd and their lack of interest in his kit, following his sending one to them for evaluation. He claimed it was dusty when returned and obviously hadn’t been used.
A disappointment to him.
But the claims made by BMG really stretched ones imagination…9000rpm…acceleration such that you could lift the front wheel in top gear at 60mph…
BMG actually patented the principle of using push-pull rods to actuate the valves in an engine in a desmodromic fashion…that is, without valve springs. The patent application is illustrated here.
But the BMG kit did have torsion bars fitted inside the hollow centre of the upper rockers, claimed to finally close the valves to get a gas seal for starting.

The kit was suitable for use only in the 86mmx86mm Venom and MSS or 72mmx86mm Viper engines.
The UK motorcycle magazine, “MotorCycling” did a test of a Velocette Viper in September 1963 and journalist Bruce Main Smith who rode it for over a week around Britain wrote it was the tool for the rev happy rider.
Acceleration and top speed figures, taken at MIRA, were given, but really couldn’t be compared with anything…the bike was fitted with an after market Butler fairing which contributed to any final speed claimed and as BMS commented, prevented a direct comparison with earlier Velo Viper tests..
The true test would have been to take the bike to MIRA, run it around in normal trim, obtaining figures, then fitting the kit and repeating the test.
The cost of the kit at the time was £46/10/- including fitting by BMG, or £38 in a box. The full price of a Viper in early 1964, including VAT was £262/4/-.”MotorCycling” tested a Viper in early 1964 and it’s top speed at MIRA was 90.6mph.
The highest one way speed of the desmo Viper at MIRA was 93.9mph, with as mentioned the fairing fitted. The rev-counter reading at this speed was 6200rpm.
Main-Smith commented that the desmo Viper was geared one tooth higher than standard and that he felt with the right gearing 93-95mph would be expected.
In all I seems a bit “iffy”…
You make up your own mind….
The Australian Velocette Owners club has a kit (damaged) and their technical officer, Norm Trigg, sectioned an engine and fitted the kit so it could be hand operated to see it’s operation.
I took photos at a Velo rally some years back and they illustrate this blog, together with details from the patent application, US “Cycle World” advertisements, drawing from “MotorCycle” and “MotorCycling”, to whose copyright holders, Mortons Motorcycle Media, I make due acknowledgement.
Want to read more on desmodromic vale operation, especially in motorcycles?
Dutch enthusiast Henk Cloosterman has a website, titled “Desmodromology” well worth a visit.
http://members.chello.nl/~wgj.jansen/

In Australia there were two other major efforts at making a desmo operated motorcycle…
In the early 1950s, Velo racer, Sid Willis converted a KSS cylinder head to desmo operation and fitted it to his KTT racer.
Australian Norton supreme, Harry Hinton had one made by his nephew and it was fitted to an ex works Norton 350 Manx and used in practice at the 1960 NSW TT races, Bathurst, NSW, Australia.


These stories for a later blog…..
Reading- “Testing the BMG Desmo Velocette”, MotorCycling, September 4 1963.
Left click on the images to enlarge.

Thursday, October 2, 2008

An Analysis of a Successful Single, with Questions by GEORGE WILSON and Answers from CHARLES UDALL, Velocette Development Engineer.
This following article was published by "The MotorCycle", London, in a series "Motor Cycle Engines" Second Series, 1955....

In 1932, by introducing a four-stroke with push-rod-operated valve gear, in the motor cycle design field. The design incorporated numerous new and praiseworthy features. One of these was the high-mounted camshaft which permitted the use of short, sturdy push-rods. But perhaps more important was the fact that the valve stems and springs were totally enclosed. This feature caused widespread discussion. Many claimed that valve enclosure would prove to be a mixed blessing. Certainly, it was said, greater external cleanliness would result, and it was agreed that dust and road grit would be kept away from the valve guides. But, against these points, it was argued that the valve springs would receive inadequate cooling and, in the long run, exposed valve gear was to be preferred. How unfounded those views were has been proved beyond all doubt in the ensuing 20 years. The original engine with totally enclosed valves was of 248 c.c. capacity, and it was “square,” with a bore and stroke of 68 x 68.25 mm. Later, the stroke was increased to 96mm. To bring the capacity to 349 c.c. Thus, the MAC Velocette, a “sports” three-fifty, was born. From then on, the engine remained unchanged until June, 1951, when the top half was extensively redesigned to bring it into line with modern trends. However, the basic design remains, and in my questionnaire I decided to delve into the “reasons why” behind the illustrious original engine as well as those concerning the more recent version. Since the first World War, incidentally, Velocettes had marketed only two-strokes and overhead-camshaft four-strokes; this engine was their first “modern” design employing push-rod-operated valves.
Why a Push-rod Engine?
In view of this, my first question was: “What made you decide on a push-rod type four-stroke ohv.? You had already, in 1932, the KSS engine, and I would have thought that going from ohc to push-rod valve operation was a retrograde step.” “Basically,” answered Mr. Udall, “the push-rod four-stroke is a type of engine that can be produced more cheaply than the overhead-camshaft type. Moreover, the first type, perhaps on the score of cost, has a rather wider appeal than the second – a fact which has been clearly borne out by our sales figures.”
Question: “What, then, made you decide on a high camshaft location and, that decision made, to employ gear drive to the camshaft and magneto? I have a good reason for asking the second part of this question. As you know, you have a reputation for producing engines which are mechanically quiet, and I would have thought that it would have been easier to obtain a higher standard of quietness by using chain drive.”
Answer: “The decision to locate the camshaft ‘high’ was made for several reasons. Obviously, one reason was to reduce the length of the push-rods. That, of course, reduces valve spring troubles, and differential expansion between the barrel and rods is reduced. When I say that high camshaft location reduces valve-spring troubles. I mean, specifically, because of the lower reciprocating weight, it is possible to use lower-strength valve springs for given rpm. “The decision to use gear drive was based on the fact that, provided the gears are manufactured accurately, and mounted correctly, the drive maintains its efficiency for the total life of the engine. It is more difficult to make to make a gear drive as quiet as a chain drive, but it is a question of maintaining the necessary degree of accuracy in the gears. A chain drive, however well it is arranged, suffers from the fact that the chain stretches during its life and, ultimately, must be replaced.”
Question: “About 1932, you may recall, the Magdyno was in its heyday: the acetylene light had long disappeared, but separate magnetos and dynamos were not widely used. What made you decide on your set-up of magneto behind the crankcase and dynamo in front? I cannot believe that at that time you foresaw that this would be the fashion in 1952!”
Answer: “So far as the latter part of the question is concerned, we did not obviously, foresee that this would be the fashion to-day! But there were excellent reasons for adopting this particular layout. Positioning the magneto at the rear worked in well with the gear drive and allowed us to use a very neatly shaped timing cover. It also meant that as the magneto was well up on the engine, it was safe from any possible water troubles in normal use. A dynamo is less susceptible to water, and the forward mounting made it easy for us to arrange a neat and most satisfactory belt drive.”
Question: “Dealing again with general features first, could you tell me why the change was made to a light-alloy cylinder head and barrel last June? I know from experience that the original engine would withstand hard driving, and I was rather surprised at your making the change at a time when supply difficulties discouraged such modifications, and secondly, because the original job I should have thought, would have been less expensive to produce.”
1951 rigid model Alloy MAC
Answer: “The question of changeover was dictated by two considerations. In the first place, the light-alloy head is a far easier machining proposition and thus allows the production of cylinder-head assemblies at a greater rate than was possible with the old design. The construction is an easier job, and it is a more up-to-date arrangement.
“When the original M-type of engine was designed, enclosure of the valve gear with air-cooled engines was not
widely used, and there was very little known about the subject. Casting a one-piece head would have been possible at that time, but tit was thought that to cast a large valve-spring chest on top of a cast-iron head would lead to troubles. Hence our original scheme of using thin steel cups and separate rocker boxes. It would, of course, have been possible to use this new one-piece design while retaining a cast-iron head, but obviously, a light-alloy head is much better from the point of view of good cooling and general weight reduction. The use of a light-alloy cylinder barrel follows automatically. In fine, the basic reasons for making the change were to bring the model right up to date and to reduce machining difficulties as far as was practicable.”
1954 US model Alloy MAC
Question: “The new cylinder employs very deep fins; does this mean that you subscribe to the theory that it is better to get heat right out of the air-stream and that it is better than trying to get moving air circulating around the barrel at the root of the fins?”
Answer: “Quite honestly, with this type of engine, it does not matter one way or the other. The real reason was to get away from the ‘skinny’ 1932
look and thus to have an engine which looks bigger. Appearance is improved by a nicer balance with the remainder of the machine. There is some slight advantage from having an increased fin area but, I repeat, the primary reason was to get the machine proportionally right aesthetically.” Question: “Would you tell me what is the pitch of the cylinder fins and whether there is any point of interest in connection with the fin shape?”
Answer: “The pitch is 3/8 in. There is nothing unusual about the fin shape and no point of interest arises.”
1956 Alloy MAC
Question: “In the KTT engine, the silicon aluminium-alloy jacket, with its very deep fins, is cast on the nickel iron barrel which has a corrugated outer wall. The barrel is, I believe, heated and placed in the mould before alloy is poured. Would you like to explain the advantages of each of these systems-this on and the new one?”
Answer: “Well, the real underlying answer is that at the time the KTT barrel was produced, there were only two ways of obtaining a composite barrel. One of these was the method adopted for the works’ racing machines: that is to say, a fully machined liner was shrunk into the machined bore of a light-alloy jacket.
mentioned. Nowadays, both have been out-moded by the very up-to-the-minute Al-Fin process used on the MAC. Besides being more modern, the AL-Fin barrel has the advantage of a much better heat transfer.”
Question: “Have any changes been made to the bottom half of the engine at all since it was first introduced? If the answer is ‘No’ and the flywheel inertia was scientifically correct for the two-fifty engine, I should have thought that flywheels of greater diameter would have been necessary for the larger engine.”
Answer: “The answer to the first part of the question is ‘No’. But in fact, the two-fifty had very heavy flywheels that were rather heavier than they needed to be, with the result that the MOV engine was extremely smooth. Owing to the decision merely to increase the stroke it was impossible to inveigle flywheels of greater diameter into the existing crank case, in spite of the theoretical advantage. In any event, and I think you will agree, the standard flywheels are perfectly adequate for this particular engine.”
The late Ron Owen, Australian VOC stalwart aboard his beloved "Alloy MAC", Aust.Nat.Velo Rally, Bright, Victoria
High Safety Factor
Question:
“And the big-end……..? Inertia and centrifugal loadings must be greater with the three-fifty than they were originally---and they are possibly now greater again with the light-alloy engine, because of the increased power output.”
Answer: That is quite correct, the loading on the big-end is much greater with the three-fifty ---but it is a different big-end. This one is the same dimensionally as that fitted to our three-fifty racing machines. The safety factor, accordingly, is extremely high.”
Question: “I cannot remember ever having seen a full technical description of the flywheel assembly. Would you describe the assembly to me?”
Answer: “The flywheels themselves are 0.25 per cent carbon-steel forgings. The timing-side mainshaft is 3 per cent nickel steel, oil-hardened, and the driving-side shaft is 3 per cent nickel steel, case hardened. Both shafts are pressed into taper holes in the flywheel centres and are pegged. As you no doubt know, the crankpin is of two-piece construction, with the central portion which carries the nuts made of 3 ½ per cent nickel steel, oil-hardened and a separate roller track made from 1 per cent carbon chrome steel.”
Question: “Arising from that would you explain first why you oil-harden the timing-side shaft and case-harden its opposite number, and, secondly, why you favour having separate shafts and wheels? Could the flywheels and shafts not be forged as single units?”
Answer: “The reason for case-hardening the driving shaft is that it is splined to locate the shock-absorber sleeve. In this case, the shock absorber works directly on the mainshaft which must obviously be given a case to minimize wear. Regarding the second part of your question, it is, of course, possible to have the axles in one piece with the flywheels. In this particular instance, however, there are several objections.
“One of these is that, as I have just said, it is necessary to case-harden the driving shaft, and doing this with a shaft that is in one piece with a flywheel is almost an impossibility. Thus, the decision made to use a separate shaft on one side, there is no reason for using an integral shaft on the other. Equally important, however, is that by using separate components one can select the type of steel which has the best properties for each particular job. The 0.25 per cent carbon steel in which the flywheels are forged would be unsuitable for the shafts.”
Question: “Why do you favour using a separate roller track for the crankpin?”
Answer: “Because it is a much easier machining proposition. If we used a one-piece pin --- as we do on the KTT --- it would mean that it would have to be manufactured from a case-hardening steel. It is essential, as you well know, to have a case-hardened roller track, but the shanks have to be left soft because of strength considerations. Therefore, the use of a one-piece pin would mean that machining and hardening processes would be unnecessarily complicated; it would involve a lot of handling and increased production time --- and, therefore, increased cost.
“The sleeve, incidentally, is pressed on the pin in an ordinary mandril press and ground finally to size after being pressed on; it is, of course, ground before and after hardening, both on the periphery and in the bore. The final operations are to the roller track and side faces.”
Crankcase Breathing
Question: “I note that the crankpin nuts are not locked. Is this because you feel that additional locking ‘safeguards’ are unnecessary?”
Answer: “Yes. The real answer is that provided the hexagon faces are square and flat, and they are put up to the correct degree of tension, they will never come loose. We used to lock the nuts with a grub screw, but the immediate question to that is, ‘What locks the grub screw? Putting a centre-punch indentation on the end of a shaft or pin is an excellent means of locking a nut in certain circumstances – but not in this particular case.”
Question: “Would you describe, please, how crankcase breathing is achieved and why you use this particular system?”
Answer: “Breathing is achieved through a hole in the middle of the driving shaft. This leads to a cross hole which mates up with a recess in the engine sprocket, and the gases
are discharged through slots in the sprocket. The reason for our using this particular type of breather is that if any oil is thrown out with the discharges gases, it helps to lubricate the engine sprocket. Finally, of course, the oil is thrown out to the chaincase, where it assists in primary chain lubrication.”
Question: “The connecting rod, I believe, is manufactured from a 3 ½ per cent nickel steel, heat-treated to 50-60 tons per square inch tensile strength. What is its length between the centres in relation to the stroke, and has the figure any special significance?”
Answer: “The stroke is 96mm or 3.779in. The connecting rod measures 6.875in and is, therefore, 1.82 times the stroke. The figure has no special significance. I have found no great variation when using either long connecting rods or short ones.”
Question: “To what extent is the reciprocating weight balanced?”
Answer: “70 per cent. Incidentally, each flywheel is individually balanced, with the result that each flywheel assembly is balanced to perfection.”
Question: “Returning to the timing gear, is there anything unusual about the tooth form?”
Answer: “Yes, there is something. In the first place the teeth are of every fine pitch and, of course, as we have already remarked, they are helical cut instead of being the more usual type of spur pinions.”
Question: “The reason you use helical gearing is, presumably, because you want to ensure mechanical quietness. But in the L.E. Velocette you use spur gears accurately machined by modern methods, are just as quiet as helical gears. It is not a fact that spur gearing in this case would be as quiet and yet prove less expensive?”
Spur or Helical Gears?
Answer”
“I would not go so far as to say that your pinions are less expensive than helical ones are, but the new methods of machining spur gears have been developed since the MAC was originally designed. While we could today produce spur pinions for the MAC in the same way as we do those for the LE, we have no wish to make a change, thus introducing a service problem, at this stage.”
Question: “Do you make any provision for adjusting gear centres?”
Answer: “The intermediate gear centre spindle is capable of being moved to adjust the centre distance of the gears. Thus, on assembly, we can produce backlash in the timing pinions to a minimum. Incidentally, the gear pinion material is 3 per cent nickel case-hardening steel, which is given a light case. We use this particular material because the high tensile strength of a nickel steel is necessary in view of the very small gear teeth. In the interests of quietness again, the magneto pinion is made in Tufnol. We have a hunting tooth in the intermediate pinion so that wear is evenly distributed among the teeth.”
Question: “Does the tooth form compensate for variation between the centres, due to expansion and contraction of the crankcase?”
Answer: “As with most involute gear teeth, it is possible to operate them on centres other than the theoretically correct ones, so there is no special compensation --- for none is necessary.”
Question: “Your cam-wheel arrangement is unusual.. The cams, which are manufactured from case-hardening mild steel, have an integral boss which is a press fit in the pinion bore. The assembly is plain-bushed and rotates on a stationary shaft. Would you please explain why you use this system in preference to the more orthodox one?”
Answer: “It is easier to maintain correct gear centres by this method and, in addition, it is just about the only system that one can use for the moveable intermediate gear centre.”
Question: “Instead of the push-rods being operated through straight tappets, the MAC engine employs a system of cam followers, or, as you call them, bottom rockets. Has your system any real advantage over the other one?”
Answer: “If we used straight tappets with this type of cam, valve operation would be noisier. Our method is used chiefly with a view to achieving the maximum degree of operational quietness. Were we to alter the cam design we could, of course, obtain just as quiet running in conjunction with straight tappets. Indeed, broadly speaking, it is true to say that with modern knowledge and production methods, it is possible to make almost any type of valve gear quiet.”
Question: “The valve seats, I note, are of austenitic iron, shrunk in as on the KTT. But on the racing engine, different materials are used for the inlet and exhaust seats. Would you explain the reason why the difference does not appear on the MAC unit?”
Answer: “The iron used for both MAC valve seats is similar to that used for the inlet seating on the racing engines. But, owing to the much less arduous conditions under which the MAC engine works, it is not necessary to provide an aluminium-bronze seat for the exhaust valve. Another very important factor is that austenitic iron is much more hardwearing than aluminium-bronze. A point here is that the KTT engine is likely to be worked on much more frequently than the MAC!”
Question: “Can you tell me if the choke diameter was decided upon with a view to high performance or good power at low revs, or, as with all design problems, is it a compromise between the two?”
Answer: “It is compromise between the two. One aims to get as good power output as possible at the top end without spoiling the power at low revs; and, of course, the reverse holds good. It is a compromise to obtain the best possible performance at both ends.
Question: “The rockers operate in separate DTD 424 light-alloy brackets. Could these brackets not have been incorporated with the rocker posts in the head castings, since there would then, I should have thought, have been even greater rigidity than at present? And would you explain why it has not been necessary to line the rocker housings with some form of hearing material?”
Bearing Pressures Low
Answer:
“The reason is that in the original design of the engine, the rocker bearing surface was made of such ample proportions that the bearing pressures were already down to a very low figure, thus permitting the rockers to be run directly in the aluminium rocker box, avoiding, again, separate components. When the engine was redesigned with a light-alloy head, similar rockers were used, which meant that we could operate them in light-alloy housings quite successfully. The housings could not be incorporated in the head casting, since that would render two of the cylinder head studs inaccessible. It would also make the machining of the housings very difficult.”
Question: “Are the bearings split purely because of considerations of ease of assembly and dismantling?”
Answer: “They are split because it is the only way of getting a bearing on that particular design of rocker. The use of solid bearings would mean that a two-piece rocker construction would be essential. The disadvantages of that are obvious: there would be more component parts to machine and there would be, also, the possibility of slack developing between the two components of the rocker.”
Question: “And the power output …?”
Answer: “It is approximately 15 b.h.p. at 5,500 r.p.m. We make no attempt to obtain a higher power output although we have done so by tuning on special occasions. We have what we believe to be an excellent compromise, bearing in mind the poor quality of the fuel in Great Britain and the high quality obtainable in some overseas countries. The engine is so arranged that it will run on any of these fuels with a high degree of efficiency.”



Left click on images to enlarge.

Sunday, August 31, 2008

GEORGE WILSON Probes into the “Reasons Why” of the lightweight Velocette Design-the 149c.c. Model, Forerunner of the Similar 192c.c. Mount-and CHARLES UDALL, Development Engineer, Provides the Answers..

“The component parts of the LE engine are all straightforward. It is the fact that they have been ‘gathered together’-shall we say?-in the way that they have that makes the machine appear unorthodox. It is true to say that in the complete machine not a single departure has been made from what is regarded today as normal engineering principles; obviously to depart from these would have spelt trouble-in large capital letters!”
The photo at the top shows Anne Frampton, daughter of Bertie Goodman last managing director of Veloce Ltd ( himself son of Percy Goodman, the brilliant designer of so many early Velocette engines and inovations) astride Peter Wolfenden's Mk.2 LE at the NSW section of the Australian Velocette Owners Club Show Day at "Fagan Park", on the Northern outskirts of Sydney, 31st August 2008.
Anne is the Club Patron and lives in Sydney.
Thus spoke Mr. Charles Udall, Velocette development Engineer, when I called at the works to discuss the whys and wherefores behind the ingenious design of the 150 c.c. LE Velocette- the most revolutionary lightweight of the day.
“In discussing the LE unit,” he continued, “ I’m afraid that it may be necessary to depart from the strict confines of your ‘Modern Engines’ series. You see, the LE is a conceived-as-a-whole design. The engine, gear box, propeller-shaft, and bevel box all form an integral unit; an entity; a single unit designed to do a specific job. And it is impossible to discuss on ‘section’ of the unit without bringing in a sister section.”
From this stimulating gambit we passed on to a discussion that carried us non-stop through an absorbingly interesting afternoon.
My first question was a multiple one: “Why did you decide on a flat-twin and why, indeed, on a twin at all? Did you ever consider employing a single- a two stroke for instance?”
“Well, first of all,” replied Mr. Udall, “one of the primary aims was elimination, in so far as was possible, of all forms of vibration. There are only three types of engine which could be considered, and of those the flat-twin is really suitable for use in a small-capacity motor cycle. The four-cylinder engine also, of course, eliminates vibration, but obviously the LE is not the sort of machine which could be fitted with a “four.” Whit single, the whole machine would have had to have been made heavier to withstand the inherent vibration, and the steel frame as it exists in the LE today would have proved quite useless. So the question of using a single was never considered, nor was the question of making the engine a two-stroke.
“Again,” Mr. Udall continued, “we come to my other point about one thing leading to another. Since one of the chief aims as I have said, was the elimination of vibration, a flat-twin was decided upon. Since the unit had to be as simple as possible, and lage mileages with a minimum of attention were an important proviso, side-by-side valves were preferred. An objection to overhead-valves was that even a small-capacity engine, the width would considerably be increased, making the engine much more vulnerable. The cylinder heads, in fact, would probably have protected beyond the legshields.
“Linked with the question of ease of maintenance was the decision to use shaft-drive. True, shaft-drive is more expensive than chain. But having a shaft greatly simplifies maintenance for the non-mechanically minded rider, who may be using the machine every day. And the chief aim, after all, was to provide for low maintenance cost as opposed to the lowest production cost.
“The decision to employ shaft-drive arrived at mounting the engine transversely in the frame was a sine qua non. Cooling? Water-cooling was the obvious answer for two reasons; the first was that it is possible to obtain a much higher degree of mechanical quietness when the cylinders are shrouded by water jackets. Taking the conception of the machine as a whole again, legshields must be regarded in the light of essentials, and if air-cooling had been employed, gaps in the shields for the air stream would have been necessary. And that, of course, would have affected weather protection. Another point was that the engine temperature of a small side-valve unit is more easily controlled by means of water-cooling.”
Going into his last point in greater detail, Mr. Udall pointed out that had air-cooling been employed, it would have been next to impossible to incorporate air passages round the exhaust ports.
“The manufacture of engine, clutch, gear box, and final drive as a single unit promised simplification in assembly and manufacturing problems which could not be ignored. Hence the unit construction.”
In one fell swoop, as it were, Mr. Udall had answered about a dozen of the points listed on the rough questionnaire I had prepared. I decided I had better scrap it right away, and deal with each field of inquiry as it cropped up!
Leaving generalities, Mr. Udall went on to point out that the crankshaft is of the two-throw type with the cranks at 180 deg. Since the aim was to keep the offset on the cylinders as low as possible in order to reduce the out-of-balance couple to a minimum, it was desirable to keep down the width of the big-ends. Thus roller-bearings were used. Had plain bearings been adopted, the cylinders would have required to be considerably more offset than they are now, since, in order to achieve the desired load-carrying capacity, considerably wider bearings would have been needed.
The rollers in the big-end bearings are uncaged. There are 28 rollers per bearing. The size of the big-end track on the crankpin is 1in dia. When talking of the big-end track, Udall was referring not to the crankpin itself, but to the hardened sleeve which is pressed on the crankpin.
The obvious question to all of this was: “But why use these sleeves at all- why not a plain, hardened pin of larger sections and grind the bearing surface?”
“Ah!” said Charles, “ that requires some explanation. As you can see. The crankpins and crank discs are a one-piece forging. The metal used is a 3 ½ per cent nickel steel, in fact, B.E.S.69. This is a steel with a high tensile strength and one that is quite ductile. In order to minimize the risk of fracture, and avoid cracks in the angles formed by the pin and disc, these corners have to be radiused. And, of course, since a roller bearing cannot bear on a surface with radiused ends, the big-end tracks, or sleeves, have their inner ends likewise radiused to allow them to be pressed up close to the cheek of the crank disc. An incidental point is that even if it were possible to have the bearings running direct on the crankpin, it would not be possible to use B.E.S.69, since the material cannot be hardened to the necessary degree.”
“I see, and what is the material used for the tracks?”
“It is carbon-chrome steel, turned from bar material, heat-treated and then ground. Incidentally, the sleeves are approximately 1/8in thick.”
I drew Mr. Udall’s attention to the crankshaft bob-weights and what asked: “Why are bob-weights fitted since, surely, with this type of engine, the primary out-of-balance forces are nil?”
“A good point,” answered Charles with a smile. “I grant you that, as the piston and connecting rods in a flat-twin move at the same speed in opposite directions, their inertia forces cancel each other out. But owing to the fact that the cylinders are offset in relation to one another, there exists a slight out-of-balance couple. And this can be reduced by adding bob-weights to the crankshaft. The effect is to reduce the couple in the horizontal plane and introduce a rather higher couple in the vertical plane; but since a motor cycle is very much stiffer in the vertical plane, its effect is nothing like so marked. In other words, it is much to have the couple in the vertical plane than in horizontal.”
“And how are the bob-weights fitted to the crankpins?” I asked.
“The pins are a push fit into the bob-weights. They are locked up by a clamp bolt and lock nut. Then the pins and bob-weight are drilled in position and round, hardened dowels pressed in.”
“With this layout the attractions of adopting the car practice of a combined flywheel and clutch at the rear of the engine seem too good to miss, yet you have ignored them. Any special reason for doing so?” I asked.
“The present arrangement with the flywheel at the front is much better, since, with the existing layout, there is a primary reduction gear between the mainshaft and the clutch. With the clutch running at roughly one-third engine speed, we have a slow-running gear box. This reduces the inertia of the clutch and other rotating parts and makes the great gear-change easier.”
“Fair enough. Is there anything extra ordinary about the main bearings?”
“No, they are perfectly standard ball bearings at both ends with a plain, steady bearing on the driving shaft. It was decided to use ball bearings so that there would be the minimum resistance to starting. The diameter of the ball journal is 3/4in.”
“what material is used for the pistons?”
“They are Y-alloy die-castings; rather unusual in so far as they use a one-piece core in the die. Normally a piston is constructed as a die-casting with anything up to nine separate pieces in the core. Because of the shape of the bosses, the core has to be collapsed when the piston is cast. The LE pistons are made in such a way that the bosses as ‘Dee’d’ up the piston crown.”
I noted that the gudgeon-pin bosses were situated roughly half-way down the piston skirt. “Why is that?” I asked.
Charles replied : “In order to get a proper distribution of load on the piston skirt. If the gudgeon pin is carried high up in the skirt immediately below the slotted oil-control ring, there is intense pressure just at that point and it can lead to seizure. Redistribution of the load makes it possible to use smaller clearances. We use 1 ½ thou. at the skirt.”
“Is the camshaft a forging?”
“Yes, it carries four integral cams. The material is ordinary, case-hardening mild-steel and the cams are casse hardened. The shaft is carried on a ball journal at each end. Diameter of the bearings is 5/16in bore.”
I picked up on of the tiny 10-mm sparking plugs and inquired : “Why use light-alloy heads when the engine is water-cooled?”
“It is generally agreed that light-alloy heads give improved cooling. One can use a slightly higher compression ratio than with an iron head and, of course, there is an advantage of the weight saving.”
I remarked on the fact that the valves were inclined to the bores. Was that as a result of using only a single camshaft or was it also, perhaps, done purposely, in order to get more water round the valve seats?
“Yes, those are the answers. The valve seats are machined in the cylinder casting. Valve-guide material? Plain cast-iron, pressed in. The material used for the valves is normal Silchrome valve steel. Inlet and exhaust valves are made from the same material and the sizes are 13/16in. The compression ratio 6 to 1 Valve springs are of ordinary helical type of 35lb seated strength. Cotters are of the straightforward split type of orthodox design.
“Long tappets of square section with radiused ends are used, and tappet bushes are of sintered cast-iron pressed into the crankcase. Why square-section tappets? Because we wanted to use the widest tappets and cams possible in order to reduce wear to a minimum.”
In answer to a question on how lubrication was carried out, Mr. Udall explained the system thoroughly. “A great-type pump draws oil from the 1 ½-pint capacity sump through a large-capacity gauze filter and delivers to a jet feeding oil to the middle web of the crankshaft. Two scallops formed in the outer diameter of the web direct the oil in to the big-ends. A further feed from the pump leads to the plain, steady bearing on the end of the crankshaft, and to two subsidiary jets: one of these feeds to the camshaft gears, while the other lubricates the reduction drive. Further lubrication is by means of splash and mist.”
We turned to the rear of the engine and I pointed to the primary reduction gear. “Why do you use helical gearing here when a straight-tooth gear would probably do the job just as efficiently?” I asked.
“The answer to that one, of course, is that helical gears are much quieter. An interesting point about the production of the gears is that each pair is lapped on a special machine. This ensures the high degree of accuracy which is essential to really quiet running. It is a procedure used quite a lot in the car world.”
“What material is used for the gears?”
“it is used a 3 percent nickel-chrome-molybdenum steel of 70-80 tons tensile strength.”
“Is it used because of its toughness?”
“The answer to that is ‘yes’-partly; but the real reason it is used is to give a high-core strength the teeth.”
“With this method of unit construction,” I asked, “do you have any troubles owing to the heat transference to the clutch?”
Charles answered that he had experienced none at all. The friction plates themselves are of a high-fade-point material- one which, in other words, can withstand very much higher than normal temperatures before it loses its frictional properties.
“What is the material?” “It is a Ferodo material known as V.M.41.”
“I note that you have interposed the starting mechanism between the clutch and the engine. Why?” “The real reason for that, of course, is to make control easy in difficult circumstances. For instance, if, with the normal starter, the engine stalled during a get-away, it would mean selecting neutral, starting the engine, then re-engaging the gear before getting under way. In this case, all that is necessary is to lift the clutch lever, start the engine and set off.”
“How is the reduction helical fitted to the mainshaft? Is it keyed or fitted on a taper?” I asked.
“It is actually pressed on the present shaft, but it used to be held by splines. It is now pressed on to a very much larger shaft.”
“What is the interference?” “1-1 ½ thou.” “How is it pressed on? “There is a very slight taper in the bore of the gear and on the shaft0, which means that the two can be pushed together so far, and then the operation is completed in a press.”
Pointing to the clutch, Mr. Udall continued, “The clutch, on the other hand, is fitted on splines on the end of the reduction gear shaft and the shaft is carried in one ball journal and one plain bearing.”
“You use a two-plate clutch,” I cut in. “Is there any special reason for that?”
“Well, yes,” he replied. “A single plate clutch of this dimension would have required a much heavier spring pressure to transmit the power. This, of course, would have meant very much heavier clutch operation as light as was humanly possible. We found that with the two plate clutch we had ability to transmit all the power we wanted with the desired lightness of operation.”
“what are the outstanding features of the gear box?”
“Well, it is a constant-mesh, offset box of normal type, but not, of course, a normal gear box as we know it in the motor cycle world. It is one in which the drive is taken in on one shaft and the output taken from the other; in other words, it is not a straight through box, and the drive is always transmitted by one pair of gears only in any gear.”
“Yes, I see that,” I replied, “but is there any reason for using an offset box apart from that of achieving the necessary offset required for the shaft-drive?”
“Yes,” Mr. Udall pointed out, “ there is the additional advantage of low frictional losses since, in the indirect ratios, the power is being transmitted, as I have said, through only one pair of gears- as opposed t two pairs in the normal type of box.”
“What material do you use for the gear pinions?” I asked.
“It is nickel-chrome steel, exactly as used for the reduction helicals, and it is used for the same reasons.”
“What are the shafts made of?” “It is a nickel-chrome case-hardeining steel, known as E.M.39.” “Any special points about its heat-treatment?” “None whatever. It is a perfectly normal case-hardening steel, chosen for its high tensile strength.”
Asking what material was used for the propeller shaft, I was told that it was nickel-chrome oil-hardened steel, also employed because of its high tensile strength-which is about 65 tons per sq in. the shaft operates between a Hardy-Spicer, needle-roller universal joint at the front end, and a splined muff-coupling at the rear.
“What size of bearing is used for the bevel pinion?”
“It is a 3/4in duplex type; a special thrust bearing carrying thrust in both directions. Normal spiral bevels are employed.’
“How is the bearing locked?” “Quite simply,” I was told. “it is shrunk into the housing and locked in position by a screwed ring. The bevel pinion is also carried by a needle roller bearing situated as close up to the teeth as it will go.”
“Any special points about the spiral bevel crown wheel?”
“not really. It is a perfectly normal type, carried by one needle roller bearing and one ball bearing. There is provisions for adjustment in the mesh, which is carried out at the factory. What might be described as an unusual feature is that, since it has a fairly high ratio, it is possible to use a very small bevel box. Drive to the rear wheel is transmitted by a series of dogs.”
All that remained to discuss was the ignition and carburettor.
Dealing with the ignition set first, it will be recalled that a B.T.-H generator is employed. Situated immediately forward of the forged-steel, dished portion, the generator unit is driven on a forward parallel extension of the tapered shaft by a Woodruff key. The casing is held by four bolts extending form the flywheel housing and easily accessible from the front of the engine. In the casing are contained the D.C. generator, h.t. coil, distributor, contact-breaker and auto-timing device, all concealed, all accessible in single compartment.
The carburettor? It had to be one that would provide the perfect tickover. The engine must spring to life at the lightest pull on its starting handle, and it must respond to the most ham-fisted opening up. The result is the special fixed-jet carburettor. It contains only one moving part-a butterfly throttle, and its features a separate starter jet system with in-built push-pull operation. This furnishes the correct mixture for starting and dispenses with the need for a tickler.
Acknowledgement is made to Mortons Motorcycle Media owners of the copyright for "The Motorcycle" and "Motor Cycling" material.
Left click on images to enlarge...

Sunday, August 17, 2008

Alan Baker, journalist,questions the “Reasons Why” of the new swinging arm Velocette design-the 499c.c. Model MSS, a new all alloy engine-and CHARLES UDALL, Development Engineer, Provides the Answers. ( introduced for the 1954 season by Veloce Ltd.).


For many years Velocette machines have rightly had a special place in the regard of the more technically minded enthusiast. Not only have Velocettes amassed as impressive list of racing successes, but the level of engineering quality and technique applied to production models has always been of an unusually high order. Introduced towards the end of the 1935 season, the original 495 c.c. MSS engine was a logical development from the 348 c.c. MAC model, which in turn was evolved from the 248c.c. MOV- the first push-rod over-head valve unit to be introduced by the concern. The MSS quickly earned itself an enviable reputation as a quiet, docile machine which, although it had excellent manners, lacked nothing in sheer performance in comparison with its contemporaries.
In the early post-war years, the model was reintroduced in virtually its 1939 form, but was dropped after 1948; such were the manufacturing difficulties at the time that it was decided to concentrate production resources on the LE and MAC models. In 1951, the MAC engine appeared in a considerably redesigned form, with light-alloy cylinder and cylinder head.
As a result of the easing of manufacturing problems during the last two or three years, and the demand from Velocette adherents for a larger-capacity machine, it was decided to work on a new MSS power unit. In the interests of economic production, the MSS engine would be housed in the newly developed MAC rear-sprung frame, and would embody the proven features of its ancestors together with the lessons learned from the MAC.
Although it bore a similarity to the earlier version, the new MSS engine differed considerably there from in its internal details. Possibly the most obvious change concerned the bore and stroke which, from being 81mm x 96mm, became “square” at 86mm x 86mm. The engine had the familiar high-camshaft operation of the overhead valves, and emerged as a functional and efficient-looking unit
Charles Udall, who was responsible for the design, has been with Veloce, Ltd., since 1927 and, in pre-war years, was on the racing side under the late Harold Willis; on Willis’ death in 1939, Mr. Udall took over the racing department and, after the war, became development engineer. In this capacity he is concerned not only with laying out a design on paper but also with ensuring that it comes up to expectations after its translation into metal- an ideal combination to a technician in search of information.
To after the bore and stroke of a successful engine is a major step, not to be undertaken lightly by any designer. Hence my first query:
Question: “Does the 86mm bore and stroke mean that you are now in favour of comparatively short strokes and big bores, or is some other consideration involved?”
Answer: “The reason for the changed dimensions is very simple. We decided to use the current spring frame to house the new MSS engine, and the size of this frame is such that the old “long-stroke” engine was too tall to go in- so we shortened its stroke until it would fit. Where very high rpm. are necessary, as on a racing engine, a short stroke is essential, but the average roadster engine is in a different category and there is, in my opinion, no intrinsic advantage, in a bore/stroke ratio approaching or exceeding unity. A very tall engine will tend to be heavier than a short one and, if the stroke is over-long, difficulty will be encountered in getting adequate sizes of valves. With in certain limits, however, I consider that I could get almost identical characteristics and performance from any bore/stroke ratio.”
I had expected a technical lecture and had received a straightforward admission of expediency! We then considered the crankshaft assembly, and Mr. Udall pointed out that the flywheels, though comparatively narrow, are of large diameter with rims of fairly deep section, thus providing maximum flywheel effect with minimum weight.
Shallow-Taper Fit
Question:
“I notice that there are no nuts for securing the mainshaft or the crankpin in the flywheels. Presumably you employ interference fits, but the absence of nuts is unusual in the case of the crankpin, and represents a difference from the earlier MSS engine. Why have you adopted this particular method of construction?”
Answer: “The mating parts have a taper of 0.008" per inch. This taper enables each shaft to be entered in its hole without difficulty during assembly and gives an interference fir of 0.003" to 0.0035" when fully home-ample for complete security. The elimination of the crankpin nuts has meant that we no longer have to counter-bore the flywheels to accommodate the nuts, and thus have almost twice the length of crankpin shank held in each wheel than we had before. In addition, we have increased the diameter of the shank; the combined effect of the two alterations, plus the reduced throw of the crank, is a very much stiffer flywheel assembly. Incidentally, we have employed the shallow-taper method of construction since 1925.”
It is of the utmost importance that the materials used for the various components of the crankshaft assembly should be up to the loading imposed on them. For this reason, the flywheels are stampings in a 0.3%, carbon steel, the crankpin is a 3 %, nickel-chromium, case-hardening steel, and the drive-side and timing-side shaft a direct-hardening steel is employed.
For the connecting rod En18, a 1% chromium steel, is employed and the forging is heat-treated to 60 tons/sq in tensile strength. The heat treatment is carried out before machining, to avoid distortion, and the usual hardened sleeve is pressed in to form the outer race of the big-end bearing.
Question: “On the ‘iron’ engine you balanced 70% of the reciprocating weight, whereas on the new engine only 55% is balanced. Does this alteration result from the reduced weight of the engine?”
Answer: “While the reduced weight might have had an effect, one cannot say that there is an optimum balance factor for an engine on its own: there is only an optimum factor for a giver engine-and-frame combination, which includes the method of mounting the engine in the frame. Here we have an engine of altered dimensions and weight from the earlier model, housed in a completely different frame. It would have been most surprising had the best balance factor proved to be the same for both machines. There is no known method of forecasting the best balance factor for any particular combination so it has to be ascertained by experiment.”
Interesting comment, as the balance factor was changed back to 70% around the introduction of the Venom in 1956. DQ.
High Load Capacity

The MSS engine is probably unique in that it has taper-roller bearings to support the mainshafts, in place of the more usual ball or parallel-roller pattern. These taper-roller bearings were first introduced on the post-war “long-stroke” MSS engine and proved so satisfactory that they were retained in the new design.
Bearings of this type have a high load-carrying capacity for their size, and are less affected than are other varieties by out-of-line forces caused by shaft deflection, which cannot be completely avoided in any engine. Also, the taper-roller bearing is intended to withstand axial as well as radial loading and so is admirably suited to dealing with the end-thrust imposed by the helical timing gears.
With quiet operation in mind, a degree of pre-loading is applied to the main bearings; this “nip”, as it is called, is not in any way harmful to the bearings. It ensures absence of play between rollers and races, so that “grumbling” during running is avoided.
The inner races are pressed on to the mainshafts. The outer races are pressed into the crankcase halves, where they are shimmed to provide a nip of 0.004" when the engine is cold. At normal running temperatures this nip comes down to between ½ and ¾ thou. It is recommended by the makers that after 10 to 15,000 miles, by which time the bearings will have thoroughly bedded down, the crankcase should be dismantled and the outer races re-shimmed to restore the pre-loading to its original figure. Thereafter no further attention should be necessary for the rest of this life of the bearing.
Question: “In this new engine you retain the traditional, narrow crankcase, with only one bearing for each mainshaft. Since so many other manufactures employ two bearings, at least on the drive side, can you tell me the reasons for your layout?”
Second Bearing Unnecessary
Answer:
“Many years ago we decided to keep the primary chain line as close as possible to the engine centre line. This necessitated our putting the primary drive inside the final drive. Although this feature resulted in a more complicated clutch-operating mechanism, the absence of overhang and the consequently short, stiff mainshaft enabled us to dispense with a second drive-side main bearing which would undoubtedly be necessary if we had a conventional drive layout. On the timing side, the mainshaft pinion is located right up against the outside of the bearing, so that here, too, the shaft is short and stiff enough to require no out board support.”
Question : “For the big-end bearing you employ a single row of 3/16" x 9/16" rollers in a Duralumin cage, in place of the more common two rows (or even three) of shorter rollers. What benefit do you consider to accrue from the use of these long rollers?”
Answer: “All bearing rollers have radiused- or chamfered-ends, to avoid flaking of the case at these points. These end radii reduce appreciably the effective length of the roller, so that three rows of 3/16" x 3/16" rollers would have a lower bearing capacity than has our single row. You will note that the ends of the cage which runs on the crankpin, are located in shallow recesses in the flywheels, so that the rollers virtually fill the gap between the wheels. This avoidance of wasted width assists in achieving a narrow rigid crankshaft assembly.”
Engine lubrication is by gear-type pump driven by a bronze worm on the end of the timing-side mainshaft; to ensure through scavenging of the crankcase, the scavenge-pump capacity has been increased and is nearly two and a half times that of the pressure side.
On leaving the pump, the oil is forced to a gallery in the timing cover, whence it passes to four separate feeds: one leads to a big-end bearing via the mainshaft, another lubricates the cam-spindle bearing, the third directs oil to the cam faces, and the last takes oil to the rocker gear. Oil is supplied in the desired quantity and at a suitable pressure for each duty by means of jets and metering holes.
Several features requiring comment emerged from a study of the lubrication system, so I put the following questions to Mr. Udall.
Non-return valve
Question: “A disadvantage of the gear-type oil pump is its tendency to let oil seep past it into the crankcase, so that over-oiling can result on starting after the engine has not been running for some time. Have you made any provision to deal with this difficulty?”
Answer : “We encountered the trouble on earlier engines, and have taken two steps to eliminate it on the MSS unit. In non-return ball valve, held on its seat by a light spring when the engine is not running. Pump suction is sufficient to take the ball off its seat so that oil can flow from the tank to engine. Though unusual, this method has proved entirely satisfactory, provided only that the feed pipe is fully primed with oil before it is coupled to the tank. On the scavenge side, the oil is returned through a fabric filter in the tank and, to prevent the oil in the filter from draining back, the return pipe is extended above the top of the filter.”
Improved Lubrication
Question: “Big-end lubrication on the earlier engines was by the usual drill ways in mainshaft, flywheel and crankpin, but I note that the crankpin is no longer drilled. Instead, the drill way in the flywheel is inclined and emerges at the inner face slightly nearer to the centre than the crankpin. What is the advantage of this over the former method?”
Answer: “Where the crankpin is drilled axially, centrifugal force results in the oil tending to go only to the outer part of the bearing, so that the rollers nearer the axis of the flywheel may be under-lubricated. By supplying the oil to the point of the bearing nearest to the centrifuged through the whole of the bearing, so that more through lubrication is obtained.”
Question: “The rocker gear is fed from the pressure side of the oil pump, and not from the scavenge side as on many other engines popular today. Also, the pipe from the timing chest is no less than 5/16in in outside diameter. Why do you not lubricate from the scavenge pump, and why is the pipe so large?”
Answer : “Lubrication from the scavenge pump may result in some restriction in efficiency and hence inadequate scavenging. Also the pressure is so low that, in conjunction with a fair length of small-bore piping, little real lubrication can result, particularly when the oil is cold.
“We prefer to use the pressure pump to make sure the oil gets to where it is wanted, to give it passages of adequate size through which to flow, and to restrict the quantity by the use of metering holes at the component in concerned-in this case the rocker bearings, where the oil emerges through 0.046" holes.
Another feature to be carried on unchanged from the earlier-series engines is the timing gear. All push-rod Velocette engines have had small-pitch, helical-cut teeth in the timing train; despite their rather higher manufacturing cost, such gears are considered to be well worth while since they operate more quietly than do straight-toothed gears. The reason for this quieter running is that more than one tooth is always in full engagement over part if its length; thus, the driving load is not transferred suddenly from one tooth to the next but the changeover is relatively gradual and smooth.
Adjustment of Backlash
A diametral pitch (number of teeth divided by pitch circle diameter) of 32 is employed, and the intermediate idler gear between the crankshaft pinion and the cam wheel has a hunting tooth to distribute wear. This idler also has an adjustable mounting whereby backlash can be taken up-a further point making for quiet running. The fixed spindle on which it revolves has a circular back plate with three tapped holes; there are three similarly spaced holes in the crankcase wall through which pass the set-screws securing the back plate. Adequate clearance is allowed in these second three holes to give the necessary meshing adjustment which is held when the screws are tightened. On erection, the adjustment is set so that all backlash is just taken up with the engine cold.
Spindle Support
As mentioned earlier by Mr. Udall, the mainshaft pinion is carried close up to the main bearing. It follows that the intermediate and cam gears also have little overhang from the crankcase wall; both are bronze bushed, and the cam spindle is pressed into the case. An outboard steady plate supports the outer ends of the two gear spindles and that carrying the cam followers. The steady plate is tied to the crankcase at two points, and thus not only maintains the spindles in correct relation with each other but also with the crankshaft.
The taper-interference fit mentioned in connection with the crankpin and mainshafts is also found between the cam wheel and the sleeve on which the cams are formed. In this case the taper that the parts are self-gauging: if the fit is correct, the sleeve will enter exactly half-way through the wheel when inserted by hand. If it went less far, the interference fit on pressing it home would be too heavy, while entry beyond the halfway point would result in too light an interference.
Question: Compared with that of many other engines, the valve timing of the MSS engine is very ‘moderate’ and provides only 38 degrees of overlap. This reduction from the 60 degrees of earlier MSS engines was presumably made with a view to economy and good torque lower down the speed range. Has any serious loss in top-end performance resulted and, if not, how have you avoided the loss?”
Increased Radius
Answer:
“ You are right in your assumption that we were guided primarily by the need for economy and better low speed pulling. However, there is no serious loss at the top, as is indicated by the peak power output of 23b.h.p. at 5,000rpm, with air cleaner and standard silencer. We have obtained this peak performance by an alteration to the bottom rockers (cam followers). These rockers have a radius of 1" instead of 3/8" as with the former engine. This larger radius results in quicker acceleration of the valve off its seat, and a longer deceleration period towards full lift.
“With a fairly high valve lift, the deceleration period must be as long as possible if the valve mechanism is going to follow the cam motion at high rpm. which it must do if float is to be avoided. Softer timing means that the total period available for opening (or closing) the valve is lessened, so that only by speeding up the acceleration stage was it possible to maintain an adequate valve lift with the new timing.”
While the fuel consumption under road conditions must await an independent road test, Charles Udall is confident that the MSS will prove economical. The effect of the modified valve timing on the torque curve has been most marked. Although the actual torque peak occurs as before at about 4,000 rpm the torque is very nearly constant between 3000 and 4,500rpm. after which it falls off rather sharply. Since the torque figure is still good at as low as 2,500 rpm. it should obviously be possible to drive the MSS largely as a top-gear machine if desired, and it should have excellent characteristics for sidecar work.
The cam followers referred to by Mr. Udall are of 3% nickel, case hardening steel and have a hard-facing alloy in the rubbing radius. Push rods are of Duralumin tubing with hardened steel ball-ends pressed into the lower ends.
Checking the Clearance
An unusual arrangement is employed at the rocker adjusters. The rocker carries a threaded, ball-end adjuster which seats in a cup formed in a hardened-steel mushroom. The stem of the mushroom is a sliding fit in the bore of the push rod, and the underside of its head forms a flat shoulder. On to the end of the push rod is pressed a shouldered sleeve; the shoulder of the mushroom seats on the flat top face of this sleeve.
It will be evident that the clearance between shoulder and sleeve face will be a measure of the valve clearance, which is checked by sliding a feeler into the gap. The adjacent corners of sleeve and mushroom have a small radius to assist the insertion of the feeler.
Apart from improved accessibility, this adjustment scheme has an advantage over a threaded adjuster at the valve end of the rocker. The thrust button which bears on the valve can be radiused in one plane only instead of being part-spherical. The resulting line contact causes less wear of the valve stem than did the almost point contact of the part-spherical button employed for the earlier engine.
Holding-down Studs
When redesigning the MAC engine, Y-alloy was adopted for the cylinder head on account of its mechanical strength and its good heat conductivity. The latter feature permits the use of a higher compression ratio than does cast iron, thereby improving both performance and fuel consumption. Since it was clearly desirable that the MSS should not lag behind in these two respects, Y-alloy forms the head material on this engine also.
Shrunk into the head are valve seats of austenitic iron. This material was chosen because of its resistance to impact loading at elevated temperatures, and because of the security it provides through having a coefficient of expansion approaching that of Y-alloy. Four long holding-down studs pass through the head and the upper fins of the Al-fin cylinder barrel, and these studs gave rise to my next point
Question: “The four cylinder and head holding-down studs screw into steel sleeves which in turn screw into the crankcase. Surely such sleeves are unnecessary with semi-permanent items such as the studs?”
Answer: “They would be unnecessary if the studs were semi-permanent, but the height restriction of the frame is such that the studs have to be removed before the head can be lifted. Removal of the head will normally be infrequently required, but we thought it as well to guard against the inveterate “dismantler” by ensuring that no crankcase threads would strip.”
An unusual detail is that the head holding-down nuts have nylon inserts which, in addition to being self-locking, seal the threads against oil leakage from the head and down the studs.
On top of the head is bolted the rocker box, a die-casting in DTD424 aluminium alloy. Two half-bearings are machined in the box to take the journal portion of the rockers; the detachable bearing caps, also of aluminium alloy, are each secured by four screws. This uncommon construction gives very rigid support to the rockers but was dictated primarily by the difficulty of evolving any other satisfactory method of rocker mounting with hairpin valve springs.
Hollow Journals
As mentioned earlier, the rocker gear is fed from the pressure oil pump; from the union at the rear of the box, the oil enters a longitudinal gallery from which passages lead to the metering holes in the half-bearings.
Oil oozing from the end of the bearings is centrifuged along the rocker arms to the valve-stem ends and push-rod ends.The rockers are 3% nickel-steel forgings, case-hardened all over. In order to provide ample bearing area without excessive weight, the large-diameter journal portion is hollow.
Question: “Although hairpin valve springs have been employed for many years on the racing KTT engines, the new MSS unit is the first Velocette touring engine to be so equipped. What is the reason for this change?”
Answer: “It was found during early experimental work that coil springs would not give us what was required. To get the necessary characteristics with coil springs would have involved overstressing the material. With hairpin springs, the loading can be such as to give a considerably higher stress than is permissible with coil springs. A further advantage in this particular application is that the natural frequency of vibration of the hairpin spring is higher than that of the coil spring which it replaced, so that the possibility of spring surge is eliminated.”
Question: “The springs fit in an upper holder which is separate from the collet collar and is a sliding fit thereon. This practice is unusual in that most other hair-pin spring engines have the collets seating directly in the spring holder. What is the object of your rather more complicated layout?”
Answer: “Our layout is, of course, less simple, and involves a slightly higher reciprocating weight than the alternative you mention, but it is identical with that employed on the KTT engines. The advantage is that the valves can rotate. Freedom to rotate is particularly beneficial to the exhaust valve which is always unevenly heated and so tends to distort. If the valve is free to rotate we have found that it will certainly do so, although we cannot say why; thus it will not always be distorting in the same direction, and permanent deformation is less likely than with a valve which is held.”
Silchrome is used for the inlet valve and an austenitic steel for the exhaust valve. Guides are of aluminium bronze, a good bearing material which has a coefficient of expansion similar to that of the head alloy and so will not tend to loosen when hot. Also the absence of flanges simplifies machining and requires less weight (and therefore cost) of material.
Combustion-chamber Depth
Question: “The piston crown is almost flat, having a radius of 5", and has no cutaways to provide valve clearance. Also the included angle between the valves is 70°, as on earlier engines, so that the combustion chamber is rather shallower than a true hemisphere. What factors affected your decision to adopt this particular combination?”
Answer: “The absence of valve recesses results, of course, from the moderate valve timing employed, although the compression ratio, at 6.8 to 1, is probably above average for this type of engine. We retained the valve included angle at 70° in order to get a fairly open chamber, with adequate depth at the sparking plug; such depth assists propagation of the ignition flame and so ensures good combustion characteristics and freedom from detonation. Having decided on the bore and the size and angle of the valves, the shape of the piston crown followed automatically.”
In the interest of consistency between one engine and another, the inlet port is almost fully machined, so as to leave the minimum amount of hand work and, therefore, possibility of variation in shape. The port has a straight taper from the carburettor flange to the valve guide; this results in a small-radius bend at the bottom of the port which would appear to mask this portion of the valve opening area.
However, Mr. Udall considers that in any engine the area of valve opening at the inside of the port curvature can almost be ignored as regards cylinder filling; in his opinion the aim should be to make the best possible use of the remainder of the area. This is achieved on the MSS by having a layout such that the axis of the straight section of the port, when produced, passes through the area of opening at full lift. In other words, if the eye looks exactly along this axis, it can see straight into the cylinder head, so that the passage for the inlet gases is obviously unobstructed.
On the electrical-equipment side, there is one respect in which Veloce have long ploughed a lone furrow in the motor cycle world, although their method is used on the majority of cars.
Question: “Belt drive to the dynamo has for many years been a feature of Velocette machines and you retain it on the engine under discussion. What do you consider to be the advantages of the system over gear or chain drive?”
Answer: “The belt drive is cheaper than any other form would be, save direct drive as featured with A.C. generators; it is extremely quiet and requires no lubrication. Further, it is more resilient than any positive drive could be without the inter-position of a flexible coupling, and it can slip if overloaded, thereby avoiding damage to the dynamo.”
Search for Quietness
The legislation recently introduced on noise emission in Germany and Switzerland has underlined the rather unsatisfactory position of the motor cycle vis-à-vis the car. Whereas motor cycle exhaust noise is probably more noticeable to the man in the street than is mechanical noise, the latter often predominates as far as the rider is concerned. This thought gave rise to my final question, to round off a most interesting and instructive interview.
Question: “Velocette engines have acquired a name for unusual mechanical quietness, a reputation which, I gather, is maintained by the latest engines. To what features do you attribute this quietness?”
Answer: “As would be expected, the ‘alloy’ engines proved more of a problem than the “iron” engines which had better noise-damping qualities. In consequence we have had to pay more attention to the sources of noise, rather than to damp it out after it had been started. The adoption of taper-roller bearings, as has already been stated, has gained us a little, and the rigidity of the flywheel assembly and close-up support of the timing gears assist towards silence. Ample lubrication, the helical teeth of the timing gears, the belt dynamo drive and careful attention to the profile of the engine-shaft shock-absorber lobes are all contributing factors. In common with other manufacturers, we employ quietening ramps on the cams; but it may not be generally realised that we have been doing so since the ‘twenties.”
Acknowledgement is made to Morton's Motorcycle Media who hold copyright to items from "The Motor Cycle" and "MotorCycling".
Left click on images to enlarge.