Document 446nYDJYjRqRoGr1NmBovagje
licit can cause heat and destruction.
Strangely enough, in /Afj case slippage
would be leas on a 244a. bell subject to
same pull. Reason is that a belt weigh*
ing .less per linear loot creates leas
centrifugal force. Hence a larger per*
centage of the belt Is available lor driv*
ing, as less Is needed to overcome cen
trifugal force.
Brantford, Ont.
W L Goyan
Resurface Flywheel
Years aco I saw a rider belt on a drive
similar to that mentioned by IM. It
was in a plant of tho JohnrMaaville
Co in Brooklyn. The rider bell did
slop ihe slip. Bui belt dressing was also
applied, and I believe it was partly re*
sponsible for the result
Another method is to apply a friction
facing on the flywheel. This friction
material can be nothing more than thin
duck canvas, glued securely on the sur*
face of the pulley.
Usually it is the smaller pulley that
slips, not the large one. In this case
the idler pulley very likely takes core
of the smaller pulley, giving it sufficient
arc of contact. This suggests the use of
another idler pulley as shown' above.
This will increase the arc of contact on
the flywheel. I have never seen two
idlers on a single drive but see no
reason why they would not be prac*
ticable. I believe the friction loss would
be less than with a rider faelL
My suggestion is this: First use a
high-grade belt dressing. If that doesn't
solve the problem completely, give the
flywheel a friction surface. I believe
that would cost less than a second idler
pulley. Cost, these days, is important.
Newark, N.J.
J H Squires
(log, **) - 1 * X fs log, HO f/p 5*000 s velocity of belt in ft Der min T, Maximum tension of bdt coefficient of friction, which is 0.3 for leather to cast iron arc of contact in radians. For convenience, log, can be changed to 2.3026 X logi.
The arc of contact is obtained from
the formula shown oo the sketch above,
and is found to be 215 deg.
Since we do not know the diameter
of the idler, which would add some to
ihe arc of contact, we will omit it.
T, is obtained by
r, - t x a - r,
T - aitoweble unit tension of I sq in. of leather belt; it Is 42.1 lb per sq in., and A is the area
7*. centrifugal tension of belt, ob tained by r Hr X * *P
W -- weight of a ft length of belt, de tained by multiplying 0.43 by the croaa-sectional area of the belt 1 assume 3-ply belt is X in. (hick.
m belt velocity In ft per sec squored. 9 - the force of gravity 32.2.
1 worked this out, and found the belt
good for over 408 hp. Since it is equal
to the job, let us see where the trouble
Is. Tho only thing we can alter is the
friction between flywheel and belt.
The practical way is to clean the
contact side of the belt thoroughly. Re
move all oil and gum with a good cleaner or fuller's earth. After this ( thorough cleaning, ooat the aurfaca*
freely with neat'a-foot oil. Tho proeess|
should be repeated regularly. I believe j
this will stop all slipping.
I cannot see how a rider belt wiQ 1
help. Bronx, N. Y.
1 Cloaca Gatrru I
Put Idler at Flywheel
IM COULD PROBABLY ELIMINATE tOtBS slip on flywheel by using a rider belt. Usually the slip between belts offsets any gain because of excessive wear o both belts.
His idler pulley should be placed at A or B, as in sketch below, depending on rotation of flywheel to increase bell wrap or contact on flywheel. To get best results don't have belt too tight before applying the idler. Neither should belt he too slack, as this will put an exces sive load on the Idler. This is especially important an heavy multiple leather belts like /Afi as they are hard to flex. I recommend using a small amount of good-quality-stick belt dressing to in crease belt grip on flywheel. If outside of belt is rubbed with a little neat's-foot oil every few months it keeps belt pll*
(Continued on page 152)
Belt Is Heavy Enough To Pull the Load
I CHECKto 1M'$ PROBLEM to see if his belt is good for the horsepower it must deliver. I used the following formula:
m |4?|
POWER January 1444
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