Quoted message said:Frank Krygowski said:Quoted message said:The chief effect of lubrication on bicycle chains is to keep grit out.
I'd have said the chief effect of lubrication is to trap the grit on
the chain, and distribute it on other parts of the bike. And the
rider's leg.
That's been true of every wet lube I've tried, anyway.
- Frank Krygowski
Dear Frank,
Wet lube initially keeps road dust out. (Nothing larger will fit
between pins and rollers.)
Any wet lube traps the road dust flung up by the tires, so the wet
lube turns black within a few miles.
After that, the outside of the chain is covered with an extremely fine
polishing sludge, which gradually mixes with the thin film of clean
lube inside the rollers as the minuscule pumping action draws it in
and out.
Eventually, the area between the pins and rollers builds up a thin
layer of polishing paste.
Chain wear rates suggest how long the process takes.
Each roller turns a tiny bit as it engages the top of the front
sprocket, a tiny bit as it exits, and ditto for the rear sprocket and
any idler pulleys.
But only two of the turns are under any significant load, when the
chain is pulled onto the front sprocket and pulls off the rear
sprocket.
At 100 rpm on a 53-tooth front sprocket, the chain moves at a mere 2.5
mph. (At the same 100 rpm on a 175 mm crank, the rider's foot whirls
at a blistering 4.1 mph.)
At 100 rpm on a 53-tooth sprocket, an individual roller on a
106-roller chain makes its small partial turn under load (entering the
front or leaving the rear sprocket) at only a rate of once every
3/5ths of a second.
How small is that turn?
As it pulls onto the front 53-tooth, the roller turns and locks in
1/53rd of a circle--a bit less than 7 degrees. (About 9 degrees for a
39-tooth.) Then it just sits there until it eases off the sprocket.
The extreme case is an 11-tooth rear, where the chain pulling off has
its pin and roller turn about 32 degrees.
So an hour of 100 rpm riding produces only 6,000 partial polishing
rotations (7 to 32 degrees) on any single pin and roller, amounting to
much less than 400 full turns per hour.
That's about 0.25 rpm.
(The 106-roller chain is a convenient figure that's easy to calculate
and produces a slightly inflated result compared to the typical
~114-roller chain.)
In other words, most bicycle chains last over a thousand miles, even
on a diet of polishing paste made from oil and road dust, because the
individual pins and rollers turn so little and because the polishing
paste can contain only the grains of extremely hard road dust small
enough to fit between the pins and rollers, whose clearance is below
what a typical micrometer can measure.
As a crude example, a 53x19 at 91.5 rpm on a 2124 mm tires is doing 20
mph. Each pin on a 106-roller chain makes its partial turns under load
at 91.5 rpm, about 5500 partial polishing turns every hour or every 20
miles. That's 27,500 slight "grinds" averaging only about 20 degrees
in a thousand miles and fifty hours of steady riding at about 90 rpm.
When 25 of these pins (the ends of a foot-long ruler) wear 0.0025",
the chain elongates a full 1/16th of an inch (0.0625"😉 and should be
replaced. The 0.0025" wear on each pin-roller combination amounts to
about the thickness of a sheet of flimsy phone-book paper.
***
Such incredibly tiny wear explains why it's almost impossible to clean
real wet-lube chains that have gotten dirty.
Dunk a dirty, oily chain in solvent in an ultrasonic cleaner, shake it
in a bottle, do whatever you please--
Eventually, you'll probably run out of patience before fresh solvent
stops producing wisps of filth from what looks like an immaculate
chain.
The solvent acts only on the incredibly thin exposed edge of the film
of oil-and-grime trapped between each pin and roller, a surface that
isn't much wider than a human hair. Given such poor access, the
solvent takes forever, even with shaking or ultrasonic action, to eat
into the mess trapped between the pins and rollers.
***
Dry wax has the advantage that it draws no road dust into the
pin-roller interface. Instead of a oily film pumping in and out, the
dry lube flakes outward under pressure from between the pin and roller
and never returns.
The price for this is that the dry lube needs to be re-applied more
often than a wet lube (with exceptions of all kinds for different
lubes and conditions).
Frank is quite happy with wax that has some oil added, others swear by
various oils, and I've been reasonably pleased with Dupont Teflon
spray wax.
(I can't recommend it over oil or melted wax, but it's fairly cheap,
easy to apply, and has a pleasant new-toy effect that hasn't worn off
yet.)
***
As far as I know, lubrication makes no significant difference to chain
friction in terms of power transmission. Spicer's article explains the
theory behind this unexpected result, which could be grossly
simplified to a matter of how little actual polishing action takes
place in the lazily moving chain of a bicycle.
Even a dry chain that squeaks like a box full of bats still transmits
almost exactly the same power as a brand-new factory-lubed chain--the
noise is annoying, but it's apparently all out of proportion to the
increase in friction.
Cheers,
Carl Fogel
Aaargh! Off by more than order of magnitude!
Absolutely no idea where I came up with 0.25 rpm--probably just
looking at the wrong figure or not noticing that a numeral was missing
from a number when I punched enter. That'll teach me not to show my
work.
Slightly short 106-roller chain on 53x11, 100 rpm, single pin-turn
with each pedal stroke, once as it pulls onto front 53, once as it
exits rear 11.
Average turn in degrees is:
( (1/53 * 360) + (1/11 * 360) ) / 2
or (6.8 + 32.7 ) / 2
or ~20 degrees
At 100 rpm, there are 6,000 20-degree turns per hour, the equivalent
of (20/360) * 6,000, or 333.3 full turns in 60 minutes, which is 5.5
rpm, not the mysterious and mistaken 0.25 rpm.
Of course, 5.5 rpm is still pretty slow for polishing chain rollers.
***
A equally embarrassing pair of mistakes in basic arithmetic involve
the 53x19 at 91.5 rpm and 20 mph on a 2124 mm rear tire.
At 91.5 rpm, any pin on the slightly short 106-roller chain makes
about 5500 partial turns (5,490), so in fifty hours (1,000 miles at 20
mph) any pin goes through about 275,000 partial turns (274,500).
That's 275,000 partial turns, ten times the 27,500 that I scribbled
due to my careless, dim-witted reading of a calculator.
The other mistake is that with a 53x19, the average turn isn't ~20
degrees, it's ~13 degrees.
The average degrees for the two turns:
( (1/53) * 360 ) + ( (1/19) * 360 ) ) / 2
or (6.8 + 18.9) / 2
or only 12.9 degrees average turn for 53x19, not 20 degrees.
At 91.5 rpm, that's about 5500 13-degree turns per hour
or (13/360) * 5500 = ~200 full turns per hour, about 3 rpm.
Careless but detail-obsessed nitwits should always show their work.
Cheers,
Carl Fogel