On Sun, 03 Feb 2008 11:12:36 -0600, Ben C <[email hidden]> may
have said:Werehatrack said:On Sun, 03 Feb 2008 03:20:43 -0600, Ben C <[email hidden]> may
have said:
[...]
Quoted message said:Quoted message said:But how could it be worse than carrying the contraption anyway but not
engaging it? Assuming the mechanism itself is 100% efficient, which of
course it wouldn't be.
[...]
Quoted message said:A side note: One major consideration is that the faster the device
soaks up the forward momentum, the more energy is lost via
acceleration of the storage mass;
Why does accelerating the storage mass lose energy?
Consult your local physics text. The faster the mass is accelerated,
the more energy is used - unrecoverably - in *changing* its speed. At
the extreme end of the several effects of this, if you tried to
recover the descending mass' energy in less time than it falls under
the effects of gravity, the resulting recovery rate is *zero* because
the mass will simply not move downward that fast. Conversely, if you
try to lift it at a rate that puts an initial acceleration of an
additional 10G on it to get it moving, you've just lost a bit of
additional energy in accelerating the mass suddenly because the force
that must be applied to it is greater than if it is moved more slowly,
but the potential energy which it will store is not increased.
Quoted message said:Assuming for now the
mechanism is 100% efficient, you get back any energy you put into
raising the mass, however quickly or slowly you raise it.
Only if the rate of acceleration is negligible. This is actually
fairly important. It's one of the reasons why mechanical regen
braking systems are so inherently inefficient; to be useful and
effective in real applications, they must react *fast*, and this is
always wasteful.
Quoted message said:Quoted message said:the closest approach to optimal
efficeincy is with the device very slowly lifting the weight and very
slowly lowering it, so that almost none of the energy is consumed in
accelerations. Ergo, it's really not possible for it to be used
efficiently as a manually-engaged substitute for brakes.
OTOH, even if the whole system is 100% efficient and all other factors
are the same, then here comes the paradox: Under ideal conditions,
it's still a loser. It's faster for the heavier object to roll down
one grade and up the other under the normal operation of gravity than
it is for the device to try to transfer energy from one segment of the
run to the other, because the rider's instantaneous speed with the
device disengaged will, at any given distance point on the run, be
equivalent to or higher than his speed with the device engaged.
I think I see what you mean, but I'm not sure it's right.
If there were no air-resistance, and the course doesn't require braking
for safety reasons anyway, the weight is a pointless herring. The rider
might as well store his descent energy as kinetic energy-- i.e. by not
raising the weight he's going faster at the bottom of the hill and that
energy helps carry him up the next one.
But with air-resistance in the equation, and with a 100% efficient
mechanism, the rider can store energy more efficiently by raising the
weight and reducing his speed on the descent. This is because, with
air-resistance, storing descent energy as kinetic energy is not 100%
efficient.
However, for a dead-equivalent comparison of the two, the brake
systems must also be used *identically*. If you treat the gadget as
"not a brake" then the gadget-engaged bike is always going slower at
the bottom of the descent. Not much, but still slower. Trying to
treat the gadget as a voluntary brake, and requiring that the other
bike brake equally at the same time, eliminates the implied advantage
granted by one of the theoretical aspects of the original postulate,
so it isn't allowed; ergo, the original postulate seems to be asking
whether *with all other aspects equivalent* the device will produce a
faster run in total, and the math shows that in all cases given only a
single variable, it will not...because the gadget-engaged bike will
arrive at the end of the descent later than the gadget-disengaged one,
and the energy recovery will be insufficient to make up the deficit on
the climb.
Quoted message said:Quoted message said:The more practical real-world problem is that given the effects of
drag and system friction, by its very presence it becomes a loser vs
not having it.
As stated elsewhere, this is essentially a regen braking problem;
engineers have been working on it for a long time, and the results
bear out the prediction that it only provides a positive result when
it can be achieved with zero additional equipment, operating in a
scenario where the regen system is substituting for the normal braking
system in a reasonably effective manner.
I don't see why it has to be zero additional equipment. A small amount
of extra weight could still be worth it.
No, it doesn't work out that way when you try to build one. Really.
I'm not kidding about this.
Quoted message said:Quoted message said:The whole thing's a bad move anyway since "no device" will always be
faster.
I don't think necessarily always.
Yes, always.
Quoted message said:There's a good table of energy
densities (energy per unit volume and mass) on this page:
http://en.wikipedia.org/wiki/Energy_density
That claims 2.5MJ/kg for a "Lithium Thionyl Chloride Battery". In one of
those you could store the energy of a 1000 metre descent of a 100kg
bike+rider in just 400g of batteries. About half a water bottle.
At a charge/discharge loss of at least 30 to 40%, or were you unaware
of the inefficiencies of batteries in this regard? (Looking ahead, I
see that you're aware...but haven't considered the implications fully)
Yes, they have impressive density (at phenominal cost and with some
significant fragility issues), but they also have typical chemical
cell energy recovery limitations.
Quoted message said:Then it becomes a matter of comparing charging and discharging
efficiency with the efficiency of storing the energy as kinetic energy
instead which is very inefficient at higher speeds because of air
resistance.
It's extraordinarily inefficient in general, which is why even though
the theory has been around since the 1920s and prior, no one has yet
built a functional, actual-vehicle-useful regen brake (mechanical or
electric) that recovers more than 15% of the energy of vehicle
braking, and that figure is achieved only under absolutely ideal
conditions. 5% is more typical of a "successful" design, and every
add-on system yet devised adds hardware which comes with a weight
penalty that eats all of the gain and more. If the drivetrain design
doesn't inherently incorporate a zero-penalty mode of energy recovery,
the penalty eats the gains every time.
Quoted message said:Consider the 100kg bike at the bottom of a 1000m descent. Potential
energy at the top is 1000 * 100 * 9.8 = 980kJ.
Now suppose all that were transferred to kinetic energy at the bottom.
0.5mv^2 = 980kJ, which, solving for v, gives a speed of 504kph.
Which runs smack into Fogel's Objection; you can't get there from
here. No matter, though...
Quoted message said:Since the rider is actually probably doing only 50kph, energy storage as
k.e. is only about 10% efficient. A 400g battery, which you can charge
and discharge at maybe 60% efficiency (rough estimate) could well be a
better bet.
First, you're trying to *store* the energy that he *used* in getting
there; do that, and he's coming off the bottom of the hill a lot
later, and slower if it's dragging him back for the whole run.
Second, electric generators have mechanical losses that are pretty
significant in themselves, and they're rather speed-sensitive; outside
their optimal output rpm range, they lose efficiency rapidly. Add in
a generous 30% loss for the battery cycle, and you've just discarded
at least half of the energy that you robbed from your cyclist in the
downhill run. And then he doesn't get it all back on the climb, and
he's behind both where he'd be with it disengaged and where he'd be
without it present at all. Ergo, leave the mess on the bench at the
shop, and he's even farther ahead.
Quoted message said:Not sure if you can charge batteries that quickly though.
It doesn't matter. It still doesn't work to produce a gain in the
overall result. If you really want to understand why, there are lots
of theses available from engineering students, experimenters,
inventors and researchers who have tried to crack the problem in the
past. Toyota has the closest approach to success due to a quirk in
the design of the Prius drivetrain; it's inherently able to function
as a regen brake, and it still makes only a trivial difference in fuel
usage. (I have a relative and several friends who own them; they're
remarkable vehicles, though I dare say that I'm the only one among
that group aside from my brother...whose undergrad degree was in
EE...that really understands what's going on in that wonderful little
device Toyota cooked up.)
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