
#1
Sep2105, 07:20 AM

P: 69

Its been bugging me for a while nowcan pseudo forces do work? Is the calculation of amount of work done dependent on our frame of reference?




#2
Sep2505, 01:35 AM

P: 69

Cmon!Does nobody know?I've been waiting for 3 days!!




#3
Sep2505, 07:01 PM

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P: 40,890

I assume by pseudoforce, you mean an inertial force like centrifugal force?
In any case, the work done by a force definitely depends on the frame of reference. (Even without involving noninertial frames.) After all, in a frame in which the point of application doesn't move, the work done is zero. As for pseudoforces being able to do work, I see no reason why not. (As long as you are in a frame in which those forces exist.) 



#4
Sep2605, 09:38 AM

P: 34

Pseudo force
I suspect that it would be reasonable to state that work was done by a pseudo force (centrifugal force due to gravity) in making the Earth bulge at the centre during its formation.




#5
Sep2605, 10:23 AM

P: 29

I have a subsidiary question :
Do you consider that gravity is a pseudoforce ? 



#6
Sep3005, 09:15 AM

P: 69

But do pseudo forces really exist? I mean, a force should have an equal and opposite reaction,no? Now consider a small block placed on top of a large frictionless block. The large block is accelerating.If we analyse the situation from the frame of reference of the small block ,we use a pseudo force in a direction opposite to the acc.,so that we can apply Newtons laws.But where is the reaction to this pseudo force?
And if the force does not exist,how can it do work? As for the work done being dependent on the frame of reference, I have just one question.In a hydroelectric plant water falls from a great height from a dam and causes the blades of a turbine to rotate. Suppose water falls with a terminal vel. v.If an observer falls along with the water,(assuming that he does not die on falling!!),the water is at rest with respect to him and hence its energy does not change.So how would he explain the turning of the blades given that he knows the turbine is fixed to the ground and cannot come up to meet the water. Where would the blades get the energy from if the water does not lose any? 



#7
Sep3005, 09:49 AM

P: 4,780

I have looked at this thread for a couple days and thought about it. Help me out here if im wrong. In the case of centrifugal force, well I should'nt really call it a force, because its NOT, we have to be extra carefull. It is INERTIA, that allows the object to want to fly off along a tanget to the circular motion. But a REAL force is created when that object that is able to move, it DOES move and run into, say the wall of the car. That is equal and opposite, to anwser your question dpsguy. If there is no wall, there is something like a string with a mass spinning around, the same analysis will hold for that situation, with the force of the wall being replaced by the tension in the rope, or whatever its RIGIDLY attached to.
As for your water wheel example, your falling with a terminal velocity v. So in your frame of reference you have zero kinetic energy, but the water wheel appears to be moving towards you at a velocity v, so it appears to have the kinetic energy in this frame. hmm, as for gravitational potential energy, I *think* in your moving frame of reference you can call that zero, so the water wheel also has a changing potential energy relative to you. Its like thinking of the situation in opposite. In the wheels frame of reference, the water comes down and hits it. In the waters frame, the wheel comes up and hits it. The only thing im not sure about what I said is that if that were true, the heavy water wheel appearing to move at a velocity v, would have a huge amount of kinetic energy, and it seems to discredit what I wrote, so dont belive it! Someone help me out, now im confused too! :) 



#8
Sep3005, 10:13 AM

HW Helper
P: 508

Thinking a simple example.
With application of sudden brakes to a truck, a box appear to slide forwards on the surface of truck. We call that as the truck is retarding, in the frame fixed with the bus we have to consider a pseudo force in forward direction. Now my question is that, as the box moves forward against friction, which force is doing work against friction? 



#9
Sep3005, 10:17 AM

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P: 40,890

Consider your example of a small block sliding without friction on large block that is accelerating. If you view things from the accelerating frame of the large block, then the inertial force "pushes" the small block along. So the inertial force does work on the small block, increasing its kinetic energy. (Of course, from the inertial frame of the ground, the small block is just sitting stillthere's no friction or other real force acting on it.) If you view things from the frame of the small blockan inertial framethen you'll expect to find a real force pushing that large block. (Else why would it accelerate?) You can understand the frame dependence of work and energy more simply by analyzing this problem: An "ideal" car (no internal friction, air resistance) uses an amount of fuel to accelerate from 0 mph to V mph. We know the energy needed is [itex]1/2 m v^2[/itex]. And to accelerate from V to 2V, it takes an additional 3 times that energy (the total energy is [itex]1/2 m (2v)^2 = 2 m v^2[/itex]). But what if you viewed things from a frame moving at speed V? In that frame the second burst of speed only takes the car from 0 to V? Does the amount of fuel needed depend on the frame that you view things from? 



#10
Sep3005, 04:05 PM

P: 29

That would also eplain why when you put a notcalibrated accelerometer on a table it indicates that the acceleration is pointing up and with an intensity of 9.81. That's because if you put your accelerometer in an elevetaor in space with nothing around it : it indicates 0 (elevator isnt moving). If you want someont in the elevator to feel like if he were on earth, you have to make the elevator go up with an accelration of 9.81. 



#11
Sep3005, 07:13 PM

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My GR is quite rusty, unfortunately, but my trusty (but dusty) copy of Adler, Bazin, & Schiffer (Intro to GR) backs me up with this quote: "... it is impossible to have gravitational forces take the same mathematical form as fictitious forces within the framework of classical analytic mechanics". (You need a description within a fourdimensional space. I'll let GR experts fill in more details.) 



#12
Sep3005, 11:23 PM

P: 4,780

It seems that I wasent all that far off in my reasoning then, right doc al? Could you explain the problem I faced when I came to your conclusion. If we look at the water falling at speed v, the m in mv^2 is small, but if we look at the earthwheel system, the m in the mv^2 is HUGE. This frame seems to have too much energy associated with it. We would expect the water to be vaporized upon contact, since so much energy is being transfered. Is the total energy generally conserved from one frame to another, or does it change? Also, does the massive kinetic energy somehow get reduced by a similarly huge potential energy?




#13
Oct105, 01:25 AM

P: 69

Suppose the mass of falling water is m and that of the turbine is M(what's more reasonable m>M or M>m?)Also suppose that the height at which water attains terminal velocity is h metres above the turbine. Firstly, consider the situation from an external,inertial reference frame. Taking the ground as reference level,PE of water is mgh and its KE is mu (where u=0.5xv^2).So K=mgh+mu where K is the KE with which the turbine rotates.Here work is done by water on the turbine. Now consider the RF falling at vel. v.Taking the referene level at height h the PE of turbine is Mgh and its KE is Mu.So K=Mgh+Mu.Here work is done by turbine on itself. This means that m=M(ugh)/(u+gh) which seems to be a special case.If the masses do not satisfy this reln. will the blades not rotate?Or is this some limiting case, or what? Also,Doc Al, by saying that fuel needed does not depend on the RF, are you not contradicting what you said earlierthat work depends on our reference frame? 



#14
Oct105, 06:30 AM

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#15
Oct105, 07:10 AM

P: 69

Also, in the turbine example,the final KE of the turbine would be the same irrespective of the RF(obviously?). Hence whether we work in the RF of water or the turbine,the work done on the turbine will be same(see mathematical approach).Please correct me if I am wrong. 



#16
Oct105, 07:14 AM

Sci Advisor
HW Helper
P: 1,772

I've isolated an handy "test" (not infallible) to determine whether or not work is done by a force. Since work is the mechanical transfer of energy, then if an object is observed to change speed, height, shape, or temperature, then work must have been done. (Absence of any of these changes does not definitely indicate "no work," however).
In a rotating reference frame( a turntable for example) , the centrifugal force will appear to be the force that pulls a ball toward the outside of the circle. But this force will not accelerate the ball. The increase in speed of the ball comes from the tangential force (by friction) from the floor. The rotating observer will see the "coriolis effect" as the ball drifts to the left or right as it progresses to the outer edge of the turntable. The ficticious centrifugal force does not do the work even in the rotating frame of reference. But the inertial reaction of coming to a quick stop (in a car): in the car's frame of reference, it does appear that the inertial force causes the passenger to accelerate forward into the windshield. As Doc Al mentioned, this only "works" if you stay in the accelerated reference frame, but since you can't (you just crashed your car), you always must be able to identify the object that really did the work (in this case the windshield). 



#17
Oct105, 07:22 AM

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#18
Oct205, 07:46 AM

P: 69

I tried to take it one frame at a time.What I was trying to prove was that fuel needed during the second burst of speed is three times that needed during the first in the same RF.I had no problem with the stationary RF. But I had a problem with the moving reference frame.Suppose the car and the RF are at the same point at t=0. If we assume RF to be at rest, the car seems to go back(with a decreasing vel.) a distance of 0.5vt on the first burst of speed and then comes back to its original point after the second burst(here t is the time taken to reach a vel.v from rest).Now my question iswhere does the car get a vel.v from?And if the KE is decreasing,why is any fuel needed?Also, is the friction acting on the car not the same during the forward and backward journeys?And lastly,what do you mean by "work done against earth"?Please forgive me if I am sounding stupid,but I need an explanation. 


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