course phy 201 ?p????????????assignment #009009. `query 9
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21:00:40 Introductory prob set 3 #'s 1-6 If we know the distance an object is pushed and the work done by the pushing force how do we find the force exerted by the object?
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RESPONSE --> if we know the force and the displacement of the object then we can find work done. force will be parallel to the displacement of the obj. W = Fd confidence assessment: 1
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21:02:41 ** Knowing the distance `ds and the work `dW we note that `dW = F * `ds; we solve this equation and find that force is F=`dw/`ds **
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RESPONSE --> self critique assessment:
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21:03:34 If we know the net force exerted on an object and the distance through which the force acts how do we find the KE change of the object?
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RESPONSE --> Fnet * ds = KE confidence assessment: 2
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21:07:34 **`dW + `dKE = 0 applies to the work `dW done BY the system and the change `dKE in the KE OF the system. The given force acts ON the system so F `ds is work done ON the system. The work done BY the system against that force is `dW = -F * `ds. When you use the energy equation, this is the work you need--the work done BY the system. **
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RESPONSE --> work energy theorem gives us this equation for work done BY! the system. so dW + dKE = 0 self critique assessment: 1
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21:08:51 Why is KE change equal to the product of net force and distance?
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RESPONSE --> it is the energy of motion if there is a force and displacement then the object should be moved confidence assessment: 1
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21:12:07 ** It comes from the equation vf^2 = v0^2 + 2 a `ds. Newton's 2d Law says that a = Fnet / m. So vf^2 = v0^2 + 2 Fnet / m `ds. Rearranging we get F `ds = 1/2 m vf^2 - 1/2 m v0^2. Defining KE as 1/2 m v^2 this is F `ds = KEf - KE0, which is change in KE. **
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RESPONSE --> we go back to acceleration in uniform motion to establish our founding equations self critique assessment: 2
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21:13:58 When I push an object with a constant force, why is KE change not equal to the product of the force I exert and the distance?
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RESPONSE --> that is only giving us work done by the force confidence assessment: 1
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21:27:53 ** Change in KE is equal to the work done by the net force, not by the force I exert. When I push an object in the real world, with no other force 'helping' me, there is always at least a little force resisting my push. So the net force in this case is less than the force I exert, in which case the change in KE would be less than the product of the force I exert and the distance. If another force is 'helping' me then it's possible that the net force could be greater than the force I exert, in which case the change in KE would be greater than the product of the force I exert and the distance. It is actually possible for the 'helping' force to exactly balance the resisting force, but an exact balance would be nearly impossible to achieve. ANOTHER WAY OF LOOKING AT IT: If I push in the direction of motion then I do positive work on the system and the system does negative work on me. That should increase the KE of the system. However if I'm pushing an object in the real world and there is friction and perhaps other dissipative forces which tend to resist the motion. So not all the work I do ends up going into the KE of the object. **
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RESPONSE --> similar to velocity there will be a KEf and KE0 to find dKE. The dKE does depend on Fnet in which case is controlled by resisting factors initial force, gravity, etc. Therefore if the Fnet is greater(being helped) then dKE is greater if the Fnet less so will dKE. self critique assessment: 2
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