Edited, because DisaFear is dumb and EastsideR is smarta) We know that
Impulse (symbol: J) is equal to
Change in MomentumJ = 120N * 0.02s = 2.4 Ns (It is 1.2N)
This is the change in momentum of the ball.
Change in momentum = final momentum - initial momentim (zero in this case)
1.2 = 0.150 * v - 0
v = 8m/sb) We know from Hooke's Law that restoring force is equal to spring constant times distance of compression/extension, shown as
F=-kxSo in this case, F=120N, k=375N/m, compression = ?
120N = 375N/m * x
Compression = 0.32m
c) Used an energy approach for this
Let's look at the
total energy in this system. By working out the initial KE, KE=0.5*m*v^2, we find that the kinetic energy comes to 4.8J
The surface is frictionless. Me thinks, this ball will go on forever horizontally, right? So now, to change its height from 0m to 2.7m, how much energy do we need?
U(g) = mgh = 0.150 * 10 * 2.7 = 4.05J
We have more than enough energy to get up the hill. If you wanted to calculate the speed of the ball after it climbs the hill for any reason, it turns out to be 3.2m/s, which seems reasonable.
d) (I am least sure on this question) Work done = Change in Kinetic Energy, according to Work-Kinetic Energy Theorem.
We need to do some work on this system to
take energy out of the system, so it does not reach the top. With me?
The total energy in the system is 4.8J
To reach the top, we need 4.05J
Work done = Final KE - Initial KE = 4.05J - 4.8 = 0.75 (We need to do negative work to remove energy from the system)
The friction vector is directly opposing direction of motion
W = F * change in distance = 4.2m (the hypotenuse of the triangle) * F
F = -0.18N (Force is a vector, the negative sign means it is in the direction opposing motion)^I think I've done something wrong here, with the angles possible. I'll look over it. But it should give you some sort of direction to carry on from. Someone correct me if I'm wrong^EastsideR says its right, so should be

(Do you have answers to this problem?)