An archer's bow can be treated as a spring with k = 2,800 N/m. If the...
An archer's bow can be treated as a spring with
k = 2,800 N/m.
If the bow is pulled back a distance 0.17 m before releasing the
arrow, what is the work done on the bow as the bowstring is pulled
back into position?
J
Homework Answers
First, since the force to draw the bow is not constant, but is
modeled as a spring with a spring-constant (k) of 425N/m, we can
write an expression for how the force varies with the distance
pulled back:
F(x)=kx.
Now, energy is force * distance, but since this force varies, we
need to integrate:
E(x) =
k = 2,800 N/m.
x= 0.17 m
the work done is = 1/2 k x^2
=0.5 * 2800 * (0.17)^2 = 40.46 J
Potential energy stored in a spring is (1/2)*kx^2 where x is the amount of stretch.
This PE will be translated into the KE of the arrow.
K.E= 1/2*K*X^2=0.5X2800X0.17X0.17=40.46 JOULS
Add Answer to:
An archer's bow can be treated as a spring with
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