Answer:
The pad compresses for about 5 cm.
Explanation:
Given:
- The mass of the egg m = 56.4 g
- The height at which egg drops h = 14.0 m
- The total thickness of foam d = 7.85 cm
- Total time taken to stop the egg t = 6.05 ms
Find:
By how much is the pad compressed? s
Solution:
- Apply conservation of energy from release point to point just before egg contacts the pad. To compute the speed of egg at impact
ΔP.E = ΔK.E
m*g*( h - t ) = 0.5*m*v^2
v = sqrt( 2*g*( h - d ) )
v = sqrt ( 2*9.81*(14 - 0.0785))
v = 16.53 m/s
- Now to determine the the acceleration (Assuming constant ) at which pad compresses we will use first equation of motion till the point the final velocity is zero.
vf = vi + a*t
0 = 16.53+ a*(0.00605)
a = 16.53 / 0.00605
a = -2731.73 m/s^2
- To determine the total amount of pad compressed (s), we will use the third equation of motion as follows:
vf^2 = vi^2 + 2*a*s
0 = 16.53^2 + 2*(-2731.73)*s
s = 16.53^2 / (2*2731.73)
s = 0.05 m = 5 cm
- The pad compresses for about 5 cm.
