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An object whose weight is 100 lbf experiences a decrease in kinetic energy of 500 ft lbf and an increase in potential energy of 1500 ft lbf. The initial velocity and elevation of the object, each relative to the surface of the earth, are 40 ft/s and 30 ft, respectively. If g 5 32.2 ft/s2 , determine:

(a) the final velocity, in ft/s.
(b) the final elevation, in ft.

User Nikhil Aggarwal
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1 Answer

9 votes
9 votes

Answer:

a)
v_2=35.60ft/sec

b)
h_2=45ft

Step-by-step explanation:

From the question we are told that:

Weight
W=100lbf

Decrease in kinetic energy
dK.E= 500 ft lbf

Increase in potential energy
dP.E =1500 ft lbf.

Velocity
V_1=40

Elevation
h=30ft


g=32.2 ft/s2

a)

Generally the equation for Change in Kinetic Energy is mathematically given by


dK.E=(1)/(2)m(v_1^2-v_2^2)


500=(1)/(2)*(100)/(32.2)(v_1^2-v_2^2)


v_2=35.60ft/sec

b)

Generally the equation for Change in Potential Energy is mathematically given by


dP.E=mg(h_2-h_1)


1500=mg(h_2-h_1)


h_2=45ft

User Piotr Pasich
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2.8k points