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Question

The potential energy function of a particle is given by U=(x2+y2+z2) J, where x,y and z are in meters. Find the force acting on the particle at point A(1 m,3 m,5 m).

A
8 N
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B
136 N
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C
140 N
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D
1014 N
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Solution

The correct option is C 140 N
Given: U=(x2+y2+z2) J
Force associated,
F=(dUx^i+dUy^j+dUz^k)
Fx=Ux=2x
Fy=Uy=2y
Fz=Uz=2z
F=2x^i+2y^j+2z^k

Now F(1,3,5)=(2^i+6^j+10^k) N
Magnitude of force F=22+62+102
F=140 N

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