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Question

Three constant forces F1=(2^i3^j+2^k) N,F2=(^i+^j^k) N and F3=(3^i+^j2^k) N displace a particle from (1,1,2) m to (1,1,3) m and then to (2,3,4) m, displacement being measured in meters. Find the total work done by the forces.

A
40 J
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B
0 J
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C
50 J
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D
24 J
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Solution

The correct option is B 0 J
Net force acting on particle,
F=F1+F2+F3
=(2^i3^j+2^k)+(^i+^j^k)+(3^i+j2^k)
=(6^i^j^k) N
Initial position of particle xi=^i^j+2^k
Final position of particle xf=2^i+3^j+4^k
Net displacement of particle:
S=xfxi=(21)^i+(3(1))^j+(42)^k
=(^i+4^j+2^k) m
Hence, Net work done by all acting forces:
W=F.S=(6^i^j^k).(^i+4^j+2^k) J
W=(6)(1)+(1)(4)+(1)(2)=0 J

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