A force of 5kg−wt is acting on a body of mass 5kg kept on a smooth horizontal surface at rest. If it acts for 10 seconds at an angle of 60∘ with the horizontal, find the distance travelled by the body. (Take g=10m/s2)
A
100m
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B
150m
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C
200m
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D
250m
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Solution
The correct option is D250m 1kg−wt=gN
Hence, force acting on body F=5×10=50N.
The component of the force along the surface =50cos60∘=25N
Hence acceleration a=255=5m/s2
Using second equation of motion, s=ut+12at2=0+12×5×102=250m