A particle is projected vertically upwards with a velocity of 196 m/sec. What will be its velocity at the end of 30 seconds?(a) 98 m/sec in the upward direction(b) 98 m/sec in the downward direction(c) 99 m/sec in the upward direction(d) 99 m/sec in the downward directionI have been asked this question in examination.The origin of the question is Calculus Application topic in chapter Application of Calculus of Mathematics – Class 12

A particle is projected vertically upwards with a velocity of 196 m/se

1.	A particle is projected vertically upwards with a velocity of 196 m/sec. What will be its velocity at the end of 30 seconds?(a) 98 m/sec in the upward direction(b) 98 m/sec in the downward direction(c) 99 m/sec in the upward direction(d) 99 m/sec in the downward directionI have been asked this question in examination.The origin of the question is Calculus Application topic in chapter Application of Calculus of Mathematics – Class 12
Answer» Correct answer is (b) 98 m/sec in the downward direction The best I can explain: Let the PARTICLE projected from A with VELOCITY u = 196 m/sec and P be its position at time t where, AP = x m, if v m/sec be its velocity at P,then the equation of motion of the particle is, dv/dt = -g [where, v = dx/dt]……….(1) Since v = u, when t = 0, hence from (1) we get, u∫^vdv = -g 0∫^tdt Or v – u = -gt Or dx/dt = u – gt ……….(2) Let v1 be the velocities of the particle after 10 SECONDS from the INSTANT of projection. Then v = v1 when t = 10; hence from (2) we get, v1 = 196 – (9.8)*30 = -98 m/sec[as, g = 9.8m/sec^2] Since the upward direction is TAKEN as positive, hence after 30 seconds the velocity of the particle is -98 m/sec in the upward direction. So, the velocity will be 98 m/sec in the downward direction.

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