A particle moves along the straight-line OX, starting from O with a velocity 4 cm/sec. At time t seconds its acceleration is (5 + 6t) cm/sec^2. What will be the velocity of the particle from O after 4 seconds?(a) 70 cm/sec(b) 71 cm/sec(c) 72 cm/sec(d) 73 cm/secI have been asked this question during an online interview.This intriguing question comes from Calculus Application topic in portion Application of Calculus of Mathematics – Class 12

A particle moves along the straight-line OX, starting from O with a ve

1.	A particle moves along the straight-line OX, starting from O with a velocity 4 cm/sec. At time t seconds its acceleration is (5 + 6t) cm/sec^2. What will be the velocity of the particle from O after 4 seconds?(a) 70 cm/sec(b) 71 cm/sec(c) 72 cm/sec(d) 73 cm/secI have been asked this question during an online interview.This intriguing question comes from Calculus Application topic in portion Application of Calculus of Mathematics – Class 12
Answer» Correct answer is (c) 72 cm/sec The BEST I can explain: Let, vcm/sec be the velocity and x cm be the DISTANCE of the particle from O and time t seconds. Then the velocity of the particle at time t seconds is, V = dx/dt By the question, dv/dt = 5 + 6t Or dv = (5 + 6t) dt Or ∫dv = ∫(5 + 6t) dt Or v = 5t + 6(t^2)/2 + A……….(1) By question v = 4, when t = 0; Hence, from (1) we get, A = 4. Thus, v = dx/dt = 5t + 3(t^2) + 4……….(2) Thus, velocity of the particle after 4 seconds, = [v]t = 4 = (54 + 3*4^2 + 4)[putting t = 4 in (2)] = 72 cm/sec.

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