A particle moves with uniform acceleration along a straight line and describes distances 21m, 43m and 91m at times 2, 4 and 7 seconds, respectively.What is the velocity of the particle in 3 seconds?(a) 11m/sec(b) 31 cm/sec(c) 21m/sec(d) 41m/secI got this question in exam.This is a very interesting question from Calculus Application topic in section Application of Calculus of Mathematics – Class 12

A particle moves with uniform acceleration along a straight line and d

1.	A particle moves with uniform acceleration along a straight line and describes distances 21m, 43m and 91m at times 2, 4 and 7 seconds, respectively.What is the velocity of the particle in 3 seconds?(a) 11m/sec(b) 31 cm/sec(c) 21m/sec(d) 41m/secI got this question in exam.This is a very interesting question from Calculus Application topic in section Application of Calculus of Mathematics – Class 12
Answer» The CORRECT option is (a) 11m/sec The explanation is: We assume that the particle moves with uniform acceleration 2f m/sec. Let, x m be the distance of the particle from a fixed POINT on the straight line at time t seconds. Let, v be the velocity of the particle at time t seconds, then, So, dv/dt = 2f Or ∫dv = ∫2f dt Or v = 2ft + b……….(1) Or dx/dt = 2ft + b Or ∫dx = 2f∫tdt + ∫b dt Or x = ft^2 + bt + a……….(2) Where, a and b are constants of integration. Given, x = 21, when t = 2; x = 43, when t = 4 and x = 91, when t = 7. Putting these values in (2) we get, 4f + 2B + a = 21……….(3) 16f + 4b + a = 43……….(4) 49f + 7b + a = 91……….(5) Solving (3), (4) and (5) we get, a = 7, b = 5 and f = 1 Therefore, from (2) we get, x = t^2 + 5t + 7 Putting t = 3, f = 1 and b = 5 in (1), We get, the velocity of the particle in 3 seconds, = [v]t = 3 = (213 + 5)m/sec = 11m/sec.

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