A particle moving in a straight line traverses a distance x in time t. If t = x^2/2 + x, then which one is correct?(a) The retardation of the particle is the cube of its velocity(b) The acceleration of the particle is the cube of its velocity(c) The retardation of the particle is the square of its velocity(d) The acceleration of the particle is the square of its velocityThis question was posed to me during a job interview.This interesting question is from Calculus Application in chapter Application of Calculus of Mathematics – Class 12

A particle moving in a straight line traverses a distance x in time t.

1.	A particle moving in a straight line traverses a distance x in time t. If t = x^2/2 + x, then which one is correct?(a) The retardation of the particle is the cube of its velocity(b) The acceleration of the particle is the cube of its velocity(c) The retardation of the particle is the square of its velocity(d) The acceleration of the particle is the square of its velocityThis question was posed to me during a job interview.This interesting question is from Calculus Application in chapter Application of Calculus of Mathematics – Class 12
Answer» The correct option is (a) The retardation of the particle is the cube of its VELOCITY The explanation is: We have, t = X^2/2 + x Therefore, DT/dx = 2x/2 + 1 = x + 1 Thus, if V be the velocity of the particle at time t, then v = dx/dt = 1/(dt/dx) = 1/(x + 1) = (x + 1)^-1 Thus dv/dt = d((x + 1)^-1)/dt = (-1)(x + 1)^-2 d(x + 1)/dt = -1/(x + 1)^2 * dx/dt As, 1/(x + 1) = dx/dt, So, -(dx/dt)^2(dx/dt) Or dv/dt = -v^2*v[as, dx/dt = v] = -v^3 We KNOW, dv/dt = acceleration of a particle. As, dv/dt is negative, so there is a retardation of the particle. Thus, the retardation of the particle = -dv/dt = v^3 = cube of the particle.

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