The relation between time t and distance x is t = ax2 + bx, where a and b are constants. The acceleration is:

Question

The relation between time t and distance x is t = ax2 + bx, where a and b are constants. The acceleration is: (A) -2abv2 (B) 2bv3 (C) -2av3 (D) 2av2

Tardigrade Admin · Accepted Answer

Given t = ax2 + bx Differentiating w.r.t. t (dt/dt)=2 ax (dt/dt)+b (dx/dt) v=(dx/dt)=(1/(2 ax+b)) Again differentiating, w.r.t. t (d2x/dt2)=(-2a/(2 ax+b)2).(dx/dt) ∴ f=(d2x/dt2) =-(-1/(2 ax+b)2). (2a/(2 ax+b)) or f=(-2a/(2 ax+b)3) ∴ f=-2 av3

Q. The relation between time $t$ and distance $x$ is $t = a x^{2} + b x$ , where $a$ and $b$ are constants. The acceleration is:

$- 2 ab v^{2}$

$2 b v^{3}$

$- 2 a v^{3}$

$2 a v^{2}$

Q. The relation between time t and distance x is t=ax2+bx, where a and b are constants. The acceleration is:

−2abv2

2bv3

−2av3

2av2

Given t=ax2+bx Differentiating w.r.t.t dtdt​=2axdtdt​+bdtdx​ v=dtdx​=(2ax+b)1​ Again differentiating, w.r.t.t dt2d2x​=(2ax+b)2−2a​.dtdx​ ∴f=dt2d2x​ =−(2ax+b)2−1​.(2ax+b)2a​ or f=(2ax+b)3−2a​ ∴f=−2av3

Q. The relation between time $t$ and distance $x$ is $t = a x^{2} + b x$ , where $a$ and $b$ are constants. The acceleration is:

$- 2 ab v^{2}$

$2 b v^{3}$

$- 2 a v^{3}$

$2 a v^{2}$