If speed ((V)), acceleration ((A)) and force ((F)) are consi... | Physics | SolveeIt

Question

If speed $(V)$ , acceleration $(A)$ and force $(F)$ are considered as fundamental units, the dimension of Young's modulus will be :

$V^{-2} A^2 F^2$

$V^{-4} A^2 F$

$V^{-4} A^{-2} F$

$V^{-2} A^2 F^{-2}$

Answer

$V^{-4} A^2 F$

Explanation

Solution

$\frac{F}{A} = y . \frac{\Delta\ell}{\ell}$
$\left[Y\right] = \frac{F}{A}$
$F = \frac{ML}{T^{2}}$
$L = \frac{F}{M} .T^{2}$
$L^{2} = \frac{F^{2}}{M^{2}} \left(\frac{V}{A}\right)^{4} \because T = \frac{V}{A}$
$L^{2} = \frac{F^{2}}{M^{2}A^{2}} \frac{v^{4}}{A^{2}} F = MA$
$L^{2} = \frac{V^{2}}{A^{2}}$
$\left[Y\right] = \frac{\left[F\right]}{\left[A\right]} = F^{1} V^{-4} A^{2}$

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