The mass and length of a wire are M and L respectively. The density of the material of the wire is d. On applying the

Q: The mass and length of a wire are $M$ and $L$ respectively. The density of the material of the wire is $d$. On applying the force $F$ on the wire, the increase in length is $l$, then the Young's modulus of the material of the wire will be

d (d) $Y = \frac{F}{A}\frac{L}{l}$ $ = \frac{{Fd{L^2}}}{{Ml}}$ As $M =$ volume $\times$ density $ = A \times L \times d$ $\therefore$ $A = \frac{M}{{Ld}}$

SECTION - A [PHYSICS - MCQ]

GSEB - English Medium

The mass and length of a wire are $M$ and $L$ respectively. The density of the material of the wire is $d$. On applying the force $F$ on the wire, the increase in length is $l$, then the Young's modulus of the material of the wire will be

A$\frac{{Fdl}}{{Ml}}$
B$\frac{{FL}}{{Mdl}}$
C$\frac{{FMl}}{{dl}}$
D$\frac{{Fd{L^2}}}{{Ml}}$

Easy

STD 11 Science
NEET
STD 11- 8. mechanical properties of solids
Physics

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