Wave Motion 2 Question 15

15. A massless $\operatorname{rod} B D$ is suspended by two identical massless strings $A B$ and $C D$ of equal lengths. A block of mass $m$ is suspended from point $P$ such that $B P$ is equal to $x$. If the fundamental frequency of the left wire is twice the fundamental frequency of right wire, then the value of $x$ is

(2006)

(a) $l / 5$

(b) $l / 4$

(c) $4 l / 5$

(d) $3 l / 4$

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Answer:

Correct Answer: 15. (a)

Solution:

  1. $f \propto v \propto \sqrt{T} \Rightarrow f _{A B}=2 f _{C D}$

$\therefore \quad T _{A B}=4 T _{C D}$

Further

$$ \Sigma \tau _p=0 $$

$\begin{array}{rlrl}\therefore & T _{A B}(x) & =T _{C D}(l-x) \ \text { or } & 4 x & =l-x \ \text { or }\end{array} \quad\left(\right.$ as $\left.T _{A B}=4 T _{C D}\right)$

or

$$ x=l / 5 $$



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