A string of length L and mass M is lying on a horizontal table. A force F is applied at one of its ends. Tension in the string at a distance y from the end at which the force applied is

Question

A string of length L and mass M is lying on a horizontal table. A force F is applied at one of its ends. Tension in the string at a distance y from the end at which the force applied is (A) zero (B) F (C) (F(L-y)/L) (D) (F(L-y)/M)

Tardigrade Admin · Accepted Answer

Acceleration of the rope, a=(F/M) ldots (i) <img class="img-fluid question-image" alt="image" src="https://cdn.tardigrade.in/img/question/physics/92a8dea1c884be9795d951a19bf4633f-.png" /> Now, considering the motion of the part A B of the rope [which has mass (M / L) y and acceleration given by eq. (i)] assuming that tension at B is T. F-T=((M/L) y) × a text or F-T=(M/L) y × (F/M)=(F y/L) or T=F-F (y/L)=F(1-(y/L))=(F(L-y)/L)

Q. A string of length $L$ and mass $M$ is lying on a horizontal table. A force $F$ is applied at one of its ends. Tension in the string at a distance $y$ from the end at which the force applied is

zero

$F$

$\frac{F ( L - y )}{L}$

$\frac{F ( L - y )}{M}$

Q. A string of length L and mass M is lying on a horizontal table. A force F is applied at one of its ends. Tension in the string at a distance y from the end at which the force applied is

zero

F

LF(L−y)​

MF(L−y)​

Acceleration of the rope, a=MF​…(i) Now, considering the motion of the part AB of the rope [which has mass (M/L)y and acceleration given by eq. (i)] assuming that tension at B is T. F−T=(LM​y)×a or F−T=LM​y×MF​=LFy​ orT=F−FLy​=F(1−Ly​)=LF(L−y)​

Q. A string of length $L$ and mass $M$ is lying on a horizontal table. A force $F$ is applied at one of its ends. Tension in the string at a distance $y$ from the end at which the force applied is

$F$

$\frac{F ( L - y )}{L}$

$\frac{F ( L - y )}{M}$