A heavy particle hanging from a string of length l is projected horizontally with speed √gl The speed of the particle at the point where the tension in the string equals weight of the particle is

Question

A heavy particle hanging from a string of length l is projected horizontally with speed √gl The speed of the particle at the point where the tension in the string equals weight of the particle is (A) √2gl (B) √3 g l (C) √gl/2 (D) √g l / 3

Tardigrade Admin · Accepted Answer

T-m g cos θ=(m v2/R) Given T=m g <img class="img-fluid question-image" alt="image" src="https://cdn.tardigrade.in/img/question/physics/d5f7ae17a9d8eb6d45ca0b8c5b011635-.png" /> m g-m g cos θ=(m v2/R) g(1- cos θ)=(v2/R) (i) C.O.M.E at A and B ; Δ K+Δ U=0 ((1/2) m v2-(1/2) m u2)+m g(R-R cos θ)=0 ⇒ v2-u2=-2 g R(1- cos θ) ⇒ v2-(√g l)2= -2 v2 3 v2=g l ⇒ v=√(g l/3)

Q. A heavy particle hanging from a string of length $l$ is projected horizontally with speed $g l$ The speed of the particle at the point where the tension in the string equals weight of the particle is

$2 g l$

$3 g l$

$g l /2$

$g l /3$

Q. A heavy particle hanging from a string of length l is projected horizontally with speed gl​ The speed of the particle at the point where the tension in the string equals weight of the particle is

2gl​

3gl​

gl/2​

gl/3​

T−mgcosθ=Rmv2​ Given T=mg mg−mgcosθ=Rmv2​ g(1−cosθ)=Rv2​(i) C.O.M.E at A and B;ΔK+ΔU=0 (21​mv2−21​mu2)+mg(R−Rcosθ)=0 ⇒v2−u2=−2gR(1−cosθ) ⇒v2−(gl​)2=−2v2 3v2=gl ⇒v=3gl​​

Q. A heavy particle hanging from a string of length $l$ is projected horizontally with speed $g l$ The speed of the particle at the point where the tension in the string equals weight of the particle is

$2 g l$

$3 g l$

$g l /2$

$g l /3$