A body is projected up with a velocity equal to (3 / 4)th of the escape velocity from the surface of the earth. The height it reaches is, (Radius of earth =R )

Question

A body is projected up with a velocity equal to (3 / 4)th of the escape velocity from the surface of the earth. The height it reaches is, (Radius of earth =R ) (A) (10 R/9) (B) (9/7)R (C) (9/8)R (D) (10 R/3)

Tardigrade Admin · Accepted Answer

Escape velocity for the earth is ve=√(2 G M/R) Given the velocity projection of the body =v=(3/4)ve=(3/4) √(2 G M/R) Total energy on the earth = Total energy at maximum height h ⇒ (1/2)mv2+(- (G M m/R))=0+(- (G M m/R + h)) ⇒ (1/2)m . (9/16). (2 G M/R)-(G M m/R)=-(G M m/R + h) ⇒ (9/16)-1=- (R/R + h) or -(R/R + h)=(- 7/16) ⇒ 7R+7h=16 R 7h=9R⇒ h=(9/7)R

Q. A body is projected up with a velocity equal to $(3/4)^{t h}$ of the escape velocity from the surface of the earth. The height it reaches is, (Radius of earth $= R$ )

$\frac{10 R}{9}$

$\frac{9}{7} R$

$\frac{9}{8} R$

$\frac{10 R}{3}$

Q. A body is projected up with a velocity equal to (3/4)th of the escape velocity from the surface of the earth. The height it reaches is, (Radius of earth =R )

910R​

79​R

89​R

310R​

Q. A body is projected up with a velocity equal to $(3/4)^{t h}$ of the escape velocity from the surface of the earth. The height it reaches is, (Radius of earth $= R$ )

$\frac{10 R}{9}$

$\frac{9}{7} R$

$\frac{9}{8} R$

$\frac{10 R}{3}$