Q.8 If a projectile lifts off from the surface of the Earth with a speed of 11.2 km.s–1 , then it can escape
from the Earth’s gravitational field completely. This is called the escape velocity. If the radius of
the Earth were 2 times larger and the mass 8 times larger, then the escape velocity (in km.s–1 )
would be
(A) 5.6 (B) 11.2 (C) 22.4 (D) 44.8

Escape velocity from Earth’s surface is 11.2 km/s. For a modified Earth with radius doubled (2R) and mass increased 8 times (8M), the new escape velocity becomes 22.4 km/s .

Escape Velocity Formula

Escape velocity \( v_e \) is derived from conservation of energy, where kinetic energy at launch equals the absolute value of gravitational potential energy: \( \frac{1}{2} m v_e^2 = \frac{G M m}{R} \) [web:2]. This simplifies to \( v_e = \sqrt{\frac{2 G M}{R}} \), independent of the projectile’s mass m .

For original Earth: \( v_e = 11.2 \) km/s = \( \sqrt{\frac{2 G M}{R}} \) .

Modified Earth Calculation

New parameters: mass \( M’ = 8M \), radius \( R’ = 2R \). Substitute into formula: \( v_e’ = \sqrt{\frac{2 G (8M)}{2R}} = \sqrt{8 \cdot \frac{2 G M}{2R}} = \sqrt{4} \cdot v_e = 2 \times 11.2 = 22.4 \) km/s .

Since \( v_e \propto \sqrt{\frac{M}{R}} \), the factor is \( \sqrt{\frac{8M / 2R}{M / R}} = \sqrt{4} = 2 \) .

Option Analysis

Exam Relevance

Common in CSIR NET Life Sciences (biophysics contexts) and JEE Physics. Variations test scaling: mass ×8 raises \( v_e \) by \( \sqrt{8} \approx 2.83 \), radius ×2 lowers by \( 1/\sqrt{2} \approx 0.707 \), product = 2 .