The escape velocity from a planet is 'Ve'. A tunnel is dug along along a diameter of the planet and a small body is dropped into it. The speed of the body at the centre of the planet will be

Question

The escape velocity from a planet is 'Ve'. A tunnel is dug along along a diameter of the planet and a small body is dropped into it. The speed of the body at the centre of the planet will be (A) Ve (B) (Ve/2) (C) 2Ve (D) (Ve/√2)

Tardigrade Admin · Accepted Answer

Ve = √2gR According to the law of conservation of energy Ue + (1/2) mV2 = Us ⇒ (1/2) mV2 = Us - Uc = m(Vs - Vc) ⇒ (1/2) mV2 = m[ - (GM/R) - ( - (3GM/2R) ) ] ⇒ (1/2)mV2 = m ((GM/2R)) ⇒ V = √(GM/R) = (V/√2) [∴ V =√gR ]

Q. The escape velocity from a planet is $^{'} V_{e}^{'} .$ A tunnel is dug along along a diameter of the planet and a small body is dropped into it. The speed of the body at the centre of the planet will be

$V_{e}$

$\frac{V _{e}}{2}$

$2 V_{e}$

$\frac{V _{e}}{2}$

Q. The escape velocity from a planet is ′Ve′​. A tunnel is dug along along a diameter of the planet and a small body is dropped into it. The speed of the body at the centre of the planet will be

Ve​

2Ve​​

2Ve​

2​Ve​​

Ve​=2gR​ According to the law of conservation of energy Ue​+21​mV2=Us​⇒21​mV2=Us​−Uc​=m(Vs​−Vc​) ⇒21​mV2=m[−RGM​−(−2R3GM​)] ⇒21​mV2=m(2RGM​)⇒V=RGM​​=2​V​ [∴V =gR​ ]

Q. The escape velocity from a planet is $^{'} V_{e}^{'} .$ A tunnel is dug along along a diameter of the planet and a small body is dropped into it. The speed of the body at the centre of the planet will be

$V_{e}$

$\frac{V _{e}}{2}$

$2 V_{e}$

$\frac{V _{e}}{2}$