Answer to Question #164728 in Astronomy | Astrophysics for Syed Abdullah Gilani

(a) the gravitational potential energy at the distance r is

"E = - \\dfrac{GMm}{r} = -\\dfrac{G\\cdot\\frac43 \\pi R^3m \\rho}{r}" .

If r = R + h,

"E = -\\dfrac{G\\cdot\\frac43 \\pi R^3m \\rho}{R+h}" .

(b) At the surface of the Moon the potential energy is

"E = -\\dfrac{G\\cdot\\frac43 \\pi R^3m \\rho}{R+0} = -\\frac43\\cdot G\\pi R^2m \\rho."

The total energy is "K +E= \\dfrac{mv^2}{2} -\\frac43\\cdot G\\pi R^2m \\rho."

At the height h the kinetic energy is 0, so the total energy is "-\\dfrac{\\frac43 \\cdot G \\pi R^3m \\rho}{R+h}" .

According to the law of conservation of energy,

"\\dfrac{mv^2}{2} -\\frac43\\cdot G\\pi R^2m \\rho = -\\dfrac{\\frac43 \\cdot G \\pi R^3m \\rho}{R+h}" ,

"\\dfrac{mv^2}{2} = \\frac43\\cdot G\\pi m \\rho \\left( \\dfrac{R^3+R^2h-R^3}{R+h}\\right), \\\\\nv^2 = \\frac83 \\pi G\\rho \\dfrac{R^2h}{R+h}, \\\\\nv^2 = \\frac83 \\pi G\\rho R^2 \\left( 1-\\dfrac{R}{R+h} \\right), \\\\\nG = \\frac38 \\dfrac{v^2}{\\pi \\rho R^2} \\left( 1-\\dfrac{R}{R+h} \\right)^{-1}."

(c) Let us substitute all the parameters known

"G = \\frac38 \\dfrac{v^2}{\\pi \\rho R^2}\\cdot \\left( 1-\\dfrac{R}{R+h} \\right)^{-1} = \\frac38 \\cdot \\dfrac{(30\/3.6 \\,\\mathrm{m\/s})^2}{3.14\\cdot 3340\\,\\mathrm{kg\/m^3} \\cdot (1.74\\cdot10^6\\,\\mathrm{m})^2}\\cdot \\left( 1-\\dfrac{1.74\\cdot10^6\\,\\mathrm{m}}{1.74\\cdot10^6\\,\\mathrm{m}+ 21.5\\,\\mathrm{m}} \\right)^{-1} = 6.64\\cdot10^{-11}\\,\\mathrm{N\/kg^2\\cdot m^2} ."