F = GmM/r2
Yes, work= -GmM/R This work is energy that is stored in the gravitational field of the two masses and is called the gravitational potential energy of the two masses when they are separated by a distance R: Ep= -GMm/R
The moe mass and the closer the object, the greater the Gravitational Potential E= -GmM/r energy and Force F=GmM/r^2.
F = GMm/r2 where G is the gravitational accelaration constant apprximately equal to 6.67 x 10-11
The gravitational potential energy between two bodies m and M, is E= - GmM/r^2.
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Both! Force is a quaternion quantity, the sum of a scalar force and a vector force. For example there are two gravitational forces, the scalar force Fs= - GmM d/dr 1/r = GmM/r^2 and the vector force Fv= Del -GmM/r = GmM R/r^3.
No.
The force F= GmM/r^2.Newtons or N. for short
F = GmM/r2
F = GmM/r2
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Yes, work= -GmM/R This work is energy that is stored in the gravitational field of the two masses and is called the gravitational potential energy of the two masses when they are separated by a distance R: Ep= -GMm/R
The gravitational force in form of vectors is the Gradient of the Gravitational Potential Energy -GmM/r: F= Del -GmM/r = Del -mu/r = mu/r^2 (R/r )= muR/r^3 = mw^2R where 'R' is the radial vector.