when we calculate escape speeds, we usually do so with the assumption that the object from which we are calculating escape speed is isolated. This is, of course, generally not true in the solar system. Show that the escape speed at a point near a system that consists of two stationary massive spherical objects is equal to the square root of the sum of the squares of the escape speeds from each of the two objects considered individually.

Physics for Scientists and Engineers: Foundations and Connections
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Author:Katz, Debora M.
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Chapter10: Systems Of Particles And Conservation Of Momentum
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Problem 76PQ: A single-stage rocket of mass 308 metric tons (not including fuel) carries a payload of 3150 kg to...
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when we calculate escape speeds, we usually do so with the assumption that the object from which we are calculating escape speed is isolated. This is, of course, generally not true in the solar system. Show that the escape speed at a point near a system that consists of two stationary massive spherical objects is equal to the square root of the sum of the squares of the escape speeds from each of the two objects considered individually.

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