ohheytai
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ohheytai said:increasing so the first one is false right?
ohheytai said:yes it is?
ohheytai said:it's equal to B at r2
ohheytai said:and it does escape right?
ohheytai said:ohhh okayyy nooo it doesn't escape thanks! can you help me with part 2 now?
would it just be The planet and star cannot get farther apart than r2?
cepheid said:If the total energy of the system is A (represented by that horizontal line), then as the planet moves outward, the potential energy of the system increases until its value eventually equals A (the green and blue curves cross). At that point, all of the energy has been converted to potential, and so the kinetic energy must be zero right?
dickface said:it ain't a bound system tbh, the r extends relentless
dickface said:which is enough proof the star is going to escape. the potential energy keeps growing but with a decreasing rate of growth, hence the potential energy will eventually stop at a point and stay there eternally.
dickface said:kinetic energy will also stay at the same value when the star has totally escaped from the gravity of the planet, so the system's energy remains the same after the two energies both reached stable situations, as the graph illustrates.