Answer to Question #340912 in Physics for Aaron

Question #340912

A pendulum that has a period of 7.01 s and that is located where the acceleration due to gravity is 9.44 m/s² is moved to a location where the acceleration due to gravity is 9.31 m/s². What is its new period?

Round your answer to 5 decimal places.

Pls do not forget the unit

Expert's answer

"T_1=2\\pi\\sqrt{\\frac{l}{g_1}}""T_2=2\\pi\\sqrt{\\frac{l}{g_2}}""T_2=T_1\\sqrt{\\frac{g_1}{g_2}}=7.01\\sqrt{\\frac{9.44}{9.31}}=7.05877\\:\\rm s"

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Answer to Question #340912 in Physics for Aaron

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