Answer to Question #186301 in Differential Geometry | Topology for Jethro

Question #186301

Find the moment of inertia and the radius of gyration for y = 2√x, y = 0, x = 4; about x = 0

Expert's answer

Solution.

"A=4\u20224=16."

The moment of inertia:

"I_y=\\int_0^4 x^22\\sqrt{x}dx=2\\int_0^4 x^{\\frac{5}{2}}dx=2\u2022\\frac{2}{7}x^{\\frac{7}{2}}|_0^4=\\frac{4}{7}\u20222^7=73\\frac{1}{7}."

The radius of gyration:

"R=\\sqrt{\\frac{I_y}{m}}=\\sqrt{\\frac{\\frac{512}{7}}{m}}=\\sqrt{\\frac{512}{7m}},"

where m is mass of the area.

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