Answer to Question #151535 in Quantum Mechanics for Kelsey Smith

Question #151535

A 50.0 N force is applied at an angle of 30.0 degrees north of east to a 5.78 kg box. Assuming there is a coefficient of kinetic friction of 0.389 between the table and the box, what is the time it takes to travel 3.00 meters?

Expert's answer

"s=at^2\/2\\to t=\\sqrt{\\frac{2s}{a}}"

"F=ma\\to F\\cos30\u00b0-fN=ma"

"N=mg-50\\sin30\u00b0=5.78\\cdot9.8-50\\cdot\\sin30\u00b0=31.6(N)"

"a=\\frac{F\\cos30\u00b0-fN}{m}=\\frac{50\\cdot\\cos30\u00b0-0.389\\cdot 31.6}{5.78}=5.36(m\/s^2)"

"t=\\sqrt{\\frac{2s}{a}}=\\sqrt{\\frac{2\\cdot 3}{5.36}}=1.1(s)"

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Answer to Question #151535 in Quantum Mechanics for Kelsey Smith

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