Answer to Question #270720 in Classical Mechanics for kyungsoo

Question #270720

I drag a mass m=21 kg

in a straight line, along a horizontal surface, a distance D=23 m

. I drag it at constant speed v=0.90 m.s in a straight line using a horizontal force. The coefficients of friction are \mu_{s} = 1.2 μs=1.2 and μk =1.1. How much work do I do? W =

W= _____ J

Expert's answer

As per the given question,

Given mass = 21 kg

Distance on the horizontal surface (d) = 23m

Speed = 0.90 m/sec

Coefficient of friction "\\mu_s =1.2"

"\\mu_k =1.1"

Friction force = "f_s=\\mu mg=1.1\\times21\\times9.8=226.38N"

work due to friction ="f_s . d=226.38\\times23=5206.74J"

Kinetic energy of the object = "\\dfrac{mv^2}{2}=\\dfrac{21\\times 0.9^2}{2}=8.505J"

Hence net work = "8.505+226.38 =234.885J"

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Answer to Question #270720 in Classical Mechanics for kyungsoo

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