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A rightward force of 246 N is applied to a 35 N suitcase to accelerate it across the floor. The coefficient of friction between the crate and the floor is 0.75. What is the acceleration of the crate?

Respuesta :

carlosego
(35/g) = mass of 3.57kg. (9.8 for g).
 (35 x 0.75) = 26.25N. friction. 
 (246 - 26.25) = net 219.76N. accelerating force.
 Aceleration = (f/m) = (219.76/3.57) = 61.56m/sec^2

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