题目内容


质量为m=8kg的物体,在F=12N的水平力作用下,沿光滑水平面从静止开始运动,运动时间为t=5s,试求:                                                                                             

(1)力F在前4s内对物体所做的功W;                                                           

(2)力F在第3s末对物体做功的功率P.                                                         

                                                                                                                          


(1)物体受重力、支持力和拉力,根据牛顿第二定律,有:a=

4s内的位移为:x=

故力F在4s内对物体所做的功为:W=Fx=12N×12m=144J;

(2)3s末的速度为:v=at=1.5×3=4.5m/s;

力F在3s内对物体做功的瞬时功率:

P=Fv=12×4.5=54W;

答:(1)力F在3s内对物体所做的功W为81J;

(2)3s末的瞬时功率为54W


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