题目内容


如图所示,水平面上有一重40N的物体,受到F1=12N和F2=6N的水平力作用而保持静止.已知物体与水平面间的动摩擦因数为μ=0.2,求:                                                                                                    

(1)此时物体所受的摩擦力多大?                                                                         

(2)将F1撤去后,物体所受的摩擦力为多大?                                                      

(3)将F2撤去后,物体所受的摩擦力为多大?                                                      

                                                                            

                                                                                                                               


解:物体所受最大静摩擦力为:fm=μG=8(N)

(1)由于F1﹣F2=6N<fm

所以物体处于静止状态,所受摩擦力为静摩擦力:

故有:f1=F1﹣F2=6N,方向水平向右.

(2)因为F2=6N<fm,物体保持静止,

故所受静摩擦力为:f2=F2=6N,方向水平向左

(3)因为F1=12N>fm,所以物体相对水平面向左滑动,

故物体受的滑动摩擦力:f3=μG=8N,方向水平向右.


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