题目内容
如图,一半圆形碗的边缘上装有一定滑轮,滑轮两边通过一不可伸长的轻质细线挂着两个小物体,质量分别为m1、m2, m1>m2。现让m1从靠近定滑轮处由静止开始沿碗内壁下滑。设碗固定不动,其内壁光滑、半径为R。则m1滑到碗最低点的速度为:( )A.


C.



答案:D;解析:设m1滑到碗最低点的速度为v,作出m1滑到碗最低点时的状态图,对m1、m2物体系统,应用机械能守恒定律得:
又根据速度的合成与分解知识有:
,整理可得:




练习册系列答案
相关题目