问题
选择题
如图所示,绳OC与竖直方向30°角, O为质量不计的滑轮,已知物B重1000N,物A重400N,物A、B均静止.求:
(1)物B所受摩擦力为多大?
(2)OC绳的拉力为多大?
答案
f = Tcos30°= 200
N =" 346.4N "
解:对物体A:
T-GA =" 0" ,所以T = GA=" 400N "
对滑轮O:
由于OA、OB绳中的拉力大小相等,OC绳在角BOA的角平分线所在直线上,所以BO与竖直方向的夹角为60°,
TC=2Tcos30°=T = 400N =" 692.8N "
对物体B:Tcos30°- f =" 0,"
f = Tcos30°= 200N =" 346.4N "