A,B两球间用长6m的轻线相连,两球相隔0.8s先后从同一高度以v=4.5m/s的水平初速抛出,求(1)A球抛出后多长时间才能拉直?(2)在这段时间内A球的位移多大?
问题描述:
A,B两球间用长6m的轻线相连,两球相隔0.8s先后从同一高度以v=4.5m/s的水平初速抛出,求(1)A球抛出后多长时间才能拉直?(2)在这段时间内A球的位移多大?
答
1.首先水平位移固定x1=4.5m/s * 0.8s = 3.6m则竖直位移为x2=6sin(cos^-1 3.6/6)=4.8m0.8s后前一个球的竖直速度和竖直位移vy = at = 9.8m/s * 0.8s = 7.84m/s mq xy1 = at^2/2 = 3.136m两次跑出后加速度造成的位移不变xbf所以(4.8m-3.136m)/7.84m/s+0.8s=1.01s即跑出后1.01s后拉直2.A球水平位移为:x=vt = 4.5*1.01 = 4.545mA球竖直位移为:y=at^2/2 = 9.8*1.01*1.01/2 = 5mA球位移为:根号(xx+yy)= 6.76m
答
1.首先水平位移固定x1=4.5m/s * 0.8s = 3.6m则竖直位移为x2=6sin(cos^-1 3.6/6)=4.8m0.8s后前一个球的竖直速度和竖直位移vy = at = 9.8m/s * 0.8s = 7.84m/s ,xy1 = at^2/2 = 3.136m两次跑出后加速度造成的位移不变,...