(1)由机械能守恒定律可知:mgR= 1 2 mvB2解得:vB= 2gR = 2×10×0.2 =2m/s;(2)由H-R= 1 2 gt2解得:t= 2(H?h) g = 2×(0.4?0.2) 10 =0.2s;水平位移x=vBt=2×0.2=0.4m;答:(1)小球通过B点时的速度为2m/s;(2)小球落地点C与B点的水平距离x为0.4m.
