(1)根据yBC?yAB=gT2得,T=
s=0.1s,
0.25?0.15 10
则小球平抛运动的初速度v0=
=x T
m/s=2m/s.0.2 0.1
(2)B点的竖直分速度vyB=
=yAC 2T
m/s=2m/s0.4 0.2
根据vyB=gt知,t=
=vyB g
s=0.2s.2 10
则抛出点与B点的竖直位移yB=
gt2=1 2
×10×0.04m=0.2m=20cm,水平位移xB=v0t=2×0.2m=0.4m=40cm.1 2
则抛出点的位置坐标x=20-40=-20cm,y=15-20=-5cm.
故答案为:(1)2,(2)-20,-5.
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