题目内容


如图三个大小相同的小球ABC置于光滑水平面上,三球的质量分别为mA=2kg、mB=4kg、mC=2kg,取水平向右方向为动量的正方向,某时刻A球的动量PA=20kgm/s,B球此刻的动量大小和方向未知,C球的动量为零。A球与B球先碰,随后B球与C球碰,碰撞均在同一直线上,且A球与B球以及B球与C球之间分别只相互碰撞一次,最终所有小球都以各自碰后的速度一直匀速运动。所有的相互作用结束后,ΔPC=10kgm/s、ΔPB=4kgm/s,最终B球以5m/s的速度水平向右运动。求:

   Ⅰ.A球对B球的冲量大小与C球对B球的冲量大小之比;

   Ⅱ.整个过程系统由于碰撞产生多少热量?


解:Ⅰ.由ABC组成系统动量守恒ΔPAPBPC=0··································· (1分)

 解得:ΔPA=-14kgm/s·········································································· (1分)

 由AB相碰时对A用动量定理可得:IBAPA  IAB=-IBA=14kgm/s········ (1分)

 由BC相碰时对C用动量定理可得:IBCPC  ICB=-IBC=-10kgm/s····· (1分)

 则IABICB=7:5(1分)

Ⅱ.设AB碰前A的动量为PAB的动量为PBC的动量为PC,所有的作用结束后A的动量为PA/B的动量为PA/,B的动量为PC/,由ABC组成系统动量守恒得:

PA+PB+PC= PA/+ PB/+ PC/········································································ (1分)

PA/= PAPA)························································································ (1分)

PC/= PCPC)························································································ (1分)

······································································ (1分)

联立解得:Q=48J··················································································· (1分)


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