2022初二英语周报第10期答案

17015.(1)(2)6J【解析】(1)设P球刚刚到达B点时速度为v1,下滑高度为H,轨道对球的支持力为FN,由动能定理有pgH=e-n1p2 In P(2分)其中H=R-Rcos60°联立解得v1=5m/s由牛顿第二定律有FPG= pR(1分)170解得FNN(1分由牛顿第三定律得,小球在B点时,对轨道的压力大小(1分(2)设P、Q碰撞后的速度分别为v2、v,由于发生弹性碰撞,由动量守恒有(1分)由机械能守恒定律有mpvfa-mpu2+-m(1分)解得v:=2m/s(另一值不合题意,舍去)1分设物块由D点平抛时的速度为v4,下落时间为t,则有h解得v=3m/s设物块在传送带上运动的加速度为a,运动时间为t则有Q(1分)物块和传送带的相对位移-vIt2a1分电动机多做的功W=movi-mvi+pmag:△x(2分)联立解得W=6J(1分)

第一节One possible versionDear Ms JenkinsI'm writing to ask you for help. Our school is going to sponsor an exhibition of Chinese paintings in theschool library next month. As president of the student council, i have been assigned the job of drafting an arnouncement in English as there aredreds of international students in our schoohave already written a rough draft of the above-mentioned announcement. But I'm afraid that there aresome mistakes in the English language. So I am hoping you would correct my possible mistakes in the announce-ment that i have attachedId appreciate it if you could do me the favocerely yourLIH

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