2018-2022英语周报43期七下答案

书面表达One possible version:NOTICEA sports meeting will be held in the playground of our school from next Thursday to FridayAs you know, the pressure of study is very heavy now, especially for those senior 3. So the purpose of the sports meeting is to letevery student get relaxed, as a result of which we students can live happily and heal thilyEveryone is welcome to take part in it. Those who perform excellently at the sports meeting will get prizes. But don' t take theresults so serously because taking part is more important than the result. Good luck to everyone!

16.【解析】本题考查牛顿第二定律,目的是考查学生的分析综合能力。(1)由题图乙可知,传送带在0~2s内的加速度大小为a=2m(3=4m/3(1分)传送带在2s~3s内的加速度大小为a2-16=8m/s2=8m/3(1分)木板与传送带间的最大静摩擦力以及物块与木板间的最大静摩擦力分别为m1=1(Mm)g=3N,Jm=2mg=0.5N(1分)在0~2s内,由于fm2>ma=0.4N,故物块与木板相对静止,加速度大小为4m/s2,由于fm>(M+m)a=2N,故木板与传送带相对静止,加速度大小为4m/s2,即a1=a2=4m/s2(1分)在2s~3s内,由于fm<(M+m)ae=4N,木板与传送带相对滑动假设物块恰好与木板相对静止,则有fm=(M+m)ao(1分)解得a0=6m/s2由于fn2<1ma0=0.6N,物块与木板相对滑动,故6.25m/s2(1分)m/s2。(1分(2)在0~2s内,木板、物块的位移大小均为8×2m=8m(1分)在2s~3s内,物块的位移大小为+-a2(△2)2,其中v2=8m/s,△=15(1分)解得x2=10物块在0~3s内平均速度的大小为其中t=3s解得v=6m/5。(1分)设经时间t,木板与传送带↑0(m“)木板一解得m/ s(3)传送带、木板和物块的速度一时间图像如图所示,设经时间,木板与传送带↑/(mx+)木板达到共同速度,经时间12,物块与传送带达到共同速度,则有传送带+a1't1(1分)2=1+a2t2(1分)解得t1=1.28s,l2=1.6s234u/s经分析可知L(-)(t2-n解得L=1.28m。(1分)

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