英语周报七下新目标2022答案

14莕案见解题思路审题指导(1)P和Q发生弹性碰撞,系统所受的合外力为零,动量守恒,机械能守恒;根据动量定理,求出滑块P所受冲量;(2)滑块P刚好滑到滑槽轨道的最高点C时,两着速度相同,根据动量守恒和能量守恒列式求出动摩擦因数;(3)结合动量守恒和能量守恒,滑块P恰能滑到A点,有最小值;滑块P滑到B点时速度恰好为0,μ有最大值解题患路(1)小球Q摆到最低点,由动能定理得设碰撞后滑块速度为"1,小球速度为t2对小球Q和滑块P,由动量守恒定律得由机槭能守恒定律得由动量定理得,滑块P所受冲量的大解得=3N.s⑤2)滑块和滑槽整体在水平方向不受外力,故水平方向满足动量守恒,则有m+M)…+mg!+mgR⑦(3)若滑块P恰能滑回A点,有解得风1=0.15⑩若滑块P滑回B点时速度恰好为0,有由能量守恒定律得2解得p2=0.225(1分)则滑块P在整个运动过程中,有可能在某段时间里相对地面向右运动,μ的取值范围为0.15≤<0.225①(1分)

书面表达One possible versionDear PeterI'm writing to invite you to see the Chinese Painting Exhibition to be held in our city.The exhibition will start at 8: 30 am on Saturday and last till 5: 00 pm on Sunday in the city museum It'ssaid that a large number of Chinese paintings, some of which are original works by famous painters like ZhangDaqian and Qi Baishi, will be on display. Besides, there will be various souvenirs to be sold. I know you re veryinterested in traditional Chinese culture, so I can t wait to tell you the news and hope we can go together.Looking forward to your reply.You

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