顺流速度=U+3逆流速度=U-3则距离=10(U+3)所以逆流时间是10(U+3)/(U-3)从B地匀速返回A地用了不到12小时但肯定大于10小时所以10<10(U+3)/(U-3)<12显然U>3,U-3>010<10(U+3)/(U-3)<121<(U-3+6)/(U-3)<1.21<1+6/(U-3)<1.20<6/(U-3)<0.2(U-3)/6>1/0.2(U-3)/6>5U-3>30U>33老赌狗滚球推荐
标签:某江,地均,地用
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