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數學問題求詳解
Jul 19th 2014, 00:12

設甲速度為 u,乙速度為 v,跑道一個圈子長 d。
則甲第一次從背後追上乙需時 d/(u-v),兩人再次相遇需時 d/(u+v)。
此時乙恰好跑了四圈,所以,
4d=v[d/(u+v)+d/(u-v)]
==> 4d(u+v)(u-v)=dv(u-v)+dv(u+v)
==> 4u^2-4v^2=uv-v^2+uv+v^2
==> 4u^2-2uv^2-4v^2=0
==> u=v(1+√17)/4 或 u=v(1-√17)/4 (不合,負值)

答:甲的速度是乙的 (1+√17)/4 倍

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