解:$ (2) 由題圖可知E,F的坐標(biāo)分別為(\frac{5}{2},0)����,(4,180)���,設(shè)線段EF所在直線的函數(shù)表達(dá)式為y = kx + b�����,則\begin{cases}\frac{5}{2}k + b = 0\\4k + b = 180\end{cases}�����,$
$ \begin{aligned} 4k + b - (\frac{5}{2}k + b)&=180 - 0 \\ 4k + b - \frac{5}{2}k - b&=180 \\ \frac{3}{2}k&=180 \\ k&=120 \\ \end{aligned}$
$ 把k = 120代入\frac{5}{2}k + b = 0得:\frac{5}{2}×120 + b = 0�,b = - 300,所以線段EF所在直線的函數(shù)表達(dá)式為y = 120x - 300�����。$
$ (3) \frac {5}{8}h或\frac {25}{13}h$
