首先画一个梯形ABCD,然后在梯形内画一条线段EF,使之分别平行AB,CD,切交AD于点E,交BC于点F,使之平分梯形ABCD面积。于是得到两梯形ABEF和EFDC,作AN垂直于CD,交EF于点M。则知AM为梯形ABFE的高,而MN等于梯形EFCD的高。解:由已知,得∵CD=3AB0.5·(AB+EF)·AM=0.5·0.5·(AB+CD)·AN∴AM/AN=0.5·(AB+CD)/(AB+EF)=2AB/(AB+EF)0.5·(EF+CD)·MN=0.5·0.5·(AB+CD)·AN∴MN/AN=0.5(AB+CD)/(EF+CD)=2AB/(EF+3AB)∴AM/AN+MN/AN=2AB/(AB+EF)+2AB/(EF+3AB)=1∴EF=√5AB∵三角形AEM相似于三角形ADN∴AE:ED=AM:MN=(EF+CD)/(AB+EF)=(EF+3AB)/(EF+AB)=(√5AB+3AB)/(√5AB+AB)=(√5+3)/(√5+1)
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