如图,△ABC中,∠B=90°,∠C=45°,AB=3,D是BC上的点,且CD=1
如图,△ABC中,∠B=90°,∠C=45°,AB=3,D是BC上的点,且CD=1,线段AD的垂直平分线与AB,AD分别相交于点E,F。求:线段AE的长。...
如图,△ABC中,∠B=90°,∠C=45°,AB=3,D是BC上的点,且CD=1,线段AD的垂直平分线与AB,AD分别相交于点E,F。
求:线段AE的长。 展开
求:线段AE的长。 展开
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∵∠A=∠C=45°(你知道的)
∴AB=BC=3
∴BD=BC-DC=3-1=2
再根据勾股定理求出AD
∴AD=根号13
∴AF=2分之根号13
∵∠AEF=∠B=90°
∴△AEF∽△ABD
∴AE/AD=AF/AB
∴AE/根号13=2分之根号13/3
∴AE=6分之13
说得够明白了吧
∴AB=BC=3
∴BD=BC-DC=3-1=2
再根据勾股定理求出AD
∴AD=根号13
∴AF=2分之根号13
∵∠AEF=∠B=90°
∴△AEF∽△ABD
∴AE/AD=AF/AB
∴AE/根号13=2分之根号13/3
∴AE=6分之13
说得够明白了吧
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先连接ED两点,因为C角为45度,CD=1,AB=3.则BD=2;很显然用两三角型相似定理。三角形AEF与三角形ABD相似。即AB/AD=AF/AE得。AE=13/6。
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