Cho hình chữ nhật $ABCD$ có $AB$ = $a$ = 12cm  $BC$ = $b$ = 9 cm .$H$ là chân đường vuông góc kẻ từ $A$ đến $BD$ 
CM :$\triangle$ $AHB$  $\sim$ $\triangle$ $BCD$ 
      Tính $AH$ 
       Tính  $S_{ABC}$
a) $\triangle AHB\sim \triangle BCD$        $(g.g)$
Vì: $\widehat{ABH}=\widehat{BDC}$  (sole trong)
$\widehat{AHB}=\widehat{BCD}=90^o$.
b) $BD=\sqrt{BC^2+AB^2}=15$.    $(cm)$
$\triangle AHD \sim \triangle BAD$       $(g.g)$
Vì: $\widehat{DAH}=\widehat{ABD}$   (cùng cộng với $\widehat{ADB}=90^o$)
$\widehat{AHD}=\widehat{DAB}=90^o$
$\Rightarrow \frac{AB}{BD}=\frac{AH}{AD}\Rightarrow AH=\frac{AB.AD}{BD}=\frac{12.9}{15}=7,2$   $(cm)$
c) $S_{ABC}=\frac{1}{2}.AB.BC=54$       $(cm^2)$
a, \begin{cases}\widehat{ABH}=\widehat{BDC} \\ \widehat{AHB}=\widehat{BCD} \end{cases} => dpcm
b, \begin{cases}\frac{1}{AH^2}=\frac{1}{AD^2}+\frac{1}{AB^2} \\  \end{cases}
=> tính dc AH
c, Sabc = AB*BC 
SAI RỒI ........... –  111aze 17-03-16 08:27 PM

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