\(a,AC=\sqrt{BC^2-AB^2}=12\left(cm\right)\left(pytago\right)\)
Áp dụng HTL:
\(\left\{{}\begin{matrix}AB^2=BH\cdot BC\\AC^2=CH\cdot BC\\AH^2=BH\cdot HC\end{matrix}\right.\Rightarrow\left\{{}\begin{matrix}BH=\dfrac{AB^2}{BC}=\dfrac{25}{13}\left(cm\right)\\CH=\dfrac{AC^2}{BC}=\dfrac{144}{13}\left(cm\right)\\AH=\sqrt{\dfrac{25}{13}\cdot\dfrac{144}{13}}=\dfrac{60}{13}\left(cm\right)\end{matrix}\right.\)
\(b,\sin\widehat{B}=\dfrac{AC}{BC}=\dfrac{12}{13}\approx\sin67^0\Leftrightarrow\widehat{B}\approx67^0\\ \Rightarrow\widehat{C}=90^0-\widehat{B}=23^0\)
\(c,\) Vì AM là trung tuyến ứng ch BC nên \(AM=BM=\dfrac{1}{2}BC=\dfrac{13}{2}\left(cm\right)\)
Ta có \(MH=MB-HB=6,5-\dfrac{25}{13}=\dfrac{119}{26}\left(cm\right)\)
Vậy \(S_{AMH}=\dfrac{1}{2}AH\cdot HM=\dfrac{1}{2}\cdot\dfrac{60}{13}\cdot\dfrac{119}{26}=\dfrac{1785}{169}\left(cm^2\right)\)
