A, Có : góc  HBA = góc ABC ( chung 1 góc )

=> tam giác HBA đông dạng với tam giác ABC ( g.g)

B, câu (A) => HA/AC = BA/BC

=> AB.AC = AH.BC

Tk mk nha

a) Xét tam giác ABC và tam giác HBA có Góc ABC chungg,góc BHA=góc BAC=90 độ

=> Tam giác ABC đồng dạng với tam giác HBA(gg)=> \(\frac{AB}{HB}=\frac{BC}{AB}\)=> AB^2=BH.BC

b)Tam giác ABC có BF là phân giác góc ABC=>\(\frac{BC}{AB}=\frac{FC}{AF}\)mà \(\frac{AB}{HB}=\frac{BC}{AB}\)=>\(\frac{AB}{BH}=\frac{FC}{AF}\left(1\right)\)

Tam giác ABH có BE là phân giác goc ABH =>\(\frac{BA}{BH}=\frac{AE}{EH}\left(2\right)\)

Từ 1 và 2=>\(\frac{FC}{AF}=\frac{AE}{EH}=>\frac{EH}{AE}=\frac{AF}{FC}\)

a)  Xét  \(\Delta ABC\)và    \(\Delta HBA\)có:

         \(\widehat{B}\) chung

        \(\widehat{BAC}=\widehat{BHA}=90^0\)

suy ra:    \(\Delta ABC~\Delta HBA\)  (g.g)

b)  Xét   \(\Delta AIH\)và     \(\Delta AHB\)có:

        \(\widehat{AIH}=\widehat{AHB}=90^0\)

        \(\widehat{IAH}\)  chung

suy ra:    \(\Delta AIH~\Delta AHB\) (g.g)

\(\Rightarrow\)\(\frac{AI}{AH}=\frac{AH}{AB}\)  \(\Rightarrow\)  \(AI.AB=AH^2\)  (1)

Xét    \(\Delta AHK\)và     \(\Delta ACH\)có:

    \(\widehat{HAK}\)chung

   \(\widehat{AKH}=\widehat{AHC}=90^0\)

suy ra:   \(\Delta AHK~\Delta ACH\)  (g.g)

\(\Rightarrow\)\(\frac{AH}{AC}=\frac{AK}{AH}\)

\(\Rightarrow\)\(AK.AC=AH^2\)    (2)

Từ (1) và (2) suy ra:    \(AI.AB=AK.AC\)

c)   \(S_{ABC}=\frac{1}{2}.AH.BC=20\)cm²

Tứ giác  \(HIAK\)có:     \(\widehat{HIA}=\widehat{IAK}=\widehat{AKH}=90^0\)

\(\Rightarrow\)\(HIAK\)là hình chữ nhật

\(\Rightarrow\)\(AH=IK=4\)cm

Ta có:   \(AI.AB=AK.AC\) (câu b)

 \(\Rightarrow\)\(\frac{AI}{AC}=\frac{AK}{AB}\)

Xét    \(\Delta AIK\)và    \(\Delta ACB\)có:

    \(\widehat{IAK}\)chung

   \(\frac{AI}{AC}=\frac{AK}{AB}\) (cmt)

suy ra:   \(\Delta AIK~\Delta ACB\)  (c.g.c)

\(\Rightarrow\)\(\frac{S_{AIK}}{S_{ACB}}=\left(\frac{IK}{BC}\right)^2=\frac{4}{25}\)

\(\Rightarrow\)\(S_{AIK}=\frac{4}{25}.S_{ACB}=3,2\)cm²

A B C M H

xét \(\Delta MAH\)  và \(\Delta MBA\)  có 

\(\widehat{AMH}=\widehat{BMA}\)   ( góc chung ) 

\(\widehat{AHM}=\widehat{BAM}\)   ( \(=90^0\) ) 

\(\Rightarrow\Delta MAH\infty\Delta MBA\) 

A B C H I K

a, bạn tự làm nhé 

b, Xét tam giác ABH và tam giác CAH ta có 

^AHB = ^CHA = 90⁰

^ABH = ^CAH ( cùng phụ ^BAH )

Vậy tam giác ABH  ~ tam giác CAH ( g.g )

\(\Rightarrow\frac{AH}{CH}=\frac{BH}{AH}\Rightarrow AH^2=BH.CH\)

c, mình làm hơi tắt nhé, bạn dùng tỉ lệ thức xác định tam giác đồng dạng nhé

Dễ có :  \(AH^2=AK.AC\)(1) 

\(AH^2=AI.AB\)(2)  

Từ (1) ; (2) suy ra : \(AK.AC=AI.AB\Rightarrow\frac{AK}{AB}=\frac{AI}{AC}\)

Xét tam giác AIK và tam giác ACB

^A _ chung 

\(\frac{AK}{AB}=\frac{AI}{AC}\)( cmt )

Vậy tam giác AIK ~ tam giác ACB ( c.g.c )

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ABCHKIEF

a) 

Xét \(\Delta\)ABC và \(\Delta\)HBA có: 

^BAC = ^BHA ( = 90 độ ) 

^ABC = ^HBA ( ^B chung ) 

=> \(\Delta\)ABC ~ \(\Delta\)HBA 

b) AB = 3cm ; AC = 4cm 

Theo định lí pitago ta tính được BC = 5 cm 

Từ (a) => \(\frac{AB}{BH}=\frac{BC}{AB}\Rightarrow BH=\frac{AB^2}{BC}=1,8\)m 

c) Xét \(\Delta\)AHC và \(\Delta\)AKH có: ^AKH = ^AHC = 90 độ 

và ^HAC = ^HAK ( ^A chung ) 

=> \(\Delta\)AHC ~ \(\Delta\)AKH 

=> \(\frac{AH}{AK}=\frac{AC}{AH}\Rightarrow AH^2=AC.AK\)

d) Bạn kiểm tra lại đề nhé!