a/ Xét \(\Delta ABC\) và \(\Delta HAC\) có :

\(\left\{{}\begin{matrix}\widehat{C}chung\\\widehat{BAC}=\widehat{AHC}=90^0\end{matrix}\right.\)

\(\Leftrightarrow\Delta ABC\sim HAC\left(g-g\right)\)

b/ \(BC=\sqrt{AB^2+AC^2}=10cm\)

\(AH.BC=AB.AC\Leftrightarrow AH=\dfrac{AB.AC}{BC}=4,8cm\)

c/ \(\Delta HEA\sim\Delta CEH\left(g-g\right)\)

\(\Leftrightarrow\dfrac{HE}{CE}=\dfrac{EA}{HE}\Leftrightarrow HE^2=EA.EC\left(đpcm\right)\)

a) Xét ΔHAC và ΔABC có:

∠(ACH ) là góc chung

∠(BAC)= ∠(AHC) = 90o

⇒ ΔHAC ∼ ΔABC (g.g)

b) Xét ΔHAD và ΔBAH có:

∠(DAH ) là góc chung

∠(ADH) = ∠(AHB) = 90o

⇒ ΔHAD ∼ ΔBAH (g.g)

c) Tứ giác ADHE có 3 góc vuông ⇒ ADHE là hình chữ nhật.

⇒ ΔADH= ΔAEH ( c.c.c) ⇒ ∠(DHA)= ∠(DEA)

Mặt khác: ΔHAD ∼ ΔBAH ⇒ ∠(DHA)= ∠(BAH)

∠(DEA)= ∠(BAH)

Xét ΔEAD và ΔBAC có:

∠(DEA)= ∠(BAH)

∠(DAE ) là góc chung

ΔEAD ∼ ΔBAC (g.g)

d) ΔEAD ∼ ΔBAC

ΔABC vuông tại A, theo định lí Pytago:

Theo b, ta có:

a) Xét ΔDAH vuông tại D và ΔHAC vuông tại H có

\(\widehat{DAH}\) chung

Do đó: ΔDAH\(\sim\)ΔHAC(g-g)

Câu 1:

a: Xét ΔADB vuông tại D và ΔAEC vuông tại E có

góc BAD chung

DO đo: ΔADB đồng dạng với ΔAEC

Suy ra: AD/AE=AB/AC
hay AD/AB=AE/AC

b: Xét ΔADE và ΔABC có

AD/AB=AE/AC

góc DAE chung

Do đó: ΔADE đồng dạng với ΔABC

Suy ra: DE/BC=AD/AB

hay \(DE\cdot AB=AD\cdot BC\)

c: Xét ΔOBE và ΔODC có

góc OBE=góc ODC

góc BOE chung

Do đo: ΔOBE đồng dạng với ΔODC

Suy ra: OB/OD=OE/OC

hay \(OB\cdot OC=OE\cdot OD\)

a)xét ΔABC và ΔHBA ta có

\(\widehat{BAH}=\widehat{BHA}=90^o\)

\(\widehat{B}chung\)

=>ΔABC ∼ ΔHBA(g.g)(1)

b)xét ΔABC và ΔAHC ta có

\(\widehat{BAC}=\widehat{AHC}=90^o\)

\(\widehat{B}chung\)

->ΔABC ∼ ΔAHC(g.g)(2)

từ (1) và (2)=>ΔHBA và ΔAHC

->\(\dfrac{AH}{BH}=\dfrac{HC}{AH}\)

=>\(AH^2=BH.HC\)

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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!

a: Xét ΔADB vuông tại D và ΔAEC vuông tại E có 

\(\widehat{BAD}\) chung

Do đó: ΔADB\(\sim\)ΔAEC

b: Xét ΔEHB vuông tại E và ΔDHC vuông tại H có 

\(\widehat{EHB}=\widehat{DHC}\)

Do đó: ΔEHB\(\sim\)ΔDHC

Suy ra: \(\dfrac{HE}{HD}=\dfrac{HB}{HC}\)

hay \(HE\cdot HC=HB\cdot HD\)

c: Xét tứ giác HBKC có

HB//KC

HC//BK

Do đó: HBKC là hình bình hành

Suy ra: Hai đường chéo HK và BC cắt nhau tại trung điểm của mỗi đường

mà M là trung điểm của BC

nên M là trung điểm của HK

hay H,M,K thẳng hàng