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 Bài 1: Từ điểm A ở bên ngoài đường tròn (O), kẻ hai tiếp tuyến AB, AC đến đường tròn (O) (B,C là hai tiếp điểm). Kẻ cát tuyến ADE vs đường tròn (O) (D nằm giữa A và E).a) cm: A,B,O,C cùng thuộc một đường tròn.b) cm: OA vuông BC tại H và OD2 = OH.OA. Từ đó suy ra tam giác OHD đồng dạng vs tam giác ODA.c) cm: BC trùng với tia phân giác của góc DHE.d) Từ D kẻ đường thẳng song song với BE, đường...
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 Bài 1: Từ điểm A ở bên ngoài đường tròn (O), kẻ hai tiếp tuyến AB, AC đến đường tròn (O) (B,C là hai tiếp điểm). Kẻ cát tuyến ADE vs đường tròn (O) (D nằm giữa A và E).

a) cm: A,B,O,C cùng thuộc một đường tròn.

b) cm: OA vuông BC tại H và OD= OH.OA. Từ đó suy ra tam giác OHD đồng dạng vs tam giác ODA.

c) cm: BC trùng với tia phân giác của góc DHE.

d) Từ D kẻ đường thẳng song song với BE, đường thẳng này cắt AB, AC lần lượt tại M và N. cm: D là trung điểm MN.

Bài 2: Cho đường tròn tâm O bán kính R, dây BC khác đường kính. Hai tiếp tuyến của đường tròn (O,R) tại B và tại C cắt nhau tại A. Kẻ đường kính CD, kẻ BH vuông góc vs CD tại H.

a) cm: A,B,O,C cùng thuoojcj một đường tròn. Xác định tâm và bán kính của đường tròn đó.

b) cm: AO vuông góc vs BC. Cho biết R=15cm, BC=24cm. Tính AB, OA.

c) cm: BC là tia phân giác của góc ABH.

d) Gọi I là giao điểm của AD và BH, E là giao điểm của BD và AC. cm: IH=IB.

0

a: Ta có: ΔOMN cân tại O

mà OA là đường cao

nên OA là phân giác củagóc MON

Xét ΔOMA và ΔONA có

OM=ON

góc MOA=góc NOA

OA chung

Do đó: ΔOMA=ΔONA

=>góc ONA=90 độ

=>AN là tiếp tuyến của (O)

b: Xét (O) có

KC,KB là tiếp tuyến

nên KC=KB

=>K năm trên trung trực của BC(1)

ΔOBC cân tại O

mà OI là trung tuyến

nên OI là trung trực của BC(2)

Từ (1), (2) suy ra O,I,K thẳng hàng

=>OK vuông góc với BC tại I

=>OI*OK=OB^2=ON^2

3 tháng 1 2021

câu c đề j z

a: Xét tứ giác ABOC có

\(\widehat{OBA}+\widehat{OCA}=90^0+90^0=180^0\)

=>OBAC là tứ giác nội tiếp

=>O,B,A,C cùng thuộc một đường tròn

b: Xét (O) có

AB,AC là tiếp tuyến

Do đó: AB=AC

=>A nằm trên đường trung trực của BC(1)

Ta có: OB=OC

=>O nằm trên đường trung trực của BC(2)

Từ (1) và (2) suy ra OA là đường trung trực của BC

=>OA\(\perp\)BC

c: Điểm H ở đâu vậy bạn?

30 tháng 9 2023

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a: Xét tứ giác OBKC có \(\widehat{OBK}+\widehat{OCK}=90^0+90^0=180^0\)

nên OBKC là tứ giác nội tiếp

=>O,B,K,C cùng thuộc một đường tròn

b: Ta có: ΔOMN cân tại O

mà OA là đường cao

nên OA là phân giác của góc MON

Xét ΔMOA và ΔNOA có

OM=ON

\(\widehat{MOA}=\widehat{NOA}\)

OA chung

Do đó: ΔMOA=ΔNOA

=>\(\widehat{OMA}=\widehat{ONA}\)

=>\(\widehat{ONA}=90^0\)

=>AN là tiếp tuyến của (O)

c: Xét (O) có

KB,KC là tiếp tuyến

Do đó: KB=KC

=>K nằm trên đường trung trực của BC(1)

Ta có: OB=OC

=>O nằm trên đường trung trực của BC(2)

Từ (1) và (2) suy ra OK là đường trung trực của BC

=>OK\(\perp\)BC tại I và I là trung điểm của BC

Xét ΔOBK vuông tại B có BI là đường cao

nên \(OI\cdot OK=OB^2\)

=>\(OI\cdot OK=ON^2\left(3\right)\)

d: Xét ΔNOA vuông tại N có NH là đường cao

nên \(OH\cdot OA=ON^2\left(4\right)\)

Từ (3) và (4) suy ra \(OI\cdot OK=OH\cdot OA\)

=>\(\dfrac{OI}{OH}=\dfrac{OA}{OK}\)

Xét ΔOIA và ΔOHK có

\(\dfrac{OI}{OH}=\dfrac{OA}{OK}\)

\(\widehat{HOK}\) chung

Do đó: ΔOIA đồng dạng với ΔOHK

=>\(\widehat{OIA}=\widehat{OHK}\)

=>\(\widehat{OHK}=90^0\)

mà \(\widehat{OHM}=90^0\)

nên K,H,M thẳng hàng

mà M,H,N thẳng hàng

nên K,M,N thẳng hàng