题目内容
已知O为△ABC的外心,以线段OA、OB为邻边作平行四边形,第四个顶点为D,再以OC、OD为邻边作平行四边形,它的第四个顶点为H.
(1)若
=
,
=
,
=
,
=
,试用
、
、
表示
;
(2)证明:
⊥
;
(3)若△ABC的∠A=60°,∠B=45°,外接圆的半径为R,用R表示|
|.
(1)若
| OA |
| a |
| OB |
| b |
| OC |
| c |
| OH |
| h |
| a |
| b |
| c |
| h |
(2)证明:
| AH |
| BC |
(3)若△ABC的∠A=60°,∠B=45°,外接圆的半径为R,用R表示|
| h |
(1)由平行四边形法则可得:
=
+
=
+
+
即
=
+
+
(2)∵O是△ABC的外心,
∴|
|=|
|=|
|,
即|
|=|
|=|
|,而
=
-
=
-
=
+
,
=
-
=
-
∴
•
=(
+
•(
-
)=|
|-|
|=0,∴
⊥
(3)在△ABC中,O是外心A=60°,B=45°
∴∠BOC=120°,∠AOC=90°
于是∠AOB=150°|
|2=(
+
+
)2=
2+
2+
2+2
•
+2
•
+2
•
=3R2+2|
|•|
|•cos150°+2|
|•|
|•cos90 °+2|
|•|
|•cos120°
=(2-
)R2
∴|
|=
R
| OH |
| OC |
| OD |
| OC |
| OA |
| OB |
即
| h |
| a |
| b |
| c |
(2)∵O是△ABC的外心,
∴|
| OA |
| OB |
| OC |
即|
| a |
| b |
| c |
| AH |
| OH |
| OA |
| h |
| a |
| b |
| c |
| CB |
| OB |
| OC |
| b |
| c |
∴
| AH |
| CB |
| b |
| c) |
| b |
| c |
| b |
| c |
| AH |
| CB |
(3)在△ABC中,O是外心A=60°,B=45°
∴∠BOC=120°,∠AOC=90°
于是∠AOB=150°|
| h |
| a |
| b |
| c |
| a |
| b |
| c |
| a |
| b |
| b |
| c |
| c |
| a |
=3R2+2|
| a |
| b |
| a |
| c |
| b |
| c |
=(2-
| 3 |
∴|
| h |
| ||||
| 2 |
练习册系列答案
相关题目