题目内容
已知△ABC内接于以0为圆心,1为半径的圆,且3•
+4•
+5•
=
,则S△ABC=______.
| OA |
| OB |
| OC |
| 0 |
(3
+4
)2=9+16+24
•
=(-5
)2=25.
则:
•
=0,
⊥
.
以O为原点,
,
为x,y轴建立平面直角坐标系,设C坐标为(u,v)
∴3(1,0)+4(0,1)+5(u,v)=0.
u=-
,v=-
.
S=S△oab+S△obc+S△oac=
故答案为:
.
| OA |
| OB |
| OA |
| OB |
| OC |
则:
| OA |
| OB |
| OA |
| OB |
以O为原点,
| OA |
| OB |
∴3(1,0)+4(0,1)+5(u,v)=0.
u=-
| 3 |
| 5 |
| 4 |
| 5 |
S=S△oab+S△obc+S△oac=
| 6 |
| 5 |
故答案为:
| 6 |
| 5 |
练习册系列答案
相关题目
,