题目内容
解下列方程:
(1)x2+4x-12=0
(2)x2+2x=2.
(1)x2+4x-12=0
(2)x2+2x=2.
(1)把右边分解因式得:(x+6)(x-2)=0,
则x+6=0或x-2=0,
解得:x1=-6,x2=2;
(2)移项得:x2+2x-2=0,
∵a=1,b=2,c=-2,
∴△=4-4×1×(-2)=12,
x=
=
=-1±
,
故x1=-1+
,x2=-1-
.
则x+6=0或x-2=0,
解得:x1=-6,x2=2;
(2)移项得:x2+2x-2=0,
∵a=1,b=2,c=-2,
∴△=4-4×1×(-2)=12,
x=
-b±
| ||
| 2a |
-2±
| ||
| 2 |
| 3 |
故x1=-1+
| 3 |
| 3 |
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