题目内容
用换元法解方程(x2+3x+4)(x2+3x+5)=6时,设x2+3x=y,原方程变形为( )
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试题答案
C
相关题目
用换元法解方程(x2+3x+4)(x2+3x+5)=6时,设x2+3x=y,原方程变形为( )
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| A.y2-9y+14=0 | B.y2+9y-14=0 | C.y2+9y+14=0 | D.y2+9y+16=0 |
用换元法解方程(x2+3x+4)(x2+3x+5)=6时,设x2+3x=y,原方程变形为( )
A.y2-9y+14=0
B.y2+9y-14=0
C.y2+9y+14=0
D.y2+9y+16=0
查看习题详情和答案>>
A.y2-9y+14=0
B.y2+9y-14=0
C.y2+9y+14=0
D.y2+9y+16=0
查看习题详情和答案>>
用换元法解方程(x2+3x+4)(x2+3x+5)=6时,设x2+3x=y,原方程变形为
- A.y2-9y+14=0
- B.y2+9y-14=0
- C.y2+9y+14=0
- D.y2+9y+16=0
用换元法解方程:x2+3x-
+1=0.若设x2+3x=y,则原方程可变形为( )
| 2 |
| x2+3x |
| A、y2-2y+1=0 |
| B、y2+2y-1=0 |
| C、y2-y+2=0 |
| D、y2+y-2=0 |
用换元法解方程x2+3x-
=8,若设x2+3x=y,则原方程可化为( )
| 20 |
| x2+3x |
| A、20y2+8y-1=0 |
| B、8y2-20y+1=0 |
| C、y2+8y-20=0 |
| D、y2-8y-20=0 |
用换元法解方程
+
=4,设y=
,则原方程可变形为( )
| x2+3 |
| x+1 |
| 3x+3 |
| x2+3 |
| x2+3 |
| x+1 |
| A、3y2+4y+1=0 |
| B、3y2-4y+1=0 |
| C、y2+3y-4=0 |
| D、y2-4y+3=0 |