1.x2-2√5x-1=02.(2y+1)2+3(2y+1)+2=03.x2-(1+2√3)x+3+ √3 =04.(x2-2)2-3(x2-2)=0
来源:学生作业帮助网 编辑:作业帮 时间:2024/11/26 07:27:55
1.x2-2√5x-1=02.(2y+1)2+3(2y+1)+2=03.x2-(1+2√3)x+3+ √3 =04.(x2-2)2-3(x2-2)=0
1.x2-2√5x-1=0
2.(2y+1)2+3(2y+1)+2=0
3.x2-(1+2√3)x+3+ √3 =0
4.(x2-2)2-3(x2-2)=0
1.x2-2√5x-1=02.(2y+1)2+3(2y+1)+2=03.x2-(1+2√3)x+3+ √3 =04.(x2-2)2-3(x2-2)=0
1、x²-2√5x+2=0
x²-2√5x+5=3
﹙x-√5﹚²=3
x-√5=±√3
x1=√5+√3,x2=√5-√3
2、(2Y+1)^2+3(2Y+1)+2=0
[(2y+1)+2][(2y+1)+1]=0
(2y+3)(2y+2)=0
2y+3=0,2y+2=0
y1=-3/2,y2=-1
3、x²-(1+2√3)x+3+√3=0,
x^2-(1+2√3)x+√3(√3+1)=0,
(x-√3)(x-√3-1)=0,
x1=√3,x2=√3+1
4、(x²-2)²-3(x²-2)=0
(x²-2)(x²-2-3)=0
x1=+√2,x2=-√2,x3=+√5,x4=-√5
没 学 过
(1)由x²-2√5-1=0
求根公式:
x=(2√5±√[(2√5)²+4]/2
=(2√5±2√6)/2
=√5±√6.
(2)由(2y+1)²+3(2y+1)+2=0
十字相乘法:2=1×2
(2y+1+1)(2y+1+2)=0
y1=-1,y2=-3/2.
(3)由x²-(1+2...
全部展开
(1)由x²-2√5-1=0
求根公式:
x=(2√5±√[(2√5)²+4]/2
=(2√5±2√6)/2
=√5±√6.
(2)由(2y+1)²+3(2y+1)+2=0
十字相乘法:2=1×2
(2y+1+1)(2y+1+2)=0
y1=-1,y2=-3/2.
(3)由x²-(1+2√3)x+3+√3=0
十字相乘法:3+√3=√3×(√3+1)
(x-√3)(x-√3-1)=0
x1=√3,x2=√3+1
(4)(x²-2)²-3(x²-2)=0
(x²-2)(x²-2-3)=0
x=±√2,x=±√5.
收起