问题
解答题
解一元二次方程:
(1)(x+1)(x+3)=15
(2)(y-3)2+3(y-3)+2=0.
答案
(1)∵(x+1)(x+3)=15,
∴x2+4x-12=0,
∴(x+6)(x-2)=0,
解得:x1=-6,x2=2;
(2)∵(y-3)2+3(y-3)+2=0,
∴(y-3+2)(y-3+1)=0,
解得:y1=1,x2=2.
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解一元二次方程:
(1)(x+1)(x+3)=15
(2)(y-3)2+3(y-3)+2=0.
(1)∵(x+1)(x+3)=15,
∴x2+4x-12=0,
∴(x+6)(x-2)=0,
解得:x1=-6,x2=2;
(2)∵(y-3)2+3(y-3)+2=0,
∴(y-3+2)(y-3+1)=0,
解得:y1=1,x2=2.