(2012·兰州)已知x是一元二次方程x²-2x+1=0的根,求代数式(x-3)/(3x²-6x)÷
(2012·兰州)已知x是一元二次方程x²-2x+1=0的根,求代数式(x-3)/(3x²-6x)÷[x+2-(5/x-2)]的值....
(2012·兰州)已知x是一元二次方程x²-2x+1=0的根,求代数式(x-3)/(3x²-6x)÷[x+2-(5/x-2)]的值.
展开
1个回答
展开全部
解:
x²-2x+1=0
(x-1)²=0
x1=x2=1
[(x-3)/(3x²-6x)] ÷ [(x+2)-5/(x-2)]
={(x-3)/[3x(x-2)]} ÷ {[(x+2)(x-2)-5]/(x-2)}
= {(x-3)/[3x(x-2)]} × {(x-2)/(x+3)(x-3)}
=1/[3x(x+3)]
因此:
带入x1=x2=1,则:
[(x-3)/(3x²-6x)] ÷ [(x+2)-5/(x-2)]
=1/[3x(x+3)]
=1/12
祝学习进步
x²-2x+1=0
(x-1)²=0
x1=x2=1
[(x-3)/(3x²-6x)] ÷ [(x+2)-5/(x-2)]
={(x-3)/[3x(x-2)]} ÷ {[(x+2)(x-2)-5]/(x-2)}
= {(x-3)/[3x(x-2)]} × {(x-2)/(x+3)(x-3)}
=1/[3x(x+3)]
因此:
带入x1=x2=1,则:
[(x-3)/(3x²-6x)] ÷ [(x+2)-5/(x-2)]
=1/[3x(x+3)]
=1/12
祝学习进步
本回答由提问者推荐
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
推荐律师服务:
若未解决您的问题,请您详细描述您的问题,通过百度律临进行免费专业咨询
|
广告 您可能关注的内容 |
