已知一元二次方程x²+3x-1=0的一个实数根,求x-3/3x²-6x÷(x+2-5/x-2)的值
人气:403 ℃ 时间:2019-08-20 16:49:29
解答
(x-3)/(3x²-6x)÷[(x+2)-5/(x-2)]=(x-3)/[3x(x-2)]÷[(x²-4-5)/(x-2)]=(x-3)/[3x(x-2)]÷[(x+3)(x-3)/(x-2)]=(x-3)/[3x(x-2)]×(x-2)/[(x+3)(x-3)]=1/[3x(x+3)]=1/[3(x²+3x)]∵x²+3x-1=0∴x...
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