问题描述: 因式分解 x=√2时 求X^2+7X+4/X^3-X^2-6X + X^2+6X+5/X^2-2X-3 的值 1个回答 分类:数学 2014-09-30 问题解答: 我来补答 (X²+7X+4)/(X³-X²-6X) + (X²+6X+5)/(X²-2X-3)=(x²+7x+4)/x(x+2)(x-3)+(x+1)(x+5)/(x+1)(x-3)=(x²+7x+4)/x(x+2)(x-3)+(x+5)/(x-3)=(x²+7x+4+x³+7x²+10x)/x(x+2)(x-3)=(x³+8x²+16x+x+4)/x(x+2)(x-3)=[x(x+4)²+(x+4)]/x(x+2)(x-3)=(x+4)(x²+4x+1)/x(x+2)(x-3)=(√2+4)(2+4√2+1)/[√2(√2+2)(√2-3)]=(2√2+8+8+16√2+√2+4)/(2√2+4-6-6√2)=(19√2+20)/(-2-4√2)=-(19√2+20)(2-4√2)/(4-32)=-(19√2+20)(1-2√2)/(-14)=(19√2+20-76-40√2)/(14)=(-56-21√2)/14=(-8-3√2)/2 展开全文阅读
