UC知道初二几道数学分式题:已知f(x)=x+1/x,求f(√2 - 1)的值。
来源:百度知道 编辑:UC知道 时间:2024/05/13 06:24:18
(1)已知f(x)=x+1/x,求f(√2 - 1)的值。
(分式的乘除法)
(2)(2x-6/4-4x+x^2)÷(x+3)×(x^2+x-6/3-x);(分式的乘除法)
(3)8y^(n-1) × (x^2/n)^n ÷ (- 2x^n/y)^2;
(分式的乘除法)
(2)(2x-6/4-4x+x^2)÷(x+3)×(x^2+x-6/3-x);(分式的乘除法)
(3)8y^(n-1) × (x^2/n)^n ÷ (- 2x^n/y)^2;
f(√2-1)=√2-1+1/(√2-1)=√2-1+(√2+1)=2√2
[(2x-6)/(4-4x+x^2)]÷(x+3)×[(x^2+x-6)/(3-x)]
=[2(x-3)/[-(x-2)^2]÷(x+3)×[(x+3)(x-2)/[-(x-3)]
=2(x-3)(x+3)(x-2)/[(x-2)^2(x+3)(x-3)]
=2/(x-2)
8y^(n-1) × (x^2/n)^n ÷ (- 2x^n/y)^2;
中间是不是(x^2/y)^n?
=8y^(n-1) × x^2n/y^n ÷ (4x^2n/y^2);
=8y^(n-1)*x^2n*y^2/(y^n*4x^2n)
=(8/4)*y^(n-1+2-n)*x^(2n-2n)
=2y
111
看不懂
f(√2-1)=√2-1+1/(√2-1)=√2-1+(√2+1)=2√2
[(2x-6)/(4-4x+x^2)]÷(x+3)×[(x^2+x-6)/(3-x)]
=[2(x-3)/[-(x-2)^2]÷(x+3)×[(x+3)(x-2)/[-(x-3)]
=2(x-3)(x+3)(x-2)/[(x-2)^2(x+3)(x-3)]
=2/(x-2)
8y^(n-1) × (x^2/n)^n ÷ (- 2x^n/y)^2;
(x^2/y)^n
=8y^(n-1) × x^2n/y^n ÷ (4x^2n/y^2);
=8y^(n-1)*x^2n*y^2/(y^n*4x^2n)
=(8/4)*y^(n-1+2-n)*x^(2n-2n)
=2y