求两道分式题(过程额)1、已知x/x²-x+1=1/3,求x²/x的四次方+x²+1的值2、化简a²+4a+4/a³+2a²-4a-8
问题描述:
求两道分式题(过程额)
1、已知x/x²-x+1=1/3,求x²/x的四次方+x²+1的值
2、化简a²+4a+4/a³+2a²-4a-8
答
1.把x解出后代入
2.(a^2+4a+4)/(a^3+2a^2-4a-8)
=(a+2)^2/[(a+2)^2*(a-2)]
=1/(a-2)
答
1.已知x/(x²-x+1)=1/3
所以3x=x^2-x+1
故x^2=4x-1
所以x^2/(x^4+x^2+1)
=x^2/[(4x-1)^2+4x]
=x^2/(16x^2-4x+1)
=x^2/(16x^2-x^2)
=1/15
2.(a^2+4a+4)/(a^3+2a^2-4a-8)
=(a+2)^2/[(a+2)^2*(a-2)]
=1/(a-2)