分式 求代数式值已知x² - 5x -2010=0 求代数式[(x-2)²-(x-1)²+
2个回答
∵x²-5x-2010=0
∴[(x-2)²-(x-1)²+1]/(x-2)
=[x²-4x+4-x²+2x-1+1]/(x-2)
=(-2x+4)/(x-2)
=-2(x-2)/(x-2)
=-2
………………………………………………………………
∵a²-2a-4=0
∴a²=2a+4,a³=2a²+4a=8a+8
∴a-[a-1/(1-a)]²÷[(a²-a+1)/(a²-2a+1)]×1/(a³-1)
=a-[-(a²-a+1)/(1-a)]²÷[(a²-a+1)/(a-1)²]×1/(a³-1)
=a-[(a²-a+1)²/(a-1)²]×[(a-1)²/(a²-a+1)]×1/(a³-1)
=a-(a²-a+1)/(a³-1)
=a-(a+5)/(8a+7)
=(8a²+6a-5)/(8a+7)
=(22a+27)/(8a+7)
a=(2±2√5)/2=1±√5
当a=1+√5时,
(22a+27)/(8a+7)=(49+22√5)/(15+8√5)=(22√5+49)(8√5-15)/95=(145+62√5)/95
当a=1-√5时,
(22a+27)/(8a+7)=(49-22√5)/(15-8√5)=(49-22√5)(15+8√5)/(-95)=(22√5-49)(8√5+15)/95=(145-62√5)/95
不过总觉得结果有问题,想先能核实下过程是否有误
谢谢
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