问题标题:
2道数学分式加减法1.y-3/4y^2-8除以(5/y-2-y-2)2.化简求值:(x^2+2/x^2-4x+4-x+1/x-2)除以x+4/2-x其中X=7/4.
问题描述:
2道数学分式加减法
1.y-3/4y^2-8除以(5/y-2-y-2)
2.化简求值:(x^2+2/x^2-4x+4-x+1/x-2)除以x+4/2-x
其中X=7/4.
艾尔肯回答:
1.y-3/4y^2-8除以(5/y-2-y-2)
题目好像有问题?
2.化简求值:(x^2+2/x^2-4x+4-x+1/x-2)除以x+4/2-x
其中X=7/4.
=[(x^2+2)/(x-2)^2-(x+1)/(x-2)]*(2-x)/(x+4)
=[x^2+2-(x+1)(x-2)]/(x-2)^2*[-(x-2)]/(x+4)
=-(x^2+2-x^2+x+2)/(x-2)*1/(x+4)
=-(x+4)/(x-2)*1/(x+4)
=-1/(x-2)
=-1/(7/4-2)
=-1/(-1/4)
=4
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