1/(X+2)(X+3)+1/(X+3)(X+4)=??怎么算,详细,谢谢
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解:1/(x+1)+1/(x+5)=1/(x+2)+1/(x+4)
移项:1/(x+1)-1/(x+4)=1/(x+2)-1/(x+5)
通分:3/(x+1)(x+4)=3/(x+2)(x+5)
所以(x+1)(x+4)=(x+2)(x+5)
即:x²+5x+4=x²+7x+10
所以2x=-6
x=-3
遇到题目的时候先观察,不要盲目计算哦!
谢谢采纳!
移项:1/(x+1)-1/(x+4)=1/(x+2)-1/(x+5)
通分:3/(x+1)(x+4)=3/(x+2)(x+5)
所以(x+1)(x+4)=(x+2)(x+5)
即:x²+5x+4=x²+7x+10
所以2x=-6
x=-3
遇到题目的时候先观察,不要盲目计算哦!
谢谢采纳!
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1/(X+2)(X+3)+1/(X+3)(X+4)
=1/(x+2)-1/(x+3)+1/(x+3)-1/(x+4)
=1/(x+2)-1/(x+4)
=(x+4-x-2)/(x+2)(x+4)
=2/(x+2)(x+4);
如果本题有什么不明白可以追问,如果满意记得采纳
如果有其他问题请采纳本题后另发点击向我求助,答题不易,请谅解,谢谢。
祝学习进步
=1/(x+2)-1/(x+3)+1/(x+3)-1/(x+4)
=1/(x+2)-1/(x+4)
=(x+4-x-2)/(x+2)(x+4)
=2/(x+2)(x+4);
如果本题有什么不明白可以追问,如果满意记得采纳
如果有其他问题请采纳本题后另发点击向我求助,答题不易,请谅解,谢谢。
祝学习进步
追问
1/(x+2008)(x+2009)=??????
追答
1/(x+2008)(x+2009)
=1/(x+2008)-1/(x+2009);
本回答被提问者和网友采纳
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通分
1/(X+2)(X+3)+1/(X+3)(X+4)
=1*(X+4)/(X+2)(X+3)(X+4)+1*(X+2)/(X+3)(X+4)(X+2)
=[1*(X+4)+1*(X+2)]/(X+3)(X+4)(X+2)
=(2X+6)/(X+3)(X+4)(X+2)
=2(X+3)/(X+3)(X+4)(X+2)
=2/(X+4)(X+2)
1/(X+2)(X+3)+1/(X+3)(X+4)
=1*(X+4)/(X+2)(X+3)(X+4)+1*(X+2)/(X+3)(X+4)(X+2)
=[1*(X+4)+1*(X+2)]/(X+3)(X+4)(X+2)
=(2X+6)/(X+3)(X+4)(X+2)
=2(X+3)/(X+3)(X+4)(X+2)
=2/(X+4)(X+2)
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1/(X+2)(X+3)+1/(X+3)(X+4)
=[1/(X+2)][1/(X+3)]+[1/(X+3)][1/(X+4)]
=[1/(X+3)][1/(X+2)+1/(X+4)]
=[1/(X+3)][(X+2)+(X+4)]/(X+2)(X+4)]
=[1/(X+3)][(2X+6)/(X+2)(X+4)]
=[1/(X+3)][2(X+3)/(X+2)(X+4)]
=2/(X+2)(X+4)
=[(X+4)-(X+2)]/(X+2)(X+4)
=[(X+4)/(X+2)(X+4)]-[(X+2)/(X+2)(X+4)]
=[1/(X+2)]-[1/(X+4)]
=[1/(X+2)][1/(X+3)]+[1/(X+3)][1/(X+4)]
=[1/(X+3)][1/(X+2)+1/(X+4)]
=[1/(X+3)][(X+2)+(X+4)]/(X+2)(X+4)]
=[1/(X+3)][(2X+6)/(X+2)(X+4)]
=[1/(X+3)][2(X+3)/(X+2)(X+4)]
=2/(X+2)(X+4)
=[(X+4)-(X+2)]/(X+2)(X+4)
=[(X+4)/(X+2)(X+4)]-[(X+2)/(X+2)(X+4)]
=[1/(X+2)]-[1/(X+4)]
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