1/(x+1)(x+2) + 1/(x+2)(x+3)+.+1/(x+1994)(x+1995)=2x+3987/3x+5985..........不知如何选择
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1/(x+1)(x+2) + 1/(x+2)(x+3)+.+1/(x+1994)(x+1995)=2x+3987/3x+5985..........不知如何选择
1/(x+1)(x+2) + 1/(x+2)(x+3)+.+1/(x+1994)(x+1995)=2x+3987/3x+5985
..........不知如何选择
1/(x+1)(x+2) + 1/(x+2)(x+3)+.+1/(x+1994)(x+1995)=2x+3987/3x+5985..........不知如何选择
1/(x+1)(x+2) + 1/(x+2)(x+3)+.+1/(x+1994)(x+1995)=2x+3987/3x+5985
1/(x+1)-1/(x+2)+1/(x+2)-1/(x+3)...+1/(x+1994)-1/(x+1995)=2x+3987/3x+5985 (这一步是计算中常用的方法,可以把项依次销掉)
1/(x+1)-1/(x+1995)=2x+3987/3x+5985 (然后就世界分式方程了)
x+1995) (2x+3987)/(3x+5985)=(2x+3987)/[3(x+1995)]
两边都乘以(x+1995),得
1994/(x+1)(x+1995)=(2x+3987)/[3(x+1995)]
1994/(x+1)=(2x+3987)/3
1994*3=(x+1)(2x+3987)
2x^2+3989x--1995=0
2x-1)(x+1995)=0
x=1/2 (代入检验,成立)
方法最关键!
如果这个过程你不明白
可能就在这里
要把1/(x+1)(x+2)分解成1/(x+1)-1/(x+2)
如果你不相信这个等式成立 可以自己通分以下
这是计算很重要的拆分方法
可以把项都销掉~
1/(x+1)(x+2)= 1/(x+1) - 1/(x+2)
1/(x+2)(x+3)= 1/(x+2) - 1/(x+3)
................
1/(x+1994)(x+1995)= 1/(x+1994) - 1/(x+1995)
(前一项和后一项的相互抵消掉了,所以最后只剩下,头尾两项了)
所以 (楼主,还不够详细?)
1...
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1/(x+1)(x+2)= 1/(x+1) - 1/(x+2)
1/(x+2)(x+3)= 1/(x+2) - 1/(x+3)
................
1/(x+1994)(x+1995)= 1/(x+1994) - 1/(x+1995)
(前一项和后一项的相互抵消掉了,所以最后只剩下,头尾两项了)
所以 (楼主,还不够详细?)
1/(x+1)(x+2)+1/(x+2)(x+3)+...+1/(x+1994)(x+1995)=1/(x+1) - 1/(x+1995)=1994/(x+1)(x+1995)
两边都乘以(x+1995),得
根据题目
1994/(x+1)(x+1995)=)=(2(x+1995)-3))/3(x+1995)
上下同时消去(x+1995)得到
1/(x+1)-1/(x+1995)=2/3-1/(x+1995)
1/(x+1)=2/3
2x+2=3
x=1/2
(方法是:观察法,跌到这么后面,算了,你明白就好了!)
x=1/2
收起
略左式=[1/(x+1)]-[1/(x+2)]+[1/(x+2)]-[1/(x+3)]+...+1/(x+1994)-1/(1+1995)
=1/(x+1)-1/(x+1995)
=1994/(x^2+1996x+1995)=2x+3987/3x+5985,解这个方程即可得x
1/(x+1)(x+2) + 1/(x+2)(x+3)+....+1/(x+1994)(x+1995)=(2x+3987)/(3x+5985)
[1/(x+1)-1/(x+2)]+……+[1/(x+1994)-1/(x+1995)]=(2x+3987)/(3x+5985)
1/(x+1)-1/(x+1995)=(2x+3987)/(3x+5985)=[2(x+1995)-3]/3(x+1995)
1/(x+1)-1/(x+1995)=2/3-1/(x+1995)
1/(x+1)=2/3
2x+2=3
x=1/2
代入检验,成立
1/(x+1)(x+2)=1/(x+2)-1/(x+1)
其他同理
上式子=1/(x+1995)-1/(x+1)
通分就能得到结果
1/(x+1)(x+2) + 1/(x+2)(x+3)+....+1/(x+1994)(x+1995)=2x+3987/3x+5985
1/(x+1)-1/(x+2)+1/(x+2)-1/(x+3)...+1/(x+1994)-1/(x+1995)=2x+3987/3x+5985 (这一步是计算中常用的方法,可以把项依次销掉)
1/(x+1)-1/(x+1995)=2x+398...
全部展开
1/(x+1)(x+2) + 1/(x+2)(x+3)+....+1/(x+1994)(x+1995)=2x+3987/3x+5985
1/(x+1)-1/(x+2)+1/(x+2)-1/(x+3)...+1/(x+1994)-1/(x+1995)=2x+3987/3x+5985 (这一步是计算中常用的方法,可以把项依次销掉)
1/(x+1)-1/(x+1995)=2x+3987/3x+5985 (然后就世界分式方程了)
两边都乘以(x+1995),得
3*1994/(x+1)=2x+3987 (很简单了)
x=1/2 (代入检验,成立)
这道题不难,看你审不审题了
收起
左边=1/(x+1)(x+2) + 1/(x+2)(x+3)+....+1/(x+1994)(x+1995)=((x+2)-(x+1))/(x+1)(x+2)+((x+3)-(x+2))/(x+2)(x+3)+...+((x+1995)-(x+1994))/(x+1994)(x+1995)=1/(x+1)-1/(x+2)+1/(x+2)-1/(x+3)+...+1/(x+1994)-1/(x+19...
全部展开
左边=1/(x+1)(x+2) + 1/(x+2)(x+3)+....+1/(x+1994)(x+1995)=((x+2)-(x+1))/(x+1)(x+2)+((x+3)-(x+2))/(x+2)(x+3)+...+((x+1995)-(x+1994))/(x+1994)(x+1995)=1/(x+1)-1/(x+2)+1/(x+2)-1/(x+3)+...+1/(x+1994)-1/(x+1995)=1/(x+1)-1/(x+1995)
右边=(2x+3987)/3(x+1995)把左边的1/(x+1995)移到右边,合并同类项得1/(x+1)=(2x+3990)/3(x+1995),即1/(x+1)=2(x+1995)/3(x+1995),约去(x+1995)得1/(x+1)=2/3,解出x=1/2
收起
1/(x+1)(x+2)= 1/(x+1) - 1/(x+2)
1/(x+2)(x+3)= 1/(x+2) - 1/(x+3)
................
1/(x+1994)(x+1995)= 1/(x+1994) - 1/(x+1995)
所以
1/(x+1)(x+2)+1/(x+2)(x+3)+...+1/(x+1994)(x+1995...
全部展开
1/(x+1)(x+2)= 1/(x+1) - 1/(x+2)
1/(x+2)(x+3)= 1/(x+2) - 1/(x+3)
................
1/(x+1994)(x+1995)= 1/(x+1994) - 1/(x+1995)
所以
1/(x+1)(x+2)+1/(x+2)(x+3)+...+1/(x+1994)(x+1995)=1/(x+1) - 1/(x+1995)=1994/(x+1)
(x+1995) (2x+3987)/(3x+5985)=(2x+3987)/[3(x+1995)]
所以有:1994/(x+1)(x+1995)=(2x+3987)/[3(x+1995)]
1994/(x+1)=(2x+3987)/3
1994*3=(x+1)(2x+3987)
2x^2+3989x--1995=0
(2x-1)(x+1995)=0
x1=1/2
x2=-1995
经检验,X=1/2是原方程的根,X=-1995是增根。
收起
1/(x+1)(x+2) + 1/(x+2)(x+3)+....+1/(x+1994)(x+1995)=2x+3987/3x+5985
1/(x+1)-1/(x+2)+1/(x+2)-1/(x+3)...+1/(x+1994)-1/(x+1995)=2x+3987/3x+5985 (这一步是计算中常用的方法,可以把项依次销掉)
1/(x+1)-1/(x+1995)=2x+398...
全部展开
1/(x+1)(x+2) + 1/(x+2)(x+3)+....+1/(x+1994)(x+1995)=2x+3987/3x+5985
1/(x+1)-1/(x+2)+1/(x+2)-1/(x+3)...+1/(x+1994)-1/(x+1995)=2x+3987/3x+5985 (这一步是计算中常用的方法,可以把项依次销掉)
1/(x+1)-1/(x+1995)=2x+3987/3x+5985 (然后就世界分式方程了)
两边都乘以(x+1995),得
3*1994/(x+1)=2x+3987 (很简单了)
x=1/2 (代入检验,成立)
方法最关键!
如果这个过程你不明白
可能就在这里
要把1/(x+1)(x+2)分解成1/(x+1)-1/(x+2)
如果你不相信这个等式成立 可以自己通分以下
这是计算很重要的拆分方法
可以把项都销掉~
注意审题,不算很难的
收起