√(1+(1/1^2)+(1/1^2))+√(1+(1/2^2)+(1/3^2))+√(1+(1/3^2)+(1/4^2))+……+√(1+(1/2007^2)+(1/2008^2))

来源:学生作业帮助网 编辑:作业帮 时间:2024/04/28 11:36:18
√(1+(1/1^2)+(1/1^2))+√(1+(1/2^2)+(1/3^2))+√(1+(1/3^2)+(1/4^2))+……+√(1+(1/2007^2)+(1/2008^2))

√(1+(1/1^2)+(1/1^2))+√(1+(1/2^2)+(1/3^2))+√(1+(1/3^2)+(1/4^2))+……+√(1+(1/2007^2)+(1/2008^2))
√(1+(1/1^2)+(1/1^2))+√(1+(1/2^2)+(1/3^2))+√(1+(1/3^2)+(1/4^2))+……+√(1+(1/2007^2)+(1/2008^2))

√(1+(1/1^2)+(1/1^2))+√(1+(1/2^2)+(1/3^2))+√(1+(1/3^2)+(1/4^2))+……+√(1+(1/2007^2)+(1/2008^2))
√(1+1/1²+1/2²)+√(1+1/2²+1/3²)+√(1+1/3²+1/4²)+……+√(1+1/2007²+1/2008²)
先推导公式:√[1+1/n²+1/(n+1) ² = √{[n² (n+1)²+n²+(n+1)²]/[n² (n+1)²]}= √{ (n²+n+1) ²/ [n² (n+1)²]}= (n²+n+1)/ [n (n+1)]=1+1/n-1/(n+1)
故:√(1+1/1²+1/2²)=1+1/1-1/2
√(1+1/2²+1/3²)=1+1/2-1/3
√(1+1/3²+1/4²)=1+1/3-1/4
……
√(1+1/2007²+1/2008²)=1+1/2007-1/2008
故:√(1+1/1²+1/2²)+√(1+1/2²+1/3²)+√(1+1/3²+1/4²)+……+√(1+1/2007²+1/2008²)
=1+1/1-1/2+1+1/2-1/3+1+1/3-1/4+….+ 1+1/2007-1/2008
=1×2007+1/1-1/2008
=2007又2007/2008 (即:2007+2007/2008)

用数列试试

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1/√(1+2) √(a-1)(a^2-1) (-1 (√1-x)^2 √2x+1 2/√3-1 化简1/1+√2+1/√2+√3+...+1/√8+√9 1/1+√2+1/√2+√3+…+1/√2013+√2014= 1/(1+√2)+1/(√2+√3)+1/(√3+√4)+.1/(√2012+√2013) 1/(√2009+√2008)+1/(√2008+√2007)+.+1/(√3+√2)+1/(√2+1) 实数的运算|1-√2|*1/(1-√2) √2+1,√2-1,1能否构成直角三角形 √2+1是怎样变成 1/√2-1 化简 √[1+1/n ^2+1/(n+1)^2] √2/1到√20/1 化简√2/1到√20/1 化简 计算(1+√2)(1+√3)(1-√3)(1-√2)我要过程, (√2+1-2分之1√2)^2 (√2 1-2分之1√2)^2 计算1/(1+√3)+1/(√3+√5)+1/(√5+√7)+^+1/[1/√(2n-1)+√(2n+1)]