設數列{an}滿足:a1=2,a2=5/3 ,an+2={(5/3)an+1}-(2/3)an ,n=1,2,3,…… 令bn=an+1-an (n=1,2,3,4, ……),求數列{bn}的通項公式!
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設數列{an}滿足:a1=2,a2=5/3 ,an+2={(5/3)an+1}-(2/3)an ,n=1,2,3,…… 令bn=an+1-an (n=1,2,3,4, ……),求數列{bn}的通項公式! 解:an+2={(5/3)an+1}-(2/3)an .∴an+2={(an+1)+(2/3)an+1}-(2/3)an .∴an+2-(an+1)=[(2/3)an+1}-(2/3)an .an+2-(an+1)/(an+1)-an =2/3∵bn=an+1-an ∴bn+1/bn=2/3{bn}是等比數列,b1=a2-a1=5/3-1=2/3,公比為2/3bn=(2/3)^n