我也觉得有些不大对
他这一步(1/2)*(1-1/7+1/7-1/13+.+1/a(n-1)-an)中
最后的"1/a(n-1)-an"不知是怎么来的
我是这样解得:
bn=3/AnA(n+1)=3/(6n-5)(6(n+1)-5)
=3/(6n-5)(6n+1)
=(1/2)*(1/(6n-5)-1/(6n+1))
Tn=(1/2)*(1-1/7+1/7-1/13+.+1/(6n-5)-1/(6n+1))
=(1/2)*(1-1/(6n+1))10(1-1/(6n+1))
对所有n属于N正,则当n→∞时,10(1-1/(6n+1))最大
mmin10