用比值法a_(n+1)/an,如果n趋向于正无穷时,该比值的极限小于1,则级数收敛,比值大于1,则级数发散,等于1则不确定。考虑a_(n+1)=2^(n+1)*(n+1)!/(n+1)^(n+1)求得比值为2[n/n+1]^nlim(n->∞)2[n/n+1]^n=2/e2/e<1因此原级数收敛
