an=2^n+3n-2由等比数列2^n和等差数列3n-2组成那么Sn=(2^1+2^2+2^3+……+2^n)+(1+4+7+……+3n-2) =2(1-2^n)/(1-2)+(1+3n-2)n/2 =2^(n+1)-2+1/2*n(3n-1)
Sn=(1+……+2^n)+3*(1+……+n)-2n = 2^(n+1)-1+1.5*n^2-0.5n
