等差数列求和,公式是Sn=a1×n+[n(n-1)d]/2a1=1, 公差d=2, 前n(n+1)/2项的和,所以带入得Sn(n+1)/2=n(n+1)/2+[n(n+1)/2][n(n+1)/2-1]=[n(n+1)/2]^2
3/5除以(1/5x9/2+1/3x9/2)=3/5除以(9/10+3/2)=3/5除以12/5=1/4
