(1)已知an=2n,Sn=n^2+n那么1/sn=1/(n²+n)=1/n(n+1)=1/n-1/(n+1),所以t2013=2013/2014.
(2)则sn=2^n-1/2^(n-1),bn=2^n-1/2^(n-1)+m(2^(n+1)-1/2^n),bn要为等比数列则...容我想想
(3)a是第二象限的角,若cosa=m,则sin(3π+a)+1/2sin(2π-a)=-3/2*根号下(1-m²)
(1)已知an=2n,Sn=n^2+n那么1/sn=1/(n²+n)=1/n(n+1)=1/n-1/(n+1),所以t2013=2013/2014.
(2)则sn=2^n-1/2^(n-1),bn=2^n-1/2^(n-1)+m(2^(n+1)-1/2^n),bn要为等比数列则...容我想想
(3)a是第二象限的角,若cosa=m,则sin(3π+a)+1/2sin(2π-a)=-3/2*根号下(1-m²)