若数列{an}的前n项和Sn=(派/12)*(2n^2+n)(n∈N*),证明:数列{an}是等差数列.

来源:学生作业帮助网 编辑:作业帮 时间:2024/12/01 03:03:54
若数列{an}的前n项和Sn=(派/12)*(2n^2+n)(n∈N*),证明:数列{an}是等差数列.
xR;N@ D T@i(!WC: _;DY;TYmT;͛]wv1L38g<7~s遣I(tiltJN1Oڴov]{+PC9c(1y `HD"JEC4VZj冁H)JugJU?&+U'-4%hVUɑ$j!Yے*]yOwEqP.!ڈ`MF( , #hg4:OOBs:2pdʵvI-K6z *~= WJ5*_:(Iڨ?g

若数列{an}的前n项和Sn=(派/12)*(2n^2+n)(n∈N*),证明:数列{an}是等差数列.
若数列{an}的前n项和Sn=(派/12)*(2n^2+n)(n∈N*),证明:数列{an}是等差数列.

若数列{an}的前n项和Sn=(派/12)*(2n^2+n)(n∈N*),证明:数列{an}是等差数列.
证明:Sn=(π/12)*(2n^2+n)
=(π/6)*(n^2)+(π/12)*n
当n≥2时,
S(n-1)=(π/6)*[(n-1)^2]+(π/12)*(n-1)
=(π/6)*(n^2)+(π/12)*n-(π/3)*n+π/12
S(n-2)= (π/6)*[(n-2)^2]+(π/12)*(n-2)
=(π/6)*(n^2)+(π/12)*n-(2π/3)*n+π/2
∴an=Sn-S(n-1)
=(π/3)*n-π/12
a(n-1)=S(n-1)-S(n-2)
=(π/3)*n-(5π/12)
∴an-a(n-1)=π/3(为常数)
当n=1时,
S1=π/4,a1=(π/3)*1-π/12=π/4
=>S1=a1
综上所得,数列{an}是等差数列.

Sn=(π/12)*(2n^2+n)
S(n-1)=(π/12)*(2n(n-1)^2+(n-1))
Sn-S(n-1)=(π/12)(4n-1)=an
S1=(π/12)*3=π/4=a1
an=π/4+(n-1)*(π/3)
an=a1+(n-1)*(π/3)
则d=π/3
数列{an}是等差数列
得证