在等差数列an中,d≠0,a1,a2,a4成等比数列,则其公比Q为
来源:学生作业帮助网 编辑:作业帮 时间:2024/11/18 03:52:27
a1=a3-2d=8-2da5=a3+2d=8+2da17=a3+14d=8+14d所以,(8+2d)^2=(8+2d)(8+14d)解得:d1=2,d2=0(舍去)综上,An=8+2(n-3)=2n
a7=a1+6d8=a1+6*(-1/3)=a1-2a1=10再问:这是乘号吗?*再答:对的再问:a1-2这是a1的负2次方还是a1减2再答:a1减2
额..a1=da2=2dq=a2/a1=2d/d=2.
a10-a5=(10-5)d10-0=5dd=2a5-a1=(5-1)d=4*2=8a1=a5-8=0-8=-8所以a1=-8,d=2
由a1=0,公差d≠0,得到an=(n-1)d,则ak=a1+a2+a3+…+a7=(a1+a7)+(a2+a6)+(a3+a5)+a4=7a4=21d,而ak=(k-1)d,所以k-1=21,解得k
a1+4d=a5=0a1+9d=a10=10两式相减得5d=10.所以公差d=2,导入得a1=-8
在等差数列{an}中,a1=10,公差为d,(1)由题意,S10=10a1+45d>0,得d>-20/9;S11=11a1+55d
由题意可得a32=a1a7,故(a1+2d)2=a1(a1+6d),解之可得d=a12,或d=0(舍去)故a1+a3a2+a4=a1+(a1+2×a12)a1+a12+(a1+3×a12)=3a14a
解题思路:数列································解题过程:
a1+a6=12,a1+(a1+5d)=12,a4=a1+3d=7解这2条式子得a1=1,d=2
由等差数列公式:an=a1+(n-1)d,有8=a1+(7-1)*(-1/3)8=a1-6*1/38=a1-2a1=8+2a1=10答:a1=10
a1,a2,a4,成等比数列a2^2=a1a4(a1+d)^2=a1(a1+3d)解得a1=dan=a1+(n-1)d=nd数列a1,a3,ak,ak1,ak2…akn也成等比数列公比q=a3/a1=
由等差数列{an}中,若公差d≠0,a2是a1与a4的等比中项可知,a2*a2=a1*a4,而a2=a1+d,a4=a1+3d,代入上式可得:a1=d;再由数列a1,a2,ak1,ak2,...akn
a5=a1+4d;a10=a1+9d;两式相减5d=10;解得d=2;带入任意一式,解得a1=-8;
d=(a7-a4)/3=3a1=1
a1,a2,a4成等比数列(a2)^2=a1*a4(a2)^2=(a2-d)(a2+2d)(a2)^2=(a2)^2+a2d-2d^2a2d=2d^2a2=2d(a1+a2+a4)/(a2+a4+a8
是等比数列吧?3a(n+1)-an=03a(n+1)=ana(n+1)/an=1/3,等比1/3a1=2an=2/3^(n-1)=6/3^n
a(n)=1+(n-1)da(n+1)=1+ndSn=(1+an)n/2=(2+nd-d)n/2(1+Sn)/(n(1-a(n+1)))=-((4+nd-d)/n)/(2n(nd))=-2/(nd)-
在等差数列{an}中Sn=(a1+an)*n/2=35即(11+a1)n=70有因为an=a1+(n-1)*2=11两式连解a1=3,n=5或a1=-1,n=7再问:方程具体怎么解的再答:代入法a1+
由题意得:a22=a1a4即(a1+d)2=a1(a1+3d)又d≠0,∴a1=d又a1,a3,ak1,ak2,,akn,成等比数列,∴该数列的公比为q=a3a1=3dd=3,所以akn=a1•3n+