已知公差不为0的等差数列an的前4项和的和为20,且a1,a2,a
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a3²=a1a13(a1+2d)²+a1(a1+12d)a1=1所以1+4d+4d²=1+12d4d²-8d=0所以d=2所以an=2n-1bn=2^)2n-1
bn=sn-s(n-1)=1-1/3^n-(1-1/3^n-1)=-1/3^n+3/3^n=2/3^n
a2=a1+da4=a1+3da6=a1+5da2,a4-2,a6成等【比】数列(a1+3d-2)^2=(a1+d)(a1+5d)(3d-1)^2=(1+d)(1+5d)9d^2-6d+1=5d^2+
(1)根据题意,设公差为d则a3=a1+2d=2d+1a9=a1+8d=8d+1有(2d+1)^2=8d+1d=1故通项:an=n(2)根据题意,设公比为q则b2=qb3=q^2有q-0.5q^2=0
(1)由题设可知公差d≠0,由a1=1且a1,a3,a9成等比数列,得:(1+2d)2=1+8d,解得d=1或d=0(舍去),故{an}的通项an=n.(2)∵bn=2 an=2n,∴数列{
(Ⅰ)由题知a\x0523=a1a7,设等差数列{an}的公差为d,则(a1+2d)2=a1(a1+6d),a1d=2d2,∵d≠0∴a1=2d.…(1分)又∵a2=3,∴a1+d=3a1=2,d=1
a9=a5+4da15=a5+10d(a5+4d)²=a5(a5+10d)8da5+16d²=10da516d²-2da5=02d(8d-a5)=0d=a5/8所以a9=
1)设公差为d已知(a4)^2=a2*a5则(a1+3d)^2=(a1+d)(a1+4d)a1*d+5d^2=05d=-a1=10d=2故通项公式an=-10+2(n-1)=2n-122)bn=a^[
1.S5=5a1+10d=5(a1+2d)=70a1+2d=14a3=14a7^2=a2×a22(a3+4d)^2=(a3-d)(a3+19d)a3=14代入,整理,得d(d-4)=0d=0(已知d不
设公差为d,则d≠0a1,a3,a9成等比数列,则a3²=a1·a9(a1+2d)²=a1(a1+8d)a1=1代入,整理,得d²-a1d=0d(d-a1)=0d≠0,因
1.设数列{an}的公差是d,则a(n+1)cosA+an*sinA=(an+d)*cosA+an*sinA=1即(cosA+sinA)*an=1-dcosA若cosA+sinA不等于0,则an=(1
ak=48+2kbk=10+(k-1)dSk=(48+2k)[10+(k-1)d]令SK≤21即(48+2k)[10+(k-1)d]≤21求出k来.再问:最大圆面积为Sk
因为{An}是等差数列,所以A2+A8=A4+A6=10,A4*A6=24,所以可将A4、A6看作方程x^2-24x+10=0的两个根,因为d
S1/a1=1S2/a2-S1/a1=(2+d)/(1+d)-1=d/(1+d)S3/a3-S1/a1==(3+3d)/(1+2d)-1=(2+d)/(1+2d)2*d/(1+d)=(2+d)/(1+
a2=a1+da4=a1+3da6=a1+5da2,a4-2,a6成等【比】数列(a1+3d-2)^2=(a1+d)(a1+5d)(3d-1)^2=(1+d)(1+5d)9d^2-6d+1=5d^2+
设该等差数列是首项为a1,公差为dS3=3a1+3(3-1)*d/2=3a1+3dS2=2a1+2(2-1)*d/2=2a1+dS4=4a1+4(4-1)*d/2=4a1+6d又:S3²=9
a5=1+4da2=1+d1+4d=(1+d)^2d^2-2d=0d≠0d=2an=1+2(n-1)=2n-1
解∵a1,a2,a5是等比数列∴a2²=a1a5由a1=1∴a2²=a5∴(1+d)²=1+4d∴1+2d+d²=1+4d即d²-2d=0∴d=0或d
是填空还是解答题?填空可以用赋值法,令an=2n,bn=n,马上得出答案1/2设an=a1+(n-1)d1bn=b1+(n-1)d2,其中d1,d2均不为0lim(n趋近无穷)an/bn=2得d1=2
设an=a1+(n-1)d则a2=a1+da3=a1+2da4=a1+3da7=a1+6d因为等差数列{an}的前四项和为10所以,a1+a2+a3+a4=10即4a1+6d=10.①又因a2,a3,