1、第二章2.5第2课时A级基础巩固一、选择题1等比数列an中,a29,a5243,则an的前4项和为(B)A81B120C168 D192解析q327,q3,a13,S41202数列an的通项公式anncos,其前n项和为Sn,则S2 016等于(A)A1 008 B2 016C504 D0解析函数ycos的周期T4,且第一个周期四项依次为0,1,0,1可分四组求和:a1a5a2 0130,a2a6a2 014262 0145041 008,a3a7a2 0150,a4a8a2 016482 0165041 010S2 01605041 00805041 010504(1 0101 008)1
2、008,故选A3已知数列an:,设bn,那么数列bn前n项的和为(A)A4(1) B4()C1 D解析an,bn4()Sn4(1)()()()4(1)4数列an的通项公式为an(1)n1(4n3),则它的前100项之和S100等于(B)A200 B200C400 D400解析S10015913(4993)(41003)50(4)200二、填空题5数列,前n项的和为_4_解析设SnSn得(1)Sn2Sn46(2015广东理,10)在等差数列an中,若a3a4a5a6a725,则a2a8_10_解析因为an是等差数列,所以a3a7a4a6a2a82a5,a3a4a5a6a75a525 即a55,a
3、2a82a510三、解答题7(2015山东理,18)设数列an的前n项和为Sn,已知2Sn3n3(1)求an的通项公式;(2)若数列bn满足anbnlog3an,求bn的前n项和Tn解析(1)因为2Sn3n3,所以2a133,故a13,当n2时,2Sn13n13,此时2an2Sn2Sn13n3n123n1,即an3n1,所以an(2)因为anbnlog3an,所以b1,当n2时,bn31nlog33n1(n1)31n所以T1b1;当n2时,Tnb1b2b3bn(131232(n1)31n),所以3Tn1130231(n1)32n两式相减,得2Tn(30313232n)(n1)31n(n1)31
4、n8(2016浙江文,17)设数列an的前n项和为Sn已知S24,an12Sn1,nN*(1)求通项公式an;(2)求数列|ann2|的前n项和解析(1)由题意得,则又当n2时,由an1an(2Sn1)(2Sn11)2an,得an13an所以,数列an的通项公式为an3n1,nN*(2)设bn|3n1n2|,nN*,b12,b21当n3时,由于3n1n2,故bn3n1n2,设数列bn的前n项和为Tn,则T12,T23当n3时,Tn3,所以TnB级素养提升一、选择题1已知等差数列an和bn的前n项和分别为Sn,Tn,且,则(A)A BC6 D7解析,又,2数列an的通项公式是ansin(),设其
5、前n项和为Sn,则S12的值为(A)A0 BC D1解析a1sin()1,a2sin()1,a3sin()1,a4sin(2)1,同理,a51,a61,a71,a81,a91,a101,a111,a121,S120二、填空题3等比数列an的前n项和Sn3n1a(a为常数),bn,则数列bn的前n项和为_(1)_解析Sn为等比数列an的前n项和,且Sn3(3n)1,a3,Sn3n13,当n2时,anSnSn1(3n13)(3n3)23n,又a1S16符合式,an23n,bn()n,bn的前n项和为Tn(1)4求和1(13)(1332)(133233)(133n1)_(3n1)_解析a11,a21
6、3,a31332,an13323n1(3n1),原式(311)(321)(3n1)(3323n)n(3n1)三、解答题5(2015全国理,17)Sn为数列an的前n项和已知an0,a2an4Sn3(1)求an的通项公式;(2)设bn,求数列bn的前n项和解析(1)当n1时,a2a14S134a13,因为an0,所以a13,当n2时,a2ana2an14Sn34Sn134an,即(anan1)(anan1)2(anan1),因为an0,所以anan12,所以数列an是首项为3,公差为2的等差数列,所以an2n1(2)由(1)知,bn(),所以数列bn前n项和为b1b2bn()()()6已知数列a
7、n和bn中,数列an的前n项和为Sn若点(n,Sn)在函数yx24x的图象上,点(n,bn)在函数y2x的图象上(1)求数列an的通项公式;(2)求数列anbn的前n项和Tn解析(1)由已知得Snn24n,当n2时,anSnSn12n5,又当n1时,a1S13,符合上式an2n5(2)由已知得bn2n,anbn(2n5)2nTn321122(1)23(2n5)2n,2Tn322123(2n7)2n(2n5)2n1两式相减得Tn6(23242n1)(2n5)2n1(2n5)2n16(72n)2n114C级能力拔高1等差数列an中,a24,a4a715(1)求数列an的通项公式;(2)设bn2an2n,求b1b2b3b10的值解析(1)设等差数列an的公差为d由已知得,解得所以ana1(n1)dn2(2)由(1)可得bn2nn所以b1b2b3b10(21)(222)(233)(21010)(22223210)(12310)(2112)55211532 1012已知数列an是递增的等比数列,且a1a49,a2a38(1)求数列an的通项公式;(2)设Sn为数列an的前n项和,bn,求数列bn的前n项和Tn解析(1)an是递增的等比数列,且a1a49,a2a38,q38,q2ana1qn12n1(2)由(1)可知Sn2n1,bnTn(1)()()()1
