等差数列{an}的前n项和记为sn,已知a2=2,a5=-10,若sn=-120,求n
人气:230 ℃ 时间:2019-12-08 14:43:55
解答
a2=2,a5=-10所以 a1+d=2a1+4d=-10解得 a1=6,d=-4所以 an=6-4(n-1)=10-4n所以 Sn=(a1+an)*n/2=-120(6+10-4n)*n=-240-n²+4n=-60n²-4n-60=0(n-10)(n+6)=0n=10或n=-6(舍)所以 n=10
推荐
- 已知等差数列an,前n项和记为Sn,a5=-13,S4=-82
- 已知等差数列{An}的前n项和记为Sn,a5=15,a10=25 1.通项An 2.若Sn=112,求n
- 等差数列an的前n项和记为Sn,已知a5=11.a8=5.求an和Sn
- 已知等差数列{an}的前n项和记为Sn.已知a10=30,a20=50.求通项an;若Sn等242,求n
- 已知等差数列an满足a3=7,a5+a7=26,an的前n项和为sn.1.求an和sn
- (√5+1)^2008 - 2(√5+1)^2004 + (√5+1)^2000=?怎么算?.
- My mother may be at home.=_______my mother _______at home.
- sin(a+π/3)+2sin(a-π/3)-根号3cos(2π/3-a)
猜你喜欢
