>
数学
>
等差数列{a
n
}中,a
n-4
=30,且前9项的和S
9
=18,前n项和为S
n
=240,则n等于( )
A. 15
B. 16
C. 17
D. 18
人气:257 ℃ 时间:2020-03-30 10:46:43
解答
根据等差数列的性质得S
9
=a
1
+a
2
+…+a
9
=9a
5
=18,
所以a
5
=2,且a
1
+a
n
=a
5
+a
n-4
,
则S
n
=
n(
a
1
+
a
n
)
2
=
n(
a
5
+
a
n−4
)
2
=
n(2+30)
2
=240,
即16n=240,解得n=15
故选A.
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