>
数学
>
在等差数列{a
n
}中,已知a
6
+a
9
+a
13
+a
16
=20,则S
21
=______.
人气:350 ℃ 时间:2020-06-11 15:27:35
解答
∵等差数列{a
n
}中,a
6
+a
9
+a
13
+a
16
=20,
∴a
1
+a
21
=10,
∴S
21
=
21
2
(a
1
+a
21
)=105.
故答案为:105.
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