题目内容
(2006•浦东新区一模)
(1+
)n=
| lim |
| n→∞ |
| 2 |
| n |
e2
e2
.分析:由于
(1+
)n=e可得,
(1+
)n=
[(1+
)
] 2=e2
| lim |
| n→∞ |
| 1 |
| n |
| lim |
| n→∞ |
| 2 |
| n |
| lim |
| n→∞ |
| 2 |
| n |
| n |
| 2 |
解答:解:由于
(1+
)n=e
∴
(1+
)n=
[(1+
)
] 2=e2
故答案为:e2
| lim |
| n→∞ |
| 1 |
| n |
∴
| lim |
| n→∞ |
| 2 |
| n |
| lim |
| n→∞ |
| 2 |
| n |
| n |
| 2 |
故答案为:e2
点评:本题主要考查了数列极限的求解,主要是利用重要重要极限
(1+
)n=e.
| lim |
| n→∞ |
| 1 |
| n |
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