题目内容
已知函数f(x)=sinxcosx+| 3 |
(Ⅰ)求f(x)的最小正周期;
(Ⅱ)求f(x)在区间[-
| π |
| 6 |
| π |
| 2 |
分析:(Ⅰ)利用两角和的正弦公式化简f(x)的解析式为sin(2x+
)+
,故周期为T=
=π.
(Ⅱ)由-
≤x≤
,0≤2x+
≤
,可得 -
≤sin(2x+
)≤1,从而求得f(x)在区间[-
,
]上的最大值和最小值.
| π |
| 3 |
| ||
| 2 |
| 2π |
| 2 |
(Ⅱ)由-
| π |
| 6 |
| π |
| 2 |
| π |
| 3 |
| 4π |
| 3 |
| ||
| 2 |
| π |
| 3 |
| π |
| 6 |
| π |
| 2 |
解答:解:(Ⅰ)∵f(x)=sinxcosx+
cos2x=
•2sinxcosx+
(cos2x+1)
=
sin2x+
cos2x+
=sin(2x+
)+
,∴函数f(x)的最小正周期T=
=π.
(Ⅱ)∵-
≤x≤
,0≤2x+
≤
,∴-
≤sin(2x+
)≤1,
∴0≤sin(2x+
)+
≤1+
=
,∴f(x)在区间[-
,
]上的最大值为
,最小值为0.
| 3 |
| 1 |
| 2 |
| ||
| 2 |
=
| 1 |
| 2 |
| ||
| 2 |
| ||
| 2 |
| π |
| 3 |
| ||
| 2 |
| 2π |
| 2 |
(Ⅱ)∵-
| π |
| 6 |
| π |
| 2 |
| π |
| 3 |
| 4π |
| 3 |
| ||
| 2 |
| π |
| 3 |
∴0≤sin(2x+
| π |
| 3 |
| ||
| 2 |
| ||
| 2 |
2+
| ||
| 2 |
| π |
| 6 |
| π |
| 2 |
2+
| ||
| 2 |
点评:本题考查两角和的正弦公式的应用,正弦函数的周期性和最值,化简f(x)的解析式,是解题的关键.
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