高中数学题,高一函数部分,在线等,要求质量和过程拜托了!

.求y=根号下(2cosx-1)的定义域? 求y=lg(3-4sin눀x)的定义域?
2024-12-25 12:18:28
推荐回答(4个)
回答1:

1、2cosx-1≧0
得:cosx≧1/2
由余弦曲线得:-π/3+2kπ≦x≦π/3+2kπ
即定义域为【-π/3+2kπ,π/3+2kπ】,k∈Z

2、3-4sin²x>0
得:-(√3)/2 由正弦曲线得:-π/3+2kπ≦x≦π/3+2kπ或2π/3+2kπ≦x≦4π/3+2kπ
即定义域为【-π/3+2kπ,π/3+2kπ】U【2π/3+2kπ,4π/3+2kπ】,k∈Z

祝你开心!希望能帮到你,如果不懂,请追问,祝学习进步!O(∩_∩)O

回答2:

1.y=根号下(2cosx-1)
2cosx-1≥0
cosx≤1/2
2kπ+ π/3≤x≤2kπ+5π/3

2、y=lg(3-4sin²x)
3-4(sinx)^2>0
(sinx)^2<3/4
-√3 /22kπ- π/3

回答3:

y=√(2cosx-1)
2cosx-1>0
cosx>1/2 x∈(2kπ-π/3,2kπ+π/3)

y=lg(3-4sin²x)
3-4sin²x>0
cos2x>-1/2 x∈(kπ-π/6,kπ+π/6)

回答4:

2cosx-1>=0
cosx>=0.5
x∈(π/3+2kπ,2π/3+2kπ,k∈Z)

3-4sin²x>=0
sin²x<=3/4
sinx∈(-根号下3/2,+根号下3/2)
x∈(2kπ,2kπ+π/3)∪(2kπ+2π/3,2kπ+4π/3)∪(2kπ+5π/3,(2k+1)π),k∈Z