这几个数学题 求解?
15.解:这类问题一般要转化为特殊角,根据60°=20°+40°是很容易想到方法的。
因为tan60°=(tan20°+tan40°)/(1-tan20°tan40°)
所以tan20°+tan40°=tan60°*(1-tan20°tan40°)
所以tan20°+tan40°+√3tan20°tan40°
=tan60°*(1-tan20°tan40°)+√3tan20°tan40 °
=√313.f(x)=√(1-2cosx)
1-2cosx>=0
2cosx<=1
cosx<=1/2
π/3 +2kπ<=x<=5π/3 +2kπ ,k∈Z
即
[π/3 +2kπ,5π/3 +2kπ ],k∈Z19.y = a - b cos3x
a - b = 3/2
a - (-b) = -1/2 => a + b = -1/2
下式 - 上式:2b = -2 => b = -1
a = 1/2
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1。y = -4a sin(3bx) = -4(1/2) sin(3 * -1 * x) = -2 * -sin(3x) = 2sin(3x)
周期T = 2π/(3) = 2π/3
当3x = -1,即x = -1/3时,最小值 = -2
当3x = 1,即x = 1/3时,最大值 = 2
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设f(x) = 2sin(3x)
f(-x) = 2sin(3(-x))
= 2sin(-(3x))
= -2sin(3x)
= -f(x)
∴f(x)是奇函数
