求解一道高中三角函数的题,急!!!
已知函数fx=sin2x/sinx+2sinx①求函数fx的定义域和最小正周期②若f(a)=2,a属于(0,π),求f(a+π/12)的值...
已知函数fx=sin2x/sinx+2sinx ①求函数fx的定义域和最小正周期 ②若f(a)=2,a属于(0,π),求f(a+π/12)的值
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fx=sin2x/sinx+2sinx
=2sinxcosx/sinx + 2sinx
=2(cosx + sinx)
=2√2[(√2/2)cosx + (√2/2)sinx]
= 2√2sin(x + π/4)
所以函数f(x)的定义域悄则瞎是 x ∈R,且 x ≠盯察kπ (k∈Z)
函数的最小正周期是 2π/1 = 2π
(2) 若 f(a) = 2,则有 2√2sin(a +π/4) = 2
即有: sin(a + π/4 ) = √2/2
因为 a∈(0, π)
a + π/4 = 3π/4
所以 a = π/2
所以 f(a+π/启空12) = f(7π/12) =2√2sin(7π/12 + π/4) = 2√2sin(5π/6) = 2√2×(1/2) =√2
=2sinxcosx/sinx + 2sinx
=2(cosx + sinx)
=2√2[(√2/2)cosx + (√2/2)sinx]
= 2√2sin(x + π/4)
所以函数f(x)的定义域悄则瞎是 x ∈R,且 x ≠盯察kπ (k∈Z)
函数的最小正周期是 2π/1 = 2π
(2) 若 f(a) = 2,则有 2√2sin(a +π/4) = 2
即有: sin(a + π/4 ) = √2/2
因为 a∈(0, π)
a + π/4 = 3π/4
所以 a = π/2
所以 f(a+π/启空12) = f(7π/12) =2√2sin(7π/12 + π/4) = 2√2sin(5π/6) = 2√2×(1/2) =√2
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