已知向量a=(5根3cosX,cosX),向量b=(sinX,2cosX),其中X属于(π/6,π/2),设函数f(x)=a.b+|b|平方+3/2
问题描述:
已知向量a=(5根3cosX,cosX),向量b=(sinX,2cosX),其中X属于(π/6,π/2),设函数f(x)=a.b+|b|平方+3/2
(1)求函数f(x)的值域;(2)若f(X)=8,求函数f(X-π/12)的值
答
f(x)=5√3sinxcosx+2cos^2x+sin^2x+4cos^2x+3/2
=5√3/2sin2x+6cos^2+sin^2x+3/2
=5√3/2sin2x+6cos^2x-3+3+sin^2x-1/2+1/2+3/2
=5√3/2sin2x+3cos2x-1/2cos2x+5
=5√3/2sin2x+5/2cos2x+5
=5sin(2x+π/6)+5
(1)
2x+π/6=π/2+2kπ(k∈Z)
x=π/6+kπ
2x+π/6=3π/2+2kπ(k∈Z)
x=2π/3+kπ
f(x)在[π/6+kπ,2π/3+kπ]单调递减
f(x)的值域为[5/2,10]
(2)
x∈[π/6,π/2]
2x+π/6∈[π/2,7π/6]
5sin(2x+π/6)+5=8
sin(2x+π/6)=3/5
cos(2x+π/6)=-4/5
sin[2(x-π/12)+π/6]
=sin[2x-π/6+π/6]
=sin(2x+π/6)cosπ/6-cos(2x+π/6)sinπ/6
=3/5*√3/2-(-4/5)*1/2
=3√3/10+4/10
=(3√3+4)/10