求函数f(x)=sin(π/3+4x)+cos(4x-π/6)的最小正周期和递减区间
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求函数f(x)=sin(π/3+4x)+cos(4x-π/6)的最小正周期和递减区间
求函数f(x)=sin(π/3+4x)+cos(4x-π/6)的最小正周期和递减区间
求函数f(x)=sin(π/3+4x)+cos(4x-π/6)的最小正周期和递减区间
sin(π/3+4x)=cos[π/2-(π/3+4x)]=cos(π/6-4x)
f(x)=sin(π/3+4x)+cos(4x-π/6)=2cos(4x-π/6)
最小正周期是:T=2π/4=π/2
2kπ=<4x-π/6<=2kπ+π
2kπ+π/6=<4x<=2kπ+7π/6
(kπ/2)+(π/24)=
f(x)=sin(π/3+4x)+sin(4x-π/6)
=sin(π/3+4x)+cos(2x+π/3)
=√2sin(4x+7π/12)
=√2cos(4x+π/12)
最小正周期T=2π/4=π/2
2kπ<=4x+π/12<=2kπ+π
kπ/2-π/48<=x<=kπ/2+11π/48
递减区间 [kπ/2-π/48,kπ/2+11π/48] k∈Z
展开=sin60cos4x+sin4xcos60+cos4xcos30+sin4xsin30
=/3/2cos4x+1/2sin4x+/3/2cos4x+1/2sin4x
=/3cos4x+sin4x
=2(sin60cos4x+cos60sin4x)
=2sin(4x+60)
则,最小正周期 T=2π/w=π/2
递减区间是[(kπ/2)+(π/24),(kπ/2)+(7π/24)]
展开得,?3cos4x+sin4x
=2(?3/2cos4x+1/2sin4x)
=2sin(4x+π/6 )
T=π/2