作业帮f(x)=cosx(asinx-cosx)+cos^2(π∕2-x)满足f(-60)=f(0).求在[π∕4.11π∕24]的最大值最小值
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![f(x)=cosx(asinx-cosx)+cos^2(π∕2-x)满足f(-60)=f(0).求在[π∕4.11π∕24]的最大值最小值](/uploads/image/z/8636748-60-8.jpg?t=f%28x%29%3Dcosx%28asinx-cosx%29%2Bcos%5E2%28%CF%80%E2%88%952-x%EF%BC%89%E6%BB%A1%E8%B6%B3f%28-60%29%3Df%280%29.%E6%B1%82%E5%9C%A8%5B%CF%80%E2%88%954.11%CF%80%E2%88%9524%5D%E7%9A%84%E6%9C%80%E5%A4%A7%E5%80%BC%E6%9C%80%E5%B0%8F%E5%80%BC)
f(x)=cosx(asinx-cosx)+cos^2(π∕2-x)满足f(-60)=f(0).求在[π∕4.11π∕24]的最大值最小值
f(x)=cosx(asinx-cosx)+cos^2(π∕2-x)满足f(-60)=f(0).求在[π∕4.11π∕24]的最大值最小值
f(x)=cosx(asinx-cosx)+cos^2(π∕2-x)满足f(-60)=f(0).求在[π∕4.11π∕24]的最大值最小值
f(x)=cosx(asinx-cosx)+cos^2(45-x)
=asinxcosx-(cosx)^2+(cos45cosx+sin45sinx)^2
=asinxcosx-(cosx)^2+[(cosx)^2+(sinx)^2+2sinxcos]/2
=(a+1)sinxcosx-[(cosx)^2-(sinx)^2]/2
=(a+1)(sin2x)/2-(cos2x)/2
f(-60)=-√3(a+1)/4+1/4
f(0)=-1/2
f(-60)=f(0)
-√3(a+1)/4+1/4=-1/2
a+1=√3
a=√3-1
f(x)=√3(sin2x)/2-(cos2x)/2
f(x)=sin(2x-π/6)
f(x)在(kπ-π/6,kπ+π/3]上单增
f(x)在(kπ+π/3,kπ+5π/6]上单减
在[π∕4.11π∕24]里
f(π/4)=√3/2
f(π/3)=1
f(11π/24)=√2/2
周期函数啊