高一数学三角函数问题,急!
已知函数f(x)=2sinwxcoswx+2√3cos^2wx-√3(其中w>0),直线x=x1,x=x2是y=f(x)图像的任意两条对称轴,且丨x1-x1丨的最小值为π...
已知函数f(x)=2sinwxcoswx+2√3cos^2wx-√3(其中w>0),直线x=x1,x=x2是y=f(x)图像的任意两条对称轴,且丨x1-x1丨的最小值为π/2. (1)求w的值(2)若f(a)=2/3,求sin(5π/6-4a)的值. 貌似要用辅助角公式化简吧··
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1.化简:f(x)=2sinwxcoswx+2√3cos^2wx-√3=sin2wx+√3cos2wx=2sin(2wx+π/3)最小正周期T=(π/2)*2=π=2π/2w得w=1
2.由1可毁液知f(x)=2sin(2x+π/3)因隐洞为灶余枯f(a)=2/3=2sin(2a+π/3),sin(2a+π/3)=1/3
1-2sin^2(2a+π/3)=cos(4a+2π/3)=cos(-4a-2π/3)=7/9
cos(-4a+π/3)=cos(-4a-2π/3+π)=-cos(-4a-2π/3)=-7/9
sin(5π/6-4a)=sin(-4a+π/3+π/2)=cos(-4a+π/3)=-7/9
ok,差不多就这样了,希望能帮到你。
2.由1可毁液知f(x)=2sin(2x+π/3)因隐洞为灶余枯f(a)=2/3=2sin(2a+π/3),sin(2a+π/3)=1/3
1-2sin^2(2a+π/3)=cos(4a+2π/3)=cos(-4a-2π/3)=7/9
cos(-4a+π/3)=cos(-4a-2π/3+π)=-cos(-4a-2π/3)=-7/9
sin(5π/6-4a)=sin(-4a+π/3+π/2)=cos(-4a+π/3)=-7/9
ok,差不多就这样了,希望能帮到你。
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解:①令x=-3,则由f(x+6)=f(x)+f(3)得f(3)=f(-3)+f(3)=2f(含桥3),故f(3)=0.①正确;
②由f(3)=0,f(x)为偶函数得:f(-6-x)=f(x),故直线x=-6是函数y=f(x)的图象的一条对称轴,②正确;
③因为当x1,x2∈[0,3],x1≠x2时,有>0成立,故f(x)在[0,3]上为增函数,又f(x)为偶函数,故在[-3,0]上为减函数,又周期为6.故在[-9,-6]上为减函数,③错误;
④函数f(x)周期为6,故f(-9)=f(-3)=f(3)=f(9)=0,故悉陆y=f(x)在[-9,9]上有四个零点,④正确.
故答睁老顷案为:①②④.
②由f(3)=0,f(x)为偶函数得:f(-6-x)=f(x),故直线x=-6是函数y=f(x)的图象的一条对称轴,②正确;
③因为当x1,x2∈[0,3],x1≠x2时,有>0成立,故f(x)在[0,3]上为增函数,又f(x)为偶函数,故在[-3,0]上为减函数,又周期为6.故在[-9,-6]上为减函数,③错误;
④函数f(x)周期为6,故f(-9)=f(-3)=f(3)=f(9)=0,故悉陆y=f(x)在[-9,9]上有四个零点,④正确.
故答睁老顷案为:①②④.
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1.f(x)=2sinwxcoswx+2√3cos^2wx-√3=sin2wx+√3cos2wx=2sin(2wx+π/3)由题知函数的最小正周期为T=(π/2)*2=π=2π/2w得w=1
2.由1可知f(x)=2sin(2x+π/3)因为f(a)=2/3=2sin(2a+π/3)嫌碰,sin(2a+π/3)=1/3
1-2sin^2(2a+π/3)=cos(4a+2π/宏宴3)=cos(-4a-2π/3)=7/9
cos(-4a+π/3)=cos(-4a-2π/3+π)=-cos(蔽者银-4a-2π/3)=-7/9
sin(5π/6-4a)=sin(-4a+π/3+π/2)=cos(-4a+π/3)=-7/9
2.由1可知f(x)=2sin(2x+π/3)因为f(a)=2/3=2sin(2a+π/3)嫌碰,sin(2a+π/3)=1/3
1-2sin^2(2a+π/3)=cos(4a+2π/宏宴3)=cos(-4a-2π/3)=7/9
cos(-4a+π/3)=cos(-4a-2π/3+π)=-cos(蔽者银-4a-2π/3)=-7/9
sin(5π/6-4a)=sin(-4a+π/3+π/2)=cos(-4a+π/3)=-7/9
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