若sin(π/6-a)=1/3 则cos(2π/3+2a)=?

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若sin(π/6-a)=1/3 则cos(2π/3+2a)=?
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若sin(π/6-a)=1/3 则cos(2π/3+2a)=?
若sin(π/6-a)=1/3 则cos(2π/3+2a)=?

若sin(π/6-a)=1/3 则cos(2π/3+2a)=?
sin(π/6-a)=cos[π/2-(π/6-a)]=cos(π/3+a)=1/3
则原式=cos[2(π/3+a)]
=2cos²(π/3+a)-1
=-7/9

cos(2π/3+2a)
=-cos[π-(2π/3+2a)]
=-cos(π/3-2a)
=-cos[2(π/6-a)]
=-[1-2sin²(π/6-a)]
=-[1-2×(1/3)²]
=-(1-2/9)
=-7/9

sin(π/6-a)=cos[π/2-(π/6-a)]=cos(π/3+a)1/3
cos(2π/3+2a)=cos2(π/3+a)=2[cos(π/3+a)]^2-1=-7/9

设角a=-35π/6,则2sin(π+α)cos(π-α)-cos(π+α)/ 1+sin^2α+sin(π-α)-cos^2(π+α)sina=sin(-35π/6)=sin(-6π+π/6)=1/2 cosα=根号3/22sin(π+α)cos(π-α)-cos(π+α)/ [1+sin^2α+sin(π-α)-cos^2(π+α)]=2(-sinα)(-cosα)+cosα/[1+sin² 由cos(a+b)=cos a cos b-sin a sin b cos(a-b)=cos a cos b+sin a sin b解题设a为锐角,证:1、2分之根3乘cos a + 2分之1乘sin a=cos(6分之π-a)2、cos a-sin a=根号2cos(4分之π+a) 若sin(π/6+a)=1/3,则cos(π/3—a)=_______,cos(2π/3+a)=________ 若sin(π/6+a)=3/5,则cos(a-π/3)= 若sin(π/6-a)=1/3 则cos(2π/3+3a)=? 若sin(π/6-a)=1/3,则cos(π/3-2a)=? 若cos(π/3+a)=-1/3 则sin(a-π/6)= 若sin(6/π-a)=1/3则cos(π/3+a)=? 若sin(π/6-a)=1/3,则cos(π/3+a) 若cos(a+π/3)=1/4,则sin(a-π/6)的值为 若sin(π/3-a)=1/4.则cos(π/3+2a)等于 若sin(π/6+a)=1/3,求cos(2π/3-2a) 已知sin(π/6+a)=1/3则cos(π/3-a)的值 tana=m则sin(a+3π)+cos(π+a)/sin(-a)-cos(π+a)=? 若tana=1/3,则sin^3 a+2cos^ 3 a/sin^3 a-2cos^3 a 已知 sin a-cos a=1/2,则 sin^3 a-cos^3 a 若sin(π/6-a)=1/3 则cos(2π/3+2a)=? 若cosa=2/3,a是第四象限角,则sin(a—2π)+sin(—a—3π)*cos(a—3π)sin(a—2π)+sin(—a—3π)*cos(a—3π)/cos(π-a)-cos(-π-a)*cos(a-4π)=