sin7/3pi×cos(-11/6pi)+tan(-15/4pi)求值

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sin7/3pi×cos(-11/6pi)+tan(-15/4pi)求值sin7/3pi×cos(-11/6pi)+tan(-15/4pi)求值sin7/3pi×cos(-11/6pi)+tan(-1

sin7/3pi×cos(-11/6pi)+tan(-15/4pi)求值
sin7/3pi×cos(-11/6pi)+tan(-15/4pi)求值

sin7/3pi×cos(-11/6pi)+tan(-15/4pi)求值
原式=sin1/3pi×cos(1/6pi)+tan(1/4pi)
=(根号3/2) X ( 根号3/2 )+1
=7/4

7/4

=sin(-2π+7π/3)cos(2π-11π/6)+tan(4π-15π/4)
=sin(π/3)cos(π/6)+tan(π/4)
=(√3/2)*(√3/2)*1
=3/4

sin7/3pi×cos(-11/6pi)+tan(-15/4pi)求值 cos(-pi/3)=? 若cos(pi/6-a)=1/2,sin(a+pi/3)=?cos(2pi/3+2a)=?注:pi指圆周率 sin(pi/6-a)=1/3,则cos(2pi/3+2a)的值为pi是圆周率 1,已知sin(a-pi/3)=1/3,则cos(pi/6+a)= 2,cos29pi/6= 3,cos(pi+a)=-1/3,则(sin2pi/3-a)= 急4,sin(2pi+a)/cos(pi+a)=-3,求(2cos(pi-a)-3sin(pi+a))/(4cos(-a)+sin(2pi-a))的值尽量过程 f(x)=2sin(pi*x+pi/6),若f(a/2pi)=1/2,求cos (2*pi/3-a)的值 化简间sin(a-2pi)cos(a+pi)tan(a-99pi)cos(pi-a)sin(3pi-a)sin(-a-pi) 若sin(pi/6 -a)=1/3,则cos(2pi/3 +2a)=? sin(pi/6+a)=1/3 则cos(pi/3-a)是多少 sin(2x+pi/3)=cos(2x-pi/6) 成立吗 y=sin(2x+Pi/3)+cos(Pi/6-2x)周期为 cos(a-pi/3)=12/13,pi/3 cos(Pi+a)=-0.5,3/2Pi sin pi/12-根号3cos pi/12= cos(pi/4-a)=1/7,sin(3pi/4+b)=11/14cos(pi/4-a)=1/7sin(3pi/4+b)=11/14 pi/4 pi pi sin(PI/2+a)=-4/5 a属于(Pi,3pi/2)则cos(Pi/3-a)为