已知sin(a+π/3)=3/5 a属于(π/6,2π/3) 则cosa=?

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已知sin(a+π/3)=3/5a属于(π/6,2π/3)则cosa=?已知sin(a+π/3)=3/5a属于(π/6,2π/3)则cosa=?已知sin(a+π/3)=3/5a属于(π/6,2π/3

已知sin(a+π/3)=3/5 a属于(π/6,2π/3) 则cosa=?
已知sin(a+π/3)=3/5 a属于(π/6,2π/3) 则cosa=?

已知sin(a+π/3)=3/5 a属于(π/6,2π/3) 则cosa=?
sin(a+π/3)=3/5
a∈(π/6,2π/3)
a+π/3∈(π/2,π)
所以cos(a+π/3)<0
cos(a+π/3)=-4/5
cosa=cos(a+π/3-π/3)
=1/2cos(a+π/3)+√3/2sin(a+π/3)
=(3√3-4)/10