若cos2x/sin(x-π/4)=-根号2/2,sin2x=?

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若cos2x/sin(x-π/4)=-根号2/2,sin2x=?若cos2x/sin(x-π/4)=-根号2/2,sin2x=?若cos2x/sin(x-π/4)=-根号2/2,sin2x=?cos2

若cos2x/sin(x-π/4)=-根号2/2,sin2x=?
若cos2x/sin(x-π/4)=-根号2/2,sin2x=?

若cos2x/sin(x-π/4)=-根号2/2,sin2x=?
cos2x/sin(x-π/4)
=sin(π/2-2x)/sin(x-π/4)
=-sin(2x-π/2)/sin(x-π/4)
=-2sin(x-π/4)cos(x-π/4)/sin(x-π/4)
=-2cos(x-π/4)=-根号2/2
则cos(x-π/4)=√2/4
sin(2x)
=cos(π/2-2x)
=cos(2x-π/2)
=2cos²(x-π/4)-1
=2/8-1
=-3/4

cos2x/sin(x-π/4)=[(cosx)^2-(sinx)^2]/(sinx*cosπ/4-cosx*sinπ/4)
=[(cosx+sinx)(cosx-sinx)]/[根号2/2(sinx-cosx)]
=(cosx+sinx)/[根号2/2]
...

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cos2x/sin(x-π/4)=[(cosx)^2-(sinx)^2]/(sinx*cosπ/4-cosx*sinπ/4)
=[(cosx+sinx)(cosx-sinx)]/[根号2/2(sinx-cosx)]
=(cosx+sinx)/[根号2/2]
=-根号2/2
所以cosx+sinx=-1/2,将等式两边平方有cosx)^2+(sinx)^2+2cosx*sinx=1/4
即1+2cosx*sinx=1/4 2cosx*sinx=-3/4 即有sin2x=-3/4

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