大师作文网已知 tan(A+B)=3tan(A-B) 求 sin2A/sin2B
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已知 tan(A+B)=3tan(A-B) 求 sin2A/sin2B
(tanA+tanB)/(1-tanAtanB)=3(tanA-tanB)/(1+tanAtanB)==>2tanA-4tanAtanAtanB-4tanB+2tanAtanBtanB=0
==>(sinAcosAcosBcosB-2cosAcosAsinBcosB-2sinAsinAsinBcosB+sinAcosAsinBsinB)=0==>设X=sinAcosA,Y=sinBcosB==>(sinBsinB+cosBcosB)X-2(sinAsinA+cosAcosA)Y=0==>X/Y=1/2==>sin2A/sin2B=(2sinAcosA)/(2sinBcosB)=X/Y=1/2
再问: (tanA+tanB)/(1-tanAtanB)=3(tanA-tanB)/(1+tanAtanB) ???
再答: tan(A+B) = (tanA+tanB)/(1-tanAtanB) tan(A-B) = (tanA-tanB)/(1+tanAtanB)
==>(sinAcosAcosBcosB-2cosAcosAsinBcosB-2sinAsinAsinBcosB+sinAcosAsinBsinB)=0==>设X=sinAcosA,Y=sinBcosB==>(sinBsinB+cosBcosB)X-2(sinAsinA+cosAcosA)Y=0==>X/Y=1/2==>sin2A/sin2B=(2sinAcosA)/(2sinBcosB)=X/Y=1/2
再问: (tanA+tanB)/(1-tanAtanB)=3(tanA-tanB)/(1+tanAtanB) ???
再答: tan(A+B) = (tanA+tanB)/(1-tanAtanB) tan(A-B) = (tanA-tanB)/(1+tanAtanB)
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