已知锐角△ABC中,sin(A+B)=3/5,sin(A-B)=1/5求tanB
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已知锐角△ABC中,sin(A+B)=3/5,sin(A-B)=1/5求tanB
已知锐角△ABC中,sin(A+B)=3/5,sin(A-B)=1/5求tanB
已知锐角△ABC中,sin(A+B)=3/5,sin(A-B)=1/5求tanB
sin(A+B)=3/5,sin(A-B)=1/5
sin(a+b)=sinAcosB+sinBcosA=3/5
sin(a-b)=sinAcosB-sinBcosA=1/5
两式相加相减后可得:
sinAcosB=2/5
sinBcosA=1/5
将两式相除,可得tanA=2tanB
tan(B)=sinB/cosB=sinBcosA/cosAcosB
cos(A)cos(B)=1/2[cos(A+B)+cos(A-B)]=1/2[4/5+2根号6/5]=(根号6-2)/5
tanB=1/(根号6-2)=(根号6+2)/2
sin(A+B)=3/5,sin(A-B)=1/5,
sinA*cosB+cosA*sinB=3/5,
sinA*cosB-cosA*sinB=1/5,
sinA*cosB=2/5,
tanA=2tanB,
sin(A+B)=3/5,
cos(A+B)=4/5或cos(A+B)=-4/5.
sin(A-B)=1/5,
cos(A-B)...
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sin(A+B)=3/5,sin(A-B)=1/5,
sinA*cosB+cosA*sinB=3/5,
sinA*cosB-cosA*sinB=1/5,
sinA*cosB=2/5,
tanA=2tanB,
sin(A+B)=3/5,
cos(A+B)=4/5或cos(A+B)=-4/5.
sin(A-B)=1/5,
cos(A-B)=√24/5.
tan(A+B)=3/4或tan(A+B)=-3/4.
tan(A+B)=(tanA+tanB)/(1-tanA*tanB)=3/4,
则有:4tanB=1-tanA*tanB,或4tanB=tanA*tanB-1.
tan(A-B)=1/√24,得到
tanA*tanB=√24*tanB-1,
把tanA*tanB=√24*tanB-1,代入4tanB=1-tanA*tanB,或4tanB=tanA*tanB-1.中得到
tanB=(√6-2)/2或tanB=(√6+2)/2.
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