2个回答
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tanC =-3√3
(1)
tanC=-tan(A+B)
-3√3= -(tanA+tanB)/(1-tanA.tanB)
3√3(1-tanA.tanB) = tanA+tanB
tanA(3√3tanB +1) = 3√3-tanB
tanA =( 3√3-tanB)/(3√3tanB +1)
//
2bcosA=acosB
2bsinA/tanA=asinB/tanB
2(b/sinB)/tanA = (a/sinA)/tanB
2/tanA=1/tanB
2tanB= tanA
2tanB=( 3√3-tanB)/(3√3tanB +1)
2tanB(3√3tanB +1) = 3√3-tanB
6√3(tanB)^2 +3tanB -3√3 =0
tanB = (-3+15)/(12√3) or (-3-15)/(12√3) (rej)
ie
tanB = √3/3
(1)
tanC=-tan(A+B)
-3√3= -(tanA+tanB)/(1-tanA.tanB)
3√3(1-tanA.tanB) = tanA+tanB
tanA(3√3tanB +1) = 3√3-tanB
tanA =( 3√3-tanB)/(3√3tanB +1)
//
2bcosA=acosB
2bsinA/tanA=asinB/tanB
2(b/sinB)/tanA = (a/sinA)/tanB
2/tanA=1/tanB
2tanB= tanA
2tanB=( 3√3-tanB)/(3√3tanB +1)
2tanB(3√3tanB +1) = 3√3-tanB
6√3(tanB)^2 +3tanB -3√3 =0
tanB = (-3+15)/(12√3) or (-3-15)/(12√3) (rej)
ie
tanB = √3/3
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展开全部
tanC =-3√3
(1)
tanC=-tan(A+B)
-3√3= -(tanA+tanB)/(1-tanA.tanB)
3√3(1-tanA.tanB) = tanA+tanB
tanA(3√3tanB +1) = 3√3-tanB
tanA =( 3√3-tanB)/(3√3tanB +1)
//
2bcosA=acosB
2bsinA/tanA=asinB/tanB
2(b/sinB)/tanA = (a/sinA)/tanB
2/tanA=1/tanB
2tanB= tanA
2tanB=( 3√3-tanB)/(3√3tanB +1)
2tanB(3√3tanB +1) = 3√3-tanB
6√3(tanB)^2 +3tanB -3√3 =0
tanB = (-3+15)/(12√3) or (-3-15)/(12√3) (rej)
ie
tanB = √3/3
(1)
tanC=-tan(A+B)
-3√3= -(tanA+tanB)/(1-tanA.tanB)
3√3(1-tanA.tanB) = tanA+tanB
tanA(3√3tanB +1) = 3√3-tanB
tanA =( 3√3-tanB)/(3√3tanB +1)
//
2bcosA=acosB
2bsinA/tanA=asinB/tanB
2(b/sinB)/tanA = (a/sinA)/tanB
2/tanA=1/tanB
2tanB= tanA
2tanB=( 3√3-tanB)/(3√3tanB +1)
2tanB(3√3tanB +1) = 3√3-tanB
6√3(tanB)^2 +3tanB -3√3 =0
tanB = (-3+15)/(12√3) or (-3-15)/(12√3) (rej)
ie
tanB = √3/3
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