已知函数f(x)=二分之根号三Sin2x-cosx的平方-1/2,x属于R
设△ABC的内角A,B,C的对边分别为a,b,c,且c=√3,f(C)=0,若sinB=2sinA,求a,b的值...
设△ABC的内角A,B,C的对边分别为a,b,c,且c=√3,f(C)=0,若sinB=2sinA,求a,b的值
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【参考答案】
f(C)=(√3 /2)sin2C-cosC^2-(1/2)
=(√3/2)sin2C-[(cos2C+1)/2]-(1/2)
=sin2Ccos(π/6)-sin(π/6)cos2C-1
=sin(2C- π/6)-1
=0
则 sin(2C- π/6)=1, 即C=π/3
由sinB=2sinA得
b/sinB=a/sinA
b/(2sinA)=a/sinA
b/2=a
b=2a
cosC=-1/2=[a^2 +(4a^2)-3]/(2a×2a)
1/2=(5a^2 -3)/(4a^2)
5a^2 -3=2a^2
3a^2=3
a=1,于是 b=2
不理解之处欢迎追问
f(C)=(√3 /2)sin2C-cosC^2-(1/2)
=(√3/2)sin2C-[(cos2C+1)/2]-(1/2)
=sin2Ccos(π/6)-sin(π/6)cos2C-1
=sin(2C- π/6)-1
=0
则 sin(2C- π/6)=1, 即C=π/3
由sinB=2sinA得
b/sinB=a/sinA
b/(2sinA)=a/sinA
b/2=a
b=2a
cosC=-1/2=[a^2 +(4a^2)-3]/(2a×2a)
1/2=(5a^2 -3)/(4a^2)
5a^2 -3=2a^2
3a^2=3
a=1,于是 b=2
不理解之处欢迎追问
展开全部
你好!
先化简:f(x)=√3/2sin2x-cos²x-1/2=√3/2sin2x-(1+cos2x)/2-1/2=√3/2sin2x-1/2cos2x-1=sin(2x-π/6)-1,∵f(C)=0,由于C∈(0,π)解得C=π/3,根据正弦定理得sinB=2sinA,可得b=2a,根据余弦定理得cosC=a²+b²-c²/2ab,即cosπ/3=1/2=a²+(2a)²-(√3)²/2×2a×a,解得a=1,b=2a=2
先化简:f(x)=√3/2sin2x-cos²x-1/2=√3/2sin2x-(1+cos2x)/2-1/2=√3/2sin2x-1/2cos2x-1=sin(2x-π/6)-1,∵f(C)=0,由于C∈(0,π)解得C=π/3,根据正弦定理得sinB=2sinA,可得b=2a,根据余弦定理得cosC=a²+b²-c²/2ab,即cosπ/3=1/2=a²+(2a)²-(√3)²/2×2a×a,解得a=1,b=2a=2
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