问题
解答题
| △ABC中,角A,B,C的对边分别为a,b,c,且b2+c2-a2+bc=0. (1)求角A的大小; (2)若a=
(3)求
|
答案
(1)∵△ABC中,b2+c2=a2-bc
∴根据余弦定理,得cosA=
=-b2+c2-a2 2bc
(2分)1 2
∵A∈(0,π),∴A=
.(4分)2π 3
(2)由a=
,得b2+c2=3-bc,(6分)3
又∵b2+c2≥2bc(当且仅当c=b时取等号),(8分)
∴3-bc≥2bc,可得当且仅当c=b=1时,bc取得最大值为1.(10分)
(3)由正弦定理,得
=a sinA
=b sinB
=2R,c sinC
∴
=asin(30°-C) b-c
(11分)2RsinAsin(30°-C) 2RsinB-2RsinC
=
=sinAsin(30°-C) sinB-sinC
(13分)
(3 2
cosC-1 2
sinC)3 2 sin(60°-C)-sinC
∵sin(60°-C)-sinC=
cosC-3 2
sinC-sinC=1 2
cosC-3 2
sinC3 2
∴
=asin(30°-C) b-c
=
(3 2
cosC-1 2
sinC)3 2
(3
cosC-1 2
sinC)3 2
.(15分)1 2
