已知三角形ABC的周长为根号2+1,且sinA+sinB=根号2sinC.若三角形的面积为1/6sinC,则角c的度数为
人气:422 ℃ 时间:2019-08-17 16:05:44
解答
sinA+sinB=√2sinC
sinA/sinC+sinB/sinC=√2
a/c+b/c=√2
(a+b)/c=√2
a+b=√2c
周长为根号2+1
a+b+c=√2+1
√2c+c=√2+1
c=1,即AB=1
a+b=√2+1-c=√2
三角形ABC的面积为1/6sinC
1/2absinC=1/6sinC
ab=1/3
cosC=(a^2+b^2-c^2)/2ab
={(a+b)^2-2ab-c^2}/(2ab)
={(√2)^2-2*1/3-1^2}/(2*1/3)
={2-2/3-1}/(2/3)
=1/2
C=60°
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