在△ABC中,角A、B、C的对边分别为a、b、c,a=1,c=根号2,cosC=3\4,(1)求sin(A+B);
在△ABC中,角A、B、C的对边分别为a、b、c,a=1,c=根号2,cosC=3\4,(1)求sin(A+B);(2)sinA的值;(3)求△ABC的面积S...
在△ABC中,角A、B、C的对边分别为a、b、c,a=1,c=根号2,cosC=3\4,(1)求sin(A+B);(2)sinA的值;(3)求△ABC的面积S
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(1):因为 cosC=3\4 所以 cos(A+B)=3\4 所以sin(A+B)=根号下7/16
(2):sin方2C+sin2C×sinC+cos2C=1,
4sin方C*cos方C+2sin方CcosC+1-2sin方C=1,
2cos方C+cosC-1=0.
得出cosC=1/2
所以C=60°
运用余弦定理:c2=a2+b2-2abcosC
c2=(a+b)2-2ab-2abcosC
所以ab=6.
三角形abc的面积=(1/2)absinC=(3被根号3)/2
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(2):sin方2C+sin2C×sinC+cos2C=1,
4sin方C*cos方C+2sin方CcosC+1-2sin方C=1,
2cos方C+cosC-1=0.
得出cosC=1/2
所以C=60°
运用余弦定理:c2=a2+b2-2abcosC
c2=(a+b)2-2ab-2abcosC
所以ab=6.
三角形abc的面积=(1/2)absinC=(3被根号3)/2
差不多的步骤
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(1)、sin(A+B)=sin[π-(A+B)]=sinC等于根号下1-(cosC)^2等于√7/4;
(2)、由正弦定理:a/sinA=c/sinC 得:sinA=√14/8;
(3)、利用余弦定理求出b=2, 由三角形面积公式:S=1/2absinC=1/2x1x2xsin(A+B)=√7/4.
(2)、由正弦定理:a/sinA=c/sinC 得:sinA=√14/8;
(3)、利用余弦定理求出b=2, 由三角形面积公式:S=1/2absinC=1/2x1x2xsin(A+B)=√7/4.
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