在三角形ABC中a、b、c分别为角A、B、C的对边,m=﹙2a-c,b﹚,n=﹙cosC,cosB﹚,且m∥n,﹙1﹚,求角B的大小

在三角形ABC中a、b、c分别为角A、B、C的对边,m=﹙2a-c,b﹚,n=﹙cosC,cosB﹚,且m∥n,﹙1﹚,求角B的大小;﹙2﹚若b=根号3,求a+b的最大值... 在三角形ABC中a、b、c分别为角A、B、C的对边,m=﹙2a-c,b﹚,n=﹙cosC,cosB﹚,且m∥n,﹙1﹚,求角B的大小;﹙2﹚若b=根号3,求a+b的最大值。 展开
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因为m//n且m=(2a-c,b),n=(cosC,cosB)
则( 2a-c )cosB-bcosC=0
正弦定理a/sinA=b/sinB=c/sinC,则
(2sinA-sinC)cosB-sinBcosC=0
2sinAcosB-sin(B+C) =0
2sinAcosB-sinA=0
所以cosB=1/2
即B=60°

2)又因 b=√3
则用余弦定理得:3=a²+c²-2accos60°
即a²+c²-ac=3
则(a+c)²=a²+c²-ac+3ac=3+3ac<=3+3(a²+c²)/2
当a=c时,(a+c)²取得最大值
则 a²=3 即a=c=√3
所以a+c=2√3
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用M=λN 求出cosB的值 就是所求角B的大小了!
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