在△ABC中,2sin²A=3sin²B+3sin²C,并且cos2A+3cosA+3(B-C)=1,求三角形的三边之比∵2sin²A=3sin²+3sin²C,又A=π-(B-C),∴cosA=cos{π-(B+C)}=-cos(B+C)∴cos2A+3cosA+3cos(B-C)=1-2sin²A+3
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在△ABC中,2sin²A=3sin²B+3sin²C,并且cos2A+3cosA+3(B-C)=1,求三角形的三边之比∵2sin²A=3sin²+3sin²C,又A=π-(B-C),∴cosA=cos{π-(B+C)}=-cos(B+C)∴cos2A+3cosA+3cos(B-C)=1-2sin²A+3
在△ABC中,2sin²A=3sin²B+3sin²C,并且cos2A+3cosA+3(B-C)=1,求三角形的三边之比
∵2sin²A=3sin²+3sin²C,又A=π-(B-C),∴cosA=cos{π-(B+C)}=-cos(B+C)∴cos2A+3cosA+3cos(B-C)=1-2sin²A+3{cos(B-C)-cos(B-C)},请问下为什么∴cos2A+3cosA+3cos(B-C)会=1-2sin²A+3{cos(B-C)-cos(B-C)}?
在△ABC中,2sin²A=3sin²B+3sin²C,并且cos2A+3cosA+3(B-C)=1,求三角形的三边之比∵2sin²A=3sin²+3sin²C,又A=π-(B-C),∴cosA=cos{π-(B+C)}=-cos(B+C)∴cos2A+3cosA+3cos(B-C)=1-2sin²A+3
A=π-(B-C),打错了,因该是A=π-(B+C)
cosA=cos{π-(B+C)}=-cos(B+C)
cos2A+3cosA+3cos(B-C) (cos2A=1-2sin²A) (cosA=-cos(B+C))代入:
=(1-2sin²A)+3【-cos(B+C)】 +3cos(B-C)
=1-2sin²A+3{cos(B-C)-cos(B+C)}
原式你把cos(b-c)与cos(b+c)弄错了