已知△ABC中,cosA=17/22,cosC=1/14,则a:b:c是多少?(要过程!!!)
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cosA=17/22 == sinA = (根号195)/22cosC=1/14 == sinC = (根号195)/14sinB = sin(A+C) = 9*(根号195)/154== a:b:c = sinA:sinB:sinC = 7:9:11
已知△ABC中,cosA=17/22,cosC=1/14,则a:b:c是多少?(要过程!!!)
cosA=17/22 == sinA = (根号195)/22cosC=1/14 == sinC = (根号195)/14sinB = sin(A+C) = 9*(根号195)/154== a:b:c = sinA:sinB:sinC = 7:9:11