→ wizkhalifa23: 謝謝W大我懂了 11/12 15:58
※ 引述《wizkhalifa23 (eminem)》之銘言:
: https://i.imgur.com/vZzCPEK.jpg
: 請教一下這題,能否用斜角座標系來解,謝謝
用"分定"的話
假設角GAD=alpha,EAG=beta,並交BC邊於M
CA*sin(beta)=AB*sin(alpha)
再用"張定"寫出
(sinA/GA)=sin(alpha)/(kCA) + sin(beta)/(3AB/4)...(1)
(sinA/AM)=sin(alpha)/CA + sin(beta)/AB...(2)
(2)*(3/2)-(1):
0=[(3/2)-(1/k)][sin(alpha)/CA] + (1/6)sin(beta)/AB
=[sin(alpha)/CA]{[(3/2)-(1/k)]+(1/6)]}
因此,1/k=(3/2)+(1/6),k=3/5.
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