http://i.imgur.com/kzZBVek.jpg Key:同乘√(1+sin x) 4 pi 4 pi cos x cos x √(1+sin x) ∫ ----------- dx = ∫ -------------------- dx √(1-sin x) √(1-sin x)(1+sin x) 5pi/6 5pi/6 pi 4 cos x √(1+sin x) 2 2 = ∫------------------- dx (by sin x + cos x = 1) 5pi/6 |cos x| pi 3 = -∫ cos x√(1+sin x)dx (since cos x < 0 for x 5pi/6 in [5pi/6, pi] ) pi 2 = -∫ cos x√(1+sin x) cosx dx 5pi/6 pi 2 = -∫ (1-sin x) √(1+sin x) cosx dx 5pi/6 1 2 = -∫ [1-(u-1) ]√u du 3/2 1 3/2 5/2 = -∫ (2u - u ) du 3/2 7/2 5/2 1 = (2/7 u -4/5 u ) | 3/2 5/2 = -18/35 + 13/35(3/2) -- ※ 發信站: 批踢踢實業坊(ptt.cc), 來自: 220.129.21.68 ※ 文章網址: http://www.ptt.cc/bbs/Math/M.1408199038.A.9AA.html ※ 編輯: yueayase (220.129.21.68), 08/16/2014 22:33:20