標題:

一條數學問題

發問:

3 c^6 ----------------------------------------------=? 32π (6.67259 × 10^ -11)^2 G^3 [ π是圓周率( 3.1415926 或 355/133 ),G是萬有引力常數( 6.67259×10-11),c是光速( 299,792,458 ) ] thx!

最佳解答:

你想問什麼,你將所有資料代入,便可以計得結果 3c6 ---------------------------------------------- 32π(6.67259 × 10-11)2 G3 3(299792458)6 =------------------------------------------------------------------ 32π(6.67259 × 10-11)2 (6.67259x10-11)3 = 1.64x10100

其他解答:

3c6 ---------------------------------------------- 32π(6.67259 × 10-11)2 G3 3(299792458)6 =------------------------------------------------------------------ 32π(6.67259 × 10-11)2 (6.67259x10-11)3 = 1.64x10100|||||secθ = -17/8 where π/2 < θ < π cosθ = -8/17 sinθ = 15/17 (as π/2 < θ < π) tanθ = sinθ/cosθ = -15/8 QUESTION 2 sin a + sec a = k/2 sin a sec a = 3/2 sin a + sec a = k/2 tan a = 3/2 As π < θ < 3π/2 tan a = 3/2 gives sin a = 3/√13 cos a = 2/√13 sin a + sec a = sin a + (1/cos a) = (3/√13) + [(√13)/2] = (3√13/13) + [(√13)/2] = [(6√13)/13]/2 + [(√13)/2] = [(6√13)/13 + (√13)]/2 = k/2 Hence, k = (6√13)/13 + (√13)

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