推 lucifer19:因為你r代1.6阿... 你代5/3進去算就對了 06/02 11:40
→ flied:阿我算數好差,感謝指點! 06/02 11:53
[領域] 普通物理 熱力學
[來源] Halliday
[題目] Figure 19-27 shows a cycle undergone by 1.00 mol of an ideal
monatomic gas. The temperatures are T1 = 300 K, T2 = 600 K, and T3 = 455 K.
For 2 --> 3, what are (d) Q, (e) ΔE, and (f) W
http://ppt.cc/BCzR
[瓶頸]
For 2 --> 3 求 ΔE
解答是用 nCvΔT = -1810 J
http://ppt.cc/J5gG
因為絕熱壓縮過程
我換成另一種算法 nRΔT / (1-r)
http://ppt.cc/nfFq
r = Cp/Cv = (5R/2) / (3R/2) = 1.6
8.314 * (455-600) / (1-1.6)= -2009 J
請問這樣算出來答案應該要一樣但為什麼有差?
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