?2????4?21????$??0.673 Kp(318K)?21??1??1??½âµÃ£º ??0.38
19£®ÒÒÏ©Ë®ºÏ·´Ó¦C2H4(g)?H2O(l)2C2H5OH(l)µÄ±ê׼Ħ¶û·´Ó¦×ÔÓÉÄÜ?rGmÓëζȵĹØϵΪ£º?rGm/(J?mol?1)??34 585?26.4T/K?ln(T/K)?45.19T/K£¬¼ÆËã573 KʱµÄ±ê׼ƽºâ³£ÊýKp¡£
½â£ºÔÚ573 K ʱ£¬?rGmµÄֵΪ£º
?rGm??34 585?26.4?573?ln573?45.19?573 J?mol ?87.38 kJ?mol
$??rGmK?exp???RT$p$$???1?1?87 380???8?exp?????1.1?10
?8.314?573??20£® ÔÚ298 Kʱ£¬¶¡Ï©ÍÑÇâÖÆÈ¡¶¡¶þÏ©µÄ·´Ó¦ÎªC4H8(g)?C4H6(g)?H2(g)£¬¸ù¾ÝÈÈÁ¦Ñ§Êý¾Ý±í£¬ÊÔ¼ÆË㣺
£¨1£©298 Kʱ·´Ó¦µÄ?rHm£¬?rSm£¬?rGmºÍ±ê׼ƽºâ³£ÊýKpµÄÖµ¡£ £¨2£©830 Kʱ±ê׼ƽºâ³£ÊýKpµÄÖµ£¬Éè?rHmÓëζÈÎ޹ء£
£¨3£©ÈôÔÚ·´Ó¦ÆøÖмÓÈëË®ÕôÆø£¬¼ÓÈëÁ¿Ó붡ϩµÄ±ÈÀýΪC4H8(g)¡ÃH2O(g)?1¡Ã15£¬ÊÔ¼ÆËã·´Ó¦ÔÚ830 K£¬200 kPaÌõ¼þÏ£¬¶¡Ï©µÄƽºâת»¯ÂÊ¡£
ÒÑÖª£¬298 Kʱ²ÎÓë·´Ó¦ÎïÖʵÄÈÈÁ¦Ñ§Êý¾ÝΪ£º ÎïÖÊ C4H8(g) C4H6(g) H2(g) ?0.13 110.16 0 ?fHm/(kJ?mol?1) Sm/(J?K?1?mol?1) 305.71 278.85 130.68 ½â£º £¨1£© ÔÚ298 Kʱ ?rHm???BB?fHm(B)
?1 ?[110.16?0?(?0.13)]kJ?mol?110.29 kJ?mol?1
?rSm???BBmS(B)
?(130.68?278.85?305.71)J?K?1?mol?1 ?103.82 J?K?mol
?rGm??rHm?1?1?T?rS m ?[110.29?298?103.82?10?3]kJ?mol?1?79.35 kJ?mol?1 Kp(298K)?exp????rGm?RT?? ? ?exp??79350???14 ?1.23?10??8.314?298? £¨2£©ÀûÓÃvan der Hoff¹«Ê½
lnKp(T2)Kp(T1)??rHmR?11???? ?T1T2?lnKp(830K)1.23?10?14110.29 kJ?mol?1?11????? 8.314 J?K?1?mol?1?298K830K??2½âµÃ Kp(830K)?3.03?10¡£
¿É¼û£¬¶ÔÓÚÎüÈÈ·´Ó¦£¬Éý¸ßζȿÉÒÔʹƽºâ³£ÊýÔö´ó¡£ £¨3£© Éè·´Ó¦¿ªÊ¼Ê±C4H8(g)Ϊ1 mol£¬Æ½ºâת»¯ÂÊΪ?
C4H8(g)?C4H6(g)?H2(g) t?0 1 0 0
t?te 1?? ? ?ƽºâʱ×ܵÄÎïÖʵÄÁ¿Îª
n?[(1??)?????15]mol?(16??)mol
ÒÑÖª×Üѹp?200 kPa£¬Ôò
??p??16??p?pC4H6/p?pH2/p??3.03?10?2 Kp(830K)???pC4H8/p?1???p???16???p½âµÃ ??0.39
2Èç¹û²»¼ÓË®ÕôÆø£¬n?(1??)mol£¬ÏÔȻת»¯ÂÊ»áСµÃ¶à¡£ 21£®ÒÑÖª·´Ó¦COCl2(g)CO(g)?Cl2(g)ÔÚ373 KʱµÄ±ê׼ƽºâ³£Êý
Kp?8.0?10?9£¬?rSm?125.5 J?K?1?mol?1£¬ÊÔ¼ÆË㣨¿ÉÒÔ×÷ºÏÀíµÄ½üËÆ£©
£¨1£© ÔÚ373 K£¬×ÜѹΪ200 kPaʱCOCl2(g)µÄ½âÀë¶È¡£ £¨2£© ÔÚ373 Kʱ£¬·´Ó¦µÄ?rHm¡£
£¨3£© µ±×ÜѹΪ200 kPaʱ£¬ÒªÊ¹COCl2(g)µÄ½âÀë¶È??0.001£¬Ó¦¸Ã¿ØÖƵķ´Ó¦Î¶ȣ¬Éè?rCp,m?0¡£
½â£º £¨1£©ÉèÔÚ373 KʱµÄ½âÀë¶ÈΪ?
COCl2(g)CO(g)?Cl2(g)
t?0 1 0 0t?te 1?? ? ?×ܵÄÎïÖʵÄÁ¿Îª 1???????1??
??p×Ü??1??p?pCO/p?pCl2/p?2?p×Ü????? Kp?? 2?ppCOCl2/p1??p??1????×Ü???????1????p?2?2?200kPa?2 8.0?10???2? 2?1???100kPa??9½âµÃ ??6.32?10 £¨2£© ?rGm??RTlnKp
??8.314?373?ln(8?10)J?mol ?rHm??rGm?9?1?5?57.82 kJ?mol?1
?T?rS m?3?1 ?(57.82?125.5?373?10) kJ?mol?104.63 kJ?mol?1
£¨3£©µ±??0.001ʱ£¬ÉèÐè¿ØÖƵÄζÈΪT2£¬ÕâʱµÄƽºâ³£ÊýΪKp(T2)
?2?p×Ü?2?6 Kp(T2)? ?2??2?10?2?1???p?ÀûÓù«Ê½ lnKp(T2)Kp(T1)??rHmR?11???? ?T1T2?2?10?6104.63?103?11??? ln??
8?10?98.314?373T2/K?½âµÃ T2?446 K
22£®ÉèÔÚijһζȺͱê׼ѹÁ¦Ï£¬ÓÐÒ»¶¨Á¿µÄPCl5(g)µÄÌå»ýΪ1.0 dm£¬Æä½âÀë¶ÈÉèΪ0.50£¬Í¨¹ý¼ÆËã˵Ã÷£¬ÔÚÏÂÁм¸ÖÖÇé¿öÏ£¬PCl5(g)µÄ½âÀë¶ÈÊÇÔö´ó»¹ÊǼõС¡£ÉèÆøÌ嶼ÊÇÀíÏëÆøÌå¡£
(1) ½µµÍÆøÌåµÄ×Üѹ£¬Ö±µ½Ìå»ýÔö¼Óµ½2.0 dm¡£
(2) ͨÈëN2(g)£¬Ê¹Ìå»ýÔö¼Óµ½2.0 dm£¬¶øѹÁ¦ÈÔΪ100 kPa¡£ (3) ͨÈëN2(g)£¬Ê¹Ñ¹Á¦Ôö¼Óµ½200 kPa£¬¶øÌå»ýά³ÖΪ1.0 dm¡£
£¨4£© ͨÈëCl2(g)£¬Ê¹Ñ¹Á¦Ôö¼Óµ½200 kPa£¬¶øÌå»ýά³ÖΪ 1.0 dm¡£
½â£ºÊ×ÏÈÒªÀûÓÃÒÑÖªÌõ¼þ£¬¼ÆËã³öÔڸ÷´Ó¦Î¶Èϵıê׼ƽºâ³£ÊýµÄÖµ¡£ÉèPCl5(g)µÄ½âÀë¶ÈΪ?£¬½âÀë·´Ó¦ÈçÏÂ
33333 PCl5(g)PCl3(g)?Cl2(g)
t?0 1 0 0t?te 1?? ? ?
?nBB?1??
¸ù¾ÝDalton·Öѹ¶¨ÂÉ£¬µ±ÏµÍ³µÄ×ÜѹΪpʱ£¬¸÷ÎïÖʵķÖѹpB?pxB p(PCl3)???1???p, p(Cl2)??p, p(PCl3)??p 1??1??1??´úÈë±ê׼ƽºâ³£ÊýµÄ¼ÆËãʽ£¬²¢ÕûÀíµÃ
p(PCl3)p$?p(Cl2)p$?2p?? K?
p(PCl5)p$1??2p$$pÒÑÖªÔڸ÷´Ó¦Î¶ÈÏ£¬µ±×Üѹp?100 kPaʱ£¬½âÀë¶È??0.50£¬ÔÚ¸ÃζÈϵıê׼ƽºâ³£Êý