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7. ̼ËáÄÆÓëË®¿É×é³ÉÏÂÁм¸ÖÖË®ºÏÎNa2CO3¡¤H2O¡¢Na2CO3¡¤7H2O¡¢Na2CO3¡¤10H2O¡£ (1)ÔÚpOÏ£¬Óë̼ËáÄÆË®ÈÜÒººÍ±ùƽºâ¹²´æµÄº¬Ë®ÑÎ×î¶à¿ÉÒÔÓм¸ÖÖ£¿ ½â£ºNa2CO3(aq)+H2O(s)£½Na2CO3¡¤H2O(s)

Na2CO3(aq)+7H2O(s)£½Na2CO3¡¤7H2O(s) Na2CO3(aq)+10H2O(s)£½Na2CO3¡¤10H2O(s)

N=5£¬R=3£¬R'=0£¬C=N-R-R'=5-3-0=2£¬f*=C-Pmax+1=3- Pmax =0£¬Pmax = 3¡£ÒòΪÒÑÓÐÁ½Ï̼ࣨËáÄÆË®ÈÜÒººÍ±ù£©£¬ËùÒÔº¬Ë®ÑÎ×î¶àÓÐÒ»ÖÖ¡£ (2)ÔÚ30¡æʱ£¬¿ÉÓëË®ÕôÆøƽºâ¹²´æµÄº¬Ë®ÑÎ×î¶à¿ÉÓм¸ÖÖ£¿ Na2CO3¡¤H2O(s)£½Na2CO3(s)+H2O(g)

Na2CO3¡¤7H2O(s)£½Na2CO3(s)+7H2O(g) Na2CO3¡¤10H2O(s)£½Na2CO3(s)+10H2O(g)

N=5£¬R=3£¬R'=0£¬C=N-R-R'=5-3-0=2£¬f*=C-Pmax+1=3- Pmax =0£¬Pmax = 3£¬ÒòΪÒÑÓÐÒ»ÏࣨˮÕôÆø£©£¬ËùÒÔº¬Ë®ÑÎ×î¶àÓÐÁ½ÖÖ¡£

8. ÔÚÈÎÒâÁ¿µÄHCl(g)ºÍNH3(g)Ëù×é³ÉµÄϵͳÖУ¬·´Ó¦HCl(g)+NH3(g)£½NH4Cl(s)´ïƽºâʱϵͳµÄ×ÔÓɶÈΪ¶àÉÙ£¿ ½â£ºHCl(g) + NH3(g)£½NH4Cl(s)

N=3£¬R=1£¬R'=0£¬C=N-R-R'=3-1-0=2£¬f=C-P+2=2-2+2=2

µÚ¶þÕ ¶àÏà¶à×é·ÖϵͳÈÈÁ¦Ñ§ £¨ÕºóÁ·Ï°ÌâP115-120£©

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1£®V/cm3=1001.38+16.625n+1.7738n3/2 +0.1194n2£¬V=1019.9cm3£¬ VNaCl=16.625+(3/2)¡Á1.7738n1/2+2¡Á0.1194n£¬´úÈë1mol kg-1£¬

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VNaCl=19.525cm3 mol-1£¬V=1¡ÁVNaCl+(1000/18)¡ÁVH2O£¬VH2O=18.007 cm3 mol-1¡£

8£®¦¤G=RTln(a2/a1)¡ÖRTln(x2/x1)=8.314¡Á298.15ln(0.6/0.8)=-713.1 J

10£®(1) 101325=0.604¡Á105+(1.150-0.604)¡Á105x(C6H5Cl)£¬ x(C6H5Cl)=0.749£¬x(C6H5Br)=0.251¡£

(2) 0.604¡Á105 x(C6H5Br)= 1.150¡Á105 x(C6H5Cl)= 1.150¡Á105 (1-x(C6H5Br)) x(C6H5Br)=0.656£¬x (C6H5Cl)=0.344¡£

11£®(1) 1.013¡Á105=0.666¡Á105+(1.933-0.666)¡Á105x(CCl4)£¬ x(CCl4)=0.274£¬x(SnCl4)=0.726£¬

(2) 0.666¡Á105¡Á0.726=1.013¡Á105 y(SnCl4)£¬y(SnCl4)=0.477 y(CCl4)=0.523

14£®½â£º¦¤Tf=KfbB£¬8=40¡Á(7.900/129MB)¡Á1000£¬MB=306 g mol-1

15£®½â£º(1) a(H2O)=596.5/1705=0.35£¬x(H2O)=4.6/5.6=0.821 a(H2O)= x(H2O)¦Ã(H2O)£¬¦Ã(H2O)= 0.35/0.821=0.426 ¦ÌB=¦Ì ¦Ì

2-1 1.25¡æʱ£¬½«NaClÈÜÓÚ1kgË®ÖУ¬ÐγÉÈÜÒºµÄÌå»ýVÓëNaClÎïÖʵÄÁ¿ nÖ®¼ä¹ØϵÒÔÏÂʽ±íʾ£ºV(cm3)=1001.38+16.625n+1.7738n3/2+0.1194n2£¬ÊÔ¼ÆËã1mol kg-1NaClÈÜÒºÖÐH2O¼°NaClµÄƫĦ¶ûÌå»ý¡£

?V?½â£ºÓÉƫĦ¶ûÁ¿µÄ¶¨ÒåµÃ£ºVNaCl??????n?T,p,ncB

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-¦ÌB=- RTln a(H2O)= -8.314¡Á288.15ln0.35 = -2.515 kJ

£½16.625+1.7738¡Á1.5n1/2+0.1194¡Á2 n

n£½1 mol £¬VNaCl=19.525cm3 mol-1£¬ÈÜÒºÌå»ýV=1019.90cm3¡£

n(H2O)=55.556 mol, °´¼¯ºÏ¹«Ê½£ºV= n VNaCl£«n(H2O) VH2OÇó³öVH2O=18.006 cm3mol-1

2-2 ÔÚ15¡æ¡¢P?Ï£¬Ä³¾Æ½ÑÖдæÓÐ104 dm3µÄ¾Æ£¬w(ÒÒ´¼)= 96%¡£½ñÓû¼ÓË®µ÷ÖÆΪw(ÒÒ

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´¼) = 56%µÄ¾Æ¡£ÊÔ¼ÆË㣺(1)Ó¦¼ÓË®¶àÉÙdm3£¿(2)Äܵõ½¶àÉÙdm3 w(ÒÒ´¼) = 56%µÄ¾Æ£¿ÒÑÖª£º15¡æ¡¢P?ʱˮµÄÃܶÈΪ0.9991 kg dm-3£»Ë®ÓëÒÒ´¼µÄƫĦ¶ûÌå»ýΪ£º

w(ÒÒ´¼)¡Á100 96 56

½â£º£¨1£©w(ÒÒ´¼)= 96%ʱ£¬¾Ý¼¯ºÏ¹«Ê½ V?nË®VË®?nÒÒVÒÒ£¬

104¡Á103 = nË®¡Á14.61£«nÒÒ¡Á58.01 ´íÎó£¡Î´ÕÒµ½ÒýÓÃÔ´¡£

V(H2O)£¯cm3¡¤mol-1 V(C2H5OH)£¯cm3¡¤mol-1 14.61 17.11 58.01 56.58ª¥ mÒÒnÒÒMÒÒ£½?96% ´íÎó£¡Î´ÕÒµ½ÒýÓÃÔ´¡£

mÒÒ?mË®nÒÒMÒÒ?nË®MË®ÓÉ´íÎó£¡Î´ÕÒµ½ÒýÓÃÔ´¡£ºÍ´íÎó£¡Î´ÕÒµ½ÒýÓÃÔ´¡£Ê½ÁªÁ¢£¬½âµÃnË® =17876 mol£¬nÒÒ£½167879 mol

ËùÒÔ£¬ w(ÒÒ´¼)= 56%ʱ£¬

'(nË®?nË®)?MË®nÒÒMÒÒ'?56% £¬½âµÃnË®?337090mol 'nÒÒMÒÒ?nË®MË®(337090?17876)?18?5751dm3 30.9991?10¹Ê£¬?VË®??Ë®?'(2) w(ÒÒ´¼)= 56%ʱ£¬¾Ý¼¯ºÏ¹«Ê½ V?nË®VË®?nÒÒVÒÒ

?(337090?17.11?167879?56.58)?10?3?15266dm3

2-3 ÒÒëæµÄÕôÆøѹÔÚÆä±ê×¼·Ðµã¸½½üÒÔ3040 Pa K-1µÄ±ä»¯Âʸı䣬ÓÖÖªÆä±ê×¼·ÐµãΪ80¡æ£¬ÊÔ¼ÆËãÒÒëæÔÚ80¡æµÄĦ¶ûÆø»¯ìÊ¡£ª¥

½â£º¡÷vapHm=RT2(d lnp / dT)= RT2(dp / dT)/ p=8.314¡Á(273.15+80)2¡Á3040/105=31.5 kJ mol-1¡£

2-4 Ë®ÔÚ100¡æʱÕôÆøѹΪ101 325Pa£¬Æø»¯ìÊΪ40638 J mol-1 ¡£ÊÔ·Ö±ðÇó³öÔÚÏÂÁи÷ÖÖÇé¿öÏ£¬Ë®µÄÕôÆøѹÓëζȹØϵʽln(p*£¯Pa)= f (T)£¬²¢¼ÆËã80¡æË®µÄÕôÆøѹ(ʵ²âֵΪ0.473¡Á105Pa)ª¥

(1)ÉèÆø»¯ìʦ¤Hm = 40.638 kJ mol-1Ϊ³£Êý£»ª¥

(2) Cp.m (H2O,g) = 33.571 J K-1 mol-1 , Cp.m (H2O,l)=75.296 J K-1 mol-1¾ùΪ³£Êý£»

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ª¥ (3) Cp.m (H2O,g) =30.12 +11.30 ¡Á10-3T (J K-1 mol-1 ); Cp.m (H2O,l) = 75.296 J K-1 mol-1 Ϊ³£Êý£»ª¥

½â£ºln(p*£¯Pa)= ln(101 325)£«??Hm/(RT2)dT£»¦¤Hm£½40638£«??Cp,mdT£»

373373TT¡÷Cp.m£½Cp.m (H2O,g)£­Cp.m (H2O,l)

(1) ln(p*£¯Pa)= - 4888/T +24.623£¬¼ÆËã³ö80¡æË®µÄÕôÆøѹΪ0.482¡Á105 Pa¡£

(2) ln(p*£¯Pa)= - 6761/T ¨C5.019 ln T+59.37 , ¼ÆËã³ö80¡æË®µÄÕôÆøѹΪ0.479¡Á105 Pa¡£ (3) ln(p*£¯Pa)= - 6726/T ¨C5.433 ln T+1.36¡Á10-3T+ 61.22 , ¼ÆËã³öÕôÆøѹΪ0.479¡Á105 Pa¡£

2-5 ¹ÌÌåCO2µÄ±¥ºÍÕôÆøѹÓëζȵĹØϵΪ£ºlg ( p* / Pa) = -1353 /( T / K)+11.957¡£

*ÒÑÖªÆäÈÛ»¯ìÊ?fusHm = 8326 J mol-1£¬ÈýÏàµãζÈΪ -56.6¡æ¡£ª¥

(1) ÇóÈýÏàµãµÄѹÁ¦£»ª¥

(2) ÔÚ100kPaÏÂCO2ÄÜ·ñÒÔҺ̬´æÔÚ?ª¥

(3) ÕÒ³öÒºÌåCO2µÄ±¥ºÍÕôÆøѹÓëζȵĹØϵʽ¡£ª¥

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¹«Ê½µÃµ½ÈýÏàµãѹÁ¦P=5.12¡Á105Pa

(2)»­³öCO2µÄÏàͼ¿ÉÖª£¬100kPaµÍÓÚÈýÏàµãѹÁ¦£¬²»ÄÜÒÔҺ̬´æÔÚ¡£

(3)ÓÉClausius-Clapeyron·½³ÌµÄ²»¶¨»ý·ÖʽlnP=-¦¤Hsub/RT+C£¬¶ølnP=2.303lgP£¬ ËùÒÔlgP=-¦¤Hsub/2.303RT+C/2.303£¬ÒÑÖªlg ( p* / Pa) = -1353 /( T / K)+11.957£¬ ¶Ô±È¿ÉÖª£¬-¦¤Hsub/2.303R=-1353£¬½âµÃ¦¤Hsub= 25.906 kJ¡¤mol-1¡£

¸ù¾Ý״̬º¯ÊýµÄÌص㣬¦¤subHm=¦¤fusHm+¦¤vapHm£¨¼ûʾÒâͼ£©£¬¦¤vapHm=25.906-8.326=17.58 kJ¡¤mol-1¡£

¶ÔÆøҺƽºâ£¬lnP=-¦¤vapHm/RT + C£¬½«¦¤vapHm=17.58kJ¡¤mol-1´øÈëµÃµ½£¬

ln P= -17580/8.314T + C'¡£ÓÉÓÚÈýÏàµãÒ²Âú×ã´Ë·½³Ì£¬½«T=216.5K£¬P=5.12¡Á105Pa´øÈëµÃµ½C'=22.91£¬ËùÒÔ¶ÔÆøҺƽºâÓÐlnP=-17580/8.314T+22.91£¬lgP=-918.2/T +9.948¡£

2-6 ÁòÓе¥Ð±Áò(M)¡¢Õý½»Áò(R)¡¢ÒºÌ¬Áò(l)ºÍÆø̬Áò(g)ËÄÖÖ²»Í¬µÄÏà̬£¬ÆäÏàͼÈçͼËùʾ¡£(1)˵Ã÷ϵͳµÄÈýÏàµã¼°Æä¶ÔÓ¦µÄƽºâ¹²´æµÄÏà̬£»(2)Ö¸³öijϵͳPÔÚµÈѹÉýιý³ÌÖÐÏà̬µÄ±ä»¯£¬ËµÃ÷Õý½»Áò¼°µ¥Ð±ÁòÉý»ªµÄÌõ¼þ¡£(3)Õý½»Áò¡¢µ¥Ð±Áò¡¢ÒºÌ¬

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