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¡£ [ VNaCl=19.525cm3 mol-1 ,VH2O=18.006 cm3mol-1 ]

´ð£º V(cm3)=1001.38+16.625n+1.7738n3/2+0.1194n2£¬ ËùÒÔ£ºVNaCl = 16.625+1.5¡Á1.7738n1/2+0.1194¡Á2n¡£ 1mol kg-1NaClÈÜÒºÖÐn=1, ÔòVNaCl=19.525cm3/mol, n=1 ʱ£¬ ×ÜÌå»ýV=1019.89cm3, V= nNaCl VNaCl +nH2O VH2O, ´øÈëÒÔÉÏÊýÖµ£¬µÃµ½£¬VH2O=18.006 cm3mol-1

2-2 ÔÚ15¡æ£¬pOÏÂij¾Æ½ÑÖдæÓÐ104dm3µÄ¾Æ£¬w(ÒÒ´¼)= 96%¡£½ñÓû¼ÓË®µ÷ÖÆΪw(ÒÒ´¼) = 56%µÄ¾Æ¡£ÊÔ¼ÆË㣺(1)Ó¦¼ÓË®¶àÉÙdm3? (2) Äܵõ½¶àÉÙdm3 w(ÒÒ´¼) = 56%µÄ¾Æ?ÒÑÖª£º15¡æ, pOʱˮµÄÃܶÈΪ0.9991kg dm-3£»Ë®ÓëÒÒ´¼µÄƫĦ¶ûÌå»ýΪ£º

w(ÒÒ´¼) ¡Á100 V(C2H5OH)£¯cm3 mol-1 58.01 56.58ª¥ VH2O£¯cmmol 14.61 17.11 3 -1 96 56

´ð£º ¸ù¾Ý¼¯ºÏ¹«Ê½£º £¨1£©

¢Ù V=10¡Á10=nÒÒ´¼ VÒÒ´¼+nË®VË®= nÒÒ´¼ 58.01+ nË®14.61 ¢Ú nÒÒ´¼¡Á46/( nÒÒ´¼¡Á46+ nË®¡Á18)=0.96

Óɢٺ͢ڽâ³ö£¬nË®=17879mol£¬ nÒÒ´¼=167911mol

µ±ÒÒ´¼º¬Á¿ÎªWÒÒ´¼=56%£¬Ê±£¬ nÒÒ´¼¡Á46/( nÒÒ´¼¡Á46+ nË®¡Á18)=0.56,ÒòΪֻ¼ÓÈëË®£¬ËùÒÔÒÒ´¼µÄÎïÖʵÄÁ¿²»±ä£¬ nÒÒ´¼=167911mol,¿ÉÒÔ½â³ö nË®=337154mol

ËùÒÔ£¬Ó¦¼ÓÈëË®337154-17879=319275mol, ºÏ£º(319275¡Á18/1000)/0.9991kg dm-3=5752.126dm3

£¨2£©¸ù¾Ý¼¯ºÏ¹«Ê½£»V=nÒÒ´¼ VÒÒ´¼+nË®VË® £¬ÓÖÖªµÀWÒÒ´¼=56%ʱµÄƫĦ¶ûÌå»ý£¬Ö±½Ó´øÈë¼´¿É£¬¼´V=167911¡Á0.05658+337154¡Á0.01711=9500+5768.7=15268.7dm3.

[ (1) 5752dm3 (2)15267dm3 ]

4

3

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

´ð£º ÒÑÖª£ºdP/dT =3040 Pa K-1, T=80+273.15=353.15K, P¦È=101325Pa

¸ù¾Ý clausius-clapeyron ·½³Ì£º dP/dT=(P¦¤lgHm)/(RT2),½«ÒÔÉÏÊý¾Ý´øÈëµÃµ½£º 3040=£¨101325¦¤lgHm£©/ 8.314¡Á353.152, µÃµ½£º¦¤lgHm=31.1kJ mol-1. ª¥[ 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£»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¥ ´ð£º

£¨1£©£¬ ÒòΪÆøÒºÁ½ÏàƽºâʱÓÐlnP=- ¦¤H/RT +C.

100¡æ£¬ p=101325Pa,´øÈëÉÏʽ£¬µÃµ½C=24.625.

lnP=- 40638/(8.314T) +C= - 4888/T +24.625,ËùÒÔT=80¡æ, T=353.15K, lnP= - 4888/T +24.625= - 4888/353.15 +24.625= -13.84+24.625=10.783. ½â³ö£¬P=48194=0.482¡Á10 Pa¡£

5

-1

£¨2£©

dPdT?P?HRT2, ÒÆÏîµÃµ½£¬dlnP??HRT2P2T2dT, »ý·Ö£¬

?dlnP?P1T1?RT?H2dT£¬ µÃµ½

T2lnP2-lnP1= ?T1?HRT2dT

Tln [P*/Pa]=ln(101325) +

?373?HRT2dT(*)

???Hm???H????H??C,, ????CP,m,¦¤(¦¤Hm)= ??CP,mdT ??????CPP??T?P??T?P??T?T1T2T2TP,m¦¤Hm,T2-¦¤Hm,T1=

??CT1dT, ¦¤H=40638+

??C373P.mdT, ¦¤CP,m = Cp,m

(Ë®

£¬

g)- Cp,m

(Ë®

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l)=

33.571-75.296. ¦¤H=40638+(33.571-75.296)¡Á(T-373),½«Æä´øÈë*ʽ¡£

Tln [P*/Pa]=ln(101325)

TT+

?37340638?41.725T?15563RT2dT=

ln(101325)+

?373?41.725TdT+

?37356201RT2dT£¬ ÕûÀíµÃµ½£¬ ln(p*£¯Pa)= - 6761/T ¨C5.019 ln T+59.37£¬

½«T=353.15K, ´øÈëµÃµ½£¬ln(p*£¯Pa)=10.778, P=0.47954¡Á105 Pa.

(3) ͬÀí£º¦¤CP,m = Cp,m (Ë®£¬g)- Cp,m (Ë®£¬l)= -45.176+11.30¡Á10-3T,

???Hm?????CP,m d(¦¤Hm)= ¦¤CP,m dT= (-45.176+11.30¡Á10-3T) dT, »ý·ÖµÃµ½²»¶¨»ý·ÖΪ??T?P¦¤Hm =-45.176T +(1/2) 11.30¡Á10-3T2+C T=373.15K, ¦¤Hm=40638, ËùÒÔC=56709

½«

¦¤Hm=-45.176T +(1/2) 11.30¡Á10-3T2+56709,´øÈëÏÂʽ

Tln [P*/Pa]=ln(101325) +

T?373?HRT2dT(*)

lnP=ln(101325)+

?373?45.176RTTdT+

?3735.65?10R?3TdT+

?373567098.314T2dT=

ln(101325)+

??45.176???[lnT?ln373]8.314??+

?5.65?10?3??8.314????T?373???+

1??56709???1?(?)? ???373??8.314??TÕûÀíµÃµ½£º

ln [P*/Pa]=-5.434lnP+ 6.8¡Á10-4T -6821/T +61.729

T=353.15,´øÈëÉÏʽµÃµ½£¬ p=0.499¡Á105Pa

[ (1) ln(p*£¯Pa)= - 4888/T +24.623 , 0.482¡Á105 Pa (2) ln(p*£¯Pa)= - 6761/T ¨C5.019 ln T+59.37 , 0.479¡Á105 Pa

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

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

(1) ÇóÈýÏàµãµÄѹÁ¦£»ª¥

(2) ÔÚ100kPaÏÂCO2ÄÜ·ñÒÔҺ̬´æÔÚ?ª¥

(3) ÕÒ³öÒºÌåCO2µÄ±¥ºÍÕôÆøѹÓëζȵĹØϵʽ¡£ª¥

´ð£º(1) lg (P*/Pa)=-1353/(T/K) +11.957, ÈýÏàµãζÈΪ -56.6¡æ, T=273-56.6=216.55K,´øÈëµÃ

µ½P=5.13¡Á105Pa.

(2) lnP=- ¦¤HÉý»ª/RT +C, lg P= -¦¤HÉý»ª/2.303RT+ C/2.303£¬lg ( p* / Pa) = -1353 /( T / K)+11.957,

¶Ô±È¿ÉÖª£¬ -1353=-¦¤HÉý»ª/2.303R£¬¦¤HÉý»ª= 25906J mol-1.

*ÈÛ»¯ìÊ?fusHm = 8326 J mol-1, Ïà±äìÊ¹Ì µ½ÆøÌå µÈÓÚÏà±äìʴӹ̵½ÒºÌåÔÚµ½ÆøÏ࣬¼´

¦¤Éý»ªHm=¦¤ÈÛ»¯ Hm+¦¤Æû»¯Hm, ¦¤Æû»¯Hm=25.906-8.326=17.58kJ mol-1. ¶ÔÆøҺƽºâ£¬ ln P=-¦¤Æû»¯Hm/RT + C. ¦¤Æû»¯Hm=17.58kJ mol-1, ´øÈëµÃµ½£¬ln P= - 17580/8.314T + C¡¯, ÈýÏàµãÒ²Âú×ã´Ë·½³Ì£¬½«T=216.5K, P=5.13¡Á105Pa, ´øÈëµÃµ½C=22.91, ËùÒÔ¶ÔÆøҺƽºâÏßÉÏÓÐlnP= -17580/8.314T +22.91¡£ µ±P=100 kPa, T=154.3<216.55K, ²»ÄÜÒÔҺ̬´æÔÚ¡£ £¨3£© ÆøҺƽºâÏßÉÏ lnP= -17580/8.314T +22.91, lnP=2.303lgP, lgP=-918.2/T +9.948.

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