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2.1 1molÀíÏëÆøÌåÔں㶨ѹÁ¦ÏÂζÈÉý¸ß1¡æ£¬Çó¹ý³ÌÖÐϵͳÓë»·¾³½»»»µÄ¹¦¡£ ½â£ºÀíÏëÆøÌån = 1mol
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W =£pamb¦¤V =£p(V2-V1) =£(nRT2-nRT1) =£8.314J
2.2 1molË®ÕôÆø(H2O,g)ÔÚ100¡æ,101.325kPaÏÂÈ«²¿Äý½á³ÉҺ̬ˮ¡£Çó¹ý³ÌµÄ¹¦¡£¼ÙÉ裺Ïà¶ÔÓÚË®ÕôÆøµÄÌå»ý£¬ÒºÌ¬Ë®µÄÌå»ý¿ÉÒÔºöÂÔ²»¼Æ¡£ ½â: n = 1mol
ºãκãѹÏà±ä¹ý³Ì,Ë®ÕôÆø¿É¿´×÷ÀíÏëÆøÌå, Ó¦ÓÃʽ£¨2.2.3£©
W =£pamb¦¤V =£p(Vl-Vg ) ¡Ö pVg = nRT = 3.102kJ
2.3 ÔÚ25¡æ¼°ºã¶¨Ñ¹Á¦Ï£¬µç½â1molË®(H2O,l)£¬Çó¹ý³ÌµÄÌå»ý¹¦¡£ H2O(l) £½ H2(g) + 1/2O2(g) ½â: n = 1mol
ºãκãѹ»¯Ñ§±ä»¯¹ý³Ì, Ó¦ÓÃʽ£¨2.2.3£©
W=£pamb¦¤V =£(p2V2-p1V1)¡Ö£p2V2 =£n2RT=£3.718kJ
2.4 ϵͳÓÉÏàͬµÄʼ̬¾¹ý²»Í¬Í¾¾¶´ïµ½ÏàͬµÄĩ̬¡£Èô;¾¶aµÄQa=2.078kJ,Wa=£4.157kJ£»¶ø;¾¶bµÄQb=£0.692kJ¡£ÇóWb.
½â: ÈÈÁ¦Ñ§ÄܱäÖ»Óëʼĩ̬ÓйØ,Óë¾ßÌå;¾¶ÎÞ¹Ø,¹Ê ¦¤Ua = ¦¤Ub
ÓÉÈÈÁ¦Ñ§µÚÒ»¶¨Âɿɵà Qa + Wa = Qb + Wb ¡à Wb = Qa + Wa £Qb = £1.387kJ
2.5 ʼ̬Ϊ25¡æ£¬200 kPaµÄ5 molijÀíÏëÆøÌ壬¾Í¾¾¶a£¬bÁ½²»Í¬Í¾¾¶µ½´ïÏàͬµÄĩ̬¡£Í¾¾aÏȾ¾øÈÈÅòÕ͵½ -28.47¡æ£¬100 kPa£¬²½ÖèµÄ¹¦200 kPaµÄĩ̬£¬²½ÖèµÄÈÈ
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V1=nRT15¡Á8.314¡Á298.15==0.0619m3 P1200000 V2=V=nRT5¡Á8.314¡Á244.58==0.1016m3 P100000 ¦¤U=Wa+Qa=(£5.57+25.42)kJ=19.85kJ
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Wb=£p1¦¤V=£200000£¨0.1016£0.0619£©J=£7.932kJ
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2.6 4molijÀíÏëÆøÌ壬ζÈÉý¸ß20¡æ, Çó¦¤H£¦¤UµÄÖµ¡£ ½â£º¸ù¾ÝìʵĶ¨Òå
2.7 ÒÑ֪ˮÔÚ25¡æµÄÃܶȦÑ=997.04kg¡¤m-3¡£Çó1molË®(H2O,l)ÔÚ25¡æÏ£º£¨1£©Ñ¹Á¦´Ó100kPaÔö¼ÓÖÁ200kPaʱµÄ¦¤H;£¨2£©Ñ¹Á¦´Ó100kPaÔö¼ÓÖÁ1MpaʱµÄ¦¤H¡£¼ÙÉèË®µÄÃܶȲ»ËæѹÁ¦¸Ä±ä£¬ÔÚ´ËѹÁ¦·¶Î§ÄÚË®µÄĦ¶ûÈÈÁ¦Ñ§ÄܽüËÆÈÏΪÓëѹÁ¦Î޹ء£ ½â: ÒÑÖª ¦Ñ= 997.04kg¡¤m-3 MH2O = 18.015 ¡Á 10-3 kg¡¤mol-1
Äý¾ÛÏàÎïÖʺãαäѹ¹ý³Ì, Ë®µÄÃܶȲ»ËæѹÁ¦¸Ä±ä,1molH2O(l)µÄÌå»ýÔÚ´ËѹÁ¦·¶Î§¿ÉÈÏΪ²»±ä, Ôò VH2O = m /¦Ñ= M/¦Ñ
¦¤H £ ¦¤U = ¦¤(pV) = V(p2 £ p1 ) Ħ¶ûÈÈÁ¦Ñ§ÄܱäÓëѹÁ¦ÎÞ¹Ø, ¦¤U = 0
¡à¦¤H = ¦¤(pV) = V(p2 £ p1 )
1) ¦¤H £ ¦¤U = ¦¤(pV) = V(p2 £ p1 ) = 1.8J 2) ¦¤H £ ¦¤U = ¦¤(pV) = V(p2 £ p1 ) = 16.2J
2.8 ijÀíÏëÆøÌåCv,m=3/2R¡£½ñÓиÃÆøÌå5molÔÚºãÈÝÏÂζÈÉý¸ß50¡æ¡£Çó¹ý³ÌµÄW£¬Q£¬¦¤HºÍ¦¤U¡£
½â: ÀíÏëÆøÌåºãÈÝÉýιý³Ì n = 5mol CV,m = 3/2R
QV =¦¤U = n CV,m¦¤T = 5¡Á1.5R¡Á50 = 3.118kJ W = 0
¦¤H = ¦¤U + nR¦¤T = n Cp,m¦¤T
= n (CV,m+ R)¦¤T = 5¡Á2.5R¡Á50 = 5.196kJ
2.9 ijÀíÏëÆøÌåCv,m=5/2R¡£½ñÓиÃÆøÌå5molÔÚºãѹÏÂζȽµµÍ50¡æ¡£Çó¹ý³ÌµÄW£¬Q£¬¦¤UºÍ¦¤H¡£
½â: ÀíÏëÆøÌåºãѹ½µÎ¹ý³Ì n = 5mol
CV,m = 5/2R Cp,m = 7/2R
Qp =¦¤H = n Cp,m¦¤T = 5¡Á3.5R¡Á(£50) = £7.275kJ W =£pamb¦¤V =£p(V2-V1) =£(nRT2-nRT1) = 2.078kJ ¦¤U =¦¤H£nR¦¤T = nCV,m¦¤T = 5¡Á2.5R¡Á(-50) = £5.196kJ
2.10 2molijÀíÏëÆøÌ壬Cp,m=7/2R¡£ÓÉʼ̬100kPa,50dm3£¬ÏȺãÈݼÓÈÈʹѹÁ¦Éý¸ßÖÁ200kPa£¬ÔÙºãѹÀäȴʹÌå»ýËõСÖÁ25dm3¡£ÇóÕû¸ö¹ý³ÌµÄW£¬Q£¬¦¤HºÍ¦¤U¡£ ½â£º¹ý³ÌͼʾÈçÏÂ
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