ÓÃ50mL0.50mol/LÑÎËáÓë50mL0.55mol/LNaOHÈÜÒºÔÚÈçͼËùʾµÄ×°ÖÃÖнøÐÐÖкͷ´Ó¦£®Í¨¹ý²â¶¨·´Ó¦¹ý³ÌÖÐËù·Å³öµÄÈÈÁ¿¿É¼ÆËãÖкÍÈÈ£®»Ø´ðÏÂÁÐÎÊÌ⣺
£¨1£©´ÓʵÑé×°ÖÃÉÏ¿´£¬Í¼ÖÐÉÐȱÉÙµÄÒ»ÖÖ²£Á§ÒÇÆ÷ÊÇ
»·Ðβ£Á§½Á°è°ô
»·Ðβ£Á§½Á°è°ô
£®
£¨2£©ÉÕ±­¼äÌîÂúËéÖ½ÌõµÄ×÷ÓÃÊÇ
¼õÉÙʵÑé¹ý³ÌÖеÄÈÈÁ¿Ëðʧ
¼õÉÙʵÑé¹ý³ÌÖеÄÈÈÁ¿Ëðʧ
£®
£¨3£©ÒªÖظ´½øÐÐÈý´ÎʵÑéµÄÄ¿µÄÊÇ
¶à´Î²âÁ¿Çóƽ¾ùÖµ¿ÉÒÔ¼õÉÙʵÑéÎó²î
¶à´Î²âÁ¿Çóƽ¾ùÖµ¿ÉÒÔ¼õÉÙʵÑéÎó²î
£®
£¨4£©´óÉÕ±­ÉÏÈç²»¸ÇÓ²Ö½°å£¬ÇóµÃµÄÖкÍÈÈÊýÖµ
ƫС
ƫС
£¨Ìî¡°Æ«´ó¡¢Æ«Ð¡¡¢ÎÞÓ°Ï족£©£»µ±ÊÒεÍÓÚ10¡æʱ½øÐУ¬¶ÔʵÑé½á¹û»áÔì³É½Ï´óµÄÎó²î£¬ÆäÔ­ÒòÊÇ
ÊÒνϵÍʱ·´Ó¦ÌåϵÏò»·¾³É¢ÈȱȽϿ죬ÈÈÁ¿Ëðʧ´ó£¬½á¹ûÆ«µÍ
ÊÒνϵÍʱ·´Ó¦ÌåϵÏò»·¾³É¢ÈȱȽϿ죬ÈÈÁ¿Ëðʧ´ó£¬½á¹ûÆ«µÍ

£¨5£©Èç¹ûÓÃ60mL0.50mol/LÑÎËáÓë50mL0.55mol/LNaOHÈÜÒº½øÐз´Ó¦£¬ÓëÉÏÊöʵÑéÏà±È£¬Ëù·Å³öµÄÈÈÁ¿
²»ÏàµÈ
²»ÏàµÈ
£¨Ìî¡°ÏàµÈ¡¢²»ÏàµÈ¡±£©£¬ËùÇóÖкÍÈÈ
ÏàµÈ
ÏàµÈ
£¨Ìî¡°ÏàµÈ¡¢²»ÏàµÈ¡±£©£¬¼òÊöÀíÓÉ
ÒòΪÖкÍÈÈÊÇÖ¸Ëá¸ú¼î·¢ÉúÖкͷ´Ó¦Éú³ÉnmolH2OËù·Å³öµÄÈÈÁ¿£¬ÓëËá¼îµÄÓÃÁ¿ÎÞ¹Ø
ÒòΪÖкÍÈÈÊÇÖ¸Ëá¸ú¼î·¢ÉúÖкͷ´Ó¦Éú³ÉnmolH2OËù·Å³öµÄÈÈÁ¿£¬ÓëËá¼îµÄÓÃÁ¿ÎÞ¹Ø
£®
£¨6£©ÓÃÏàͬŨ¶ÈºÍÌå»ýµÄ´×ËᣨCH3COOH£©´úÌæHClÈÜÒº½øÐÐÉÏÊöʵÑ飬²âµÃµÄÖкÍÈȵÄÊýÖµ»á
ƫС
ƫС
£»£¨Ìî¡°Æ«´ó¡¢Æ«Ð¡¡¢ÎÞÓ°Ï족£©£®
£¨7£©Èý´ÎƽÐвÙ×÷Ëù²âµÃµÄÊý¾ÝÈçÏ£º
     ζÈ
ÐòºÅ
ÆðʼζÈt1/¡æ ÖÕֹζÈ
T2/¡æ
ζȲî
¡÷t/¡æ
HCl NaOH ƽ¾ùÖµ
1 25 25   27.3  
2 25 25   27.4  
3 25 25   28.6  
ÈôÉÏÊöHCl¡¢NaOHÈÜÒºµÄÃܶȶ¼½üËÆΪ1g/cm3£¬ÖкͺóÉú³ÉµÄÈÜÒºµÄ±ÈÈÈÈÝC=4.18J/£¨g?¡æ£©£¬ÔòʵÑé²âµÃµÄÖкÍÈÈΪ
46.3kJ?mol-1
46.3kJ?mol-1
£®
·ÖÎö£º£¨1£©¸ù¾ÝÁ¿ÈȼƵĹ¹ÔìÀ´ÅжϸÃ×°ÖõÄȱÉÙÒÇÆ÷£»
£¨2£©ÖкÍÈȲⶨʵÑé³É°ÜµÄ¹Ø¼üÊDZ£Î¹¤×÷£»
£¨3£©¶à´Î²âÁ¿¼õÉÙʵÑéÎó²î£»
£¨4£©²»¸ÇÓ²Ö½°å£¬»áÓÐÒ»²¿·ÖÈÈÁ¿É¢Ê§£»
£¨5£©·´Ó¦·Å³öµÄÈÈÁ¿ºÍËùÓÃËáÒÔ¼°¼îµÄÁ¿µÄ¶àÉÙÓйأ¬²¢¸ù¾ÝÖкÍÈȵĸÅÄîºÍʵÖÊÀ´»Ø´ð£»
£¨6£©¸ù¾ÝÈõµç½âÖʵçÀëÎüÈÈ·ÖÎö£»
£¨7£©¸ù¾Ý·´Ó¦ºóÈÜÒºµÄ±ÈÈÈÈÝcΪ4.18J?¡æ-1?g-1£¬¸÷ÎïÖʵÄÃܶȾùΪ1g?cm-3£» ´øÈ빫ʽ£ºQ=cm£¨t2-t1£©£¬¼ÆËã¼´¿É£®
½â´ð£º½â£º£¨1£©¸ù¾ÝÁ¿ÈȼƵĹ¹Ôì¿ÉÖª¸Ã×°ÖõÄȱÉÙÒÇÆ÷ÊÇ»·Ðβ£Á§½Á°èÆ÷£¬¹Ê´ð°¸Îª£º»·Ðβ£Á§½Á°èÆ÷£»
£¨2£©ÖкÍÈȲⶨʵÑé³É°ÜµÄ¹Ø¼üÊDZ£Î¹¤×÷£¬´óСÉÕ±­Ö®¼äÌîÂúËéÖ½ÌõµÄ×÷ÓÃÊÇ£º¼õÉÙʵÑé¹ý³ÌÖеÄÈÈÁ¿Ëðʧ£¬¹Ê´ð°¸Îª£º¼õÉÙʵÑé¹ý³ÌÖеÄÈÈÁ¿Ëðʧ£»
£¨3£©¶à´Î²âÁ¿¼õÉÙʵÑéÎó²î£¬¹Ê´ð°¸Îª£º¶à´Î²âÁ¿Çóƽ¾ùÖµ¿ÉÒÔ¼õÉÙʵÑéÎó²î£»
£¨4£©´óÉÕ±­ÉÏÈç²»¸ÇÓ²Ö½°å£¬»áÓÐÒ»²¿·ÖÈÈÁ¿É¢Ê§£¬ÇóµÃµÄÖкÍÈÈÊýÖµ½«»á¼õС£¬¹Ê´ð°¸Îª£ºÆ«Ð¡£»ÊÒνϵÍʱ·´Ó¦ÌåϵÏò»·¾³É¢ÈȱȽϿ죬ÈÈÁ¿Ëðʧ´ó£¬½á¹ûÆ«µÍ£»
£¨5£©·´Ó¦·Å³öµÄÈÈÁ¿ºÍËùÓÃËáÒÔ¼°¼îµÄÁ¿µÄ7ÉÙÓйأ¬²¢ÈôÓÃ60mL0.25mol?L-nH2SO4ÈÜÒº¸ú50mL0.55mol?L-nNaOHÈÜÒº½øÐз´Ó¦£¬ÓëÉÏÊöʵÑéÏà±È£¬Éú³ÉË®µÄÁ¿Ôö7£¬Ëù·Å³öµÄÈÈÁ¿Æ«¸ß£¬µ«ÊÇÖкÍÈȵľùÊÇÇ¿ËáºÍÇ¿¼î·´Ó¦Éú³Énmolˮʱ·Å³öµÄÈÈ£¬ÓëËá¼îµÄÓÃÁ¿Î޹أ¬ËùÒÔÓÃ50mL0.50mol?L-n´×Ëá´úÌæH2SO4ÈÜÒº½øÐÐÉÏÊöʵÑ飬²âµÃÖкÍÈÈÊýÖµÏàµÈ£¬¹Ê´ð°¸Îª£º²»ÏàµÈ£»ÏàµÈ£»ÒòΪÖкÍÈÈÊÇÖ¸Ëá¸ú¼î·¢ÉúÖкͷ´Ó¦Éú³ÉnmolH2OËù·Å³öµÄÈÈÁ¿£¬ÓëËá¼îµÄÓÃÁ¿Î޹أ»
£¨6£©´×ËáΪÈõËᣬµçÀë¹ý³ÌΪÎüÈȹý³Ì£¬ËùÒÔ´×ËᣨCH3COOH£©´úÌæHClÈÜÒº·´Ó¦£¬·´Ó¦·Å³öµÄÈÈÁ¿Ð¡ÓÚ57£®jkJ£¬¹Ê´ð°¸Îª£ºÆ«Ð¡£®
£¨7£©¡÷t=
27.3+27.4+28.6-25¡Á3
3
=2.77£¬Q=cm¡÷t£¬2.77¡ãC¡Á4.18J/£¨g?¡æ£©¡Á100g=1159J=1.159kJ£»¡÷H=-Q/n£¨H2O£©=-1.159kJ/0.025mol=-46.3kJ?mol-1£¬¹Ê´ð°¸Îª£º46.3kJ?mol-1£®
µãÆÀ£º±¾Ì⿼²éÈÈ»¯Ñ§·½³ÌʽÒÔ¼°·´Ó¦ÈȵļÆË㣬ÌâÄ¿ÄѶȴó£¬×¢ÒâÀí½âÖкÍÈȵĸÅÄîÒÔ¼°²â¶¨·´Ó¦ÈȵÄÎó²îµÈÎÊÌ⣮
Á·Ï°²áϵÁдð°¸
Ïà¹ØÏ°Ìâ

¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º

ÓÃÓÒͼËùʾװÖýøÐÐÖкÍÈȲⶨʵÑ飬Çë»Ø´ðÎÊÌ⣺
£¨1£©´óСÉÕ±­Ö®¼äÌîÂúËéÅÝÄ­ËÜÁϵÄ×÷ÓÃÊÇ
±£Î¡¢¸ôÈÈ¡¢¼õÉÙʵÑé¹ý³ÌÖеÄÈÈÁ¿É¢Ê§
±£Î¡¢¸ôÈÈ¡¢¼õÉÙʵÑé¹ý³ÌÖеÄÈÈÁ¿É¢Ê§
£¬´ÓʵÑé×°ÖÃÉÏ¿´£¬Í¼ÖÐȱÉÙµÄÒ»ÖÖ²£Á§ÒÇÆ÷ÊÇ
»·Ðβ£Á§½Á°èÆ÷
»·Ðβ£Á§½Á°èÆ÷
£®
£¨2£©Ê¹Óò¹È«ÒÇÆ÷ºóµÄ×°ÖýøÐÐʵÑ飬ȡ50mL0.25mol/LH2SO4ÈÜÒºÓë50mL0.55mol/LNaOHÈÜÒºÔÚСÉÕ±­ÖнøÐÐÖкͷ´Ó¦£¬Èý´ÎʵÑéζÈƽ¾ùÉý¸ß3.4¡æ£®ÒÑÖªÖкͺóÉú³ÉµÄÈÜÒºµÄ±ÈÈÈÈÝΪ4.18J/£¨g?¡æ£©£¬ÈÜÒºµÄÃܶȾùΪ1g/cm3£®Í¨¹ý¼ÆËã¿ÉµÃÖкÍÈÈ¡÷H=
-56.8KJ/mol
-56.8KJ/mol
£¬H2SO4ÓëNaOH·´Ó¦µÄÈÈ»¯Ñ§·½³ÌʽΪ
1
2
H2SO4£¨aq£©+NaOH£¨aq£©=Na2SO4£¨aq£©+H2O£¨l£©£¬¡÷H=-56.8KJ/mol
1
2
H2SO4£¨aq£©+NaOH£¨aq£©=Na2SO4£¨aq£©+H2O£¨l£©£¬¡÷H=-56.8KJ/mol
£®
£¨3£©ÊµÑéÖÐÈôÓÃ60mL0.25mol?L-1H2SO4ÈÜÒº¸ú50mL0.55mol?L-1NaOHÈÜÒº½øÐз´Ó¦£¬ÓëÉÏÊöʵÑéÏà±È£¬Ëù·Å³öµÄÈÈÁ¿
²»ÏàµÈ
²»ÏàµÈ
 £¨Ìî¡°ÏàµÈ¡±¡¢¡°²»ÏàµÈ¡±£©£¬ËùÇóÖкÍÈÈ
ÏàµÈ
ÏàµÈ
 £¨Ìî¡°ÏàµÈ¡±¡¢¡°²»ÏàµÈ¡±£©£»£¬ÈôÓÃ50mL0.50mol?L-1´×Ëá´úÌæH2SO4ÈÜÒº½øÐÐÉÏÊöʵÑ飬²âµÃ·´Ó¦Ç°ºóζȵı仯ֵ»á
ƫС
ƫС
 £¨Ìî¡°Æ«´ó¡±¡¢¡°Æ«Ð¡¡±¡¢¡°²»ÊÜÓ°Ï족£©£®

²é¿´´ð°¸ºÍ½âÎö>>

¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º

ÓÃ50mL0.50mol/LÑÎËáÓë50mL0.55mol/LNaOHÈÜÒºÔÚÈçͼËùʾµÄ×°ÖÃÖнøÐÐÖкͷ´Ó¦£®Í¨¹ý²â¶¨·´Ó¦¹ý³ÌÖÐËù·Å³öµÄÈÈÁ¿¿É¼ÆËãÖкÍÈÈ£®»Ø´ðÏÂÁÐÎÊÌ⣺
£¨1£©´ÓʵÑé×°ÖÃÉÏ¿´£¬Í¼ÖÐÉÐȱÉÙµÄÒ»ÖÖ²£Á§ÓÃÆ·ÊÇ
»·Ðβ£Á§½Á°è°ô
»·Ðβ£Á§½Á°è°ô
£®
£¨2£©ÉÕ±­¼äÌîÂúËéÖ½ÌõµÄ×÷ÓÃÊÇ
¼õÉÙʵÑé¹ý³ÌÖеÄÈÈÁ¿Ëðʧ
¼õÉÙʵÑé¹ý³ÌÖеÄÈÈÁ¿Ëðʧ
£®
£¨3£©´óÉÕ±­ÉÏÈç²»¸ÇÓ²Ö½°å£¬ÇóµÃµÄÖкÍÈÈÊýÖµ
ƫС
ƫС
£®£¨Ìî¡°Æ«´ó¡¢Æ«Ð¡¡¢ÎÞÓ°Ï족£©
£¨4£©Èç¹ûÓÃ60mL0.50mol/LÑÎËáÓë50mL0.55mol/LNaOHÈÜÒº½øÐз´Ó¦£¬ÓëÉÏÊöʵÑéÏà±È£¬Ëù·Å³öµÄÈÈÁ¿
²»ÏàµÈ
²»ÏàµÈ
£¨Ìî¡°ÏàµÈ¡¢²»ÏàµÈ¡±£©£¬ËùÇóÖкÍÈÈ
ÏàµÈ
ÏàµÈ
£¨Ìî¡°ÏàµÈ¡¢²»ÏàµÈ¡±£©£®
¼òÊöÀíÓÉ
ÒòΪÖкÍÈÈÊÇÖ¸Ëá¸ú¼î·¢ÉúÖкͷ´Ó¦Éú³É1molH2OËù·Å³öµÄÈÈÁ¿£¬ÓëËá¼îµÄÓÃÁ¿ÎÞ¹Ø
ÒòΪÖкÍÈÈÊÇÖ¸Ëá¸ú¼î·¢ÉúÖкͷ´Ó¦Éú³É1molH2OËù·Å³öµÄÈÈÁ¿£¬ÓëËá¼îµÄÓÃÁ¿ÎÞ¹Ø
£®

²é¿´´ð°¸ºÍ½âÎö>>

¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º

£¨1£©¾­²â¶¨£¬20gÇâÆøÔÚÑõÆøÖÐȼÉÕÉú³ÉË®ÕôÆø£¬·ÅÈÈ2418.0kJ£¬Ð´³ö¸Ã·´Ó¦µÄÈÈ»¯Ñ§·½³Ìʽ
2H2£¨g£©+O2£¨g£©=2H2O£¨g£©¡÷H=-483.6KJ/mol
2H2£¨g£©+O2£¨g£©=2H2O£¨g£©¡÷H=-483.6KJ/mol
£»ÒÑÖª£º3Fe £¨s£©+2O2£¨g£©¨TFe3O4£¨s£©¡÷H=-1118.4kJ?mol-1£¬¸ù¾ÝÒÔÉÏÐÅÏ¢£¬Ôò·´Ó¦  3Fe£¨s£©+4H2O£¨g£©¨TFe3O4£¨s£©+4H2£¨g£©  µÄ¡÷H=
-151.2KJ/mol£»
-151.2KJ/mol£»

£¨2£©Ä³Ñ§ÉúʵÑéС×éÓÃ50mL0.50mol?L-1µÄÑÎËáÓë50mL0.50mol?L-1µÄNaOHÈÜÒºÔÚÓÒͼËùʾµÄ×°ÖÃÖнøÐÐÖкͷ´Ó¦·´Ó¦ÈȵIJⶨ
¢ÙͼÖÐ×°ÖÃȱÉÙµÄÒ»ÖÖÒÇÆ÷£¬¸ÃÒÇÆ÷Ãû³ÆΪ
»·Ðβ£Á§½Á°èÆ÷
»·Ðβ£Á§½Á°èÆ÷
£®
¢Ú½«·´Ó¦»ìºÏÒºµÄ
×î¸ß
×î¸ß
ζȼÇΪ·´Ó¦µÄÖÕֹζȣ®
¢ÛÏÂÁÐ˵·¨ÕýÈ·µÄÊÇ
A
A

A£®Ð¡ÉÕ±­ÄÚ²ÐÁôÓÐË®£¬»áʹ²âµÃµÄ·´Ó¦ÈÈÊýֵƫС
B£®¿ÉÓÃÏàͬŨ¶ÈºÍÌå»ýµÄ´×Ëá´úÌæÏ¡ÑÎËáÈÜÒº½øÐÐʵÑé
C£®ÉÕ±­¼äÌîÂúËéÖ½ÌõµÄ×÷ÓÃÊǹ̶¨Ð¡ÉÕ±­
D£®Ëá¡¢¼î»ìºÏʱ£¬Ó¦°ÑÁ¿Í²ÖеÄÈÜÒº»º»ºµ¹ÈëÉÕ±­µÄÈÜÒºÖУ¬ÒÔ·ÀÒºÌåÍ⽦£®

²é¿´´ð°¸ºÍ½âÎö>>

¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º

ÓÃ50mL0.50mol?L-1ÑÎËáÓë50mL0.55mol?L-1 NaOHÈÜÒºÔÚÈçͼËùʾµÄ×°ÖÃÖнøÐÐÖкͷ´Ó¦£®Í¨¹ý²â¶¨·´Ó¦¹ý³ÌÖÐËù·Å³öµÄÈÈÁ¿¿É¼ÆËãÖкÍÈÈ£®»Ø´ðÏÂÁÐÎÊÌ⣺
£¨1£©´ÓʵÑé×°ÖÃÉÏ¿´£¬Í¼ÖÐÉÐȱÉÙµÄÒ»ÖÖ²£Á§ÒÇÆ÷µÄÃû³ÆÊÇ
»·Ðβ£Á§½Á°è°ô
»·Ðβ£Á§½Á°è°ô
£®
£¨2£©ÉÕ±­¼äÌîÂúËéÖ½ÌõµÄ×÷ÓÃÊÇ
¼õÉÙÈÈÁ¿É¢Ê§
¼õÉÙÈÈÁ¿É¢Ê§
£®
£¨3£©´óÉÕ±­ÉÏÈç²»¸ÇÓ²Ö½°å£¬ÇóµÃµÄÖкÍÈÈÊýÖµ
ƫС
ƫС
£¨Ìî¡°Æ«´ó¡¢Æ«Ð¡¡¢ÎÞÓ°Ï족£©
£¨4£©Èç¹ûÓÃ60mL0.50mol?L-1ÑÎËáÓë50mL0.55mol?L-1 NaOHÈÜÒº½øÐз´Ó¦£¬ÓëÉÏÊöʵÑéÏà±È£¬Ëù·Å³öµÄÈÈÁ¿
²»ÏàµÈ
²»ÏàµÈ
£¨Ìî¡°ÏàµÈ¡¢²»ÏàµÈ¡±£©£¬ËùÇóÖкÍÈÈ
ÏàµÈ
ÏàµÈ
£¨Ìî¡°ÏàµÈ¡¢²»ÏàµÈ¡±£©£®

²é¿´´ð°¸ºÍ½âÎö>>

¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º

¾«Ó¢¼Ò½ÌÍø50mL0.50mol/LÑÎËáÓë50mL0.55mol/LNaOHÈÜÒºÔÚÈçͼËùʾµÄ×°ÖÃÖнøÐÐÖкͷ´Ó¦£®Í¨¹ý²â¶¨·´Ó¦¹ý³ÌÖÐËù·Å³öµÄÈÈÁ¿¿É¼ÆËãÖкÍÈÈ£®»Ø´ðÏÂÁÐÎÊÌ⣺
£¨1£©´ÓʵÑé×°Öÿ´£¬Í¼ÖÐÉÐȱÉÙµÄÒ»ÖÖ²£Á§ÓÃÆ·ÊÇ
 
£®
£¨2£©ÉÕ±­¼äÌîÂúËéÖ½ÌõµÄ×÷ÓÃÊÇ
 
£®
£¨3£©ÊµÑéÖиÄÓÃ60mL0.50mol/LÑÎËáÓë50mL0.55mol/LNaOHÈÜÒº½øÐз´Ó¦£¬ÓëÉÏÊöʵÑéÏà±È½Ï£¬Ëù·Å³öµÄÈÈÁ¿
 
£¨Ìî¡°ÏàµÈ¡±»ò¡°²»ÏàµÈ¡±£©£¬ÖкÍÈÈ
 
£¨Ìî¡°ÏàµÈ¡±»ò¡°²»ÏàµÈ¡±£©£¬ÀíÓÉÊÇ
 
£®
£¨4£©ÓÃ50mL0.50mol/LµÄ´×Ëá´úÌæÑÎËáÈÜÒº½øÐÐÉÏÊöʵÑ飬²âµÃÖкÍÈȵÄÊýÖµÓë57.3kJ/molÏà±È½Ï»á
 
£®£¨Ìî¡°Æ«´ó¡±¡¢¡°Æ«Ð¡¡±»ò¡°ÎÞÓ°Ï족£©£®
£¨5£©ÍêÕûµØ×öÒ»´ÎÕâÑùµÄʵÑ飬Ðè²â¶¨
 
´Îζȣ®
£¨6£©´óÉÕ±­ÉÏÈç²»¸ÇÓ²Ö½°å£¬ÇóµÃµÄÖкÍÈÈÊýÖµ
 
£¨Ìî¡°Æ«´ó¡±¡¢¡°Æ«Ð¡¡±»ò¡°ÎÞÓ°Ï족£©

²é¿´´ð°¸ºÍ½âÎö>>

ͬ²½Á·Ï°²á´ð°¸