ÌâÄ¿ÄÚÈÝ

Í­ÊÇÉúÎïÌå±ØÐèµÄ΢Á¿ÔªËØ£¬Ò²ÊÇÈËÀà×îÔçʹÓõĽðÊôÖ®Ò»¡£Í­µÄÉú²úºÍʹÓöԹú¼ÆÃñÉú¸÷¸ö·½Ã涼²úÉúÁËÉîÔ¶µÄÓ°Ïì¡£
£¨1£©Ð´³öÍ­ÓëÏ¡ÏõËá·´Ó¦µÄ»¯Ñ§·½³Ìʽ£º________________________________________________________________________________________________________________________________________________¡£
£¨2£©ÎªÁ˱£»¤»·¾³ºÍ½ÚÔ¼×ÊÔ´£¬Í¨³£ÏÈÓÃH2O2ºÍÏ¡ÁòËáµÄ»ìºÏÈÜÒºÈܳö·Ï¾ÉÓ¡Ë¢µç·°åÖеÄÍ­£¬×îÖÕʵÏÖÍ­µÄ»ØÊÕÀûÓá£Ð´³öÈܳöÍ­µÄÀë×Ó·½³Ìʽ£º________________________________________________________________________________________________________________________________________________¡£
£¨3£©¹¤ÒµÉÏÒÔ»ÆÍ­¿óΪԭÁÏ£¬²ÉÓûð·¨ÈÛÁ¶¹¤ÒÕÉú²úÍ­¡£¸Ã¹¤ÒÕµÄÖмä¹ý³Ì»á·¢Éú·´Ó¦£º2Cu2O£«Cu2S6Cu£«SO2¡ü£¬¸Ã·´Ó¦µÄÑõ»¯¼ÁÊÇ______________£»µ±Éú³É19.2 g Cuʱ£¬·´Ó¦ÖÐתÒƵĵç×ÓΪ__________mol¡£
£¨4£©Í­ÔÚ³±ÊªµÄ¿ÕÆøÖÐÄÜ·¢ÉúÎüÑõ¸¯Ê´¶øÉúÐ⣬ͭÐâµÄÖ÷Òª³É·ÖΪCu2£¨OH£©2CO3£¨¼îʽ̼ËáÍ­£©¡£ÊÔд³öÉÏÊö¹ý³ÌÖиº¼«µÄµç¼«·´Ó¦Ê½£º________________________________________________________________________________________________________________________________________________¡£
£¨5£©Ñо¿ÐÔѧϰС×éÓá°¼ä½ÓµâÁ¿·¨¡±²â¶¨Ä³ÊÔÑùCuSO4¡¤5H2O£¨²»º¬ÄÜÓëI£­·´Ó¦µÄÑõ»¯ÐÔÔÓÖÊ£©µÄº¬Á¿¡£È¡a gÊÔÑùÅä³É100 mLÈÜÒº£¬Ã¿´ÎÈ¡25.00 mL£¬µÎ¼ÓKIÈÜÒººóÓа×É«µâ»¯Îï³ÁµíÉú³É¡£Ð´³ö¸Ã·´Ó¦µÄÀë×Ó·½³Ìʽ£º___________________________¡£¼ÌÐøµÎ¼ÓKIÈÜÒºÖÁ³Áµí²»ÔÙ²úÉú£¬ÈÜÒºÖеÄI2ÓÃÁò´úÁòËáÄƱê×¼ÈÜÒºµÎ¶¨£¬·¢Éú·´Ó¦µÄ»¯Ñ§·½³ÌʽΪI2£«2Na2S2O3=2NaI£«Na2S4O6£¬Æ½¾ùÏûºÄc  mol/LµÄNa2S2O3ÈÜÒºV mL¡£ÔòÊÔÑùÖÐCuSO4¡¤5H2OµÄÖÊÁ¿·ÖÊýΪ______________¡£
£¨1£©3Cu£«8HNO3£¨Ï¡£©=3Cu£¨NO3£©2£«2NO¡ü£«4H2O
£¨2£©Cu£«H2O2£«2H£«=Cu2£«£«2H2O
£¨3£©Cu2OºÍCu2S¡¡0.3
£¨4£©2Cu£«4OH£­£«CO2£­4e£­=Cu2£¨OH£©2CO3£«H2O
£¨5£©2Cu2£«£«4I£­=2CuI¡ý£«I2¡¡¡Á100%
£¨2£©H2O2ÔÚËáÐÔÌõ¼þÏÂÄܽ«CuÑõ»¯ÎªCu2£«¡££¨3£©¸Ã·´Ó¦ÖÐCu2SºÍCu2OÖÐCuµÄ»¯ºÏ¼Û¾ùÓÉ£«1¼Û½µµÍΪCuÖеÄ0¼Û£¬Cu2SºÍCu2O¾ùΪÑõ»¯¼Á£¬ÁòÔªËØ»¯ºÏ¼ÛÓÉ£­2¼ÛÉý¸ßµ½£«4¼Û£¬×ªÒƵç×ÓÊýΪ6¸ö£¬¹ÊÉú³É0.3 mol CuʱתÒƵç×ÓΪ0.3 mol¡££¨4£©CuÔÚ¸º¼«Ê§È¥µç×ÓÐγÉCu2£«£¬Cu2£«ÔÙÓë¿ÕÆøÖеÄCO2¡¢H2O ½áºÏÉú³ÉÍ­Ðâ¡££¨5£©¸ù¾Ýµç×ÓÊغãµÃ¹Øϵʽ£ºCu2£«¡«I2¡«Na2S2O3£¬¹ÊÊÔÑùÖÐCuSO4¡¤5H2OµÄÖÊÁ¿·ÖÊýΪ¡Á100%£½¡Á100%¡£
Á·Ï°²áϵÁдð°¸
Ïà¹ØÌâÄ¿
µªÑõ»¯ÎïÊÇ´óÆøÎÛȾÎïÖ®Ò»£¬Ïû³ýµªÑõ»¯ÎïµÄ·½·¨ÓжàÖÖ¡£

£¨1£©ÀûÓü×Íé´ß»¯»¹Ô­µªÑõ»¯Îï¡£ÒÑÖª£º
CH4 (g)£«4NO2(g)£½4NO(g)£«CO2(g)£«2H2O(g)   ¡÷H £½£­574 kJ/mol
CH4(g)£«4NO(g) £½ 2N2(g)£«CO2(g)£«2H2O(g)  ¡÷H £½£­1160 kJ/mol
ÔòCH4 ½«NO2 »¹Ô­ÎªN2 µÄÈÈ»¯Ñ§·½³ÌʽΪ                               ¡£       
£¨2£©ÀûÓÃNH3´ß»¯»¹Ô­µªÑõ»¯ÎSCR¼¼Êõ)¡£¸Ã¼¼ÊõÊÇÄ¿Ç°Ó¦ÓÃ×î¹ã·ºµÄÑÌÆøµªÑõ»¯ÎïÍѳý¼¼Êõ¡£ ·´Ó¦µÄ»¯Ñ§·½³ÌʽΪ£º2NH3(g)£«NO(g)£«NO2(g)   2N2(g)£«3H2O(g)¡¡¦¤H < 0
ΪÌá¸ßµªÑõ»¯ÎïµÄת»¯ÂʿɲÉÈ¡µÄ´ëÊ©ÊÇ                 £¨Ð´³ö1Ìõ¼´¿É£©¡£
£¨3£©ÀûÓÃClO2Ñõ»¯µªÑõ»¯Îï¡£Æäת»¯Á÷³ÌÈçÏ£º
NONO2N2
ÒÑÖª·´Ó¦¢ñµÄ»¯Ñ§·½³ÌʽΪ2NO+ ClO2 + H2O £½ NO2 + HNO3 + HCl£¬Ôò·´Ó¦¢òµÄ»¯Ñ§·½³ÌʽÊÇ                £»ÈôÉú³É11.2 L N2£¨±ê×¼×´¿ö£©£¬ÔòÏûºÄClO2          g ¡£
£¨4£©ÀûÓÃCO´ß»¯»¹Ô­µªÑõ»¯ÎïÒ²¿ÉÒÔ´ïµ½Ïû³ýÎÛȾµÄÄ¿µÄ¡£
ÒÑÖªÖÊÁ¿Ò»¶¨Ê±£¬Ôö´ó¹ÌÌå´ß»¯¼ÁµÄ±íÃæ»ý¿ÉÌá¸ß»¯Ñ§·´Ó¦ËÙÂÊ¡£ÈçͼÊÇ·´Ó¦2NO(g) + 2CO(g)2CO2(g)+ N2(g) ÖÐNOµÄŨ¶ÈËæζÈ(T)¡¢µÈÖÊÁ¿´ß»¯¼Á±íÃæ»ý(S)ºÍʱ¼ä(t)µÄ±ä»¯ÇúÏß¡£¾Ý´ËÅжϸ÷´Ó¦µÄ¡÷H     0 (Ìî¡°£¾¡±¡¢¡°£¼¡±»ò¡°ÎÞ·¨È·¶¨¡±)£»´ß»¯¼Á±íÃæ»ýS1     S2 (Ìî¡°£¾¡±¡¢¡°£¼¡±»ò¡°ÎÞ·¨È·¶¨¡±)¡£

Î¥·¨ºÍ²»Á¼ÐÅÏ¢¾Ù±¨µç»°£º027-86699610 ¾Ù±¨ÓÊÏ䣺58377363@163.com

¾«Ó¢¼Ò½ÌÍø