ÌâÄ¿ÄÚÈÝ
´ÓúºÍʯÓÍÖпÉÒÔÌáÁ¶³ö»¯¹¤ÔÁÏAºÍB£¬AÊÇÒ»ÖÖ¹ûʵ´ßÊì¼Á£¬ËüµÄ²úÁ¿ÓÃÀ´ºâÁ¿Ò»¸ö¹ú¼ÒµÄʯÓÍ»¯¹¤·¢Õ¹Ë®Æ½£®BÊÇÒ»ÖÖ±ÈË®ÇáµÄÓÍ״Һ̬Ìþ£¬0.1mol¸ÃÌþÔÚ×ãÁ¿µÄÑõÆøÖÐÍêȫȼÉÕ£¬Éú³É0.6molCO2ºÍ0.3molË®£»»Ø´ðÏÂÁÐÎÊÌ⣺
£¨1£©AµÄµç×Óʽ £¬BµÄ½á¹¹¼òʽ »ò£®
£¨2£©AºÍBÖУ¬ÄÜʹäåµÄËÄÂÈ»¯Ì¼ÈÜÒºÍÊÉ«µÄ»¯Ñ§·´Ó¦·½³Ìʽ£º £¬·´Ó¦ÀàÐÍ£º
£¨3£©BÓëŨÁòËáºÍŨÏõËáÔÚ50¡«60¡æ·´Ó¦µÄ»¯Ñ§·´Ó¦·½³Ìʽ£º £¬
£¨4£©µÈÖÊÁ¿µÄA¡¢BÍêȫȼÉÕʱÏûºÄO2µÄÎïÖʵÄÁ¿ £¨Ìî¡°A£¾B¡±¡¢¡°A£¼B¡±»ò¡°A=B¡±£©£®
£¨5£©BÓëH2¼Ó³É·´Ó¦µÄ²úÎïµÄ¶þÂÈ´úÎïµÄ½á¹¹¼òʽ£º¡¢¡¢¡¢£®
¿¼µã£º ÓйØÓлúÎï·Ö×Óʽȷ¶¨µÄ¼ÆË㣮
רÌ⣺ Ìþ¼°ÆäÑÜÉúÎïµÄȼÉÕ¹æÂÉ£®
·ÖÎö£º £¨1£©AÊÇÒ»ÖÖ¹ûʵ´ßÊì¼Á£¬ËüµÄ²úÁ¿ÓÃÀ´ºâÁ¿Ò»¸ö¹ú¼ÒµÄʯÓÍ»¯¹¤·¢Õ¹Ë®Æ½£¬ÔòAΪCH2=CH2£¬BÊÇÒ»ÖÖ±ÈË®ÇáµÄÓÍ״Һ̬Ìþ£¬0.1mol¸ÃÌþÔÚ×ãÁ¿µÄÑõÆøÖÐÍêȫȼÉÕ£¬Éú³É0.6mol CO2ºÍ0.3molË®£¬¸ÃÌþÖÐN£¨C£©=
=6¡¢N£¨H£©=
=6£¬¹ÊBµÄ·Ö×ÓʽΪC6H6£¬BµÄÏà¶Ô·Ö×ÓÖÊÁ¿Îª78£¬Ôò12n+2n﹣6=78£¬½âµÃn=6£¬ËùÒÔBΪ±½£¬
£¨2£©ÖÐÓëAÏàÁÚµÄͬϵÎïCʹäåµÄËÄÂÈ»¯Ì¼ÈÜÒºÍÊÉ«£¬ÔòCΪCH2=CH﹣CH3£»
£¨3£©±½ÓëŨÏõËáÔÚŨÁòËá¡¢¼ÓÈÈÌõ¼þÏ·¢ÉúÏõ»¯·´Ó¦Éú³ÉÏõ»ù±½£»
£¨4£©µÈÖÊÁ¿µÄÌþÍêȫȼÉÕ£¬ÌþÖÐHÔªËØÖÊÁ¿·ÖÊýÔ½´ó£¬ÏûºÄÑõÆøÔ½¶à£»
£¨5£©±½ÓëÇâÆø·¢Éú¼Ó³É·´Ó¦Éú³É»·¼ºÍ飬»·¼ºÍéµÄ¶þÂÈ´úÎï·ÖΪ£ºÁ½¸öCl̼ͬ¼°´¦ÓÚ»·µÄÁÚ¡¢¼ä¡¢¶Ô̼ËÄÖֽṹ£®
½â´ð£º ½â£º£¨1£©AÊÇÒ»ÖÖ¹ûʵ´ßÊì¼Á£¬ËüµÄ²úÁ¿ÓÃÀ´ºâÁ¿Ò»¸ö¹ú¼ÒµÄʯÓÍ»¯¹¤·¢Õ¹Ë®Æ½£¬ÔòAΪCH2=CH2£¬BÊÇÒ»ÖÖ±ÈË®ÇáµÄÓÍ״Һ̬Ìþ£¬0.1mol¸ÃÌþÔÚ×ãÁ¿µÄÑõÆøÖÐÍêȫȼÉÕ£¬Éú³É0.6mol CO2ºÍ0.3molË®£¬¸ÃÌþÖÐN£¨C£©=
=6¡¢N£¨H£©=
=6£¬¹ÊBµÄ·Ö×ÓʽΪC6H6£¬BµÄÏà¶Ô·Ö×ÓÖÊÁ¿Îª78£¬Ôò12n+2n﹣6=78£¬½âµÃn=6£¬ËùÒÔBΪ±½£¬Ôò£ºAµÄµç×ÓʽΪ
£¬BµÄ½á¹¹¼òʽΪ£º
»ò
£¬
¹Ê´ð°¸Îª£º
£»
»ò
£»
£¨2£©AÏàÁÚµÄͬϵÎïCΪCH2=CHCH3£¬Ê¹äåË®ÍÊÉ«·¢Éú¼Ó³É·´Ó¦£¬¸Ã·´Ó¦Îª£ºCH2=CHCH3+Br2¡úCH2BrCHBrCH3£¬
¹Ê´ð°¸Îª£ºCH2=CHCH3+Br2¡úCH2BrCHBrCH3£»¼Ó³É·´Ó¦£»
£¨3£©BÓëŨH2SO4ÓëŨHNO3ÔÚ50﹣60¡æ·´Ó¦Éú³ÉÏõ»ù±½£¬·´Ó¦µÄ»¯Ñ§·´Ó¦·½³ÌΪ£º
£¬
¹Ê´ð°¸Îª£º
£»
£¨4£©ÒÒÏ©ÖÐHÔªËØÖÊÁ¿·ÖÊý±È±½ÖÐHÔªËØÖÊÁ¿·ÖÊý´ó£¬¹ÊÏàͬÖÊÁ¿µÄÒÒÏ©¡¢±½È¼ÉÕ£¬ÒÒÏ©ÏûºÄµÄÑõÆø¸ü¶à£¬¼´µÈÖÊÁ¿µÄA¡¢BÍêȫȼÉÕʱÏûºÄO2µÄÎïÖʵÄÁ¿A£¾B£¬
¹Ê´ð°¸Îª£ºA£¾B£»
£¨5£©±½ÓëÇâÆø¼Ó³ÉÉú³É»·¼ºÍé
£¬»·¼ºÍéµÄ¶þÂÈ´úÎïÓУº
¡¢
¡¢
¡¢
£¬
¹Ê´ð°¸Îª£º
¡¢
¡¢
¡¢
£®
µãÆÀ£º ±¾Ì⿼²éÓлúÎï·Ö×Óʽ¡¢½á¹¹¼òʽµÄÈ·¶¨£¬ÌâÄ¿ÄѶÈÖеȣ¬²àÖØ¶Ô»ù´¡ÖªÊ¶µÄ¿¼²é£¬×¢ÒâÊìÁ·ÕÆÎÕ³£¼ûÓлúÎï½á¹¹ÓëÐÔÖÊ£¬Ã÷È·µÈÖÊÁ¿µÄÌþÖÐHµÄÖÊÁ¿·ÖÊýÔ½´ó£¬ÍêȫȼÉÕÏûºÄÑõÆøÔ½´ó£®