ijһÆøÌå»ìºÍÎïÖк¬ÓÐC02¡¢CO¡¢N2ºÍË®ÕôÆøËÄÖÖÆøÌ壮ÏÖ½«Æä·Ö±ðͨ¹ýÈçÏÂÊÔ¼Á£¨¾ù×ãÁ¿£©£¬ÇëÅжÏËùµÃÆøÌåµÄ×é³ÉÇé¿ö£¨¼ÙÉèÿ²½·´Ó¦¶¼½øÐÐÍêÈ«£©£®£¨1£©ÒÀ´Îͨ¹ýNa0HÈÜÒº¡¢Å¨H2SO4£¬×îºóµÃµ½µÄÆøÌåÓУº______£® £¨Ìѧʽ£©£»Ð´³ö·¢Éú·´Ó¦µÄ»¯Ñ§·½³Ìʽ______£®
£¨2£©ÒÀ´Îͨ¹ý×ÆÈȵÄÑõ»¯Í­·ÛÄ©¡¢Å¨H2SO4£¬×îºóµÃµ½µÄÆøÌåÓУº______£®£¨Ìѧʽ£©£»Ð´³ö·¢Éú·´Ó¦ÖÐÉú³ÉÎïµÄ»¯Ñ§Ê½______£®
£¨3£©ÒÀ´Îͨ¹ý×ÆÈȵÄÑõ»¯Í­·ÛÄ©¡¢NaOHÈÜÒº¡¢Å¨H2SO4£¬×îºóµÃµ½µÄÆøÌåÓУº______£®£¨Ìѧʽ£©£®
¡¾´ð°¸¡¿·ÖÎö£º¸ù¾ÝNaOHÈÜÒº¡¢Å¨H2SO4¡¢×ÆÈȵÄÑõ»¯Í­µÄÌØÐÔÀ´¿¼ÂÇ£¬ÇâÑõ»¯ÄÆÈÜÒºÄÜÎüÊÕËáÐÔÆøÌ壬ŨÁòËá¾ßÓÐÎüË®ÐÔ£¬³ãÈȵÄÑõ»¯Í­ÄÜÓ뻹ԭÐÔÆøÌå·´Ó¦£®
½â´ð£º½â£º£¨1£©Í¨¹ýNaOHÈÜÒº°Ñ¶þÑõ»¯Ì¼·´Ó¦µôÁË£¬Í¨¹ýŨH2SO4°ÑË®ÕôÆøÎüÊÕÁË£¬×îºóµÃµ½µÄÆøÌåÓÐÒ»Ñõ»¯Ì¼ºÍµªÆø£»
£¨2£©Í¨¹ý³ãÈȵÄÑõ»¯Í­Ê±Ò»Ñõ»¯Ì¼ÓëÆä·´Ó¦£¬ÎüÊÕÁËÒ»Ñõ»¯Ì¼£¬Éú³ÉÁ˶þÑõ»¯Ì¼£»È»ºóͨ¹ýŨH2SO4°ÑË®ÕôÆøÎüÊÕÁË×îºóµÃµ½µÄÆøÌåÓжþÑõ»¯Ì¼ºÍµªÆø£®
£¨3£©Í¨¹ý³ãÈȵÄÑõ»¯Í­Ê±Ò»Ñõ»¯Ì¼ÓëÆä·´Ó¦£¬ÎüÊÕÁËÒ»Ñõ»¯Ì¼£¬Éú³ÉÁ˶þÑõ»¯Ì¼£»Í¨¹ýNaOHÈÜÒº°Ñ¶þÑõ»¯Ì¼·´Ó¦µôÁË£¬Í¨¹ýŨH2SO4°ÑË®ÕôÆøÎüÊÕÁË£¬×îºóµÃµ½µÄÆøÌåΪµªÆø£»
¹Ê´ð°¸Îª£º£¨1£©CO¡¢N2    C02+2NaOH¨TNa2CO3+H2O
£¨2£©CO2¡¢N2   CO2¡¢Cu
£¨3£©N2
µãÆÀ£ºÍ¨¹ý»Ø´ð±¾Ìâ¿ÉÖªNaOHÈÜÒºÄܳýÈ¥¶þÑõ»¯Ì¼¡¢Å¨H2SO4³ýȥˮ¡¢³ãÈȵÄÑõ»¯Í­·ÛÄ©ÄܳýÈ¥Ò»Ñõ»¯Ì¼£®
Á·Ï°²áϵÁдð°¸
Ïà¹ØÏ°Ìâ

¿ÆÄ¿£º³õÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º

£¨2005?¸·Ð£©Ä³Ò»ÆøÌå»ìºÍÎïÖк¬ÓÐC02¡¢CO¡¢N2ºÍË®ÕôÆøËÄÖÖÆøÌ壮ÏÖ½«Æä·Ö±ðͨ¹ýÈçÏÂÊÔ¼Á£¨¾ù×ãÁ¿£©£¬ÇëÅжÏËùµÃÆøÌåµÄ×é³ÉÇé¿ö£¨¼ÙÉèÿ²½·´Ó¦¶¼½øÐÐÍêÈ«£©£®£¨1£©ÒÀ´Îͨ¹ýNa0HÈÜÒº¡¢Å¨H2SO4£¬×îºóµÃµ½µÄÆøÌåÓУº
CO¡¢N2
CO¡¢N2
£® £¨Ìѧʽ£©£»Ð´³ö·¢Éú·´Ó¦µÄ»¯Ñ§·½³Ìʽ
C02+2NaOH¨TNa2CO3+H2O
C02+2NaOH¨TNa2CO3+H2O
£®
£¨2£©ÒÀ´Îͨ¹ý×ÆÈȵÄÑõ»¯Í­·ÛÄ©¡¢Å¨H2SO4£¬×îºóµÃµ½µÄÆøÌåÓУº
CO2¡¢N2
CO2¡¢N2
£®£¨Ìѧʽ£©£»Ð´³ö·¢Éú·´Ó¦ÖÐÉú³ÉÎïµÄ»¯Ñ§Ê½
CO2¡¢Cu
CO2¡¢Cu
£®
£¨3£©ÒÀ´Îͨ¹ý×ÆÈȵÄÑõ»¯Í­·ÛÄ©¡¢NaOHÈÜÒº¡¢Å¨H2SO4£¬×îºóµÃµ½µÄÆøÌåÓУº
N2
N2
£®£¨Ìѧʽ£©£®

²é¿´´ð°¸ºÍ½âÎö>>

¿ÆÄ¿£º³õÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º

£¨2012?¹ðƽÊÐÈýÄ££©ÔÚ¿ªÕ¹¸´·Ö½â·´Ó¦Ñо¿ÐÔѧϰÖУ¬Ä³Ñ§Ï°Ð¡×éÉè¼ÆÁËÈçÏÂѧϰ˼·£º
[Á·Ï°×ܽá]ÏÂÁи÷×éÎïÖʼä¾ùÄÜ·¢Éú·´Ó¦£¬Çëд³ö¢Û·¢Éú·´Ó¦µÄ»¯Ñ§·½³Ìʽ£®
¢ÙÏ¡ÑÎËáÓëÇâÑõ»¯ÄÆÈÜÒº£»¢Ú̼ËáÄÆÈÜÒºÓëÏ¡ÁòË᣻
¢Û̼ËáÄÆÈÜÒºÓëÂÈ»¯±µÈÜÒº
BaCl2+Na2CO3=BaCO3¡ý+2NaCl
BaCl2+Na2CO3=BaCO3¡ý+2NaCl
£®
[̽¾¿ÌÖÂÛ]ÉÏÊö·´Ó¦ÎªÊ²Ã´Äܹ»·¢Éú£¿ÕâÊÇÒòΪÕâЩ·´Ó¦ÎïÖк¬ÓÐÌØÊâµÄÒõ¡¢ÑôÀë×Ó£¬Èç¢ÙÖÐÓÐH+ºÍOH-£¬¢ÚÖÐÓÐH+ºÍCO32-£¬¢ÛÖÐÓÐ
Ba2+ºÍCO32-
Ba2+ºÍCO32-
£®
[¹¹½¨ÍøÂç]°´ÕÕÒ»¶¨µÄ˳ÐòÅÅÁÐÕâЩÀë×Ó£¬¾Í¿ÉÒÔÐγÉÒ»ÖÖÍøÂçÐÎʽ£®ÔÚÍøÂçÖУ¬ÓöÌÏßÏàÁ¬µÄÕâЩÒõ¡¢ÑôÀë×ÓÄÜÁ½Á½½áºÏÉú³É³Áµí»òÆøÌå»òË®£®ÏÖÓÐCa2+¡¢SO42-¡¢NH4+£¬Ç뽫ËüÃÇÌîÈëÏÂÃæºÏÊʵġ°
NH4+£»Ca2+£»SO42-
NH4+£»Ca2+£»SO42-
¡±ÖУ¬Ê¹ÆäÐγÉÒ»¸ö¸üΪÍêÕûµÄ¸´·Ö½â·´Ó¦µÄÍøÂ磮
[·´Ë¼ÍØÕ¹]£¨1 £©Í¨¹ýÐγɵÄÍøÂ磬¿ÉÒÔÅжϻ¯ºÏÎï¼äÄÜ·ñ¹²´æ¡¢½øÐÐÎïÖʵļø±ð¡¢ÓÃÓÚÎïÖʵijýÔӵȣ®ÂÈ»¯ÄÆÖлìÓÐ̼ËáÄÆ£¬¿ÉÒÔ¼ÓÈë
ÂÈ»¯¸Æ
ÂÈ»¯¸Æ
£¨Ìîд»¯Ñ§Ãû³Æ£©³ýȥ̼ËáÄÆ
£¨2£©Çë¾Ù³öÒ»×éÓÉÑκͼî×é³ÉµÄÄÜ·¢Éú¸´·Ö½â·´Ó¦µÄÈÜÒº×飺
MgCl2+2NaOH=Mg£¨OH£©2¡ý+2NaCl
MgCl2+2NaOH=Mg£¨OH£©2¡ý+2NaCl
£®

²é¿´´ð°¸ºÍ½âÎö>>

¿ÆÄ¿£º³õÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º½â´ðÌâ

ijһÆøÌå»ìºÍÎïÖк¬ÓÐC02¡¢CO¡¢N2ºÍË®ÕôÆøËÄÖÖÆøÌ壮ÏÖ½«Æä·Ö±ðͨ¹ýÈçÏÂÊÔ¼Á£¨¾ù×ãÁ¿£©£¬ÇëÅжÏËùµÃÆøÌåµÄ×é³ÉÇé¿ö£¨¼ÙÉèÿ²½·´Ó¦¶¼½øÐÐÍêÈ«£©£®£¨1£©ÒÀ´Îͨ¹ýNa0HÈÜÒº¡¢Å¨H2SO4£¬×îºóµÃµ½µÄÆøÌåÓУº________£® £¨Ìѧʽ£©£»Ð´³ö·¢Éú·´Ó¦µÄ»¯Ñ§·½³Ìʽ________£®
£¨2£©ÒÀ´Îͨ¹ý×ÆÈȵÄÑõ»¯Í­·ÛÄ©¡¢Å¨H2SO4£¬×îºóµÃµ½µÄÆøÌåÓУº________£®£¨Ìѧʽ£©£»Ð´³ö·¢Éú·´Ó¦ÖÐÉú³ÉÎïµÄ»¯Ñ§Ê½________£®
£¨3£©ÒÀ´Îͨ¹ý×ÆÈȵÄÑõ»¯Í­·ÛÄ©¡¢NaOHÈÜÒº¡¢Å¨H2SO4£¬×îºóµÃµ½µÄÆøÌåÓУº________£®£¨Ìѧʽ£©£®

²é¿´´ð°¸ºÍ½âÎö>>

¿ÆÄ¿£º³õÖл¯Ñ§ À´Ô´£º¸·Ð ÌâÐÍ£ºÎÊ´ðÌâ

ijһÆøÌå»ìºÍÎïÖк¬ÓÐC02¡¢CO¡¢N2ºÍË®ÕôÆøËÄÖÖÆøÌ壮ÏÖ½«Æä·Ö±ðͨ¹ýÈçÏÂÊÔ¼Á£¨¾ù×ãÁ¿£©£¬ÇëÅжÏËùµÃÆøÌåµÄ×é³ÉÇé¿ö£¨¼ÙÉèÿ²½·´Ó¦¶¼½øÐÐÍêÈ«£©£®£¨1£©ÒÀ´Îͨ¹ýNa0HÈÜÒº¡¢Å¨H2SO4£¬×îºóµÃµ½µÄÆøÌåÓУº______£® £¨Ìѧʽ£©£»Ð´³ö·¢Éú·´Ó¦µÄ»¯Ñ§·½³Ìʽ______£®
£¨2£©ÒÀ´Îͨ¹ý×ÆÈȵÄÑõ»¯Í­·ÛÄ©¡¢Å¨H2SO4£¬×îºóµÃµ½µÄÆøÌåÓУº______£®£¨Ìѧʽ£©£»Ð´³ö·¢Éú·´Ó¦ÖÐÉú³ÉÎïµÄ»¯Ñ§Ê½______£®
£¨3£©ÒÀ´Îͨ¹ý×ÆÈȵÄÑõ»¯Í­·ÛÄ©¡¢NaOHÈÜÒº¡¢Å¨H2SO4£¬×îºóµÃµ½µÄÆøÌåÓУº______£®£¨Ìѧʽ£©£®

²é¿´´ð°¸ºÍ½âÎö>>

ͬ²½Á·Ï°²á´ð°¸