ÌâÄ¿ÄÚÈÝ
£¨2009?»ÆÆÖÇø¶þÄ££©ÈçͼÖÐA¡¢B¡¢C·Ö±ðÊÇij¿ÎÍâ»î¶¯Ð¡×éÉè¼ÆµÄÖÆÈ¡°±Æø²¢½øÐÐÅçȪʵÑéµÄÈý×é×°ÖÃʾÒâͼ£¬ÖÆÈ¡NH3Ñ¡ÓÃÊÔ¼ÁÈçͼËùʾ£¬»Ø´ðÏÂÁÐÎÊÌ⣺
£¨1£©ÓÃAͼËùʾµÄ×°ÖÿÉÖƱ¸¸ÉÔïµÄNH3
¢Ù·´Ó¦µÄ»¯Ñ§·½³ÌʽΪ£º
¢Ú¸ÉÔï¹ÜÖиÉÔï¼ÁÄÜ·ñ¸ÄÓÃÎÞË®CaCl2
£¨2£©ÓÃBͼËùʾµÄ×°ÖÿɿìËÙÖÆÈ¡½Ï´óÁ¿NH3Äâ×÷ÅçȪʵÑ飮¸ù¾ÝBͼËùʾµÄ×°Öü°ÊÔ¼Á»Ø´ðÏÂÁÐÎÊÌ⣺
¢ÙÓû¯Ñ§·½³Ìʽ±íʾŨ°±Ë®µÎÈëCaOÖÐÓдóÁ¿NH3ÒݳöµÄ¹ý³Ì£º
¢Ú¼ìÑéNH3ÊÇ·ñÊÕ¼¯ÂúµÄʵÑé·½·¨ÊÇ£º
£¨3£©ÓÃCͼËùʾµÄ×°ÖýøÐÐÅçȪʵÑ飬Éϲ¿ÉÕÆ¿ÒѳäÂú¸ÉÔï°±Æø£¬Òý·¢Ë®ÉÏÅçµÄ²Ù×÷ÊÇ
Èô²âµÃC×°ÖÃÉÕÆ¿ÖÐNH3µÄÖÊÁ¿ÊÇÏàͬ״¿öÏÂÏàͬÌå»ýH2ÖÊÁ¿µÄ10±¶£¬ÔòÅçȪʵÑéÍê±Ïºó£¬ÉÕÆ¿ÖÐË®¿ÉÉÏÉýÖÁÉÕÆ¿ÈÝ»ýµÄ
£¨Ìî¡°¼¸·ÖÖ®¼¸¡±£©£®
£¨1£©ÓÃAͼËùʾµÄ×°ÖÿÉÖƱ¸¸ÉÔïµÄNH3
¢Ù·´Ó¦µÄ»¯Ñ§·½³ÌʽΪ£º
2NH4Cl+Ca£¨OH£©2
CaCl2+2NH3¡ü+2H2O
| ||
2NH4Cl+Ca£¨OH£©2
CaCl2+2NH3¡ü+2H2O
£®×°ÖÃÖÐÊÕ¼¯NH3µÄÊԹܿڷÅÖÃÃÞ»¨ÍŵÄ×÷ÓÃÊÇ
| ||
·ÀÖ¹¿ÕÆø¶ÔÁ÷£¬Ê¹NH3³äÂúÊÔ¹Ü
·ÀÖ¹¿ÕÆø¶ÔÁ÷£¬Ê¹NH3³äÂúÊÔ¹Ü
£®¢Ú¸ÉÔï¹ÜÖиÉÔï¼ÁÄÜ·ñ¸ÄÓÃÎÞË®CaCl2
²»ÄÜ
²»ÄÜ
£¬ÀíÓÉÊÇCaCl2+8NH3=CaCl2?8NH3
CaCl2+8NH3=CaCl2?8NH3
£®£¨2£©ÓÃBͼËùʾµÄ×°ÖÿɿìËÙÖÆÈ¡½Ï´óÁ¿NH3Äâ×÷ÅçȪʵÑ飮¸ù¾ÝBͼËùʾµÄ×°Öü°ÊÔ¼Á»Ø´ðÏÂÁÐÎÊÌ⣺
¢ÙÓû¯Ñ§·½³Ìʽ±íʾŨ°±Ë®µÎÈëCaOÖÐÓдóÁ¿NH3ÒݳöµÄ¹ý³Ì£º
CaO+H2O=Ca£¨OH£©2£¬·´Ó¦·ÅÈÈ£¬NH3?H2O
NH3¡ü+H2O
| ||
CaO+H2O=Ca£¨OH£©2£¬·´Ó¦·ÅÈÈ£¬NH3?H2O
NH3¡ü+H2O
| ||
¢Ú¼ìÑéNH3ÊÇ·ñÊÕ¼¯ÂúµÄʵÑé·½·¨ÊÇ£º
Óò£Á§°ôպȡÉÙÐíŨÑÎËá¿¿½üÊÕ¼¯NH3µÄÊԹܿڣ¬Èô²úÉú°×ÑÌ£¬ËµÃ÷ÊÔ¹ÜÒÑÊÕ¼¯ÂúNH3£¬·´Ö®£¬ÔòûÓÐÊÕ¼¯Âú£®
»òÓÃʪÈóµÄºìɫʯÈïÊÔÖ½¿¿½üÊÕ¼¯NH3µÄÊԹܿڣ¬ÈôʪÈóµÄºìɫʯÈïÊÔÖ½±äÀ¶£¬Ôò˵Ã÷NH3ÒÑÊÕ¼¯Âú£¬·´Ö®£¬ÔòûÓÐÊÕ¼¯Âú£®
»òÓÃʪÈóµÄºìɫʯÈïÊÔÖ½¿¿½üÊÕ¼¯NH3µÄÊԹܿڣ¬ÈôʪÈóµÄºìɫʯÈïÊÔÖ½±äÀ¶£¬Ôò˵Ã÷NH3ÒÑÊÕ¼¯Âú£¬·´Ö®£¬ÔòûÓÐÊÕ¼¯Âú£®
Óò£Á§°ôպȡÉÙÐíŨÑÎËá¿¿½üÊÕ¼¯NH3µÄÊԹܿڣ¬Èô²úÉú°×ÑÌ£¬ËµÃ÷ÊÔ¹ÜÒÑÊÕ¼¯ÂúNH3£¬·´Ö®£¬ÔòûÓÐÊÕ¼¯Âú£®
»òÓÃʪÈóµÄºìɫʯÈïÊÔÖ½¿¿½üÊÕ¼¯NH3µÄÊԹܿڣ¬ÈôʪÈóµÄºìɫʯÈïÊÔÖ½±äÀ¶£¬Ôò˵Ã÷NH3ÒÑÊÕ¼¯Âú£¬·´Ö®£¬ÔòûÓÐÊÕ¼¯Âú£®
£®»òÓÃʪÈóµÄºìɫʯÈïÊÔÖ½¿¿½üÊÕ¼¯NH3µÄÊԹܿڣ¬ÈôʪÈóµÄºìɫʯÈïÊÔÖ½±äÀ¶£¬Ôò˵Ã÷NH3ÒÑÊÕ¼¯Âú£¬·´Ö®£¬ÔòûÓÐÊÕ¼¯Âú£®
£¨3£©ÓÃCͼËùʾµÄ×°ÖýøÐÐÅçȪʵÑ飬Éϲ¿ÉÕÆ¿ÒѳäÂú¸ÉÔï°±Æø£¬Òý·¢Ë®ÉÏÅçµÄ²Ù×÷ÊÇ
´ò¿ªÖ¹Ë®¼Ð¼·³ö½ºÍ·µÎ¹ÜÖеÄË®
´ò¿ªÖ¹Ë®¼Ð¼·³ö½ºÍ·µÎ¹ÜÖеÄË®
£¬¸ÃʵÑéµÄÔÀíÊÇ£ºNH3¼«Ò×ÈܽâÓÚË®£¬ÖÂʹÉÕÆ¿ÄÚѹǿѸËÙ¼õС
NH3¼«Ò×ÈܽâÓÚË®£¬ÖÂʹÉÕÆ¿ÄÚѹǿѸËÙ¼õС
£®Èô²âµÃC×°ÖÃÉÕÆ¿ÖÐNH3µÄÖÊÁ¿ÊÇÏàͬ״¿öÏÂÏàͬÌå»ýH2ÖÊÁ¿µÄ10±¶£¬ÔòÅçȪʵÑéÍê±Ïºó£¬ÉÕÆ¿ÖÐË®¿ÉÉÏÉýÖÁÉÕÆ¿ÈÝ»ýµÄ
| 3 |
| 4 |
| 3 |
| 4 |
·ÖÎö£º£¨1£©¢ÙʵÑéÊÒÓÃÂÈ»¯ï§ºÍÇâÑõ»¯¸Æ¼ÓÈÈÖÆÈ¡°±Æø£»ÃÞ»¨ÓзÀÖ¹¿ÕÆø¶ÔÁ÷µÄ×÷Óã»
¢Ú¸ù¾ÝÂÈ»¯¸ÆºÍ°±ÆøÄÜ·ñ·´Ó¦Åжϣ»
£¨2£©¢ÙÑõ»¯¸ÆºÍË®·´Ó¦·Å³öÈÈÁ¿£¬ÔڽϸßζÈÏÂÄÜ´Ù½ø°±Ë®µÄ·Ö½â£»
¢Ú¸ù¾Ý°±ÆøµÄÐÔÖʼìÑ飬°±ÆøÄÜʹʪÈóµÄºìɫʯÈïÊÔÖ½±äÀ¶£»
£¨3£©°±ÆøÊǼ«Ò×ÈÜÓÚË®µÄÆøÌ壬ʹÉÕÆ¿ÄÚ²úÉúѹǿ²îµ¼ÖÂÈÜÒº½øÈëÉÕÆ¿£¬ÀûÓÃÊ®×ÖÏà³ý·¨¼ÆËã¿ÕÆøºÍ°±ÆøµÄÌå»ý±È£¬¼ÆËãÉÕÆ¿ÖÐË®¿ÉÉÏÉýÖÁÉÕÆ¿ÖеÄÈÝ»ý£®
¢Ú¸ù¾ÝÂÈ»¯¸ÆºÍ°±ÆøÄÜ·ñ·´Ó¦Åжϣ»
£¨2£©¢ÙÑõ»¯¸ÆºÍË®·´Ó¦·Å³öÈÈÁ¿£¬ÔڽϸßζÈÏÂÄÜ´Ù½ø°±Ë®µÄ·Ö½â£»
¢Ú¸ù¾Ý°±ÆøµÄÐÔÖʼìÑ飬°±ÆøÄÜʹʪÈóµÄºìɫʯÈïÊÔÖ½±äÀ¶£»
£¨3£©°±ÆøÊǼ«Ò×ÈÜÓÚË®µÄÆøÌ壬ʹÉÕÆ¿ÄÚ²úÉúѹǿ²îµ¼ÖÂÈÜÒº½øÈëÉÕÆ¿£¬ÀûÓÃÊ®×ÖÏà³ý·¨¼ÆËã¿ÕÆøºÍ°±ÆøµÄÌå»ý±È£¬¼ÆËãÉÕÆ¿ÖÐË®¿ÉÉÏÉýÖÁÉÕÆ¿ÖеÄÈÝ»ý£®
½â´ð£º½â£º£¨1£©¢ÙÔÚ¼ÓÈÈÌõ¼þÏ£¬ÂÈ»¯ï§ºÍÇâÑõ»¯¸Æ·´Ó¦Éú³ÉÂÈ»¯¸Æ¡¢Ë®ºÍ°±Æø£»°±ÆøÊÇÆøÌ壬ÈÝÒ׺ͿÕÆø²úÉú¶ÔÁ÷£¬ËùÒÔÃÞ»¨µÄ×÷ÓÃÊÇ·ÀÖ¹¿ÕÆø¶ÔÁ÷£¬Ê¹NH3³äÂúÊԹܣ¬
¹Ê´ð°¸Îª£º2NH4Cl+Ca£¨OH£©2
CaCl2+2NH3¡ü+2H2O£»·ÀÖ¹¿ÕÆø¶ÔÁ÷£¬Ê¹NH3³äÂúÊԹܣ»
¢ÚÂÈ»¯ï§ºÍ°±ÆøÄÜ·¢Éú·´Ó¦CaCl2+8NH3=CaCl2?8NH3£¬ËùÒÔ¸ÉÔï¹ÜÖиÉÔï¼Á²»ÄܸÄÓÃÎÞË®CaCl2£¬
¹Ê´ð°¸Îª£º²»ÄÜ£»CaCl2+8NH3=CaCl2?8NH3£»
£¨2£©¢ÙÑõ»¯¸ÆºÍË®·´Ó¦Éú³ÉÇâÑõ»¯¸Æ£¬Çҷųö´óÁ¿ÈÈÁ¿£¬Ñõ»¯¸ÆºÍË®·Å³öµÄÈÈÁ¿ÄÜ´Ù½ø°±Ë®µÄ·Ö½â£¬
¹Ê´ð°¸Îª£ºCaO+H2O=Ca£¨OH£©2£¬·´Ó¦·ÅÈÈ£¬NH3?H2O
NH3¡ü+H2O£»
¢Ú°±ÆøÄÜʹʪÈóµÄºìɫʯÈïÊÔÖ½±äÀ¶£¬°±ÆøºÍÂÈ»¯Çâ·´Ó¦Éú³É°×ÑÌ£¬ËùÒÔ¿ÉÓÃÂÈ»¯Çâ»òʪÈóµÄºìɫʯÈïÊÔÖ½¼ìÑ飬
¹Ê´ð°¸Îª£ºÓò£Á§°ôպȡÉÙÐíŨÑÎËá¿¿½üÊÕ¼¯NH3µÄÊԹܿڣ¬Èô²úÉú°×ÑÌ£¬ËµÃ÷ÊÔ¹ÜÒÑÊÕ¼¯ÂúNH3£¬·´Ö®£¬ÔòûÓÐÊÕ¼¯Âú£»»òÓÃʪÈóµÄºìɫʯÈïÊÔÖ½¿¿½üÊÕ¼¯NH3µÄÊԹܿڣ¬ÈôʪÈóµÄºìɫʯÈïÊÔÖ½±äÀ¶£¬Ôò˵Ã÷NH3ÒÑÊÕ¼¯Âú£¬·´Ö®£¬ÔòûÓÐÊÕ¼¯Âú£»
£¨3£©NH3¼«Ò×ÈܽâÓÚË®£¬´ò¿ªÖ¹Ë®¼Ð¼·³ö½ºÍ·µÎ¹ÜÖеÄË®£¬ÓÉÓÚ°±ÆøѸËÙÈܽ⵼ÖÂÉÕÆ¿ÄÚÆøÌåѹǿѸËÙ¼õС£¬µ¼ÖÂÈÜÒº½øÈëÉÕÆ¿²úÉúÅçȪÏÖÏó£»ÉÕÆ¿ÖÐNH3µÄÖÊÁ¿ÊÇÏàͬ״¿öÏÂÏàͬÌå»ýH2ÖÊÁ¿µÄ10±¶£¬ËùÒÔÉÕÆ¿ÖÐÆøÌåµÄƽ¾ù·Ö×ÓÁ¿ÊÇÇâÆøµÄ10±¶£¬¼´ÉÕÆ¿ÖÐÆøÌåµÄƽ¾ù·Ö×ÓÁ¿ÊÇ20£¬
£¬ËùÒÔ¿ÕÆøºÍ°±ÆøµÄÌå»ýÖ®±ÈΪ1£º3£¬¹ÊÅçȪʵÑéÍê±Ïºó£¬ÉÕÆ¿ÖÐË®¿ÉÉÏÉýÖÁÉÕÆ¿ÈÝ»ýµÄ
£¬
¹Ê´ð°¸Îª£º´ò¿ªÖ¹Ë®¼Ð¼·³ö½ºÍ·µÎ¹ÜÖеÄË®£»NH3¼«Ò×ÈܽâÓÚË®£¬ÖÂʹÉÕÆ¿ÄÚѹǿѸËÙ¼õС£»
£®
¹Ê´ð°¸Îª£º2NH4Cl+Ca£¨OH£©2
| ||
¢ÚÂÈ»¯ï§ºÍ°±ÆøÄÜ·¢Éú·´Ó¦CaCl2+8NH3=CaCl2?8NH3£¬ËùÒÔ¸ÉÔï¹ÜÖиÉÔï¼Á²»ÄܸÄÓÃÎÞË®CaCl2£¬
¹Ê´ð°¸Îª£º²»ÄÜ£»CaCl2+8NH3=CaCl2?8NH3£»
£¨2£©¢ÙÑõ»¯¸ÆºÍË®·´Ó¦Éú³ÉÇâÑõ»¯¸Æ£¬Çҷųö´óÁ¿ÈÈÁ¿£¬Ñõ»¯¸ÆºÍË®·Å³öµÄÈÈÁ¿ÄÜ´Ù½ø°±Ë®µÄ·Ö½â£¬
¹Ê´ð°¸Îª£ºCaO+H2O=Ca£¨OH£©2£¬·´Ó¦·ÅÈÈ£¬NH3?H2O
| ||
¢Ú°±ÆøÄÜʹʪÈóµÄºìɫʯÈïÊÔÖ½±äÀ¶£¬°±ÆøºÍÂÈ»¯Çâ·´Ó¦Éú³É°×ÑÌ£¬ËùÒÔ¿ÉÓÃÂÈ»¯Çâ»òʪÈóµÄºìɫʯÈïÊÔÖ½¼ìÑ飬
¹Ê´ð°¸Îª£ºÓò£Á§°ôպȡÉÙÐíŨÑÎËá¿¿½üÊÕ¼¯NH3µÄÊԹܿڣ¬Èô²úÉú°×ÑÌ£¬ËµÃ÷ÊÔ¹ÜÒÑÊÕ¼¯ÂúNH3£¬·´Ö®£¬ÔòûÓÐÊÕ¼¯Âú£»»òÓÃʪÈóµÄºìɫʯÈïÊÔÖ½¿¿½üÊÕ¼¯NH3µÄÊԹܿڣ¬ÈôʪÈóµÄºìɫʯÈïÊÔÖ½±äÀ¶£¬Ôò˵Ã÷NH3ÒÑÊÕ¼¯Âú£¬·´Ö®£¬ÔòûÓÐÊÕ¼¯Âú£»
£¨3£©NH3¼«Ò×ÈܽâÓÚË®£¬´ò¿ªÖ¹Ë®¼Ð¼·³ö½ºÍ·µÎ¹ÜÖеÄË®£¬ÓÉÓÚ°±ÆøѸËÙÈܽ⵼ÖÂÉÕÆ¿ÄÚÆøÌåѹǿѸËÙ¼õС£¬µ¼ÖÂÈÜÒº½øÈëÉÕÆ¿²úÉúÅçȪÏÖÏó£»ÉÕÆ¿ÖÐNH3µÄÖÊÁ¿ÊÇÏàͬ״¿öÏÂÏàͬÌå»ýH2ÖÊÁ¿µÄ10±¶£¬ËùÒÔÉÕÆ¿ÖÐÆøÌåµÄƽ¾ù·Ö×ÓÁ¿ÊÇÇâÆøµÄ10±¶£¬¼´ÉÕÆ¿ÖÐÆøÌåµÄƽ¾ù·Ö×ÓÁ¿ÊÇ20£¬
£¬ËùÒÔ¿ÕÆøºÍ°±ÆøµÄÌå»ýÖ®±ÈΪ1£º3£¬¹ÊÅçȪʵÑéÍê±Ïºó£¬ÉÕÆ¿ÖÐË®¿ÉÉÏÉýÖÁÉÕÆ¿ÈÝ»ýµÄ| 3 |
| 4 |
¹Ê´ð°¸Îª£º´ò¿ªÖ¹Ë®¼Ð¼·³ö½ºÍ·µÎ¹ÜÖеÄË®£»NH3¼«Ò×ÈܽâÓÚË®£¬ÖÂʹÉÕÆ¿ÄÚѹǿѸËÙ¼õС£»
| 3 |
| 4 |
µãÆÀ£º±¾Ì⿼²éÁË°±ÆøµÄÐÔÖʺÍÖÆÈ¡£¬ÄѶȲ»´ó£¬Ã÷È·°±ÆøºÍÂÈ»¯¸Æ·´Ó¦Éú³ÉCaCl2+8NH3=CaCl2?8NH3ÊÇѧÉú½â´ðÖеÄÒ×´íµã£®
Á·Ï°²áϵÁдð°¸
Ïà¹ØÌâÄ¿
£¨2009?»ÆÆÖÇø¶þÄ££©ÏÂÁÐʵÑ鱨¸æ¼Ç¼µÄʵÑéÏÖÏóÕýÈ·µÄÊÇ£¨¡¡¡¡£©
| ||||||||||||||||||||||
