1840Äê¸Ç˹¸ù¾ÝһϵÁÐʵÑéÊÂʵµÃ³ö¹æÂÉ£¬ËûÖ¸³ö£º¡°ÈôÊÇÒ»¸ö·´Ó¦¿ÉÒÔ·Ö²½½øÐУ¬Ôò¸÷²½·´Ó¦µÄÎüÊÕ»ò·Å³öµÄÈÈÁ¿×ܺÍÓëÕâ¸ö·´Ó¦Ò»´Î·¢ÉúʱÎüÊÕ»ò·Å³öµÄÈÈÁ¿Ïàͬ£®¡±ÕâÊÇ18ÊÀ¼Í·¢ÏÖµÄÒ»ÌõÖØÒª¹æÂÉ£¬³ÆΪ¸Ç˹¶¨ÂÉ£®ÒÑÖª1mol ½ð¸ÕʯºÍʯī·Ö±ðÔÚÑõÆøÖÐÍêȫȼÉÕʱ·Å³öµÄÈÈÁ¿Îª£º½ð¸Õʯ£¬395.41kJ£»Ê¯Ä«£¬393.51kJ£®Ôò½ð¸Õʯת»¯Ê¯Ä«Ê±£¬·ÅÈÈ»¹ÊÇÎüÈÈ£¿______£¬ÆäÊýÖµÊÇ_______£¬ÓÉ´Ë¿´À´¸üÎȶ¨µÄÊÇ______£®ÈôÈ¡½ð¸ÕʯºÍʯī»ìºÏ¾§Ìå¹²1mol ÔÚO2ÖÐÍêȫȼÉÕ£¬²úÉúÈÈÁ¿ÎªQkJ£¬Ôò½ð¸ÕʯºÍʯīµÄÎïÖʵÄÁ¿Ö®±ÈΪ______£¨Óú¬QµÄ´úÊýʽ±íʾ£©£®
¡¾´ð°¸¡¿·ÖÎö£º¸ù¾Ý1mol½ð¸ÕʯºÍʯī·Ö±ðÔÚÑõÆøÖÐÍêȫȼÉÕʱ·Å³öµÄÈÈÁ¿£¬ÀûÓøÇ˹¶¨ÂÉÀ´·ÖÎö½ð¸Õʯת»¯Ê¯Ä«Ê±µÄÄÜÁ¿±ä»¯£¬ÄÜÁ¿Ô½µÍµÄÎïÖÊÔ½Îȶ¨£¬ÀûÓÃÊ®×Ö½»²æ·¨À´¼ÆËã½ð¸ÕʯºÍʯīµÄÎïÖʵÄÁ¿Ö®±È£®
½â´ð£º½â£ºÓɸÇ˹¶¨ÂÉ¿ÉÖª£¬ÒªµÃµ½½ð¸Õʯת»¯ÎªÊ¯Ä«µÄÈÈÁ¿±ä»¯£¬¿É½«¶þÕßÔÚÑõÆøÖÐÍêȫȼÉÕʱ·Å³öµÄÈÈÁ¿Ïà¼õ¼´¿É£¬
µÃC£¨½ð¸Õʯ£©¨TC£¨Ê¯Ä«£©¡÷H=-395.41kJ/mol-£¨-393.51kJ/mol£©=-1.90kJ/mol£¬
¼´½ð¸Õʯת»¯ÎªÊ¯Ä«·Å³öÈÈÁ¿£¬ËµÃ÷ʯīµÄÄÜÁ¿¸üµÍ£¬±È½ð¸ÕʯÎȶ¨£¬
½ð¸ÕʯºÍʯī»ìºÏ¾§Ìå¹²1mol ÔÚO2ÖÐÍêȫȼÉÕ£¬²úÉúÈÈÁ¿ÎªQkJ£¬
ÓÉÊ®×Ö½»²æ·¨£¬
¿ÉµÃ¶þÕßÎïÖʵÄÁ¿±ÈΪ£¬
¹Ê´ð°¸Îª£º·ÅÈÈ£»1.90kJ£»Ê¯Ä«£»£®
µãÆÀ£º±¾Ì⿼²éѧÉúÀûÓøÇ˹¶¨ÂÉÀ´·ÖÎö½ð¸ÕʯºÍʯīµÄת»¯£¬Ã÷È··´Ó¦ÈÈ¡¢ÈÈÁ¿¡¢ÄÜÁ¿ÓëÎïÖʵÄÎȶ¨ÐԵĹØϵ¼´¿É½â´ð£¬¶ÔÓÚ»ìºÏÎïµÄȼÉÕ¼°³É·ÖµÄÈ·¶¨Ñ§ÉúӦѧ»áÀûÓÃÊ®×Ö½»²æ·¨À´¿ìËÙ½â´ð£®
Á·Ï°²áϵÁдð°¸
Ïà¹ØÏ°Ìâ

¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º

1840Äê¸Ç˹¸ù¾ÝһϵÁÐʵÑéÊÂʵµÃ³ö¹æÂÉ£¬ËûÖ¸³ö£º¡°ÈôÊÇÒ»¸ö·´Ó¦¿ÉÒÔ·Ö²½½øÐУ¬Ôò¸÷²½·´Ó¦µÄÎüÊÕ»ò·Å³öµÄÈÈÁ¿×ܺÍÓëÕâ¸ö·´Ó¦Ò»´Î·¢ÉúʱÎüÊÕ»ò·Å³öµÄÈÈÁ¿Ïàͬ£®¡±ÕâÊÇ18ÊÀ¼Í·¢ÏÖµÄÒ»ÌõÖØÒª¹æÂÉ£¬³ÆΪ¸Ç˹¶¨ÂÉ£®ÒÑÖª1mol ½ð¸ÕʯºÍʯī·Ö±ðÔÚÑõÆøÖÐÍêȫȼÉÕʱ·Å³öµÄÈÈÁ¿Îª£º½ð¸Õʯ£¬395.41kJ£»Ê¯Ä«£¬393.51kJ£®Ôò½ð¸Õʯת»¯Ê¯Ä«Ê±£¬·ÅÈÈ»¹ÊÇÎüÈÈ£¿
·ÅÈÈ
·ÅÈÈ
£¬ÆäÊýÖµÊÇ
1.90kJ
1.90kJ
_£¬ÓÉ´Ë¿´À´¸üÎȶ¨µÄÊÇ
ʯī
ʯī
£®ÈôÈ¡½ð¸ÕʯºÍʯī»ìºÏ¾§Ìå¹²1mol ÔÚO2ÖÐÍêȫȼÉÕ£¬²úÉúÈÈÁ¿ÎªQkJ£¬Ôò½ð¸ÕʯºÍʯīµÄÎïÖʵÄÁ¿Ö®±ÈΪ
Q-393.51
395.41-Q
Q-393.51
395.41-Q
£¨Óú¬QµÄ´úÊýʽ±íʾ£©£®

²é¿´´ð°¸ºÍ½âÎö>>

¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º

1840Äê¸Ç˹¸ù¾ÝһϵÁÐʵÑéÊÂʵµÃ³ö¹æÂÉ£¬ËûÖ¸³ö£º¡°ÈôÊÇÒ»¸ö·´Ó¦¿ÉÒÔ·Ö²½½øÐУ¬Ôò¸÷²½·´Ó¦µÄ·´Ó¦ÈÈ×ܺÍÓëÕâ¸ö·´Ó¦Ò»´Î·¢ÉúʱµÄ·´Ó¦ÈÈÏàͬ¡£¡±ÕâÊÇÔÚ¸÷·´Ó¦ÓÚÏàͬÌõ¼þÏÂÍê³ÉʱµÄÓйط´Ó¦ÈȵÄÖØÒª¹æÂÉ¡ª¡ª¸Ç˹¶¨ÂÉ¡£ÒÑÖª½ð¸ÕʯºÍʯī·Ö±ðÔÚÑõÆøÖÐÍêȫȼÉÕµÄÈÈ»¯Ñ§·½³ÌʽΪC(½ð¸Õʯ£¬s)+O2(g)CO2(g)  ¦¤H=-395.41 kJ¡¤mol-1,C(ʯī£¬s)+O2(g)CO2(g)  ¦¤H=-393.51 kJ¡¤mol-1,Ôò½ð¸Õʯת»¯ÎªÊ¯Ä«Ê±µÄÈÈ»¯Ñ§·½³ÌʽΪ________¡£ÓÉ´Ë¿´À´¸üÎȶ¨µÄ̼µÄͬËØÒìÐÎÌåΪ___________¡£ÈôÈ¡½ð¸ÕʯºÍʯī»ìºÏ¾§Ìå¹²1 molÔÚO2ÖÐÍêȫȼÉÕ£¬²úÉúÈÈÁ¿ÎªQ kJ,Ôò½ð¸ÕʯºÍʯīµÄÎïÖʵÄÁ¿Ö®±ÈΪ_________(Óú¬QµÄ´úÊýʽ±íʾ)¡£

²é¿´´ð°¸ºÍ½âÎö>>

¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º

1840Äê¸Ç˹¸ù¾ÝһϵÁÐʵÑéÊÂʵµÃ³ö¹æÂÉ£¬ËûÖ¸³ö£º¡°ÈôÊÇÒ»¸ö·´Ó¦¿ÉÒÔ·Ö²½½øÐУ¬Ôò¸÷²½·´Ó¦µÄ·´Ó¦ÈÈ×ܺÍÓëÕâ¸ö·´Ó¦Ò»´Î·¢ÉúʱµÄ·´Ó¦ÈÈÏàͬ¡£¡±ÕâÊÇÔÚ¸÷·´Ó¦ÓÚÏàͬÌõ¼þÏÂÍê³ÉʱµÄÓйط´Ó¦ÈȵÄÖØÒª¹æÂÉ£¬³ÆΪ¸Ç˹¶¨ÂÉ¡£ÒÑÖª½ð¸ÕʯºÍʯī·Ö±ðÔÚÑõÆøÖÐÍêȫȼÉÕµÄÈÈ»¯Ñ§·½³ÌʽΪ£ºC£¨½ð¸Õʯ¡¢s)£«O2(g)£½CO2(g)£»¡÷H£½£­395.41kJ/mol£¬C£¨Ê¯Ä«¡¢s£©£«O2(g)£½CO2(g)£»¡÷H£½£­393.51kJ/mol£¬Ôò½ð¸Õʯת»¯Ê¯Ä«Ê±µÄÈÈ»¯Ñ§·½³ÌʽΪ£º___________¡£ÓÉ´Ë¿´À´¸üÎȶ¨µÄ̼µÄͬËØÒìÐÎÌåΪ£º____________¡£ÈôÈ¡½ð¸ÕʯºÍʯī»ìºÏ¾§Ìå¹²1mol ÔÚO2ÖÐÍêȫȼÉÕ£¬²úÉúÈÈÁ¿ÎªQkJ£¬Ôò½ð¸ÕʯºÍʯīµÄÎïÖʵÄÁ¿Ö®±ÈΪ_____________£¨Óú¬QµÄ´úÊýʽ±íʾ£©¡£
¡¡¡¡

²é¿´´ð°¸ºÍ½âÎö>>

¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º

1840Äê¸Ç˹¸ù¾ÝһϵÁÐʵÑéÊÂʵµÃ³ö¹æÂÉ£¬ËûÖ¸³ö£º¡°ÈôÊÇÒ»¸ö·´Ó¦¿ÉÒÔ·Ö²½½øÐУ¬Ôò¸÷²½·´Ó¦µÄÎüÊÕ»ò·Å³öµÄÈÈÁ¿×ܺÍÓëÕâ¸ö·´Ó¦Ò»´Î·¢ÉúʱÎüÊÕ»ò·Å³öµÄÈÈÁ¿Ïàͬ¡£¡±ÕâÊÇ18ÊÀ¼Í·¢ÏÖµÄÒ»ÌõÖØÒª¹æÂÉ£¬³ÆΪ¸Ç˹¶¨ÂÉ¡£ÒÑÖª1mol ½ð¸ÕʯºÍʯī·Ö±ðÔÚÑõÆøÖÐÍêȫȼÉÕʱ·Å³öµÄÈÈÁ¿Îª£º½ð¸Õʯ£¬395.41kJ£»Ê¯Ä«£¬393.51kJ¡£Ôò½ð¸Õʯת»¯Ê¯Ä«Ê±£¬·ÅÈÈ»¹ÊÇÎüÈÈ£¿_______£¬ÆäÊýÖµÊÇ     _£¬ÓÉ´Ë¿´À´¸üÎȶ¨µÄÊÇ_______¡£ÈôÈ¡½ð¸ÕʯºÍʯī»ìºÏ¾§Ìå¹²1mol ÔÚO2ÖÐÍêȫȼÉÕ£¬²úÉúÈÈÁ¿ÎªQkJ£¬Ôò½ð¸ÕʯºÍʯīµÄÎïÖʵÄÁ¿Ö®±ÈΪ_____________£¨Óú¬QµÄ´úÊýʽ±íʾ£©¡£

²é¿´´ð°¸ºÍ½âÎö>>

¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£ºÔĶÁÀí½â

½«»¯Ñ§ÖªÊ¶µÄϵͳ»¯£¬ÓÐÖúÓÚ¶Ô»¯Ñ§ÎÊÌâµÄ½øÒ»²½ÈÏʶ¡£ÇëÄã²ÎÓëÏÂÁйØÓÚ»¯Ñ§·´Ó¦µÄÌÖÂÛ¡£

ÎÊÌâ1£º»¯Ñ§±ä»¯¹ý³ÌÖеÄƽºâ״̬¿ÉÒÔͨ¹ý¸Ä±ä·´Ó¦Ìõ¼þ¶ø·¢Éú±ä»¯¡£¶ÔµçÀëƽºâ¡¢Ë®½âƽºâ¡¢»¯Ñ§Æ½ºâµÈ¸÷ÖÖƽºâÒƶ¯µÄ·½ÏòÓëÍâ½çÌõ¼þ±ä»¯µÄ¹ØϵÇëÄãÔËÓÃÒ»¾ä»°½øÐÐ×ܽ᣺______________¡£

ÎÊÌâ2£º²»Í¬»¯Ñ§·´Ó¦½øÐеĿìÂýºÍ³Ì¶Èǧ²îÍò±ð¡£ÔÚ¸´Ôӵķ´Ó¦ÖУ¬Òª¿¼ÂÇ·´Ó¦µÄÏȺó˳Ðò¡£ÒÑÖªNH4£«£«AlO2£­£«H2O£½Al£¨OH£©3¡ý£«NH3¡¤H2O£¬Ïòº¬ÓеÈÎïÖʵÄÁ¿µÄNH4£«¡¢Al3£«¡¢H£«¡¢»ìºÏÈÜÒºÖУ¬ÂýÂýµÎ¼ÓNaOHÈÜÒº£¬Ö±ÖÁ¹ýÁ¿£¬²¢²»¶Ï½Á°è£¬ÒÀ´Î·¢ÉúÁËÊý¸öÀë×Ó·´Ó¦£»ÆäÖÐ

£¨1£©µÚ¶þ¸öÀë×Ó·´Ó¦µÄÀë×Ó·½³ÌʽÊÇ                       

£¨2£©×îºóÒ»¸öÀë×Ó·´Ó¦µÄÀë×Ó·½³ÌʽÊÇ                              

ÎÊÌâ3£º»¯Ñ§·´Ó¦µÄ¸´ÔÓÐÔ¾ö¶¨ÁË·´Ó¦·½³Ìʽ¼ÆÁ¿ÊýµÄ¸´ÔÓÐÔ¡£¶ÔÏÂÁл¯Ñ§·´Ó¦£º

   8KMnO4£«15Kl£«17H2SO4¡ú8MnSO4£«5I2£«5KIO3£«9 K2SO4£«17H2O

Èç¹û¸Ã·´Ó¦·½³ÌʽÖÐI2ºÍKIO3µÄϵÊý²»ÊÇ5£¬¿ÉÄܵÄÅäƽϵÊý»¹ÓÐÐí¶à×é¡£ÇëÄãÔÙд³öÒ»¸öÅäƽµÄ¸Ã·´Ó¦µÄ»¯Ñ§·½³Ìʽ£º                                     ¡£

ÎÊÌâ4£º1840Äê¸Ç˹¸ù¾ÝһϵÁÐʵÑéÊÂʵµÃ³ö¹æÂÉ£º¡°ÈôÊÇÒ»¸ö·´Ó¦¿ÉÒÔ·Ö²½½øÐУ¬Ôò¸÷²½·´Ó¦µÄ·´Ó¦ÈÈ×ܺÍÓëÕâ¸ö·´Ó¦Ò»´Î·¢ÉúʱµÄ·´Ó¦ÈÈÏàͬ¡£¡±ÕâÊÇÔÚ¸÷·´Ó¦ÓÚÏàͬÌõ¼þÏÂÍê³ÉʱµÄÓйط´Ó¦ÈȵÄÖØÒª¹æÂÉ¡£ÒÑÖª½ð¸ÕʯºÍʯī·Ö±ðÔÚÑõÆøÖÐÍêȫȼÉÕµÄÈÈ»¯Ñ§·½³ÌʽΪ£ºC£¨½ð¸Õʯ¡¢s£©£«O2£¨g£©£½CO2£¨g£©£º¡÷H£½£­395£®41kJ£¯mol£¬C£¨Ê¯Ä«¡¢s£©£«O2£¨g£©£½CO2£¨g£©£º¡÷H£½£­393£®51kJ£¯mol£¬Ôò½ð¸Õʯת»¯Ê¯Ä«Ê±µÄÈÈ»¯Ñ§·½³ÌʽΪ£º                                 ¡£

 

²é¿´´ð°¸ºÍ½âÎö>>

ͬ²½Á·Ï°²á´ð°¸