ÌâÄ¿ÄÚÈÝ

¡¾ÌâÄ¿¡¿¼×´¼ÖÊ×Ó½»»»Ä¤È¼Áϵç³ØÖн«¼×´¼ÕôÆøת»¯ÎªÇâÆøµÄÁ½ÖÖ·´Ó¦Ô­ÀíÊÇ

¢ÙCH3OH(g)+H2O(g)=CO2(g)+3H2(g)£» ¡÷H= + 49.0 kJ¡¤mol-1

¢ÚCH3OH(g)+1/2O2(g)=CO2(g)+2H2(g)£» ¡÷ H=£­192.9 kJ¡¤mol-1

ÏÂÁÐ˵·¨ÕýÈ·µÄÊÇ

A. CH3OH µÄÈÈֵΪ192.9/32 (kJ¡¤g-1)

B. ·´Ó¦¢ÙÖеÄÄÜÁ¿±ä»¯ÈçͼËùʾ

C. CH3OHת±ä³ÉH2µÄ¹ý³ÌÒ»¶¨ÒªÎüÊÕÄÜÁ¿

D. ¸ù¾Ý¢ÚÍÆÖª·´Ó¦£ºCH3OH(l)+1/2O2(g)=CO2(g)+2H2(g) µÄ¡÷H>£­192.9kJ¡¤mol£­1

¡¾´ð°¸¡¿D

¡¾½âÎö¡¿A¡¢¸ù¾Ý·´Ó¦¢ÚCH3OH(g)+1/2O2(g)=CO2(g)+2H2(g)£» ¡÷ H=£­192.9 kJ¡¤mol-1£¬ÇâÆøÄܹ»¼ÌÐøȼÉշųöÈÈÁ¿£¬Òò´ËCH3OH µÄÈÈÖµ´óÓÚ192.9/32 (kJ¡¤g-1)£¬¹ÊA´íÎó£»B¡¢·´Ó¦¢ÙµÄ¡÷H£¾0£¬¶øͼʾµÄ¡÷H=Éú³ÉÎï×ÜÄÜÁ¿-·´Ó¦Îï×ÜÄÜÁ¿£¼0£¬¹ÊB´íÎó£»C¡¢ÓÉÒÑÖª¿ÉÖª£¬·´Ó¦¢ÙΪÎüÈÈ·´Ó¦£¬¶ø·´Ó¦¢ÚΪ·ÅÈÈ·´Ó¦£¬¹ÊC´íÎó£»D¡¢Í¬ÎïÖʵÄÁ¿µÄͬÖÖÎïÖÊ£¬Æø̬ÄÜÁ¿×î¸ß£¬Æä´ÎҺ̬ÄÜÁ¿£¬¹Ì̬ÄÜÁ¿×îµÍ£¬ÓÉ¢ÚÍÆÖª·´Ó¦£ºCH3OH(l)+ O2(g)=CO2(g)+2H2(g)µÄ¡÷H£¾-192.9kJmol-1£¬¹ÊDÕýÈ·£»¹ÊÑ¡D¡£

Á·Ï°²áϵÁдð°¸
Ïà¹ØÌâÄ¿

¡¾ÌâÄ¿¡¿Ä³Ñ§ÉúÓÃÒÑÖªÎïÖʵÄÁ¿Å¨¶ÈµÄÑÎËáÀ´²â¶¨Î´ÖªÎïÖʵÄÁ¿Å¨¶ÈµÄNaOHÈÜҺʱ£¬Ñ¡Ôñ¼×»ù³È×÷ָʾ¼Á¡£ÇëÌîдÏÂÁпհףº

£¨1£©ÏÂͼÖÐ______£¨Ìî¡°A¡±»ò¡°B¡±£©ÊǼîʽµÎ¶¨¹Ü£¬½øÐиÃʵÑéµÄµÚÒ»²½²Ù×÷ÊÇ____________________¡£

£¨2£©Óñê×¼µÄÑÎËáµÎ¶¨´ý²âµÄNaOHÈÜҺʱ£¬×óÊÖÎÕËáʽµÎ¶¨¹ÜµÄ»îÈû£¬ÓÒÊÖÒ¡¶¯×¶ÐÎÆ¿£¬ÑÛ¾¦×¢ÊÓ׶ÐÎÆ¿ÖÐÈÜÒºÑÕÉ«±ä»¯£¬Ö±µ½Òò¼ÓÈëÒ»µÎÑÎËáºó£¬³öÏÖ_____________________________£¨Ìî¡°ÏÖÏó¡±£©ËµÃ÷´ïµ½µÎ¶¨Öյ㡣

£¨3£©ÏÂÁвÙ×÷ÖпÉÄÜʹËù²âNaOHÈÜÒºµÄŨ¶ÈÊýֵƫµÍµÄÊÇ£¨____£©

A£®ËáʽµÎ¶¨¹ÜδÓñê×¼ÑÎËáÈóÏ´¾ÍÖ±½Ó×¢Èë±ê×¼ÑÎËá

B£®µÎ¶¨Ç°Ê¢·ÅNaOHÈÜÒºµÄ׶ÐÎÆ¿ÓÃÕôÁóˮϴ¾»ºóûÓиÉÔï

C£®ËáʽµÎ¶¨¹ÜÔڵζ¨Ç°ÓÐÆøÅÝ£¬µÎ¶¨ºóÆøÅÝÏûʧ

D£®¶ÁÈ¡ÑÎËáÌå»ýʱ£¬¿ªÊ¼ÑöÊÓ¶ÁÊý£¬µÎ¶¨½áÊøʱ¸©ÊÓ¶ÁÊý

£¨4£©ÈôµÎ¶¨¿ªÊ¼ºÍ½áÊøʱ£¬ËáʽµÎ¶¨¹ÜÖеÄÒºÃæÈçͼËùʾ£¬ÔòËùÓÃÑÎËáÈÜÒºµÄÌå»ýΪ________mL¡£

£¨5£©Ä³Ñ§Éú¸ù¾Ý3´ÎʵÑé·Ö±ð¼Ç¼ÓйØÊý¾ÝÈçÏÂ±í£º

µÎ¶¨´ÎÊý

´ý²âNaOHÈÜÒºµÄÌå»ý/mL

0.100 0 mol¡¤L£­1ÑÎËáµÄÌå»ý/mL

µÎ¶¨Ç°¿Ì¶È

µÎ¶¨ºó¿Ì¶È

µÚÒ»´Î

25.00

0.00

26.11

µÚ¶þ´Î

25.00

1.56

30.30

µÚÈý´Î

25.00

0.22

26.31

ÒÀ¾ÝÉϱíÊý¾ÝÁÐʽ¼ÆËã¸ÃNaOHÈÜÒºµÄÎïÖʵÄÁ¿Å¨¶È£¨Ð´³ö¼òÒª¹ý³Ì£©¡£______________

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

¾«Ó¢¼Ò½ÌÍø