Ä꼶 | ¸ßÖÐ¿Î³Ì | Ä꼶 | ³õÖÐ¿Î³Ì |
¸ßÒ» | ¸ßÒ»Ãâ·Ñ¿Î³ÌÍƼö£¡ | ³õÒ» | ³õÒ»Ãâ·Ñ¿Î³ÌÍƼö£¡ |
¸ß¶þ | ¸ß¶þÃâ·Ñ¿Î³ÌÍƼö£¡ | ³õ¶þ | ³õ¶þÃâ·Ñ¿Î³ÌÍƼö£¡ |
¸ßÈý | ¸ßÈýÃâ·Ñ¿Î³ÌÍƼö£¡ | ³õÈý | ³õÈýÃâ·Ñ¿Î³ÌÍƼö£¡ |
¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£ºÔĶÁÀí½â
| ||
| ||
32m2 |
233m1 |
32m2 |
233m1 |
ʵÑé´ÎÊý | µÚÒ»´Î | µÚ¶þ´Î | µÚÈý´Î |
ÏûºÄKMnO4ÈÜÒºÌå»ý/mL | 26.42 | 25.05 | 24.95 |
²é¿´´ð°¸ºÍ½âÎö>>
¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£º
| ||
²é¿´´ð°¸ºÍ½âÎö>>
¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º ÌâÐÍ£ºÔĶÁÀí½â
Ãû³Æ | ÒÒ¶þËá | ÒÒ¶þËᾧÌå |
·Ö×Óʽ | H2C2O4 | H2C2O4?2H2O |
ÑÕɫ״̬ | ÎÞÉ«¹ÌÌå | ÎÞÉ«¾§Ìå |
Èܽâ¶È£¨g£© | 8.6£¨20¡æ£© | - |
È۵㣨¡æ£© | 189.5 | 101.5 |
Ãܶȣ¨g?cm-3£© | 1.900 | 1.650 |
²é¿´´ð°¸ºÍ½âÎö>>
¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º2012½ì¸£½¨Ê¡Ü¼³ÇÈýУ¸ßÈýÏÂѧÆÚµÚ¶þ´Î¿¼ÊÔ»¯Ñ§ÊÔ¾í£¨´ø½âÎö£© ÌâÐÍ£ºÊµÑéÌâ
£¨11·Ö£©ÒÔÏÂÊÇijѧϰС×é¶ÔÒÒ¶þËáµÄijЩÐÔÖʽøÐÐÑо¿ÐÔѧϰµÄ¹ý³Ì£º
[Ñо¿¿ÎÌâ]̽¾¿ÒÒ¶þËáµÄijЩÐÔÖÊ
[²éÔÄ×ÊÁÏ]ÒÒ¶þËᣨHOOC£COOH£©Ë׳ƲÝËᣬÆäÖ÷ÒªÎïÀí³£ÊýÈçÏ£º
Ãû³Æ | ÒÒ¶þËá | ÒÒ¶þËᾧÌå |
·Ö×Óʽ | H2C2O4 | H2C2O4¡¤2H2O |
ÑÕɫ״̬ | ÎÞÉ«¹ÌÌå | ÎÞÉ«¾§Ìå |
Èܽâ¶È£¨g£© | 8.6£¨20¡æ£© | ¡ª |
È۵㣨¡æ£© | 189.5 | 101.5 |
Ãܶȣ¨g¡¤cm£3£© | 1.900 | 1.650 |
²é¿´´ð°¸ºÍ½âÎö>>
¿ÆÄ¿£º¸ßÖл¯Ñ§ À´Ô´£º2011-2012ѧÄ긣½¨Ê¡Ü¼³ÇÈýУ¸ßÈýÏÂѧÆÚµÚ¶þ´Î¿¼ÊÔ»¯Ñ§ÊÔ¾í£¨½âÎö°æ£© ÌâÐÍ£ºÊµÑéÌâ
£¨11·Ö£©ÒÔÏÂÊÇijѧϰС×é¶ÔÒÒ¶þËáµÄijЩÐÔÖʽøÐÐÑо¿ÐÔѧϰµÄ¹ý³Ì£º
[Ñо¿¿ÎÌâ]̽¾¿ÒÒ¶þËáµÄijЩÐÔÖÊ
[²éÔÄ×ÊÁÏ]ÒÒ¶þËᣨHOOC£COOH£©Ë׳ƲÝËᣬÆäÖ÷ÒªÎïÀí³£ÊýÈçÏ£º
Ãû³Æ |
ÒÒ¶þËá |
ÒÒ¶þËᾧÌå |
·Ö×Óʽ |
H2C2O4 |
H2C2O4¡¤2H2O |
ÑÕɫ״̬ |
ÎÞÉ«¹ÌÌå |
ÎÞÉ«¾§Ìå |
Èܽâ¶È£¨g£© |
8.6£¨20¡æ£© |
¡ª |
È۵㣨¡æ£© |
189.5 |
101.5 |
Ãܶȣ¨g¡¤cm£3£© |
1.900 |
1.650 |
ÓÖÖª£º
²ÝËáÔÚ100¡æʱ¿ªÊ¼Éý»ª£¬157¡æʱ´óÁ¿Éý»ª£¬²¢¿ªÊ¼·Ö½â¡£
²ÝËá¸Æ²»ÈÜÓÚË®¡£
²ÝËáÕôÆøÄÜʹ³ÎÇåʯ»ÒË®±ä»ë×Ç¡£
²ÝËáÕôÆøÔÚµÍÎÂÏ¿ÉÀäÄýΪ¹ÌÌå¡£
¸ù¾ÝÉÏÊö²ÄÁÏÌṩµÄÐÅÏ¢£¬»Ø´ðÏÂÁÐÎÊÌ⣺
[Ìá³ö²ÂÏë]
£¨²ÂÏëÒ»£©¸ù¾Ý²ÝËᾧÌåµÄ×é³É¶ÔÆä·Ö½â²úÎï½øÐвÂÏë
Éè¼Æ·½°¸£º
£¨1£©¸ÃС×éͬѧ²ÂÏëÆä²úÎïΪCO¡¢CO2ºÍH2O£¬ÇëÓÃÏÂÁÐ×°ÖÃ×é³ÉÒ»Ì×̽¾¿ÊµÑé×°Ö㨲ÝËᾧÌå·Ö½â×°ÖÃÂÔ£¬×°ÖÿÉÖظ´Ê¹Óã¬Á¬½Óµ¼¹ÜÂÔÈ¥£©¡£
AÖÐË®²Û×°±ùË®»ìºÏÎï¡¢BÖÐ×°Ñõ»¯Í¡¢CÖÐ×°ÎÞË®ÁòËáÍ£¬DÖÐ×°³ÎÇåʯ»ÒË®¡¢EÖÐ×°¼îʯ»Ò
Çë»Ø´ðÏÂÁÐÎÊÌ⣺
¢Ù ×°ÖõÄÁ¬½Ó˳ÐòΪ£ºA¡ú_____________________________________________¡£
¢Ú ¼ìÑé²úÎïÖÐCOµÄʵÑéÏÖÏóÊÇ____________________________________________________________
¢Û ÕûÌ××°ÖÃÊÇ·ñ´æÔÚ²»ºÏÀíÖ®´¦£¬ £¨ÌîÊÇ»ò·ñ£©£¬ÈôÓиÃÈçºÎ½â¾ö___________________________________________________________________________
£¨²ÂÏë¶þ£©ÒÒ¶þËá¾ßÓÐÈõËáÐÔ
Éè¼Æ·½°¸£º
£¨2£©¸ÃС×éͬѧΪÑéÖ¤²ÝËá¾ßÓÐÈõËáÐÔÉè¼ÆÁËÏÂÁÐʵÑ飬ÆäÖÐÄܴﵽʵÑéÄ¿µÄÊÇ______£¨Ìî×Öĸ£©¡£
A£®½«²ÝËᾧÌåÈÜÓÚº¬·Ó̪µÄNaOHÈÜÒºÖУ¬ÈÜÒºÍÊÉ«
B£®²â¶¨ÏàͬŨ¶ÈµÄ²ÝËáºÍÁòËáÈÜÒºµÄpH
C£®²â¶¨²ÝËáÄÆ£¨Na2C2O4£©ÈÜÒºµÄpH
D£®½«²ÝËáÈÜÒº¼ÓÈëNa2CO3ÈÜÒºÖУ¬ÓÐCO2·Å³ö
£¨²ÂÏëÈý£©ÒÒ¶þËá¾ßÓл¹ÔÐÔ
Éè¼Æ·½°¸£º
£¨3£©¸ÃС×éͬѧÏòÓÃÁòËáËữµÄKMnO4ÈÜÒºÖеÎÈë¹ýÁ¿µÄ²ÝËáÈÜÒº£¬·¢ÏÖËáÐÔKMnO4ÈÜÒºÍÊÉ«£¬´Ó¶øÅжϲÝËá¾ßÓнÏÇ¿µÄ»¹ÔÐÔ¡£Åäƽ¸Ã·´Ó¦µÄÀë×Ó·½³Ìʽ£º
___MnO4£+___H2C2O4 +___H+ ===___Mn2+ +___CO2¡ü+___H2O
£¨4£©ÀûÓÃÉÏÊöÔÀí¿É¶¨Á¿²â¶¨Ä³²ÝËᾧÌåÑùÆ·£¨º¬ÓÐH2C2O4¡¤2H2O¼°ÆäËüһЩÔÓÖÊ£©ÖÐH2C2O4¡¤2H2OµÄº¬Á¿¡£
·½·¨ÊÇ£º³ÆÈ¡¸ÃÑùÆ·0.12 g£¬¼ÓÊÊÁ¿Ë®ÍêÈ«Èܽ⣬ȻºóÓÃ0.020 mol¡¤L£1
µÄËáÐÔKMnO4ÈÜÒºµÎ¶¨ÖÁÖյ㣨ÔÓÖʲ»²ÎÓë·´Ó¦£©£¬µÎ¶¨Ç°ºóµÎ¶¨¹ÜÖеÄÒºÃæ¶ÁÊýÈçͼËùʾ£¨µ¥Î»£ºmL£©£¬Ôò¸Ã²ÝËᾧÌåÑùÆ·ÖÐH2C2O4¡¤2H2OµÄÖÊÁ¿·ÖÊýΪ_____________¡£
£¨ÒÑÖªÏà¶ÔÔ×ÓÖÊÁ¿£ºMr(H2C2O4¡¤2H2O)=126£©
²é¿´´ð°¸ºÍ½âÎö>>
°Ù¶ÈÖÂÐÅ - Á·Ï°²áÁбí - ÊÔÌâÁбí
ºþ±±Ê¡»¥ÁªÍøÎ¥·¨ºÍ²»Á¼ÐÅÏ¢¾Ù±¨Æ½Ì¨ | ÍøÉÏÓк¦ÐÅÏ¢¾Ù±¨×¨Çø | µçÐÅթƾٱ¨×¨Çø | ÉæÀúÊ·ÐéÎÞÖ÷ÒåÓк¦ÐÅÏ¢¾Ù±¨×¨Çø | ÉæÆóÇÖȨ¾Ù±¨×¨Çø
Î¥·¨ºÍ²»Á¼ÐÅÏ¢¾Ù±¨µç»°£º027-86699610 ¾Ù±¨ÓÊÏ䣺58377363@163.com