ÌâÄ¿ÄÚÈÝ

¡¾ÌâÄ¿¡¿Ä³Ð¡×éÈ¡Ò»¶¨ÖÊÁ¿µÄÁòËáÑÇÌú¹ÌÌ壬ÀûÓÃÏÂͼװÖýøÐÐʵÑé¡£

ʵÑé¹ý³Ì¼°ÏÖÏóÈçÏ£º

¢Ùͨһ¶Îʱ¼äµªÆøºó¼ÓÈÈ£¬AÖйÌÌå±äΪºì×ØÉ«£¬BÖÐÓа×É«³Áµí£¬DÊÔ¹ÜÖÐÓÐÎÞÉ«ÒºÌ壻

¢ÚÓôø»ðÐǵÄľÌõ¿¿½ü×°ÖÃDµÄµ¼¹Ü¿Ú£¬Ä¾Ìõ¸´È¼£»

¢Û³ä·Ö·´Ó¦ºóÍ£Ö¹¼ÓÈÈ£¬ÀäÈ´ºóÈ¡AÖйÌÌ壬¼ÓÑÎËᣬ¹ÌÌåÈܽ⣬ÈÜÒº³Ê»ÆÉ«£»

¢Ü½«¢ÛËùµÃÈÜÒºµÎÈëDÊÔ¹ÜÖУ¬ÈÜÒº±äΪdzÂÌÉ«¡£

ÒÑÖª£ºSO2È۵㣭72¡æ£¬·Ðµã£­10¡æ£»SO3ÈÛµã16.8¡æ£¬·Ðµã44.8¡æ¡£

£¨1£©ÊµÑé¢Û·´Ó¦µÄÀë×Ó·½³ÌʽÊÇ__________¡£

£¨2£©·Ö½â¹ý³Ì³ý²úÉúʹľÌõ¸´È¼µÄÆøÌåÍ⣬½öÓÉAÖйÌÌåÑÕÉ«±ä»¯ÍƲ⣬»¹Ò»¶¨ÓÐ______ÆøÌ壬ÒÀ¾ÝÊÇ_________¡£

£¨3£©ÊµÑé¢Ü·´Ó¦µÄÀë×Ó·½³ÌʽÊÇ_________¡£

¡¾´ð°¸¡¿Fe2O3£«6H£«=2Fe3£«£«3H2O ¶þÑõ»¯Áò ¼ÓÈÈÁòËáÑÇÌú£¬Éú³ÉÑõÆøºÍÑõ»¯Ìú£¬ÑõÔªËغÍÌúÔªËصĻ¯ºÏ¼Û¶¼Éý¸ß£¬Ö»ÄÜÊÇÁòÔªËصĻ¯ºÏ¼Û½µµÍ£¬±»»¹Ô­Éú³É¶þÑõ»¯Áò 2Fe3£«£«SO2£«2H2O=2Fe2£«£«£«4H£«

¡¾½âÎö¡¿

£¨1£©AÖйÌÌå±äΪºì×ØɫΪÑõ»¯Ìú£»È»ºó¼ÓÑÎËᣬÊÇÑõ»¯ÌúºÍÑÎËá·´Ó¦£¬¾Ý´ËÊéдÀë×Ó·´Ó¦·½³Ìʽ£»

£¨2£©·Ö½â¹ý³Ì³ý²úÉúʹľÌõ¸´È¼µÄÆøÌåΪÑõÆø£¬AÖйÌÌå±äΪºì×ØɫΪÑõ»¯Ìú£¬Ö¤Ã÷ÓÐFe2O3Éú³É£¬ÔÚFeSO4ÖÐÖ»ÓÐ+6¼ÛSÔªËØÓÐÑõ»¯ÐÔ£¬Äܱ»»¹Ô­£¬Òò´ËÒ»¶¨ÓÐSO2Éú³É£»

£¨3£©AΪÑõ»¯Ìú¼ÓÑÎËáÉú³ÉÈý¼ÛÌúÀë×Ó£¬½«¢ÛËùµÃÈÜÒºµÎÈëDÊÔ¹ÜÖУ¬ÈÜÒº±äΪdzÂÌɫ˵Ã÷Óжþ¼ÛÌúÉú³É£¬ËùÒÔÈý¼ÛÌúÀë×ӺͶþÑõ»¯Áò·¢ÉúÁËÑõ»¯»¹Ô­·´Ó¦£¬¾Ý´Ë½â´ð£»

£¨1£© AÖйÌÌå±äΪºì×ØɫΪÑõ»¯Ìú£»È»ºó¼ÓÑÎËᣬÊÇÑõ»¯ÌúºÍÑÎËá·´Ó¦£¬ÊµÑé¢Û·´Ó¦µÄÀë×Ó·½³ÌʽÊÇFe2O3£«6H£«=2Fe3£«£«3H2O£¬

¹Ê´ð°¸Îª£ºFe2O3£«6H£«=2Fe3£«£«3H2O£»

£¨2£©ÓÉÌâÒâ¿ÉÖª£¬¼ÓÈÈÁòËáÑÇÌúÓÐÑõ»¯ÌúºÍÑõÆøÉú³É£¬ÑõÔªËغÍÌúÔªËصĻ¯ºÏ¼Û¶¼Éý¸ß£¬ÁòÔªËصĻ¯ºÏ¼Û±ØÈ»½µµÍ£¬ÓжþÑõ»¯ÁòÉú³É£¬

¹Ê´ð°¸Îª£º¶þÑõ»¯Áò£»¼ÓÈÈÁòËáÑÇÌú£¬Éú³ÉÑõÆøºÍÑõ»¯Ìú£¬ÑõÔªËغÍÌúÔªËصĻ¯ºÏ¼Û¶¼Éý¸ß£¬Ö»ÄÜÊÇÁòÔªËصĻ¯ºÏ¼Û½µµÍ£¬±»»¹Ô­Éú³É¶þÑõ»¯Áò£»

£¨3£©ÂÈ»¯ÌúÈÜÒºÓë¶þÑõ»¯Áò·¢ÉúÑõ»¯»¹Ô­·´Ó¦£¬Àë×Ó·½³ÌʽΪ£º2Fe3£«£«SO2£«2H2O=2Fe2£«£«SO£«4H£«£¬

¹Ê´ð°¸Îª£º2Fe3£«£«SO2£«2H2O=2Fe2£«£«SO£«4H£«¡£

Á·Ï°²áϵÁдð°¸
Ïà¹ØÌâÄ¿

¡¾ÌâÄ¿¡¿·Ç½ðÊôºÍ½ðÊôµ¥ÖÊÒÔ¼°Ïà¹Ø»¯ºÏÎïÓÐ׏㷺µÄÓ¦Ó㬻شðÏÂÁÐÏà¹ØÎÊÌ⣺

(1)Í­»òÍ­ÑεÄÑæÉ«·´Ó¦ÎªÂÌÉ«£¬ÏÂÁÐÓйØÔ­Àí·ÖÎöµÄÐðÊöÕýÈ·µÄÊÇ______(Ìî×Öĸ)¡£

a. µç×Ó´Ó»ù̬ԾǨµ½½Ï¸ßµÄ¼¤·¢Ì¬ b. µç×Ӵӽϸߵļ¤·¢Ì¬Ô¾Ç¨µ½»ù̬

c. ÑæÉ«·´Ó¦µÄ¹âÆ×ÊôÓÚÎüÊÕ¹âÆ× d. ÑæÉ«·´Ó¦µÄ¹âÆ×ÊôÓÚ·¢Éä¹âÆ×

(2)InÔªËØ»ù̬ԭ×ӵļ۵ç×ÓÅŲ¼Ê½Îª________¡£ÓëCuÔªËØͬÖÜÆÚ£¬ÇÒ»ù̬ԭ×ÓÓÐ2¸öδ³É¶Ôµç×ӵĹý¶ÉÔªËØÊÇ____(ÌîÔªËØ·ûºÅ)¡£

(3)µÚÒ»µç×ÓÇ׺ÍÄÜ(E1)ÊÇÔªËصĻù̬Æø̬ԭ×ӵõ½Ò»¸öµç×ÓÐγÉÆø̬¸ºÒ»¼ÛÀë×ÓʱËù·Å³öµÄÄÜÁ¿¡£µÚ¶þÖÜÆÚ²¿·ÖÔªËصÄE1±ä»¯Ç÷ÊÆÈçͼËùʾ¡£ÊÔ·ÖÎö̼ԪËصÄE1½Ï´óµÄÔ­Òò£º______________¡£

(4)[PtCl4(NH3)2]ÖÐH-N-H¼üÖ®¼äµÄ¼Ð½Ç____(Ìî¡°>¡±¡°<¡±»ò¡°=¡±)NH3·Ö×ÓÖÐH-N-H¼üÖ®¼äµÄ¼Ð½Ç£¬Ô­ÒòÊÇ________________¡£

(5)Ìú¡¢ÄøÒ×ÓëCO×÷ÓÃÐγÉôÊ»ùÅäºÏÎïFe(CO)5¡¢Ni(CO)4¡£1¸öFe(CO)5·Ö×ÓÖк¬ÓЦҼüÊýĿΪ____£»ÒÑÖªNi(CO)4·Ö×ÓΪÕýËÄÃæÌå¹¹ÐÍ£¬ÏÂÁÐÈܼÁÄܹ»ÈܽâNi(CO)4µÄÊÇ____(Ìî×Öĸ)¡£

A. ËÄÂÈ»¯Ì¼¡¡¡¡¡¡¡¡B.±½ C.Ë® D.Òº°±

(6)Fe3O4¾§ÌåÖУ¬O2-µÄÖظ´ÅÅÁз½Ê½ÈçͼËùʾ£¬¸ÃÅÅÁз½Ê½ÖдæÔÚ×ÅÓÉÈç1¡¢3¡¢6¡¢7µÄO2-Χ³ÉµÄÕýËÄÃæÌå¿Õ϶ºÍÓÉ3¡¢6¡¢7¡¢8¡¢9¡¢12µÄO2-Χ³ÉµÄÕý°ËÃæÌå¿Õ϶¡£Fe3O4ÖÐÓÐÒ»°ëµÄFe3+Ìî³äÔÚÕýËÄÃæÌå¿Õ϶ÖУ¬ÁíÒ»°ëFe3+ºÍFe2£«Ìî³äÔÚÕý°ËÃæÌå¿Õ϶ÖУ¬ÔòFe3O4¾§ÌåÖУ¬ÕýËÄÃæÌå¿Õ϶ÊýÓëO2-ÊýÖ®±ÈΪ____¡£Fe3O4¾§°ûÖÐÓÐ8¸öͼʾ½á¹¹µ¥Ôª£¬¾§ÌåÃܶÈΪ5.18 g¡¤cm-3£¬Ôò¸Ã¾§°û²ÎÊýa=_____cm(д³ö¼ÆËã±í´ïʽ¼´¿É)¡£

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

¾«Ó¢¼Ò½ÌÍø