ÌâÄ¿ÄÚÈÝ

ÏÖÓÐA¡¢B¡¢C¡¢D¡¢E¡¢FÁùÖÖ¶ÌÖÜÆÚÔªËØ£¬ËüÃǵÄÔ­×ÓÐòÊýÒÀ´ÎÔö´ó£¬DÓëEÊÇͬ×åÔªËØ£¬ÇÒD×îÍâ²ãµç×ÓÊýÊÇ´ÎÍâ²ãµç×ÓÊýµÄ3±¶¡£A¡¢BµÄ×îÍâ²ãµç×ÓÊýÖ®ºÍÓëCµÄ×îÍâ²ãµç×ÓÊýÏàµÈ£¬AÄÜ·Ö±ðÓëB¡¢C¡¢DÐγɵç×Ó×ÜÊýÏàµÈµÄ·Ö×Ó£¬ÇÒAÓëD¿ÉÐγɵĻ¯ºÏÎ³£ÎÂϾùΪҺ̬¡£Çë»Ø´ðÏÂÁÐÎÊÌâ(Ìî¿ÕʱÓû¯Ñ§·ûºÅ×÷´ð)£º

(1)BC£­µÄµç×ÓʽΪ               £»ÔªËØFÔÚÖÜÆÚ±íÖеÄλÖÃΪ                  ¡£

(2)×î½üÒâ´óÀûÂÞÂí´óѧµÄFuNvio CacaceµÈÈË»ñµÃÁ˼«¾ßÀíÂÛÑо¿ÒâÒåµÄC4·Ö×Ó¡£C4·Ö×ӽṹÈçÓÒͼËùʾ¡£¸ù¾ÝÒÔÉÏÐÅÏ¢ºÍÊý¾Ý£¬ÏÂÁÐ˵·¨ÕýÈ·µÄÊÇ             ¡£

A£®C4ÊôÓÚÒ»ÖÖÐÂÐ͵Ļ¯ºÏÎï   B£®C4ÓëC2»¥ÎªÍ¬ËØÒìÐÎÌå

C£®C4Îȶ¨ÐÔ±ÈP4(°×Á×)²î      D£®C4ÓëC2»¥ÎªÍ¬Î»ËØ

(3)AÓëCÁ½ÖÖÔªËØ¿ÉÐγɶàÖÖ»¯ºÏÎï·Ö×Ó£¬ÆäÖÐCA3·Ö×ӵķÖ×ӵĿռ乹ÐÍΪ        

          £¬¼ü½Ç             £»C2A4·Ö×ӵĽṹʽΪ                   ¡£

(4)ΪÁ˳ýÈ¥»¯ºÏÎïA2ED4Ï¡ÈÜÒºÖлìÓеÄA2ED3£¬³£²ÉÓÃA2D2ΪÑõ»¯¼Á£¬·¢Éú·´Ó¦µÄÀë×Ó·½³ÌʽΪ                                                 ¡£

(5)EÓëFÐγɵĻ¯ºÏÎïE2F2ÔÚÏ𽺹¤ÒµÉÏÓÐÖØÒªÓÃ;£¬ÓöË®Ò×Ë®½â£¬Æä¿Õ¼ä½á¹¹ÓëA2D2¼«ÎªÏàËÆ¡£¶Ô´ËÒÔÏÂ˵·¨ÕýÈ·µÄÊÇ              

A£®E2F2µÄ½á¹¹Ê½Îª£ºF£­E¡ªE£­F    B£®E2F2ÔÚÒ»¶¨Ìõ¼þÏ£¬ÓÐÑõ»¯ÐÔ»ò»¹Ô­ÐÔ

C£®E2F2ÖеÄÁ½¸÷EÔ­×ӵĻ¯ºÏ¼Û·Ö±ðΪ0¼ÛºÍ+2¼Û

D£®E2F2ÓëH2O·´Ó¦µÄ»¯Ñ§·½³Ìʽ¿ÉÄÜΪ£º2E2F2+2H2O=EO2¡ü+ 3E¡ý+4HF

(6)BÓëD¿ÉÐγÉÁ½ÖÖ³£¼û»¯ºÏÎÆäÖÐÒ»ÖÖ»¯ºÏÎïBD2ÊÇ             ·Ö×Ó(Ìî¡°¼«ÐÔ¡±»ò¡°·Ç¼«ÐÔ¡±)¡£ÔÚ1000 mL 0.1 mol/LµÄ Ca(OH)2ÎïÖʵÄË®ÈÜÒºÖÐÖð½¥Í¨ÈëBD2²¢³ä·Ö½Á°è£¬ÈÜÒºÖÐÎö³ö³ÁµíµÄÖÊÁ¿·¢Éú±ä»¯£¬ÔÚÓÒͼÖл­³ö³ÁµíÖÊÁ¿ËæͨÈëBD2µÄÎïÖʵÄÁ¿µÄ±ä»¯ÇúÏß¡£

 


(¹²14·Ö)(1)           (2·Ö)     ÈýÖÜÆÚ¢÷A×å(1·Ö)

(2)B(1·Ö)

(3)Èý½Ç׶ÐÎ(1·Ö)    107O18¡ä(1·Ö)                (2·Ö)

(4)H2SO3+H2O2=2H++SO42£­+H2O(1·Ö)   (5)ABD(2·Ö)

(6)·Ç¼«ÐÔ(1·Ö)    ͼÏó2·Ö

Á·Ï°²áϵÁдð°¸
Ïà¹ØÌâÄ¿
ÏÖÓÐA¡¢B¡¢C¡¢D¡¢E¡¢FÁùÖÖ¶ÌÖÜÆÚÔªËØ£¬ËüÃǵÄÔ­×ÓÐòÊýÒÀ´ÎÔö´ó£¬DÓëEµÄÇ⻯Îï·Ö×Ó¹¹ÐͶ¼ÊÇVÐÍ£®A¡¢BµÄ×îÍâ²ãµç×ÓÊýÖ®ºÍÓëCµÄ×îÍâ²ãµç×ÓÊýÏàµÈ£¬AÄÜ·Ö±ðÓëB¡¢C¡¢DÐγɵç×Ó×ÜÊýÏàµÈµÄ·Ö×Ó£¬ÇÒAÓëD¿ÉÐγɵĻ¯ºÏÎ³£ÎÂϾùΪҺ̬£®
Çë»Ø´ðÏÂÁÐÎÊÌ⣨Ìî¿ÕʱÓÃʵ¼Ê·ûºÅ£©£º
£¨1£©CµÄÔªËØ·ûºÅÊÇ
N
N
£»ÔªËØFÔÚÖÜÆÚ±íÖеÄλÖÃ
µÚ3ÖÜÆÚµÚ¢÷A×å
µÚ3ÖÜÆÚµÚ¢÷A×å
£®
£¨2£©BÓëDÒ»°ãÇé¿öÏ¿ÉÐγÉÁ½ÖÖ³£¼ûÆø̬»¯ºÏÎ¼ÙÈôÏÖÔÚ¿Æѧ¼ÒÖƳöÁíÒ»ÖÖÖ±ÏßÐÍÆø̬»¯ºÏÎï B2D2·Ö×Ó£¬ÇÒ¸÷Ô­×Ó×îÍâ²ã¶¼Âú×ã8µç×ӽṹ£¬ÔòB2D2µç×ÓʽΪ
£¬Æä¹ÌÌåʱµÄ¾§ÌåÀàÐÍÊÇ
·Ö×Ó¾§Ìå
·Ö×Ó¾§Ìå
£®
£¨3£©×î½üÒâ´óÀûÂÞÂí´óѧµÄFuNvio CacaceµÈÈË»ñµÃÁ˼«¾ßÀíÂÛÑо¿ÒâÒåµÄC4·Ö×Ó£®C4·Ö×ӽṹÈçͼËùʾ£¬ÒÑÖª¶ÏÁÑ1molC-CÎüÊÕ167kJÈÈÁ¿£¬Éú³É1molC=C·Å³ö942kJÈÈÁ¿£®¸ù¾ÝÒÔÉÏÐÅÏ¢ºÍÊý¾Ý£¬ÏÂÁÐ˵·¨ÕýÈ·µÄÊÇ
¢Ú¢Ü¢ß
¢Ú¢Ü¢ß
£®
¢ÙC4ÊôÓÚÒ»ÖÖÐÂÐ͵Ļ¯ºÏÎï
¢ÚC4·Ðµã±ÈP4£¨°×Á×£©µÍ
¢Ûlmol C4ÆøÌåת±äΪC2ÎüÊÕ882kJÈÈÁ¿
¢ÜC4ÓëC2»¥ÎªÍ¬ËØÒìÐÎÌå
¢ÝC4Îȶ¨ÐÔ±ÈP4£¨°×Á×£©²î
¢ÞC4ÊôÓÚÔ­×Ó¾§Ìå
¢ßC4ºÍP4 £¨°×Á×£©µÄ¾§Ì嶼ÊôÓÚ·Ö×Ó¾§Ìå
¢àC4ÓëC2»¥ÎªÍ¬·ÖÒì¹¹Ìå
£¨4£©CÓëFÁ½ÖÖÔªËØÐγÉÒ»ÖÖ»¯ºÏÎï·Ö×Ó£¬¸÷Ô­×Ó×îÍâ²ã´ï8µç×ӽṹ£¬Ôò¸Ã·Ö×ӵĽṹʽΪ
£¬Æä¿Õ¼ä¹¹ÐÍΪ
Èý½Ç׶ÐÍ
Èý½Ç׶ÐÍ
£®
£¨5£©ÎªÁ˳ýÈ¥»¯ºÏÎïÒÒ£¨A2ED4£©Ï¡ÈÜÒºÖлìÓеÄA2ED3£¬³£²ÉÓÃA2D2ΪÑõ»¯¼Á£¬·¢Éú·´Ó¦µÄÀë×Ó·½³ÌʽΪ£º
H2O2+H2SO3=2H++SO42-+H2O
H2O2+H2SO3=2H++SO42-+H2O

£¨6£©EÓëFÐγɵĻ¯ºÏÎïE2F2ÔÚÏ𽺹¤ÒµÉÏÓÐÖØÒªÓÃ;£¬ÓöË®Ò×Ë®½â£¬Æä¿Õ¼ä½á¹¹ÓëA2D2¼«ÎªÏàËÆ£®¶Ô´ËÒÔÏÂ˵·¨ÕýÈ·µÄÊÇ
acd
acd
£®
a£®E2F2µÄ½á¹¹Ê½Îª£ºF-E-E-F
b£®E2F2Ϊº¬Óм«ÐÔ¼ü ºÍ·Ç¼«ÐÔ¼üµÄ·Ç¼«ÐÔ·Ö×Ó
c£®E2Br2ÓëE2F2½á¹¹ÏàËÆ£¬È۷е㣺E2Br2£¾E2F2
d£®E2F2ÓëH2O·´Ó¦µÄ»¯Ñ§·½³Ìʽ¿ÉÄÜΪ£º2E2F2+2H2O=EO2¡ü+3E¡ý+4HF
£¨7£©¾Ù³öÒ»ÖÖÊÂʵ˵Ã÷EÓëFµÄ·Ç½ðÊôÐÔÇ¿Èõ£¨Óû¯Ñ§·½³Ìʽ»òÓÃÓïÑÔÎÄ×Ö±í´ï¾ù¿É£©£º
C12+H2S=S¡ý+2HCl
C12+H2S=S¡ý+2HCl
£®

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

¾«Ó¢¼Ò½ÌÍø