ÌâÄ¿ÄÚÈÝ

×ÐϸÔĶÁ²¢Íê³ÉÏÂÌ⣺
ÎÒÃÇ°ÑÒ»¸ö°ëÔ²ÓëÅ×ÎïÏßµÄÒ»²¿·ÖºÏ³ÉµÄ·â±ÕͼÐγÆΪ¡°µ°Ô²¡±£»Èç¹ûÒ»ÌõÖ±ÏßÓë¡°µ°Ô²¡±Ö»ÓÐÒ»¸ö½»µã£¬ÄÇôÕâÌõÖ±Ïß½Ð×ö¡°µ°Ô²¡±µÄÇÐÏߣ®Èçͼ£¬ÒÑÖª¡°µ°Ô²¡±ÊÇÓÉÅ×ÎïÏßy=ax2-2ax+cµÄÒ»²¿·ÖºÍÔ²ÐÄΪMµÄ°ëÔ²ºÏ³ÉµÄ£®µãA¡¢B¡¢C·Ö±ðÊÇ¡°µ°Ô²¡±Óë×ø±êÖáµÄ½»µã£¬ÒÑÖªµãAµÄ×ø±êΪ£¨-1£¬0£©£¬ABΪ°ëÔ²µÄÖ±¾¶£¬
£¨1£©µãBµÄ×ø±êΪ£¨______£¬______£©£»µãCµÄ×ø±êΪ£¨______£¬______£©£¬°ëÔ²MµÄ°ë¾¶Îª______£»
£¨2£©ÈôPÊÇ¡°µ°Ô²¡±ÉϵÄÒ»µã£¬ÇÒÒÔO¡¢P¡¢BΪ¶¥µãµÄÈý½ÇÐÎÊǵÈÑüÖ±½ÇÈý½ÇÐÎÇó·ûºÏÌõ¼þµÄµãPµÄ×ø±ê£¬ÒÔ¼°Ëù¶ÔÓ¦µÄaµÄÖµ£»
£¨3£©ÒÑÖªÖ±ÏßÊýѧ¹«Ê½ÊÇ¡°µ°Ô²¡±µÄÇÐÏߣ¬ÇóÂú×ãÌõ¼þµÄÅ×ÎïÏß½âÎöʽ£®

½â£º£¨1£©ÓÉÅ×ÎïÏßy=ax2-2ax+cÖª£¬¶Ô³ÆÖá x=1£»
¡àµãMµÄ×ø±êΪ£¨1£¬0£©£»
¡ßµãA¡¢B¹ØÓÚµãM¶Ô³Æ£¬ÇÒA£¨-1£¬0£©¡¢M£¨1£¬0£©
¡àB£¨3£¬0£©£¬°ëÔ²µÄ°ë¾¶ r=AM=BM=2£»
Á¬½ÓCM£¬ÔÚRt¡÷OCMÖУ¬CM=r=2£¬OM=1£¬OC===£¬¼´ C£¨0£¬£©£»
¹Ê´ð°¸£ºB£¨3£¬0£©¡¢C£¨0£¬£©£¬°ëÔ²MµÄ°ë¾¶Îª2£®

£¨2£©ÒòΪÅ×ÎïÏßy=ax2-2ax+c¾­¹ýA£¨-1£¬0£©£¬ÓУº
a+2a+c=0£¬c=-3a
¡àÅ×ÎïÏߣºy=ax2-2ax-3a£»
¢ñ¡¢µ±µãPÔÚ°ëÔ²ÉÏʱ£»
¢ÙµãPÊÇÖ±½Ç¶¥µã£¬ÈçÓÒͼ£¨Í¼¢ñ-¢Ù£©£»
Èô¡÷OBPÊǵÈÑüÖ±½ÇÈý½ÇÐΣ¬ÄÇôµãP±ØÔÚOBµÄÖд¹ÏßÉÏ£¬¼´ AD=BD=PD=£»
ÔÚRt¡÷OPDÖУ¬OP=2£¬OD=£¬Ôò PD==¡Ù£¬
Ï߶ÎPD³¤µÄÇ°ºó½áÂÛì¶Ü£¬ËùÒÔÕâÖÖÇé¿ö²»³ÉÁ¢£»
¢ÚµãOÊÇÖ±½Ç¶¥µã£»
ÓÉ£¨1£©Öª£ºOC=£¼OB£¬Òò´ËÕâÖÖÇé¿öÒ²²»³ÉÁ¢£®
¢ò¡¢µãPÔÚÅ×ÎïÏßÉÏʱ£»
¢ÙµãPÊÇÖ±½Ç¶¥µã£¬ÈçÓÒͼ£¨Í¼¢ò-¢Ù£©£»
Èô¡÷OPBÊǵÈÑüÖ±½ÇÈý½ÇÐΣ¬Ôò OD=BD=PD=£¬¼´ P£¨£¬-£©£»
½«µãPµÄ×ø±ê´úÈëy=ax2-2ax-3aÖУ¬ÓУº
a¡Á£¨£©2-2a¡Á-3a=-£¬
½âµÃ£ºa=£»
¢ÚµãOÊÇÖ±½Ç¶¥µã£¬ÄÇôµãP±ØΪÅ×ÎïÏßÓëyÖáµÄ½»µã£¨Èçͼ¢ò-¢Ú£©£»
Èô¡÷OPBΪµÈÑüÖ±½ÇÈý½ÇÐΣ¬Ôò OP=OB=3£¬¼´ P£¨0£¬-3£©£»
ͬ¢Ù£¬ÇóµÃ£ºa=1£®
×ÛÉÏ£¬µ±P£¨0£¬-3£©Ê±£¬a=1£»µ±P£¨£¬-£©Ê±£¬a=£®

£¨3£©ÁªÁ¢Ö±Ïßy=x-ÓëÅ×ÎïÏßy=ax2-2ax-3a£¬ÓУº
x-=ax2-2ax-3a£¬
»¯¼ò£¬µÃ£ºax2-£¨2a+1£©x-3a+=0
¡à¡÷=£¨2a+1£©2-4a£¨-3a+£©=16a2-10a+1=0£¬
½âµÃ£ºa=»òa=£»
¡àÂú×ãÌõ¼þµÄÅ×ÎïÏߵĽâÎöʽΪ£ºy=x2-x-¡¢y=x2-x-£®
·ÖÎö£º£¨1£©ÓÉж¨ÒåµÄ¡°µ°Ô²¡±Í¼Ðβ»ÄÑ¿´³ö£º¡°µ°Ô²¡±ÊÇÒ»¸öÖá¶Ô³ÆͼÐΣ¬¶Ô³ÆÖáÓëÅ×ÎïÏßÏàͬ£¬Òò´ËÔ²ÐÄMÔÚÅ×ÎïÏߵĶԳÆÖáÉÏ£¬Ê×ÏÈÓÉÅ×ÎïÏߵĽâÎöʽȷ¶¨µãMµÄ×ø±ê£¬ÔÙÓÉA¡¢B¹ØÓÚµãM¶Ô³ÆÇó³öµãBµÄ×ø±ê£¬Ôò°ëÔ²µÄ°ë¾¶¿ÉÇó£»Á¬½ÓCM£¬ÔÚRt¡÷OCMÖУ¬CMÊÇ°ëÔ²µÄ°ë¾¶£¬OMÊǵãMºá×ø±êµÄ¾ø¶ÔÖµ£¬Óɹ´¹É¶¨Àí¼´¿ÉÇóµÃOCµÄ³¤£¬ÔòµãCµÄ×ø±ê¿ÉÇó£®
£¨2£©Ê×ÏȽ«µãA»òµãBµÄ×ø±ê´úÈëÅ×ÎïÏߵĽâÎöʽÖУ¬Çó³öa¡¢cµÄÊýÁ¿¹Øϵ£¬Ä¿±êÊÇÁîÅ×ÎïÏߵĽâÎöʽÖÐÖ»ÓÐÒ»¸ö´ý¶¨ÏµÊýa£»Í¨¹ý¹Û²ìͼÐβ»ÄÑ¿´³ö£ºµãB²»¿ÉÄÜÊÇÖ±½Ç¶¥µã£¬Òò´ËÖ»¿¼ÂÇÁ½ÖÖÇé¿ö£ºµãOÊÇÖ±½Ç¶¥µã¡¢µãPÊÇÖ±½Ç¶¥µã£»
¢ñ¡¢µ±µãPÔÚ°ëÔ²ÉÏʱ£¬Èô´æÔÚ·ûºÏÌõ¼þµÄµãP£¬ÄÇôaÖ»Òª´óÓÚ0¾Í·ûºÏÌâ¸ÉµÄÒªÇó£¬ÐèÒª·ÖÁ½ÖÖÇé¿öÌÖÂÛ£º
¢ÙÈôµãOΪֱ½Ç¶¥µã£¬ÄÇôµãPΪ°ëÔ²ÓëyÖáµÄ½»µã£¬ÏÔÈ»ÓÉ£¨1£©µÄ½áÂÛ¿ÉÒÔÅжϳöOB¡¢OCÊÇ·ñΪÏàµÈ¹Øϵ£¬ÈôÏàµÈ£¬ÄÇôµãC¾Í·ûºÏµãPµÄÒªÇó£¬Èô²»ÏàµÈ£¬ÄÇôÕâÖÖÇé¿ö²»Ó迼ÂÇ£»
¢ÚÈôµãPΪֱ½Ç¶¥µã£¬ÄÇô×÷OBµÄÖд¹Ïߣ¬Èô´æÔÚ·ûºÏÌõ¼þµÄµãP£¬ÄÇôµãP±ØΪÖд¹ÏßÓë°ëÔ²µÄ½»µã£¬¿ÉÒÔͨ¹ý¹´¹É¶¨ÀíÇó³ö¸Ãµãµ½xÖáµÄ¾àÀ룬ȻºóÅжϴ˾àÀëÊÇ·ñΪOBµÄÒ»°ë¼´¿É£®
¢ò¡¢µ±µãPÔÚÅ×ÎïÏßÉÏʱ£¬ÈôÄÜÇóµÃ·ûºÏÌõ¼þµÄµãP£¬¿ÉÒÔ´úÈëÅ×ÎïÏߵĽâÎöʽÖÐÇó³öaµÄÖµ£»·ÖÁ½ÖÖÇé¿öÌÖÂÛ£º
¢ÙÈôµãOΪֱ½Ç¶¥µã£¬Í¬¢ñ-¢ÙÏÈÇó³öµãPµÄ×ø±ê£¬ÔÙ´úÈëÅ×ÎïÏߵĽâÎöʽÖÐÈ·¶¨aµÄÖµ£»
¢ÚÈôµãPΪֱ½Ç¶¥µã£¬Ê×Ïȸù¾ÝµÈÑüÖ±½ÇÈý½ÇÐεÄÐÔÖÊÈ·¶¨µãPµÄ×ø±ê£¨µÈÑüÖ±½ÇÈý½ÇÐÎб±ßÉϵĸߵÈÓÚб±ßµÄÒ»°ë£©£¬È»ºó´úÈëÅ×ÎïÏߵĽâÎöʽÖÐÇó½â¼´¿É£®
£¨3£©ÁªÁ¢Ö±ÏߺÍÅ×ÎïÏߵĽâÎöʽ£¬ÏûÈ¥yºó£¬ÁîËùµÃµÄÒ»Ôª¶þ´Î·½³ÌµÄ¸ùµÄÅбðʽΪ0£¬¼´¿ÉÇó³öaµÄÖµ£®
µãÆÀ£º¸ÃÌâ¸ø³öÁËÒ»¸öÐÂͼÐεĶ¨Ò壬µ«¹é¸ùµ½µ×»¹ÊÇÔ²ºÍ¶þ´Îº¯ÊýµÄ×ÛºÏÌ⣻Ö÷ÒªÉæ¼°µÄ¿¼µãÓУºÔ²ºÍÅ×ÎïÏߵĶԳÆÐÔ¡¢Ö±ÏßÓëÅ×ÎïÏß½»µã¸öÊýµÄÈ·¶¨·½·¨¡¢µÈÑüÖ±½ÇÈý½ÇÐεÄÅж¨ºÍÐÔÖʵȣ»ÌâÄ¿µÄÄѵãÊǵڶþСÌ⣬Éæ¼°µÄÇé¿ö½Ï¶à£¬ÐèÒª·ÖÀàÌÖÂÛ£»ÐèҪעÒâµÄÊÇ£¬ÓÉÓÚÌâ¸É¸ø³öµÄÊÇ¡°µãPÔÚ¡®µ°Ô²¡¯ÉÏ¡±£¬Òò´ËµãPÔÚ°ëÔ²ÉϵÄÇé¿öÒ²ÐèÒª½øÐÐÌÖÂÛ£®
Á·Ï°²áϵÁдð°¸
Ïà¹ØÌâÄ¿

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

¾«Ó¢¼Ò½ÌÍø