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Domestic steel files are basically made of T12 steel. The
forged billet must be spheroidizing to meet the
requirements of subsequent machining. Although annealing
of high carbon steel is considered to be a mature
traditional process, its high energy consumption, long
cycle (usually 24h / furnace), serious oxidation and
decarbonization, low production efficiency, prompt people
to study and improve this process.
1)Çò»¯ÍË»ð¹¤ÒոĽøµÄÀíÂÛÒÀ¾Ý¡£
1) the theoretical basis for improving spheroidizing
annealing process.
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Ê£Óà̼»¯Îï¿ÅÁ£ÊýÏàͬ£¬ÓÉ´ËÈÏΪÇò»¯ÍË»ðºóµÄÁ££¨Çò£©×´Ì¼»¯
ÎïÊÇÓÉÊ£Óà̼»¯Îﳤ´ó¶ø³É¡£Õâ¾Í¸æËßÎÒÃǼÓÈȰÂÊÏÌ廯ʱ»ñµÃ
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(1) According to the relevant literature, the number of
granular (spherical) carbide particles in the
conventional spheroidized annealed microstructure is the
same as that of the residual carbide particles in the
austenitized microstructure. It is considered that the
granular (spherical) carbide after spheroidized annealing
is formed by the growth of residual carbide. This tells
us that the more residual carbide particles obtained
during austenitizing, the more spheroidized carbide
particles, and the easier spheroidization.
¢ÚÓÐÑо¿Ö¤Ã÷£¬Çò»¯ÍË»ðʱÓÐÁËÁ£×´Ì¼»¯ÎïµÄºËÐÄÖ»ÊÇÇò»¯µÄÒ»
¸ö·½Ã棬ÒòΪÕâЩʣÓà̼»¯ÎïÔÚËæºóµÄ°ÂÊÏÌå¹ýÀä·Ö½âÖУ¬¼È¿É
ÒÔ×÷Ϊ¹²Îö·Ö½âµÄÁìÏÈÏ࣬´Ùʹ·Ö½âµÄÁíÒ»Ïࣨ¦Á£©×÷ΪÊÜÁìÏà
ÔÚÆä±íÃæÉÏÐκË£¬´Ó¶øÐγÉÁ˹²ÎöÏàµÄºËÐÄ£¬´ËºËÐij¤´óµÄ½á¹û
±ØÈ»ÊÇÁ½ÏàÏà¼ä½»´í·Ö²¼²ãƬ״Öé¹âÌå(PL)¡£´ËÍ⣬»¹ÓÐÒ»ÖÖ¿É
ÄÜ£¬¾ÍÊÇÊ£Óà̼»¯ÎïÁ£»¯µÄÏÖ´æµÄºËÐÄ£¬µ«·Ö½âµÄÁíÒ»Ïࣨ¦Á£©
È´²»×÷ΪÊÜÁìÏ࣬¼´²»ÓÅÏÈÔÚ̼»¯Îï±íÃæÉÏÐκË£¬¶øÊÇÔÚ¹ýÀä°Â
ÊÏÌåÄÚ²¿Éî´¦µ¥¶ÀÐκË£¬ÕâÖÖ°ÂÊÏÌå·Ö½â²úÎïµÄÁ½¸öÏà·Ö±ð¶ÀÁ¢
Ðκˣ¨²»¹¹³É¹²ÎöÌåºËÐÄ£©Ê±£¬ËùÔì³ÉµÄĸÏà°ÂÊÏÌåÄÚ̼Ũ¶È·Ö
²¼Óë¹²Îöת±äʱ²»Í¬£¬Ëü½«´Ùʹ̼»¯ÎïºÍ¦ÁÏà¸÷×Ôµ¥¶À³ÊÇò×´³¤
´ó£¬´Ó¶øµÃµ½Á££¨Çò£©×´Öé¹âÌå( Ps)¡£°ÂÊÏÌ廯ʱµÃµ½µÄ̼Ũ¶È
²»¾ùÔȵİÂÊÏÌå¿ÉÃ÷ÏÔ¼ÓËÙPsµÄÐγɹý³Ì¡£
(2) It has been proved that the nucleus of granular
carbides during spheroidizing annealing is only one
aspect of spheroidization, because these residual
carbides can be used as the leading phase of eutectoid
decomposition in subsequent subcooled decomposition of
austenite, and the other phase (a) of decomposition can
be nucleated on its surface as the receiving phase, thus
forming the eutectoid phase. The core of this core growth
is necessarily the interphase and intergranular
distribution of lamellar pearlite (PL). In addition, it
is also possible that the existing core of residual
carbide granulation, but the decomposition of another
phase (a) does not act as the receiving phase, that is,
does not take precedence in nucleating on the surface of
the carbide, but in the depths of the undercooled
austenite alone nucleation, the two phases of the
decomposition product of the austenite nucleate
independently (does not constitute eutectoid). The
distribution of carbon concentration in the parent
austenite is different from that in eutectoid
transformation. It will promote the growth of carbides
and alpha phases in spherical shape respectively, so that
the granular (spherical) pearlite (Ps) can be obtained.
The austenitizing of austenite can accelerate the
formation of Ps obviously.
¢Û¼ÓÈȹý³ÌµÄ¿ØÖÆÀíÂÛ¡£ÓÐÑо¿Õ߸ù¾Ý¸Ö¼ÓÈȰÂÊÏÌ廯µÄת±äͼ
ºÍ¼ÓÈÈת±äʱ°ÂÊÏÌåµÄÐγɼ°ÆäÄÚ̼Ũ¶È±ä»¯µÄÔ­ÀíÖ¸³ö£¬Í¨¹ý
µ÷Õû¼ÓÈȹ¤ÒÕµÄÈý¸ö²ÎÊý£¨¼ÓÈÈËÙ¶È¡¢¼ÓÈÈζȺͱ£ÎÂʱ¼ä£©¿É
ÒÔ¿ØÖưÂÊÏÌå״̬£¬´Ó¶øÂú×ãǰÊöÀíÂÛµÄÒªÇó¡£ÔÚÀíÂÛÉÏ¿ØÖÆÒÇ
ÏàÏûʧµÄζÈ£¬Ê±¼äÒÔ͸ÉÕΪ׼¡£
3. Control theory of heating process. According to the
austenitizing transformation diagram of steel and the
formation of austenite and the change of carbon
concentration in the austenite during heating
transformation, it is pointed out that the austenite
state can be controlled by adjusting the three parameters
of heating process (heating speed, heating temperature
and holding time), so as to meet the requirements of the
above theory. In theory, the temperature of the
disappearance of the instrument is controlled by time.
2)¿ìËÙÇò»¯ÍË»ð¹¤ÒÕ¼°Ð§¹û¡£¸ù¾ÝÀíÂÛÑо¿ºÍÏÖ³¡²âÊÔ½á¹û£¬ÔÚ
²»¸Ä±äÍË»ðǰºóµÄÀäÈȼӹ¤¹¤ÒÕµÄÇé¿öÏ£¬ÔÚÏÖÓеļ¸Ì¨²»Í¬µÄ
¯ÄÚ¶Ô²»Í¬ÀàÐͺ͹æ¸ñµÄï±µ¶Ã«Å÷½øÐпìËÙÇò»¯ÍË»ðÊÔÑ飬½á¹û
¼û±í3-6¡£Çò»¯ÍË»ðµÄ¼ÓÈÈζÈÓ¦¸ù¾ÝËù²â¯×ÓµÄÈÈÌØÐÔÈ·¶¨£¬¶ø
±£ÎÂʱ¼ä³ýÈ¡¾öÓÚ¯×ÓµÄÈÈÌØÐÔÍ⣬»¹ÓëÍË»ðï±µ¶ÀàÐͼ°×°Â¯Á¿
ÓйØ¡£±£ÎÂʱ¼ä×ܵÄÀ´ËµÓÉÔ­À´µÄ5~6. 5hËõ¶Ìµ½70~ 90min£¬½µ
ÎÂʱ¼ä£¨Ö¸780¡æ°ÂÊÏÌåζȽµÖÁÇò»¯ÏÂÏÞζÈ680¡æËùÐèµÄʱ
¼ä£©ÓÉÔ­À´µÄ9.5~10h¼õÉÙµ½4.5¡«5h£¬¶øÇÒÎÞÅÜÎÂÏÖÏó³öÏÖ¡£
2) rapid spheroidizing annealing process and effect.
According to the results of theoretical research and
field test, the rapid spheroidizing annealing tests of
different types and specifications of file blanks were
carried out in several existing furnaces without changing
the cold and hot working processes before and after
annealing. The results are shown in Table 3-6. The
heating temperature of spheroidizing annealing should be
determined according to the thermal characteristics of
the furnace, and the holding time depends not only on the
thermal characteristics of the furnace, but also on the
type of annealing file and the amount of furnace. In
general, the holding time is shortened from 5-6.5 h to
70-90 min, and the cooling time is reduced from 9.5-10 h
to 4.5-5 h, and there is no running temperature
phenomenon.
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