The control of cooling power is very important to introduce desired properties. Usually, higher the cooling rate higher the quench hardness and distortion and the optimization of cooling power is the base for good heat treatment. The change of cooling speed during quenching is one of the effective methods to balance hardness and distortion. Different form the general knowledge of the demerit of vapor blanket stage, oil with long vapor blanket stage is also one of effective methods to reduce distortion. The reduction of distortion with enough quench hardness seems to be possible by optimization of cooling condition by the help of computer simulation. The exhibition of higher core hardness than surface in through hardening steels experienced in the "Inverse quench hardening" was introduced by Prof. Tamura and Shimizu. This mechanism is well explained by Arimoto et al, by analysis of computer simulation. In this paper, plural steps cooling methods are compared, in relation with cooling curve and heat transfer coefficient that is necessary to simulate quench results and the possibility of advanced cooling technology is discussed.
参考文献
[1] | JIS K-2526 1965.JIS K-2526 1965 Testing Method for Cooling Ability of Heat Treating Oils STD[S].,1965-08-01. |
[2] | Asada S;Ogino M.Reduced Pressure Quenching Oil and Distortion[A].,1996:395-399. |
[3] | Sugiyama H;Iwata M;Uchigaito M .Influence of Oil Surface Pressure on Vacuum Oil Quench[J].Journal of JSHT,1984,24:274-279. |
[4] | Kawamura T .Direct Carburizing Method and Quench Tank for Low Distortion[J].Journal of JFSJ,1995,46:112-117. |
[5] | Shimizu N;Tamura I .Inverse Quench Hardening of Steel[J].Journal of ISIJ,1975,61:3129. |
[6] | Shimizu N;Tamura I .Effects of Discontinuous Change in Cooling Rate During Continuous Cooling in Pearlite Transformation Behavior of Steel[J].Transactions of the Iron and Steel Institute of Japan,1977,17:469-476. |
[7] | Arimoto K.Explanation of Mechanism on Producing Inverse Quench-Hardening[A]. |
[8] | Funatani K.Forge Quenching and Direct Heat Treatment Technology Today and for the Future[A].,1996 |
[9] | Inoue T;Arimoto K.Metallo-Thermo-Mechanical Simulation of Quenching Process- Theory and Implementation of Computer Code Hearts[A].:205-212. |
[10] | Denis S;Arschambault P;Gautier E;Simmon A G Beck.Proc #3 QCD[C].,1999:263. |
[11] | Jarvstrat N;Sjostrom S .Proc.ABAQUAS Trast[Z].,1993. |
[12] | Huang D;Arimoto K;Lee K;Lambert D Narazaki M.Prediction of quench distortion on steel shaft with keyway by computer simulation[A].:708. |
[13] | Shichino H;Y Nagasaka;T Takahashi;S Kiguchi N Hamasaki.Proc #8 IC IFHT[C].,1992:596-600. |
[14] | Inoue T;Okamura K.Material Database for Simulation of Metallo-Thermo-Mechanical Field[A].,2000:753-760. |
[15] | Saunders N;Miodownik;Cahn R W;V1.CALPHAD A Comprehensive guide Programon Materials Science[M].Elsevier,Oxford,1998 |
[16] | Narazaki M;Hiratsuka H;Shirayori A;Fuchizawa S.Examination of Obtaining Heat Trnsfe Coefficient by Quenching Small Probes[A].北京,1998:269-274. |
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