Numerical and experimental analysis of quenching process for cam manufacturing

Qian Tang , Lin-qing Pei , Han-song Xiao

Journal of Central South University ›› 2010, Vol. 17 ›› Issue (3) : 529 -536.

PDF
Journal of Central South University ›› 2010, Vol. 17 ›› Issue (3) : 529 -536. DOI: 10.1007/s11771-010-0518-0
Article

Numerical and experimental analysis of quenching process for cam manufacturing

Author information +
History +
PDF

Abstract

In order to obtain satisfactory mechanical properties for the cam used in high-power ship diesel engines, a new quenching technology was proposed by designing a two-stage quenching process with an alkaline bath as the quenching medium. To demonstrate the effectiveness of the proposed new quenching technology, both numerical analysis and experimental study were performed. The new quenching technology was analyzed using finite element method. The combined effects of the temperature, stress and microstructure fields were investigated considering nonlinear material properties. Finally, an experimental study was performed to verify the effectiveness of the proposed new quenching technology. The numerical results show that internal stress is affected by both thermal stress and transformation stress. In addition, the direction of the internal stress is changed several times due to thermal interaction and microstructure evolution during the quenching process. The experimental results show that the proposed new quenching technology significantly improves the mechanical properties and microstructures of the cam. The tensile strength, the impact resistance and the hardness value of the cam by the proposed new quenching technology are improved by 4.3%, 8.9% and 3.5% compared with those by the traditional quenching technology. Moreover, the residual stress and cam shape deformation are reduced by 40.0% and 48.9% respectively for the cam manufactured by the new quenching technology.

Keywords

quenching process / cam manufacturing / finite element method / numerical / simulation experimental study

Cite this article

Download citation ▾
Qian Tang, Lin-qing Pei, Han-song Xiao. Numerical and experimental analysis of quenching process for cam manufacturing. Journal of Central South University, 2010, 17(3): 529-536 DOI:10.1007/s11771-010-0518-0

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

LiH.-p., ZhaoG.-q., HeL.-fang.. Finite element method based simulation of stress-strain field in the quenching process [J]. Materials Science and Engineering A, 2008, 478(1/2): 276-290

[2]

ToparliM., SahinS., OzkayaE., SasakiS.. Residual thermal stress analysis in cylindrical steel bars using finite element method and artificial neural networks [J]. Computers and Structures, 2002, 80(23): 1763-1770

[3]

YaoX., GuJ.-f., HuM.-j., ZhangW.-min.. Numerical simulation of the quenching process of GCr15 steel tube [J]. Transactions of Materials Heat Treatment, 2003, 24(1): 78-81

[4]

HossainS., DaymondM. R., TrumanC. E., SmithD. J.. Prediction and measurement of residual stresses in quenched stainless-steel spheres [J]. Materials Science and Engineering A, 2004, 373(1/2): 334-349

[5]

GürC. H., TekkayaA. E.. Numerical investigation of non-homogeneous plastic deformation in quenching process [J]. Material Science and Engineering A, 2001, 312/319: 164-169

[6]

KangS. H., ImY. T.. Three-dimensional thermo-elastic-plastic finite element modeling of quenching process of plain-carbon steel in couple with phase transformation [J]. International Journal of Mechanical Sciences, 2007, 49(4): 423-439

[7]

SenS., AksakalB., OzelA.. Transient and residual thermal stress in quenched cylindrical bodies [J]. International Journal of Mechanical Sciences, 2000, 42(10): 2013-2029

[8]

CoretM., CallochS., CombescureA.. Experimental study of the phase transformation plasticity of 16MND5 low carbon steel under multiaxial loading [J]. International Journal of Plasticity, 2002, 18(12): 1707-1727

[9]

KakhkiM. E., KermanpurA., GolozarM. A.. Numerical simulation of continuous cooling of a low alloy steel to predict microstructure and hardness [J]. Modelling and Simulation in Materials Science and Engineering, 2009, 17(4): 1-21

[10]

UlysseP., SchultzR. W.. The effect of coatings on the thermo-mechanical response of cylindrical specimens during quenching [J]. Journal of Materials Processing Technology, 2008, 204(1/3): 39-47

[11]

SongD. L., GuJ. F., PanJ. S., HuM. J.. Numerical simulation of quenching of large sized blocks of 718 steel used for plastic dies [J]. Materials Science and Technology, 2004, 20(12): 1567-1572

[12]

DolanG. P., FlynnR. J., TannerD. A., RobinsonJ. S.. Quench factor analysis of aluminium alloys using the Jominy end quench technique [J]. Materials Science and Technology, 2005, 21(6): 687-692

[13]

LiH.-p., ZhaoG.-q., HuangC.-z., NiuS.-ting.. Technological parameters evaluation of gas quenching based on the finite element method [J]. Computational Material Science, 2007, 40(2): 282-291

[14]

SongG.-s., LiuX.-h., WangG.-d., XuX.-q., LiG.-chen.. Numerical simulation of microstructure and stress in carburizing and quenching process of 22CrMo steel [J]. Journal of Iron and Steel Research, 2006, 18(10): 36-40

[15]

WangD.-g., WuY.-c., JiaoM.-h., YuJ.-w., XieT.. Finite element simulation of influence of different compacting processes on powder metallurgic products properties [J]. Chinese Journal of Mechanical Engineering, 2008, 44(1): 205-211

[16]

WangX.-cheng.Finite element method [M], 2003, Beijing, Tsinghua University Press: 1-776

[17]

YuanJ., ZhangW.-m., LiuZ.-c., ChenN.-l., WangM.-h., XuJ.. The measurement and calculation of heat transfer coefficient under cooling conditions [J]. Transactions of Materials and Heat Treatment, 2005, 26(4): 115-119

[18]

TanZ., GuoG.-wen.Thermophysical properties of engineering alloys [M], 1994, Beijing, Metallurgical Industry Press: 1-228

AI Summary AI Mindmap
PDF

130

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/