Constitutive modeling of flow behavior of CuZn39Pb2 alloy under hot working conditions
-
Jing Yin
Abstract
CuZn39Pb2 is a typical forged copper alloy widely used in various hot-forged valve bodies because of its super plasticity, high strength, and corrosion resistance. In this work, the deformation behavior of CuZn39Pb2 alloy at temperatures and strain rates of 650–750 °C and from 0.1 s−1 to 10 s−1 are investigated by isothermal hot compression tests on a Gleeble 3800 thermomechanical simulator. The experimental data are used to develop constitutive equations based on the Arrhenius-type equation. In the constitutive equations, the effects of true strain, deformation temperature, and strain rate on flow stress are incorporated and represented by the Zener–Hollomon parameter. The flow stress predicted by the constitutive equations agrees well with the experimental stress, which can be used in the finite-element simulation study of hot-forged CuZn39Pb2 alloy valve body.
References
[1] H.Y.Tang, M.S.Yang, W.J.Meng, J.S.Li: Chin. J. Eng.38 (2016) 77. 10.13374/j.issn2095-9389.2016.01.011Search in Google Scholar
[2] A.A.Rogovoy, N.K.Salikhova: Solid State Phenom.243 (2016) 75. 10.4028/www.scientific.net/SSP.243.75Search in Google Scholar
[3] X.Y.Wang, C.Z.Huang, B.Zou, H.L.Liu, H.T.Zhu, J.Wang: Mater. Sci. Eng. A580 (2013) 385. 10.1016/j.msea.2013.05.062Search in Google Scholar
[4] J.Liu, Z.S.Cui, C.X.Li: Comput. Mater. Sci.41 (2008) 375. 10.1016/j.commatsci.2007.04.024Search in Google Scholar
[5] G.Z.Quan, A.Mao, G.C.Luo, J.T.Liang, D.S.Wu, J.Zhou: Mater. Des.52 (2013) 98. 10.1016/j.matdes.2013.05.030Search in Google Scholar
[6] A.Abbasi-Bani, A.Zarei-Hanzaki, M.H.Pishbin, N.Haghdadi: Mech. Mater.71 (2014) 52. 10.1016/j.mechmat.2013.12.001Search in Google Scholar
[7] H.Mirzadeh: Mech. Mater.85 (2015) 66. 10.1016/j.mechmat.2015.02.014Search in Google Scholar
[8] T.Mirzaie, H.Mirzadeh, J.M.Cabrera: Mech. Mater.94 (2016) 38. 10.1016/j.mechmat.2015.11.013Search in Google Scholar
[9] Y.F.Li, Z.H.Wang, L.Y.Zhang, C.Luo, X.C.Lai: Trans. Nonferrous Met. Soc. China25 (2015) 1889. 10.1016/S1003-6326(15)63796-7Search in Google Scholar
[10] W.T.Jia, S.Xu, Q.C.Le, L.Fu, L.F.Ma, Y.Tang: Mater. Des.106 (2016) 120. 10.1016/j.matdes.2016.05.089Search in Google Scholar
[11] Y.C.Lin, Y.Ding, M.S.Chen, J.Deng: Mater. Des.52 (2013) 118. 10.1016/j.matdes.2013.05.036Search in Google Scholar
[12] W.Feng, Y.H.Fu: Mater. Des.57 (2014) 465. 10.1016/j.matdes.2014.01.014Search in Google Scholar
[13] Y.H.Xiao, C.Guo: Mater. Sci. Eng. A528 (2011) 508. 10.1016/j.msea.2011.03.050Search in Google Scholar
[14] A.Sanrutsadakorn, V.Uthaisangsuk, S.Suranuntchai, B.Thossatheppitak: Appl. Mech. Mater.249–250 (2012) 863. 10.4028/www.scientific.net/AMM.249-250.863Search in Google Scholar
[15] Z.Y.Ding, S.G.Jia, P.F.Zhao, D.Meng, K.X.Song: Mater. Sci. Eng., A570 (2013) 87. 10.1016/j.msea.2013.01.059Search in Google Scholar
[16] Y.C.Lin, D.X.Wen, J.Deng, G.Liu, J.Chen: Mater. Des.59 (2014) 115. 10.1016/j.matdes.2014.02.041Search in Google Scholar
[17] M.H.Wang, G.T.Wang, R.Wang: J. Cent. South Univ.23 (2016) 1863. 10.1007/s11771-016-3241-7Search in Google Scholar
[18] X.M.Chen, Y.C.Lin, D.X.Wen, J.L.Zhang, M.He: Mater. Des.57 (2014) 568. 10.1016/j.matdes.2013.12.072Search in Google Scholar
[19] Y.C.Lin, M.S.Chen, J.Zhong: Comput. Mater. Sci.42 (2008) 470. 10.1016/j.commatsci.2007.08.011Search in Google Scholar
[20] D.S.Qian, Y.Y.Peng, J.D.Deng: J. Cent. South Univ.24 (2017) 284. 10.1007/s11771-017-3429-5Search in Google Scholar
[21] J.L.Liu, W.D.Zeng, Y.C.Zhu, H.Q.Yu, Y.Q.Zhao: J. Mater. Eng. Perform.18 (2011) 101. 10.1007/s11665-015-1456-7Search in Google Scholar
[22] F.Yin, L.Hua, H.J.Mao, X.H.Han: Mater. Des.43 (2013) 393. 10.1016/j.matdes.2012.07.009Search in Google Scholar
[23] E.X.Pu, H.Feng, M.Liu, W.J.Zheng, H.Dong, Z.G.Song: J. Iron Steel Res. Int.23 (2016) 178. 10.1016/S1006-706X(16)30031-0Search in Google Scholar
© 2019, Carl Hanser Verlag, München
Articles in the same Issue
- Original Contributions
- Thermodynamic re-assessment of the binary Cr–Ta system down to 0 K
- Thermodynamic analysis of precipitation behavior of M23C6 carbide in Nimonic 105 superalloy
- Texture evolution of magnesium alloy AZ31 during high temperature tensile deformation
- Effect of reciprocating extrusion temperature and passes on the microstructural evolution of Mg-5Sn-1Si-0.8Y alloy
- Constitutive modeling of flow behavior of CuZn39Pb2 alloy under hot working conditions
- The effect of austempering on the microstructure and mechanical properties of PM Fe-0.8c steel aloyed with copper and nickel
- Enhancing the microstructure and grain refining performance of Al-5Ti-1B master alloy by a gas atomization process
- Aging response investigation of 2017 Al alloy processed by gravity and squeeze casting
- Die-casting aluminum alloys for high-efficiency thermal radiation components
- Wear and corrosion of in-situ formed Al3Zr aluminide reinforced Al3003 surface composite
- Magnesium aluminate spinel ceramics infiltrated with lanthanum-glass for dental applications
- Short Communications
- Influence of pre-rolling on microstructural evolution of non-basal textured magnesium alloy
Articles in the same Issue
- Original Contributions
- Thermodynamic re-assessment of the binary Cr–Ta system down to 0 K
- Thermodynamic analysis of precipitation behavior of M23C6 carbide in Nimonic 105 superalloy
- Texture evolution of magnesium alloy AZ31 during high temperature tensile deformation
- Effect of reciprocating extrusion temperature and passes on the microstructural evolution of Mg-5Sn-1Si-0.8Y alloy
- Constitutive modeling of flow behavior of CuZn39Pb2 alloy under hot working conditions
- The effect of austempering on the microstructure and mechanical properties of PM Fe-0.8c steel aloyed with copper and nickel
- Enhancing the microstructure and grain refining performance of Al-5Ti-1B master alloy by a gas atomization process
- Aging response investigation of 2017 Al alloy processed by gravity and squeeze casting
- Die-casting aluminum alloys for high-efficiency thermal radiation components
- Wear and corrosion of in-situ formed Al3Zr aluminide reinforced Al3003 surface composite
- Magnesium aluminate spinel ceramics infiltrated with lanthanum-glass for dental applications
- Short Communications
- Influence of pre-rolling on microstructural evolution of non-basal textured magnesium alloy