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Articles

Processing map for hot working of stainless steel type AISI 316L

Pages 899-906 | Published online: 18 Jul 2013

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X G Liu, H P Ji, H Guo, M Jin, B F Guo & L Gao. (2013) Study on hot deformation behaviour of 316LN austenitic stainless steel based on hot processing map. Materials Science and Technology 29:1, pages 24-29.
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E.S. Puchi-Cabrera, R.A. Saya-Gamboa, J.G. La Barbera-Sosa, M.H. Staia, V. Ignoto-Cardinale, J.A. Berríos-Ortiz & G. Mesmacque. (2009) Fatigue life of AISI 316L stainless steel welded joints, obtained by GMAW. Welding International 23:10, pages 778-788.
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P.V. Sivaprasad, S.L. Mannan & Y.V.R.K. Prasad. (2004) Processing parameters for the mechanical working of 9 Cr–1 Mo steel: processing maps approach. Materials Science and Technology 20:12, pages 1545-1550.
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E. S. Puchi-Cabrera. (2003) Mechanical behaviour of 31 6L stainless steel under warm working conditions. Materials Science and Technology 19:2, pages 189-194.
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P.V. Sivaprasad, S.L. Mannan, Y.V.R.K. Prasad & R.C. Chaturvedi. (2001) Identification of processing parameters for Fe–15Cr–2.2Mo–15Ni–0.3Ti austenitic stainless steel using processing maps. Materials Science and Technology 17:5, pages 545-550.
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E.S. Puchi Cabrera. (2001) High temperature deformation of 316L stainless steel. Materials Science and Technology 17:2, pages 155-161.
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W.S. Lee, W.C. Sue, C.F. Lin & C.J. Wu. (1999) Effect of aging on high strain rate and high temperature properties of 7075 aluminium alloy. Materials Science and Technology 15:12, pages 1379-1386.
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S. Venugopal, M. Vasudevan, Sridhar Venugopal, P. V. Sivaprasad, S. K. Jha, P. Pandey, S. L. Mannan & Y. V. R. K. Prasad. (1996) Industrial validation of processing maps of 316L stainless steel using hot forging, rolling, and extrusion. Materials Science and Technology 12:11, pages 955-962.
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Articles from other publishers (20)

Prince Setia, Subrata Mukherjee, Sudhanshu S. Singh, T. Venkateswaran & Shashank Shekhar. (2023) Deformation characteristics and microstructure evolution during hot deformation of 18Cr–12Ni–4Si stainless steel. Journal of Materials Science 58:11, pages 4987-5009.
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Hossein Eskandari Sabzi & Pedro E.J. Rivera-Díaz-del-Castillo. (2020) Composition and process parameter dependence of yield strength in laser powder bed fusion alloys. Materials & Design 195, pages 109024.
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Matthew L.S. Zappulla, Seong-Mook Cho, Seid Koric, Hyoung-Jun Lee, Seon-Hyo Kim & Brian G. Thomas. (2020) Multiphysics modeling of continuous casting of stainless steel. Journal of Materials Processing Technology 278, pages 116469.
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Felipe Anderson S. de Aquino, Eden S. Silva, Samuel F. Rodrigues, Clodualdo AranasJr.Jr., Fulvio Siciliano, Samir S. Coutinho & Gedeon S. Reis. (2019) Thermomechanical Behavior of Biocompatible Austenitic Stainless Steels during Simulated Torsion Tests. Journal of Materials Engineering and Performance 28:9, pages 5890-5901.
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Y W Sun, Y P Zhong, L S Wang & F X Fan. (2019) 3D processing maps and a modified constitutive model of 16Cr-5Ni-Mo supermartensitic stainless steel. IOP Conference Series: Materials Science and Engineering 474, pages 012062.
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Yucheng Zhou, Zhaoyun Chen, Jinqhan Ji & Zhijie Sun. (2018) Optimization of Hot Deformation Parameters and Constitutive Analysis for As-Cast Mg-5Li-3Zn-0.3Y Alloy Using Processing Maps. Journal of Materials Engineering and Performance 27:9, pages 4606-4615.
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Karl Dawson, Sarah J. Haigh, Gordon J. Tatlock & Andy R. Jones. (2015) Nano-particle precipitation in mechanically alloyed and annealed precursor powders of legacy PM2000 ODS alloy. Journal of Nuclear Materials 464, pages 200-209.
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P. Mallikarjuna Rao & S. S. Bhattacharya. (2009) On the hot tensile deformation behavior of an AISI 316LN stainless steel. Transactions of the Indian Institute of Metals 62:1, pages 41-48.
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Sumantra Mandal, P V Sivaprasad, S Venugopal & K P N Murthy. (2006) Constitutive flow behaviour of austenitic stainless steels under hot deformation: artificial neural network modelling to understand, evaluate and predict. Modelling and Simulation in Materials Science and Engineering 14:6, pages 1053-1070.
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J. A. DeALMEIDA & R. BARBOSA. (2005) Hot Deformation of Austenitic Stainless Steel Type 316 up to Strain Rates of 100 s-1. ISIJ International 45:2, pages 296-298.
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G.G. Yapici, I. Karaman, Z.P. Luo, H.J. Maier & Y.I. Chumlyakov. (2011) Microstructural refinement and deformation twinning during severe plastic deformation of 316L stainless steel at high temperatures. Journal of Materials Research 19:8, pages 2268-2278.
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Woei-Shyan Lee & Chi-Feng Lin. (2001) Impact properties and microstructure evolution of 304L stainless steel. Materials Science and Engineering: A 308:1-2, pages 124-135.
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Woei-Shyan Lee & Chi-Feng Lin. (2001) Effects of Prestrainning on the Impact Response and Twinning Structure of 304L Stainless Steel. MATERIALS TRANSACTIONS 42:10, pages 2080-2086.
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Woei-Shyan Lee & Wu-Chung Sue. (2016) Dynamic Impact and Fracture Behaviour of Carbon Fiber Reinforced 7075 Aluminum Metal Matrix Composite. Journal of Composite Materials 34:21, pages 1821-1841.
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Woei-Shyan Lee, Jia-Chyuan Shyu & Su-Tang Chiou. (1999) Effect of strain rate on impact response and dislocation substructure of 6061-T6 aluminum alloy. Scripta Materialia 42:1, pages 51-56.
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S.P Narayan, K Basu, Y.V.R.K Prasad, V Jayaram & B.N Das. (1998) A Study of the Formability of Melt Spun Nd-Fe-B Magnets. Scripta Materialia 38:11, pages 1725-1730.
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S. Venugopal, S.L. Mannan & Y.V.R.K. Prasad. (1997) Instability map for cold and warm working of as-cast 304 stainless steel. Journal of Materials Processing Technology 65:1-3, pages 107-115.
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S. Venugopal, S.L. Mannan & Y.V.R.K. Prasad. (1996) Influence of strain rate and state-of-stress on the formation of ferrite in stainless steel type AISI 304 during hot working. Materials Letters 26:3, pages 161-165.
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S. Venugopal, S. L. Mannan & Y. V. R. K. Prasad. (1996) Optimization of cold and warm workability in 304 stainless steel using instability maps. Metallurgical and Materials Transactions A 27:1, pages 119-126.
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S. Venugopal, S.L. Mannan & Y.V.R.K. Prasad. (1995) Optimization of cold and warm workability in stainless steel type AISI 316L using instability maps. Journal of Nuclear Materials 227:1-2, pages 1-10.
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