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Original Articles

Study on the substructure evolution and flow behaviour in type 316L stainless steel over the temperature range 21–900°C

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Pages 97-114 | Received 09 Feb 1987, Accepted 09 May 1987, Published online: 20 Aug 2006

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Read on this site (14)

Balbir Kumar Singh, J. Christopher, Panneer Selvi, Jagannath Mishra & G.V. Prasad Reddy. (2022) Deformation behaviour and strain rate sensitivity of 304L SS at elevated temperatures. Materials at High Temperatures 39:5, pages 352-362.
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B.K. Choudhary & D.P. Rao Palaparti. (2013) Influence of processing route and section size on tensile stress–strain and work hardening behaviour of 9Cr–1Mo ferritic steel. Materials at High Temperatures 30:2, pages 129-139.
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B K Choudhary, D P Rao Palaparti, E Isaac Samuel & T Jayakumar. (2013) Unified tensile work hardening behaviour of 9Cr–1Mo ferritic steel. Materials Science and Technology 29:3, pages 278-284.
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P. V. Sivaprasad, S. Venugopal & S. Venkadesan. (2004) Effect of temperature and strain rate on tensile flow and work hardening behaviour of a Ti modified austenitic stainless steel. Materials Science and Technology 20:3, pages 350-356.
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K. K. Singh, S. Sangal & G. S. Murty. (2002) Hall–Petch behaviour of 316L austenitic stainless steel at room temperature. Materials Science and Technology 18:2, pages 165-172.
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B.K. Choudhary, E.I. Samuel, K. Bhanu Sankara Rao & S.L. Mannan. (2001) Tensile stress–strain and work hardening behaviour of 316LN austenitic stainless steel. Materials Science and Technology 17:2, pages 223-231.
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K.J. Kurzydlowski, K.J. McTaggart & K. Tangri. (1990) On the correlation of grain geometry changes during deformation at various temperatures to the operative deformation modes. Philosophical Magazine A 61:1, pages 61-83.
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