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Articles

Role of alloying elements in microstructures of beta titanium alloys with carbon additions

Pages 1391-1398 | Published online: 19 Jul 2013

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R. Sahoo, B. B. Jha & T. K. Sahoo. (2015) Effect of primary alpha phase variation on mechanical behaviour of Ti–6Al–4V alloy. Materials Science and Technology 31:12, pages 1486-1494.
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M. Chu, X. Wu, I. P. Jones & M. H. Loretto. (2006) Influence of carbon on aging response and tensile properties of eutectoid beta titanium alloy Ti–13Cr. Materials Science and Technology 22:6, pages 661-666.
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Z.Q. Chen, D. Hu, M.H. Loretto & X. Wu. (2004) Influence of 0.2 wt-%C on the aging response of Ti-15-3. Materials Science and Technology 20:6, pages 756-764.
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Articles from other publishers (34)

Huiying Liu, Shufeng Li, Lei Liu, Shaolong Li, Lina Gao, Nannan Wei, Shaodi Wang, Xiaodong Hou, Shuyan Zhang, Xin Zhang & Bo Li. (2023) Microstructure and mechanical properties of Ti-TiBw-x%Cu composites by powder metallurgy using atomized Ti-TiBw powder as raw materials. Vacuum, pages 112521.
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Ho-Jun Song, Yeong-Joon Park, Won-Jin Moon, Wan-Gil Jung, Seon-Shin Cho, Byeong-Mo Kang & Taek-Rim Yoon. (2023) The effect of heat treatment of the TI6AL4V specimen fabricated by selective laser melting method on the crystalline structure and chemical compositions. Korean Journal of Dental Materials 50:2, pages 99-108.
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Qizhou Cai, Can Xu, Xu Chen, Weiguo Xi, Jingfan Cheng, Zhe Chen & Ji Chen. (2023) Effect of Mn and Mo on the microstructure and electrical resistivity of Ti-Al alloy prepared by mechanical alloying and spark plasma sintering. Journal of Alloys and Compounds 947, pages 169608.
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Rebecka Lindvall, Axel Bjerke, Armin Salmasi, Filip Lenrick, Rachid M’Saoubi, Jan-Eric Ståhl & Volodymyr Bushlya. (2023) Predicting wear mechanisms of ultra-hard tooling in machining Ti6Al4V by diffusion couples and simulation. Journal of the European Ceramic Society 43:2, pages 291-303.
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Xu Chen & Chunlei Qiu. (2022) Development of a novel metastable beta titanium alloy with ultrahigh yield strength and good ductility based on laser power bed fusion. Additive Manufacturing 49, pages 102501.
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Chanun Suwanpreecha, Enrique Alabort, Yuanbo T. Tang, Chinnapat Panwisawas, Roger C. Reed & Anchalee Manonukul. (2021) A novel low-modulus titanium alloy for biomedical applications: A comparison between selective laser melting and metal injection moulding. Materials Science and Engineering: A 812, pages 141081.
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Sasan Dadbakhsh, Raya Mertens, Gang Ji, Bey Vrancken, Kim Vanmeensel, Haiyang Fan, Ahmed Addad & Jean-Pierre Kruth. (2020) Heat treatment possibilities for an in situ βTi-TiC composite made by laser powder bed fusion. Additive Manufacturing 36, pages 101577.
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ChangBo Yi, ZunYun Ke, Lei Zhang, Jun Tan, YeHua Jiang & ZhengYuan He. (2020) Antibacterial Ti-Cu alloy with enhanced mechanical properties as implant applications. Materials Research Express 7:10, pages 105404.
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Sasan Dadbakhsh, Raya Mertens, Kim Vanmeensel, Gang Ji & Jean-Pierre Kruth. (2020) In situ transformations during SLM of an ultra-strong TiC reinforced Ti composite. Scientific Reports 10:1.
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Peng Xu, Florian Pyczak, Ming Yan, Wolfgang Limberg, Regine Willumeit-Römer & Thomas Ebel. (2020) Tensile toughening of powder-injection-molded β Ti-Nb-Zr biomaterials by adjusting TiC particle distribution from aligned to dispersed pattern. Applied Materials Today 19, pages 100630.
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Sheng Cao, Xigen Zhou, Chao Voon Samuel Lim, Rodney R. Boyer, James C. Williams & Xinhua Wu. (2020) A strong and ductile Ti-3Al-8V-6Cr-4Mo-4Zr (Beta-C) alloy achieved by introducing trace carbon addition and cold work. Scripta Materialia 178, pages 124-128.
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Shunya Yamamoto, Naoki Date, Yuhi Mori, Shinsuke Suzuki, Yoshimi Watanabe, Shizuka Nakano & Naoko Sato. (2019) Effects of TiC Addition on Directionally Solidified Microstructure of Ti6Al4V. Metallurgical and Materials Transactions A 50:7, pages 3174-3185.
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Weijie Weng, Arne Biesiekierski, Yuncang Li & Cuie Wen. (2019) Effects of selected metallic and interstitial elements on the microstructure and mechanical properties of beta titanium alloys for orthopedic applications. Materialia 6, pages 100323.
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S. Mereddy, M. J. Bermingham, D. Kent, A. Dehghan-Manshadi, D. H. StJohn & M. S. Dargusch. (2018) Trace Carbon Addition to Refine Microstructure and Enhance Properties of Additive-Manufactured Ti-6Al-4V. JOM 70:9, pages 1670-1676.
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Saifei Zhang, Weidong Zeng, Xiongxiong Gao, Dadi Zhou & Yunjin Lai. (2016) Role of titanium carbides on microstructural evolution of Ti-35V-15Cr-0.3Si-0.1C alloy during hot working. Journal of Alloys and Compounds 684, pages 201-210.
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Saifei Zhang, Weidong Zeng, Dadi Zhou, Yunjin Lai & Qinyang Zhao. (2016) The particle stimulated nucleation in Ti–35V–15Cr–0.3Si–0.1C alloy. Materials Letters 166, pages 317-320.
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