• Chinese Optics Letters
  • Vol. 7, Issue 6, 06498 (2009)
Shuangyin Zhang, Xin Lin, Jing Chen, and Weidong Huang
Author Affiliations
  • State Key Laboratory of Solidification Processing, Northwestern Polytechnical University, Xi'an 710072, China
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    DOI: 10.3788/COL20090706.0498 Cite this Article Set citation alerts
    Shuangyin Zhang, Xin Lin, Jing Chen, Weidong Huang. Effect of solution temperature and cooling rate on microstructure and mechanical properties of laser solid forming Ti-6Al-4V alloy[J]. Chinese Optics Letters, 2009, 7(6): 06498 Copy Citation Text show less
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    CLP Journals

    [1] Hua Tan, Fengying Zhang, Jing Chen, Xin Lin, Weidong Huang. Microstructure evolution of laser solid forming of Ti-Al-V ternary system alloys from blended elemental powders[J]. Chinese Optics Letters, 2011, 9(5): 051403

    [2] Yanhong Liu, Jing Chen, Qiang Zhang, Lei Xue, Xin Lin, Weidong Huang. Microstructure characteristics of laser forming repaired Ti60 alloy[J]. Chinese Optics Letters, 2011, 9(7): 071402

    [3] Meng Guangbin, Gu Dongdong, Li Chuang, Shen Yifu, Li Yufang. Forming Process and Properties of TiC/Ti Bulk-Form Nanocomposites Prepared by Selective Laser Melting[J]. Chinese Journal of Lasers, 2011, 38(6): 603024

    Data from CrossRef

    [1] X.J. Tian, S.Q. Zhang, H.M. Wang. The influences of anneal temperature and cooling rate on microstructure and tensile properties of laser deposited Ti–4Al–1.5Mn titanium alloy. Journal of Alloys and Compounds, 608, 95(2014).

    [2] Y.M. Ren, X. Lin, X. Fu, H. Tan, J. Chen, W.D. Huang. Microstructure and deformation behavior of Ti-6Al-4V alloy by high-power laser solid forming. Acta Materialia, 132, 82(2017).

    [3] Y.M. Ren, X. Lin, P.F. Guo, H.O. Yang, H. Tan, J. Chen, J. Li, Y.Y. Zhang, W.D. Huang. Low cycle fatigue properties of Ti-6Al-4V alloy fabricated by high-power laser directed energy deposition: Experimental and prediction. International Journal of Fatigue, 127, 58(2019).

    [4] Abolfazl Azarniya, Xabier Garmendia Colera, Mohammad J. Mirzaali, Saeed Sovizi, Flavio Bartolomeu, Mare,k St Weglowski, Wessel W. Wits, Chor Yen Yap, Joseph Ahn, Georgina Miranda, Filipe Samuel Silva, Hamid Reza Madaah Hosseini, Seeram Ramakrishna, Amir A. Zadpoor. Additive manufacturing of Ti–6Al–4V parts through laser metal deposition (LMD): Process, microstructure, and mechanical properties. Journal of Alloys and Compounds, 804, 163(2019).

    [5] Zhang Fengying, Chen Hong, Xu Yiku, Zhang Xuemin. Influence of Mo Content on Microstructure and Microhardness of Laser Solid Formed Ti-6Al-Mo System Alloys. Rare Metal Materials and Engineering, 42, 1332(2013).

    [6] Emin Orkun Olcay, Ayse Ercan, Selin Oncul, Ozge Arifagaoglu, Bahadir Ersu. An investigation of the effect of surface characterization on Saos-2 cell proliferation after coating of titanium alloy surfaces by a selective laser melting process. Surface and Coatings Technology, 422, 127540(2021).

    [7] A. V. Radhamani, Hon Chung Lau, S. Ramakrishna. 316L Stainless Steel Microstructural, Mechanical, and Corrosion Behavior: A Comparison Between Spark Plasma Sintering, Laser Metal Deposition, and Cold Spray. Journal of Materials Engineering and Performance, 30, 3492(2021).

    [8] Wen Jiao Dan, Wei Gang Zhang. Simulation Investigation the Effect of Heating-Lines on Tensile Mechanical Properties of Sheet Metal after Laser Scanning. Advanced Materials Research, 314-316, 331(2011).

    [9] Ping Zhou, Wei-Guo Guo, Yu Su, Jianjun Wang, Xin Lin, Weidong Huang. Microstructure and Mechanical Properties of Laser Solid Formed Ti-6Al-4V Alloy Under Dynamic Shear Loading. Journal of Materials Engineering and Performance, 26, 3121(2017).

    [10] Mingming Ma, Zemin Wang, Xiaoyan Zeng. A comparison on metallurgical behaviors of 316L stainless steel by selective laser melting and laser cladding deposition. Materials Science and Engineering: A, 685, 265(2017).

    [11] Xiang-yang ZHOU, Shuai WANG, Juan YANG, Zhong-cheng GUO, Jian YANG, Chi-yuan MA, Bu-ming CHEN. Effect of cooling ways on properties of Al/Pb-0.2%Ag rolled alloy for zinc electrowinning. Transactions of Nonferrous Metals Society of China, 27, 2096(2017).

    [12] Liu Yang, Pang Zhicong, Li Ming, Wang Yonggang, Wang Di, Song Changhui, Li Shuxin. Investigation into the dynamic mechanical properties of selective laser melted Ti-6Al-4V alloy at high strain rate tensile loading. Materials Science and Engineering: A, 745, 440(2019).

    [13] Ai Hui Luo, Wen Jiao Dan, Wei Gang Zhang. Investigation of the Effect of Heating-Lines on Tensional Mechanical Properties of Sheet Metal after Laser Forming. Applied Mechanics and Materials, 117-119, 1666(2011).

    [14] Peng-Hui Li, Wei-Guo Guo, Kang-Bo Yuan, Yu Su, Jian-Jun Wang, Xin Lin, Yan-Ping Li. Effects of processing defects on the dynamic tensile mechanical behavior of laser-solid-formed Ti-6Al-4?V. Materials Characterization, 140, 15(2018).

    [15] Yool Byun, Sangwon Lee, Seong-Moon Seo, Jong-taek Yeom, Seung Eon Kim, Namhyun Kang, Jaekeun Hong. Effects of Cr and Fe Addition on Microstructure and Tensile Properties of Ti–6Al–4V Prepared by Direct Energy Deposition. Metals and Materials International, 24, 1213(2018).

    [16] Tarak Amine, Joseph W. Newkirk, Frank Liou. Methodology for Studying Effect of Cooling Rate During Laser Deposition on Microstructure. Journal of Materials Engineering and Performance, 24, 3129(2015).

    [17] Peng-Hui Li, Wei-Guo Guo, Wei-Dong Huang, Yu Su, Xin Lin, Kang-Bo Yuan. Thermomechanical response of 3D laser-deposited Ti–6Al–4V alloy over a wide range of strain rates and temperatures. Materials Science and Engineering: A, 647, 34(2015).

    [18] Rui-bin Gou, Wen-jiao Dan, Min Yu, Wei-gang Zhang. Effect of laser forming on mechanical properties of multiple-phase steels by using a thermal–microstructure–mechanical model. International Journal of Materials Research, 109, 922(2018).

    Shuangyin Zhang, Xin Lin, Jing Chen, Weidong Huang. Effect of solution temperature and cooling rate on microstructure and mechanical properties of laser solid forming Ti-6Al-4V alloy[J]. Chinese Optics Letters, 2009, 7(6): 06498
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