METALS AND METAL MATRIX COMPOSITES |
|
|
|
|
|
Recent Progress on the Preparation Technology and Properties of Magnesium Matrix Composites Reinforced by Metal Particles |
XIAO Lu1,2, LIU Tingting3,*, CHEN Xianhua1, ZHENG Kaihong4, PAN Fusheng1
|
1 College of Materials Science and Engineering, Chongqing University, Chongqing 400044, China 2 School of Intelligent Manufacturing and Automotive, Chongqing College of Electronic Engineering, Chongqing 401331, China 3 School of Materials and Energy, Southwest University, Chongqing, 400715, China 4 Institute of New Materials, Guangdong Academy of Sciences, Guangzhou 510650, China |
|
|
Abstract Magnesium matrix composites with low density and excellent mechanical properties have broad application prospects in automotive, electro-nics, aerospace and other fields. In this paper, the research progress of metal particle-reinforcedmagnesium matrix composites at home and abroad was reviewed, and the characteristics of common preparation methods of metal particle-reinforced magnesium matrix composites were introduced in detail. Moreover, the interfacial structure and main toughness mechanism of metal particle-reinforced magnesium matrix composites were analyzed. Finally, the development of materials and processes for the preparation of metal particle-reinforced magnesium matrix composites has been prospected.
|
Published: 10 September 2024
Online: 2024-09-30
|
|
Fund:Guangdong Major Project of Basic and Applied Basic Research (2020B0301030006),the Guangdong Academy of Science's Project of Science and Technology Development(2020GDASYL-20200101001). |
|
|
1 Xu T C, Yang Y, Peng X D, et al. Journal of Magnesium and Alloys, 2019, 7(3), 536. 2 Yang Y, Xiong X M, Chen J, et al. Journal of Magnesium and Alloys, 2021, 9(3), 705. 3 Yu H, Zhou H P, Sun Y, et al. Journal of Alloys and Compounds, 2017, 722, 39. 4 Wu Z X, Ahmad R, Yin B L, et al. Science, 2018, 359, 447. 5 Luo K, Zhang L, Wu G H, et al. Journal of Magnesium and Alloys, 2019, 7(2), 345. 6 Song J F, She J, Chen D L, et al. Journal of Magnesium and Alloys, 2020, 8(1), 1. 7 Lyu J B, Kim J, Liao H X, et al. Materials Science and Engineering:A, 2020, 773, 138735. 8 Ebrahimi M, Zhang L, Wang Q, et al. Journal of Magnesium and Alloys, 2023, 11, 1608. 9 Umeda J, Kawakami M, Kondoh K, et al. Materials Chemistry and Physics, 2010, 123, 649. 10 Shen M J, Zhang M F, Ying W F. Journal of Magnesium and Alloys, 2015, 3(2), 162. 11 Wang X M, Wang X J, Hu X S, et al. Acta Metallurgica Sinica(English Letters), 2016, 29(10), 940. 12 Wang B J, Xu D K, Wang S D, et al. International Journal of Fatigue, 2019, 120, 46. 13 Shen M J, Wang X J, Li C D, et al. Materials & Design (1980-2015), 2014, 54, 436. 14 Zhang X Z, Zhang Q, Hu H. Materials Science and Engineering:A, 2014, 607, 269. 15 Feng Y, Chen C, Peng C Q, et al. Transactions of Nonferrous Metals Society of China, 2017, 27(12), 2385 (in Chinese). 冯艳, 陈超, 彭超群, 等. 中国有色金属学报, 2017, 27(12), 2385. 16 Yang H, Chen X H, Huang G S, et al. Journal of Magnesium and Alloys, 2022, 10(9), 2311. 17 Ye H Z, Liu X Y. Journal of Materials Science, 2004, 39(20), 6153. 18 Zheng M Y, Wu K, Kamado S, et al. Materials Science and Enginee-ring:A, 2003, 348(1-2), 67. 19 Guo G D, Liu E Y, Liu F, et al. Foundry Technology, 2018, 39(11), 2632 (in Chinese). 郭广达, 刘恩洋, 刘甫, 等. 铸造技术, 2018, 39(11), 2632. 20 Kumruoglu L C. Acta Physica Polonica A, 2014, 125, 432. 21 Wang X M. Study on fabrication, microstructure and properties of TC4p/AZ91 magnesium matrix composites. Master's Thesis, Harbin Institute of Technology, China, 2015 (in Chinese). 王晓明. TC4p/AZ91镁基复合材料的制备与组织性能研究. 硕士学位论文, 哈尔滨工业大学, 2015. 22 Pu D M, Wu S F, Yang H, et al. Journal of Materials Research and Technology, 2023, 22, 1362. 23 Nagasivamuni B, Ravi K R. Transactions of the Indian Institute of Metals, 2015, 68(6), 1161. 24 Ye J L, Chen X H, Luo H, et al. Journal of Magnesium and Alloys, 2022, 10(8), 2266. 25 Wang F. Effect of nano-Ti particles on the microstructure and properties of AZ91 alloy and pure magnesium. Master's Thesis, Chongqing University, China, 2021 (in Chinese). 王方. 纳米Ti颗粒添加对AZ91合金及纯镁组织和性能的影响. 重庆大学, 2021. 26 Feng Y, Chen C, Wang R C, et al. Materials Science and Engineering of Powder Metallurgy, 2018, 23(6), 562 (in Chinese). 冯艳, 陈超, 王日初, 等. 粉末冶金材料科学与工程, 2018, 23(6), 562. 27 Guan Z, Li M, Xia K, et al. Transactions of Nonferrous Metals Society of China, 2022, 32(1), 104. 28 Wang X J, Wang X M, Hu X S, et al. Journal of Magnesium and Alloys, 2020, 12(2), 421. 29 Braszczyńska-malik K N, Przełożyńska E. Journal of Alloys and Compounds, 2017, 728, 600. 30 Pu D M, Chen X H, Ding Y, et al. Materials Science and Engineering:A, 2022, 858, 144140. 31 Xie Y, Kang Y H, Li X T, et al. Foundry, 2021, 70(7), 793(in Chinese). 谢耀, 康跃华, 李新涛, 等. 铸造, 2021, 70(7), 793. 32 Long Q S, Wang W W, Ren G X, et al. Foundry Technology, 2016, 37(5), 848(in Chinese). 龙前生, 王伟伟, 任广笑, 等. 铸造技术, 2016, 37(5), 848. 33 Fox R W, Mcdonald A T. Fox and Mcdonald's Introduction to Fluid Mechanics. John Wiley & Sons, USA, 2016, pp.139. 34 Praveenkumar R, Periyasamy P, Mohanavel V, et al. International Journal of Vehicle Structures and Systems, 2019, 11(1), 117. 35 Zhang S B, Yu S R, Xu J, et al. Foundry Technology, 2016, 37(1), 1(in Chinese). 张善保, 于思荣, 许骏, 等. 铸造技术, 2016, 37(1), 1. 36 Wong W, Gupta M. Composites Science and Technology, 2007, 67, 1541. 37 Tun K S, Gupta M. Journal of Alloys and Compounds, 2009, 487, 76. 38 Sankaranarayanan S, Jayalakshmi S, Gupta M. Metals, 2012, 37, 274. 39 Ye J L, Li J B, Luo H, et al. Materials Science and Engineering:A, 2022, 833, 142526. 40 Xi Y L, Chai D L, Zhang W X, et al. Materials Letters, 2005, 59(14), 1831. 41 Rashad M. Investigation on microstructure and mechanical properties of Mg-matrix composites. Ph. D. Thesis, Chongqing University, China, 2014 (in Chinese). Rashad M. 镁基复合材料微观结构与力学性能研究. 重庆大学, 2014. 42 Rashad M, Pan F S, Asif M, et al. Journal of Magnesium and Alloys, 2015, 3, 1. 43 Yu H. Fabrication and characterisation of microstructure and properties of ultrafine-grained AZ61 magnesium alloy strengthened with Ti dispersions. Ph. D. Thesis, Harbin Institute of Technology, China, 2018(in Chinese). 于欢. Ti弥散强化超细晶AZ61镁合金制备与组织性能研究. 哈尔滨工业大学, 2018. 44 Tang B, Li J B, Wang Y T, et al. Vacuum, 2022, 206, 111534. 45 Zhang J L. Preparation and micro-arc oxidation modification of the microwave sintered Ti-Mg composites. Master's Thesis, Nanchang Aviation University, China, 2019 (in Chinese). 张金龙. 医用Ti-Mg复合材料的微波烧结制备及表面微弧氧化改性研究. 南昌航空大学, 2019. 46 Ye J L, Chen X H, Luo H, et al. Vacuum, 2022, 203, 111287. 47 Sankaranarayanan S, Jayalakshmi S, Gupta M. Materials Science and Engineering:A, 2011, 530, 149. 48 Sankaranarayanan S, Jayalakshmi S, Gupta M. Journal of Alloys and Compounds, 2011, 509(26), 7229. 49 Meenashisundaram G K, Gupta M. Journal of Alloys and Compounds, 2014, 593, 176. 50 Sankaranarayanan S, Sabat R K, Jayalakshmi S, et al. Journal of Alloys and Compounds, 2013, 575, 207. 51 Seetharaman S, Subramanian J, Gupta M, et al. Metals, 2012, 2(3), 274. 52 Nguyen Q B, Gupta M. Materials Science and Engineering:A, 2010, 527(6), 1411. 53 Ho K F, Gupta M, Srivatsan T S. Materials Science and Engineering:A, 2004, 369, 302. 54 Shinde D D, Kolhe V A, International Journal on Emerging Trends in Technology, 2014, 1(1), 194. 55 Lin Y Y, Liu C L, Wu B B, et al. Materials Reports, 2013, 27(15), 139(in Chinese). 林英英, 刘成龙, 吴冰冰, 等. 材料导报, 2013, 27(15), 139. 56 Padhy G K, Wu C S, Gao S. Journal of Materials Science & Technology, 2018, 34(1), 1. 57 Wen W, Yuan F, Pai P. Transactions of Nonferrous Metals Society of China, 2023, 33(8), 2328. 58 Dinaharan I, Zhang S, Chen G Q, et al. Journal of Alloys and Compounds, 2020, 820, 153071. 59 Dinaharan I, Zhang S, Chen G Q, et al. Materials Science and Engineering:A, 2020, 772, 138793. 60 Dinaharan I, Zhang S, Chen G Q, et al. Journal of Magnesium and Alloys, 2021, 10, 979. 61 Vedabouriswaran G, Aravindan S. Journal of Magnesium and Alloys, 2018, 6(2), 145. 62 Morisada Y, Fujii H, Nagaoka T, et al. Materials Science and Enginee-ring:A, 2006, 433(1), 50. 63 Navazani M, Dehghani K. Procedia Materials Science, 2015, 11, 509. 64 Zang Q H, Chen H M, Zhang J, et al. Journal of Materials Research and Technology, 2021, 14, 195. 65 Balakrishnan M, Dinaharan I, Palanivel R, et al. Journal of Magnesium and Alloys, 2015, 3(1), 76. 66 Subramani V, Jayavel B, Sengottuvelu R, et al. Materials, 2019, 12(7), 1044. 67 Dinaharan I, Zhang S, Chen G Q, et al. Journal of Magnesium and Alloys, 2022, 10(4), 979. 68 Garcés G, Pérez P, Adeva P. Scripta Materialia, 2001, 45, 1001. 69 Garcés G, Pérez P, Adeva P. Journal of Alloys and Compounds, 2002, 333, 219. 70 Garcés G, Adeva P. Philosophical Magazine A, 2002, 82, 699. 71 Xiong J P, Liu Y. Journal of Materials Engineering, 2023, 51(1), 1(in Chinese). 熊京鹏, 刘勇. 材料工程, 2023, 51(1), 1. 72 Gupta M, Hassan S F. Journal of Alloys and Compounds, 2002, 335, 1. 73 Kondoh K, Kawakami M, Imai H, et al. Acta Materialia, 2010, 58(2), 606. 74 Li C D, Wang X, Liu W Q, et al. Materials & Design, 2014, 58, 204. 75 Zhang C L, Wang X J, Wang X M, et al. Journal of Magnesium and Alloys, 2016, 4, 286. 76 Sankaranarayanan S, Jayalakshmi S, Gupta M. Materials Science and Engineering:A, 2011, 530, 149. 77 Braszczyńska-malik K N, Przełożyńska E. Journal of Alloys and Compounds, 2018, 731, 1181. 78 Ye H Z, Liu X Y. Journal of Alloys and Compounds, 2005, 402, 162. 79 Ye J L. Microstructure and properties of Ti particles reinforced AZ31 magnesium matrixcomposites. Ph. D. Thesis, Chongqing University, China, 2022 (in Chinese). 叶俊鏐. Ti 颗粒增强 AZ31 镁基复合材料的组织与性能研究. 重庆大学, 2022. 80 Nie J F, Fan Y, Zhao L, et al. Materials Reports, 2021, 35(9), 9009(in Chinese). 聂金凤, 范勇, 赵磊, 等. 材料导报, 2021, 35(9), 9009. 81 He G J. Study on the strengthening mechanism of N-SiCp/AZ91D composites. Master's Thesis, Tsinghua University, China, 2012(in Chinese). 何广进. 纳米SiC颗粒增强AZ91D镁基复合材料的强化机制研究. 清华大学, 2012. 82 Ferguson J B, Sheykh-jaberi F, Kim C S, et al. Materials Science and Engineering:A, 2012, 558, 193. 83 Dai L, Ling Z, Bai Y. Composites Science and Technology, 2001, 61(8), 1057. 84 Nardone V C, Prewo K M. Scripta Metallurgica, 1986, 20(1), 43. 85 Cheng P, Zhao Y H, Lu R P, et al. Materials Science and Engineering:A, 2017, 708, 482. 86 Yu H, Zhou H P, Sun Y, et al. Advanced Powder Technology, 2018, 29(12), 3241. 87 Chen J G, Sun Y, Zhang J S, et al. Journal of Magnesium and Alloys, 2015, 3(2), 121. 88 Nie K B, Wang X J, Wu K, et al. Materials Science and Engineering:A, 2011, 528(29), 8709. 89 Zhang Z, Chen D L. Scripta Materialia, 2006, 54(7), 1321. 90 Wang M, Zhao Y, Wang L D, et al. Carbon, 2018, 139, 954. 91 Yuan Q H. Preparation and mechanical properties of AZ91 alloy compo-site reinforced with nano-carbon materials. Ph. D. Thesis, Nanchang University, China, 2016 (in Chinese). 袁秋红. 纳米碳材料增强AZ91镁基复合材料制备与性能研究. 南昌大学, 2016. 92 Yang M B, Li H L, Duan C Y, et al. Journal of Alloys and Compounds, 2013, 579, 92. 93 Cheng W L, Tian Q W, Huo R, et al. China Foundry, 2016, 13(3), 151. 94 Liu P, Xin Y C, Liu Q. Transactions of Nonferrous Metals Society of China, 2011, 21(4), 880. 95 Wu Y J, Zhu R, Wang J T, et al. Scripta Materialia, 2010, 63(11), 1077. 96 Wang Y X, Zeng X Q, Ding W J, et al. Metallurgical and Materials Transactions A, 2007, 38(6), 1358. |
|
|
|