Please wait a minute...
材料导报  2025, Vol. 39 Issue (8): 23120157-7    https://doi.org/10.11896/cldb.23120157
  金属与金属基复合材料 |
颗粒级配对55%SiC/Al复合材料力学性能和尺寸稳定性的影响
崔岩, 李硕, 曹雷刚, 杨越, 刘园*
北方工业大学机械与材料工程学院,北京 100144
Effect of Particles Size-grading on the Mechanical Properties and Dimensional Stability of 55%SiC/Al Composites
CUI Yan, LI Shuo, CAO Leigang, YANG Yue, LIU Yuan*
School of Mechanical and Materials Engineering, North China University of Technology, Beijing 100144, China
下载:  全 文 ( PDF ) ( 30716KB ) 
输出:  BibTeX | EndNote (RIS)      
摘要 采用热等静压法制备不同颗粒粒度的55%SiC/Al复合材料,并研究了粒度方案及冷热循环处理对复合材料力学性能和尺寸稳定性的影响。结果表明:相较单一颗粒增强的复合材料,颗粒级配复合材料具有良好的力学性能和更优异的尺寸稳定性。针对T6态颗粒级配复合材料进行冷热循环处理,可进一步实现其尺寸稳定性和力学性能的协同优化,其弯曲强度达到633.55 MPa,提升7.0%,微屈服强度达到491.94 MPa,提升10.6%,累计体积变化率下降30.7%。颗粒级配是可同时获得SiC/Al复合材料优异力学性能和尺寸稳定性的最佳粒度方案,冷热循环处理在保证复合材料力学性能的基础上可进一步提升其在力、热双重载荷作用下的尺寸稳定性。
服务
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章
崔岩
李硕
曹雷刚
杨越
刘园
关键词:  SiC/Al复合材料  颗粒级配  尺寸稳定性  冷热循环    
Abstract: 55% SiC/Al composites with different particle size were prepared using hot isostatic pressing method, and the effects of particle size and thermal cycling treatment on the mechanical properties and dimensional stability of the composites were studied. The results indicate that compared to single particle reinforced composites, particles size-grading composites have good mechanical properties and superior dimensional stabi-lity. Thermal cycling treatment can further optimize the dimensional stability and mechanical properties of the particles size-grading composites which treated by T6, and the bending strength increases by 7.0% and reaches 633.55 MPa, the micro yield strength increases by 10.6% and reaches 491.94 MPa, while the cumulative volume change rate decreases by 30.7%. The particles size-grading scheme is the optimal particle size scheme for obtaining excellent mechanical properties and dimensional stability of SiC/Al composites. Thermal cycling treatment can further enhance the dimensional stability of composites under dual load impacts of force and heat while ensuring their mechanical properties.
Key words:  SiC/Al composites    particles size-grading    dimensional stability    thermal cycling
出版日期:  2025-04-25      发布日期:  2025-04-18
ZTFLH:  TB331  
基金资助: 国家重点研发计划(2022YFB3705702)
通讯作者:  刘园,北方工业大学材料系讲师、硕士研究生导师。目前主要从事金属基复合材料、电子封装材料、结构功能一体化材料等方面的研究。ly520208@163.com   
作者简介:  崔岩,北方工业大学材料系研究员,长期从事金属基复合材料研究。
引用本文:    
崔岩, 李硕, 曹雷刚, 杨越, 刘园. 颗粒级配对55%SiC/Al复合材料力学性能和尺寸稳定性的影响[J]. 材料导报, 2025, 39(8): 23120157-7.
CUI Yan, LI Shuo, CAO Leigang, YANG Yue, LIU Yuan. Effect of Particles Size-grading on the Mechanical Properties and Dimensional Stability of 55%SiC/Al Composites. Materials Reports, 2025, 39(8): 23120157-7.
链接本文:  
https://www.mater-rep.com/CN/10.11896/cldb.23120157  或          https://www.mater-rep.com/CN/Y2025/V39/I8/23120157
1 Cui Y. Journal of Materials Engineering, 2002(6), 3 (in Chinese).
崔岩. 材料工程, 2002(6), 3.
2 Li P Y. Journal of Materials Engineering, 2023, 51 (4), 67 (in Chinese).
李沛勇. 材料工程, 2023, 51(4), 67.
3 Yang P J, Li L, Lei Z Q, et al. Navigation Positioning and Timing, 2016, 3(6), 63(in Chinese).
杨朋军, 李良, 雷志强, 等. 导航定位与授时, 2016, 3(6), 63.
4 Fenkin M L, Lokshin I F. Dimensional stability of metals and alloys in precision mechanical manufacturing and instrument manufacturing, Science Press, China, 1981, pp. 50.
5 Kelly A, Stearn R J, Mccartney L N. Composites Science & Technology, 2006, 66(2), 154.
6 Wang X. Study in dimensional stability of SiCp/Al composite. Master's Thesis, Harbin Institute of Technology, China, 2010 (in Chinese).
王玺. SiCp/Al复合材料的尺寸稳定性能研究. 硕士学位论文, 哈尔滨工业大学, 2010.
7 State Administration for Market Regulation, National Standardization Administration. Test method for dimensional stability of metal matrix compo-site materials-cold and hot cycle method, Standards Press of China, China, 2022(in Chinese).
国家市场监督管理总局, 国家标准化管理委员会. 金属基复合材料尺寸稳定性检测方法-冷热循环法,中国标准出版社, 2022.
8 Wu G H, Qiao J, Jiang L T. Journal of Metals, 2019, 55 (1), 33 (in Chinese).
武高辉, 乔菁, 姜龙涛. 金属学报, 2019, 55(1), 33.
9 Cui Y, Ni H C, Cao L G, et al. Material Reports, 2019, 33 (24), 4126 (in Chinese).
崔岩, 倪浩晨, 曹雷刚, 等. 材料导报, 2019, 33(24), 4126.
10 Wu G H, Xiu Z Y, Sun D L, et al. Materials Science and Technology, 2009, 17 (6), 879 (in Chinese).
武高辉, 修子扬, 孙东立, 等. 材料科学与工艺, 2009, 17(6), 879.
11 Zhang F, Li X C, Sun P F, et al. Heat Treatment of Metal, 2000(4), 5 (in Chinese).
张帆, 李小璀, 孙鹏飞, 等. 金属热处理, 2000(4), 5.
12 Zhang F, Jin C, Li X C, et al. The Chinese Journal of Nonferrous Metals, 1998(S1), 141 (in Chinese).
张帆, 金城, 李小璀, 等. 中国有色金属学报, 1998(S1), 141.
13 Bouzada F, Cabeza M, Merino P, et al. Advanced Materials Research, 2012, 445, 965.
14 Wang W J, Hong Y, Liu J Q, et al. The Chinese Journal of Nonferrous Metals, 2018, 28 (12), 2523 (in Chinese).
王武杰, 洪雨, 刘家琴, 等. 中国有色金属学报, 2018, 28(12), 2523.
15 Wang W J, Hong Y, Wu Y C. Transactions of Materials and Heat Treatment, 2018, 39 (7), 7 (in Chinese).
王武杰, 洪雨, 吴玉程. 材料热处理学报, 2018, 39(7), 7.
16 Li F Z. Hot Working Technology, 2009, 38(10), 125 (in Chinese).
李飞舟. 热加工工艺, 2009, 38(10), 125.
17 Wang D M. Pressureless infiltration fabrication and interfacial modification of 3D-SiC/Al interpenetrating composite for electronic packaging. Ph. D. Thesis, Hefei University of Technology, China, 2020 (in Chinese).
汪冬梅. 电子封装用3D-SiC/Al互穿复合材料的无压熔渗制备及其界面调控. 博士学位论文, 合肥工业大学, 2020.
18 Wang Q P. Numerical simulation study on influence of residual stress of SiCp/Al composites on dimensional stability. Master's Thesis, Anhui University of Science and Technology, China, 2020 (in Chinese).
汪奇鹏. SiCp/Al复合材料残余应力对尺寸稳定性影响数值模拟研究. 硕士学位论文, 安徽理工大学, 2020.
19 Li Z Y, Wang S J, Deng W J. Guangxi Journal of Light Industry, 2021, 37(4), 41 (in Chinese).
李滋阳, 王思佳, 邓文举. 轻工科技, 2021, 37(4), 41.
20 Wang X. Research on the microyield behavior and strengthening mechanism of SiC/Al composites. Ph. D. Thesis, Harbin Institute of Technology, China, 2016 (in Chinese).
王玺. SiC/Al复合材料微屈服行为与强化机理研究. 博士学位论文, 哈尔滨工业大学, 2016.
21 Cui Y, Dong H Q, Cao L G, et al. Heat Treatment of Metals, 2022, 47 (1), 142 (in Chinese).
崔岩, 董和谦, 曹雷刚, 等. 金属热处理, 2022, 47(1), 142.
22 Miller W S, Humphreys F J. Scripta Metallurgica et Materialia, 1991, 25, 33.
23 Yang M J. Fabrication and properties of SiCp/Al electrical packaging composites by spark plasma sintering. Master's Thesis, Wuhan University of Technology, China, 2006 (in Chinese).
杨梅君. SiCp/Al电子封装复合材料的SPS烧结及性能研究. 硕士学位论文, 武汉理工大学, 2006.
24 Xue L Y. Research on SiC3D /Al composites with organizational perfor-mance and interface. Ph. D. Thesis, Beijing Institute of Technology, China, 2016 (in Chinese).
薛辽豫. SiC3D/Al复合材料制备与界面组织性能研究. 博士学位论文, 北京理工大学, 2016.
25 Arsenault R J, Shi N. Materials Science and Engineering, 1986, 81(1-2), 175.
26 Eshelby J D. Proceedings of the Royal Society of London, 1957, 241(1226), 376.
27 Han Y Y, Wu G H, Li F Z, et al. Materials Science and Technology, 2004(3), 298 (in Chinese).
韩媛媛, 武高辉, 李凤珍, 等. 材料科学与工艺, 2004(3), 298.
28 Zhang J Y, Sun L X, Zhou X L, et al. Special-cast and Non-ferrous Alloys, 2005(7), 442 (in Chinese).
张建云, 孙良新, 周贤良, 等. 特种铸造及有色合金, 2005(7), 442.
[1] 杨强, 刘洪新, 何端鹏, 陈海峰, 陈维强, 金晶, 潘福明. 高导热沥青基碳纤维复合材料在航天器中的应用现状及展望[J]. 材料导报, 2024, 38(1): 22080244-8.
[2] 张华, 李梦冉, 徐澎鹏, 李晶晶, 张学斌, 刘伟, 汪金芝, 苏海林. 二级颗粒粒径对颗粒级配软磁粉芯磁性能的影响[J]. 材料导报, 2023, 37(18): 22020065-5.
[3] 刘轩之,顾开选 ,翁泽钜,王凯凯,崔晨,郭嘉,王俊杰. 铝合金深冷处理研究进展[J]. 材料导报, 2020, 34(3): 3172-3177.
[1] JIN Qinglin, WANG Yang, CAO Lei, SONG Qunling. Effect of Nitriding in Mushy Zone on the Nitrogen Content and Solidification Transformation of Cr10Mn9Ni0.7 Alloy[J]. Materials Reports, 2018, 32(4): 579 -583 .
[2] WANG Shengmin, ZHAO Xiaojun, HE Mingyi. Research Status and Development of Mechanical Plating[J]. Materials Reports, 2017, 31(5): 117 -122 .
[3] HE Yuandong, SUN Changzhen, MAO Weiguo, MAO Yiqi, ZHANG Honglong, CHEN Yanfei, PEI Yongmao, FANG Daining. Measurement of Transverse Piezoelectric Coefficients of Pb(Zr0.52Ti0.48)O3 Thin Films by a Mechano-electrical Multiphysics Coupling, Bulge Test Method[J]. Materials Reports, 2017, 31(15): 139 -144 .
[4] TAO Lei, ZHENG Yunwu,DI Mingwei, ZHANG Yanhua, ZHENG Zhifeng. Preparation of Porous Carbon Nanofiber from Liquid Phenolic Resin and Its Characterization[J]. Materials Reports, 2017, 31(10): 101 -106 .
[5] SU Lan, ZHANG Chubo, WANG Zhen, MI Zhenli. Finite Element Simulation of Electromagnetic Induction Heating in Hot Metal Gas Forming[J]. Materials Reports, 2017, 31(24): 182 -177 .
[6] QI Yaping, LUO Faliang, WANG Kezhi, SHEN Zhiyuan, WU Xuejian, WANG Diran. Effect of TMC-300 on the Performance of PLLA/PPC Alloy[J]. Materials Reports, 2018, 32(10): 1672 -1677 .
[7] LIU Huan, HUA Zhongsheng, HE Jiwen, TANG Zetao, ZHANG Weiwei, LYU Huihong. Indium Recovery from Waste Indium Tin Oxide: a Technological Review[J]. Materials Reports, 2018, 32(11): 1916 -1923 .
[8] DU Min, SONG Dian, XIE Ling, ZHOU Yuxiang, LI Desheng, ZHU Jixin. Electrospinning in Rechargeable Ion Batteries for High Efficient Energy Storage[J]. Materials Reports, 2018, 32(19): 3281 -3294 .
[9] LIU Xiao, XU Qian, LAI Guanghong, GUAN Jianan, XIA Chunlei, WANG Ziming, CUI Suping. Application Performances and Mechanism of Polycarboxylic Acid in Different Comb-bonded Structures in High-performance Concrete[J]. Materials Reports, 2018, 32(22): 4011 -4015 .
[10] ZHANG Di, YANG Di, XU Cui, ZHOU Riyu, LI Hao, LI Jing, WANG Peng. Study on Mechanism of Highly Effective Adsorption of Bisphenol F by Reduced Graphene Oxide[J]. Materials Reports, 2019, 33(6): 954 -959 .
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed