• AEROSPACE SHANGHAI
  • Vol. 41, Issue 3, 103 (2024)
Jinghong HUANG*, Rezhen ZOU, Hang CHEN, Shuai ZHU, Yan JIANG, Genlian FAN, Zhanqiu TAN, Zhiqiang LI, and Di ZHANG
Author Affiliations
  • State Key Laboratory of Metal Matrix Composites, School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai200240, China
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    DOI: 10.19328/j.cnki.2096-8655.2024.03.011 Cite this Article
    Jinghong HUANG, Rezhen ZOU, Hang CHEN, Shuai ZHU, Yan JIANG, Genlian FAN, Zhanqiu TAN, Zhiqiang LI, Di ZHANG. Mechanical Properties and Damping Capacity of CNT Reinforced Aluminum Maxtrix Composites[J]. AEROSPACE SHANGHAI, 2024, 41(3): 103 Copy Citation Text show less
    References

    [7] T FAN, Y LIU, K YANG et al. Recent progress on interfacial structure optimization and their influencing mechanism of carbon reinforced metal matrix composites. Jinshu Xuebao/Acta Metallurgica Sinica, 55, 16-32(2019).

    [8] M JAGANNATHAM, P CHANDRAN, S SANKARAN et al. Tensile properties of carbon nanotubes reinforced aluminum matrix composites:A review. Carbon, 160, 14-44(2020).

    [9] L JIANG, Z LI, G FAN et al. The use of flake powder metallurgy to produce carbon nanotube (CNT)/aluminum composites with a homogenous CNT distribution. Carbon, 50, 1993-1998(2012).

    [10] A SANATY-ZADEH. Comparison between current models for the strength of particulate-reinforced metal matrix nanocomposites with emphasis on consideration of Hall-Petch effect. Materials Science and Engineering:A, 531, 112-118(2012).

    [12] L GIRISHA, D R GEORGE, P K ILAY. Investigation of damping behavior of aluminum based hybrid nanocomposites. International Journal of Engineering Research, 3, 535-540(2014).

    [13] K S UMASHANKAR, K V GANGADHARAN, V DESAI et al. Fabrication and investigation of damping properties of nano particulate composites. Journal of Minerals and Materials Characterization and Engineering, 9, 819-830(2010).

    [14] S R BAKSHI, D LAHIRI, A AGARWAL. Carbon nanotube reinforced metal matrix composites - a review. International Materials Reviews, 55, 41-64(2010).

    [15] Y M FU, X X XU. Analysis of material mechanical properties for single-walled carbon nanotubes. Acta Mechanica Solida Sinica, 18, 46-51(2005).

    [17] K S UMASHANKAR, K V GANGADHARAN, V DESAI et al. Fabrication and investigation of damping properties of nano particulate composites. Journal of Minerals and Materials Characterization and Engineering, 9, 819-830(2010).

    [18] C F DENG, D Z WANG, X X ZHANG et al. Damping characteristics of carbon nanotube reinforced aluminum composite. Materials Letters, 61, 3229-3231(2007).

    [19] O CARVALHO, G MIRANDA, M BUCIUMEANU et al. High temperature damping behavior and dynamic Young’s modulus of AlSi-CNT-SiCp hybrid composite. Composite Structures, 141, 155-162(2016).

    [20] P ROHATGI, D NATH, S SINGH et al. Factors affecting the damping capacity of cast aluminium-matrix composites. Journal of Materials Science, 29, 5975-5984(1994).

    [21] C Y XIE, R SCHALLER, C JAQUEROD. High damping capacity after precipitation in some commercial aluminum alloys. Materials Science and Engineering:A, 252, 78-84(1998).

    [22] J ZHANG, R J PEREZ, C R WONG et al. Effects of secondary phases on the damping behaviour of metals,alloys and metal matrix composites. Materials Science and Engineering:R, 13, 325-389(1994).

    [23] S DURIEUX, C ESNOUF, E MAIRE et al. On internal damping in metal matrix composites:Role of particle-matrix interfacial region. Scripta Materialia, 36, 189-193(1997).

    [24] M CHEN, G FAN, Z TAN et al. Design of an efficient flake powder metallurgy route to fabricate CNT/6061Al composites. Materials & Design, 142, 288-296(2018).

    [25] R XU, Z TAN, G FAN et al. High-strength CNT/Al-Zn-Mg-Cu composites with improved ductility achieved by flake powder metallurgy via elemental alloying. Composites Part A:Applied Science and Manufacturing, 111, 1-11(2018).

    [27] H ZIAEI, F SABA, Q LIU et al. Employment of intragranular reaction to enhance dispersion strengthening through dispersoid proliferation in Al matrix composite. Journal of Alloys and Compounds, 956, 170236(2023).

    [28] H ZIAEI, G FAN, Z TAN et al. SiO2 coating on CNTs to fabricate the Al4O4C-Al composite with superior Young’s modulus. Materials Characterization, 207, 113597(2024).

    [30] D S PRASAD, C SHOBA, K R VARMA. Damping behavior of commonly used reinforcement powders- An experimental approach. Engineering Science and Technology, 18, 674-679(2015).

    [93] Y NAKAJIMA, S MITANI, H TANI et al. Detumbling space debris via thruster plume impingement, 1-10(2016).

    [94] T PETERS, E OLMOS. COBRA contactless detumbling. CEAS Space Journal, 8, 143-165(2016).

    [95] C BOMBARDELLI, J PELÁEZ. Ion beam shepherd for contactless space debris removal. Journal of Guidance,Control,and Dynamics, 34, 916-920(2011).

    [96] H ZHAO, H DAI. Optimal detumbling guidance and control of plasma plume for tumbling spacecraft. Nonlinear Dynamics, 112, 4465-4482(2024).

    [97] G BORELLI, G GAIAS, C COLOMBO. Guidance and control for safe contactless plume impingement operations to detumble an uncooperative spacecraft. Aerospace, 11, 224(2024).

    Jinghong HUANG, Rezhen ZOU, Hang CHEN, Shuai ZHU, Yan JIANG, Genlian FAN, Zhanqiu TAN, Zhiqiang LI, Di ZHANG. Mechanical Properties and Damping Capacity of CNT Reinforced Aluminum Maxtrix Composites[J]. AEROSPACE SHANGHAI, 2024, 41(3): 103
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