Nanocomposites for high temperature applications

被引:35
|
作者
Provenzano, V [1 ]
Holtz, RL [1 ]
机构
[1] GEOCENTERS INC,FT WASHINGTON,MD 20744
关键词
high temperature applications; nanocomposites;
D O I
10.1016/0921-5093(95)09948-4
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
This paper reviews the research that has been conducted at the Naval Research Laboratory during the past few years on nanocomposites for high temperature applications. The research was inspired by a strengthening theory proposed by N.P. Louat (Acta. Metall., 33 (1985) 59). The theory sought to take advantage of the high strength and toughness of fine-grained metals while at the same time avoiding, through use of composites, the inherent thermal instability of these materials at high temperatures due to thermally activated processes such as creep, grain boundary sliding and grain coarsening. To test this idea, both microcomposites and nanocomposites were synthesized and processed at the Naval Research Laboratory by different techniques that included liquid infiltration, electroless plating, chemical vapor deposition fluidized-bed, inert gas condensation, and ball milling. In all cases, the composites consisted of a hard reinforcing phase embedded in a softer metal matrix phase in which both phases are nearly immiscible. For the case of copper-niobium and brass-niobium microcomposites, both strength enhancement and high temperature strength retention were demonstrated. For physical-vapor deposited copper-niobium nanocomposites, very large increases were observed in the microhardnesses with a peak in the microhardness values around 63 vol.% niobium. Suppression of grain growth at temperatures close to the melting point of copper were demonstrated, as well. Similar results were obtained for silver-nickel nanocomposites. Processing nanocomposite metals has proven to be plagued with two principal challenges:consolidation and oxidation. These two problems with nanostructured metals suggest alternative research directions designed to take advantage both of the strong reactivity and of the large grain boundary surfaces of the nanostructured materials.
引用
收藏
页码:125 / 134
页数:10
相关论文
共 50 条
  • [31] High-temperature polymer based magnetoelectric nanocomposites
    Maceiras, A.
    Martins, P.
    Gonҫalves, R.
    Botelho, G.
    Venkata Ramana, E.
    Mendiratta, S.K.
    San Sebastián, M.
    Vilas, J.L.
    Lanceros-Mendez, S.
    León, L.M.
    European Polymer Journal, 2015, 64 : 224 - 228
  • [32] High temperature mechanical properties of thermoplastic polyurethane nanocomposites
    Ambuken, Preejith V.
    Stretz, Holly
    Koo, Joseph
    Lee, Jason
    Trejo, Rosa
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2012, 243
  • [33] The temperature dependent damping behavior of novel nanocomposites for structural materials applications
    Asmatulu, R
    Claus, R
    Mecham, J
    Inman, D
    MECHANICAL PROPERTIES OF NANOSTRUCTURED MATERIALS AND NANOCOMPOSITES, 2004, 791 : 31 - 36
  • [34] Temperature responsive hydrogel magnetic nanocomposites for hyperthermia and metal extraction applications
    Reddy, N. Narayana
    Ravindra, S.
    MadhavaReddy, N.
    Rajinikanth, V.
    Raju, K. Mohana
    Vallabhapurapu, Vijaya Srinivasu
    JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2015, 394 : 237 - 244
  • [35] Applications of nanocomposites
    Cantor, B
    Allen, CM
    Dunin-Burkowski, R
    Green, MH
    Hutchinson, JL
    O'Reilly, KAQ
    Petford-Long, AK
    Schumacher, P
    Sloan, J
    Warren, PJ
    SCRIPTA MATERIALIA, 2001, 44 (8-9) : 2055 - 2059
  • [36] Development and characterization of nanoceramic reinforced polyimide-based nanocomposites for high-temperature energy storage applications: a review
    Ogbonna, Victor E.
    Popoola, Patricia I.
    Popoola, Olawale M.
    POLYMER-PLASTICS TECHNOLOGY AND MATERIALS, 2024, 63 (10): : 1254 - 1276
  • [37] HIGH TEMPERATURE AEROSPACE APPLICATIONS Epoxy Resin Transfer Molding Resins for High Temperature Aerospace Applications
    Hackett, Steven C.
    Creel, Howard S.
    Sedgwick, Paul
    Beiermann, Brent A.
    Thompson, Wendy L.
    SAMPE JOURNAL, 2020, 56 (04) : 38 - 43
  • [38] High-temperature resistant bio-based phthalonitrile/graphene nanocomposites for eco-friendly dielectric applications
    Wang, Dengyu
    Yang, Xulin
    Zhan, Yingqing
    Li, Xiaoxiao
    Wang, Pan
    Li, Kui
    Zhong, Fei
    Li, Ying
    Zheng, Yun
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2024, 701
  • [39] Polymer-ceramic nanocomposites for high energy density applications
    Adireddy, Shiva
    Puli, Venkata S.
    Lou, Tiffany J.
    Elupula, Ravinder
    Sklare, S. C.
    Riggs, Brian C.
    Chrisey, Douglas B.
    JOURNAL OF SOL-GEL SCIENCE AND TECHNOLOGY, 2015, 73 (03) : 641 - 646
  • [40] High-k polymer nanocomposites for gate dielectric applications
    Lu, Jiongxin
    Moon, Kyoung-Sik
    Wong, C. P.
    2007 12TH INTERNATIONAL SYMPOSIUM ON ADVANCED PACKAGING MATERIALS: PROCESSES, PROPERTIES, AND INTERFACES, 2007, : 80 - 84