MECHANICAL AND THERMAL-PROPERTIES OF CARBON NANOTUBES

被引:1190
|
作者
RUOFF, RS
LORENTS, DC
机构
[1] Molecular Physics Laboratory, SRI International, Menlo Park
关键词
NANOTUBES; MECHANICAL PROPERTIES; THERMAL PROPERTIES; FIBER-REINFORCED COMPOSITES; STIFFNESS CONSTANT; NATURAL RESONANCE;
D O I
10.1016/0008-6223(95)00021-5
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
This chapter discusses some aspects of the mechanical and thermal properties of carbon nanotubes. The tensile and bending stiffness constants of ideal multi-walled and single-walled carbon nanotubes are derived in terms of the known elastic properties of graphite. Tensile strengths are estimated by scaling the 20 GPa tensile strength of Bacon's graphite whiskers. The natural resonance (fundamental vibrational frequency) of a cantilevered single-wall nanotube of length 1 micron is shown to be about 12 MHz. It is suggested that the thermal expansion of carbon nanotubes will be essentially isotropic, which can be contrasted with the strongly anisotropic expansion in ''conventional'' (large diameter) carbon fibers and in graphite. In contrast, the thermal conductivity may be highly anisotropic and (along the long axis) perhaps higher than any other material. A short discussion of topological constraints to surface chemistry in idealized multi-walled nanotubes is presented, and the importance of a strong interface between nanotube and matrix for formation of high strength nanotube-reinforced composites is highlighted.
引用
收藏
页码:925 / 930
页数:6
相关论文
共 50 条
  • [21] MECHANICAL AND THERMAL PROPERTIES OF PLA BASED NANOCOMPOSITES WITH GRAPHENE AND CARBON NANOTUBES
    Angelova, Polya
    JOURNAL OF THEORETICAL AND APPLIED MECHANICS-BULGARIA, 2019, 49 (03): : 241 - 256
  • [22] Effects of boron doping on mechanical properties and thermal conductivities of carbon nanotubes
    Fakhrabadi, Mir Masoud Seyyed
    Allahverdizadeh, Akbar
    Norouzifard, Vahid
    Dadashzadeh, Behnam
    SOLID STATE COMMUNICATIONS, 2012, 152 (21) : 1973 - 1979
  • [23] Effect of carbon nanotubes' addition on mechanical properties and thermal conductivity of copper
    Borodianskiy, Konstantin
    JOURNAL OF MATERIALS SCIENCE, 2019, 54 (21) : 13767 - 13774
  • [24] Thermal-mechanical properties of carbon nanotubes: molecular dynamics simulation
    Chen, Bin-Hao
    Chuang, Chin-Ho
    Chang, Shing Cheng
    Tsau, Fang-Hei
    Jeng, Ming-shan
    Chen, Cha'o-Kuang
    JOURNAL OF MICRO-NANOLITHOGRAPHY MEMS AND MOEMS, 2009, 8 (02):
  • [25] Investigation of Mechanical Properties and Thermal Conductivities of Nitrogen Doped Carbon Nanotubes
    Fakhrabadi, Mir Masoud Seyyed
    Allahverdizadeh, Akbar
    Kamkari, Babak
    Vahabi, Mohammad
    JOURNAL OF COMPUTATIONAL AND THEORETICAL NANOSCIENCE, 2013, 10 (11) : 2536 - 2541
  • [26] Thermal Conductivities and Mechanical Properties of EPDM Filled with Modified Carbon Nanotubes
    Ma, Lianxiang
    Ma, Lin
    He, Yan
    ADVANCED POLYMER PROCESSING III, 2013, 561 : 169 - +
  • [27] Effect of carbon nanotubes’ addition on mechanical properties and thermal conductivity of copper
    Konstantin Borodianskiy
    Journal of Materials Science, 2019, 54 : 13767 - 13774
  • [28] Thermo-mechanical properties of carbon nanotubes and applications in thermal management
    Manh Hong Nguyen
    Hung Thang Bui
    Van Trinh Pham
    Ngoc Hong Phan
    Tuan Hong Nguyen
    Van Chuc Nguyen
    Dinh Quang Le
    Hong Khoi Phan
    Ngoc Minh Phan
    ADVANCES IN NATURAL SCIENCES-NANOSCIENCE AND NANOTECHNOLOGY, 2016, 7 (02)
  • [29] Effect of Carbon Nanotubes Addition on the Mechanical and Thermal Properties of Epoxy Matrices
    Loos, Marcio Rodrigo
    Ferreira Coelho, Luiz Antonio
    Pezzin, Sergio Henrique
    Amico, Sandro Campos
    MATERIALS RESEARCH-IBERO-AMERICAN JOURNAL OF MATERIALS, 2008, 11 (03): : 347 - 352
  • [30] Investigating mechanical, thermal and rheological properties of polypropylene/carbon nanotubes composites
    Sahli, M.
    Barriere, T.
    Roazard, X.
    Assoul, M.
    MICROSYSTEM TECHNOLOGIES-MICRO-AND NANOSYSTEMS-INFORMATION STORAGE AND PROCESSING SYSTEMS, 2020, 26 (09): : 3023 - 3027