Radiation damage of a two-dimensional carbon fiber composite (CFC)

被引:4
|
作者
Simos, N. [1 ]
Quaranta, E. [2 ]
Charitonidis, N. [2 ]
Sprouster, D. [1 ,3 ]
Zhong, Z. [3 ]
Ghose, S. [1 ]
Kotsina, Z. [6 ]
Assmann, R. [4 ]
Redaelli, S. [2 ]
Bertarelli, A. [2 ]
Ryazanov, A. I. [5 ]
机构
[1] Brookhaven Natl Lab, Upton, NY 11973 USA
[2] CERN, CH-1211 Geneva 23, Switzerland
[3] SUNY Stony Brook, Dept Mat Sci & Chem Engn, Stony Brook, NY 11794 USA
[4] DESY, Notkestr 85, D-22607 Hamburg, Germany
[5] Kurchatov Inst, Pl Kurchatova 1, Moscow 123182, Russia
[6] Natl Ctr Sci Res Demokritos, Aghia Paraskevi 15310, Greece
来源
CARBON TRENDS | 2021年 / 3卷
关键词
Radiation damage;
D O I
10.1016/j.cartre.2021.100028
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Carbon fiber composites (CFC) are, among other applications, already in use as low-impedance collimating elements for intercepting TeV-level protons machines, like the CERN Large Hadron Collider. Towards a comprehensive understanding of these materials' properties and behavior, a series of radiation damage campaigns have been undertaken in order to quantitively investigate the response of AC-150 K CFC to high proton fluences. The CFCs dimensional changes, stability, micro-structural evolution, and structural integrity below and above 5 x10(20) p/cm(2) fluence threshold were studied. The irradiating particles were protons of kinetic energies in the range of 130-200 MeV. The effects of the irradiation temperature (similar to 90-180 degrees C and 280-500 degrees C) combined with the proton fluence on the dimensional stability and the microstructural evolution of this anisotropic two-dimensional composite structure were studied using precision dilatometry and X-ray diffraction. Our results shed light on the fluence-based limitations for these composite materials. Furthermore, we compare these results with reference unirradiated graphite, and we discuss the similarities and differences in the dimensional changes and post-irradiation annealing properties.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Radiation effects on two-dimensional materials
    Walker, R. C., II
    Shi, T.
    Silva, E. C.
    Jovanovic, I.
    Robinson, J. A.
    PHYSICA STATUS SOLIDI A-APPLICATIONS AND MATERIALS SCIENCE, 2016, 213 (12): : 3065 - 3077
  • [22] Two-dimensional damage model for anisotropic composite based on the fast Fourier transform method
    Tian, X. X.
    Yang, X. D.
    Li, J.
    Chen, B. Q.
    Zhang, Y. L.
    MATERIALS RESEARCH INNOVATIONS, 2015, 19 : 146 - 151
  • [23] Damage identification in composite plates using two-dimensional B-spline wavelets
    Katunin, Andrzej
    MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2011, 25 (08) : 3153 - 3167
  • [24] Two-dimensional speckle tracking echocardiography in evaluating radiation-induced heart damage
    Li, Tingcui
    Zhuang, Hongqing
    Wang, Yuxia
    Li, Jun
    Zhu, Dan
    Cui, Ming
    ASIA-PACIFIC JOURNAL OF ONCOLOGY NURSING, 2022, 9 (02) : 119 - 124
  • [25] Damage and annealing in two-dimensional Coulomb crystals
    Elliott, PL
    Pakes, CI
    Skrbek, L
    Vinen, WF
    CZECHOSLOVAK JOURNAL OF PHYSICS, 1996, 46 : 333 - 334
  • [26] Electronic properties of two-dimensional carbon
    Peres, N. M. R.
    Guinea, F.
    Castro Neto, A. H.
    ANNALS OF PHYSICS, 2006, 321 (07) : 1559 - 1567
  • [27] Damage and annealing in two-dimensional Coulomb crystals
    Elliott, PL
    Pakes, CI
    Skrbek, L
    Vinen, WF
    PHYSICA B-CONDENSED MATTER, 1998, 249 : 668 - 671
  • [28] Damage and annealing in two-dimensional Coulomb crystals
    Univ of Birmingham, Birmingham, United Kingdom
    Phys B Condens Matter, (668-671):
  • [29] Two-Dimensional Carbon–Heteroelement Correlation
    Berger, Stefan
    eMagRes, 2007, 2007
  • [30] Tetrahexcarbon: A two-dimensional allotrope of carbon
    Ram, Babu
    Mizuseki, Hiroshi
    CARBON, 2018, 137 : 266 - 273