A novel electron-phonon coupling thermoelasticity with Burgers electronic heat transfer

被引:0
|
作者
Hua WU [1 ,2 ]
Xinyi LI [1 ,2 ]
Yajun YU [1 ,2 ,3 ]
Zichen DENG [1 ,2 ]
机构
[1] School of Mechanics, Civil Engineering and Architecture, Northwestern Polytechnical University
[2] MIIT Key Laboratory of Dynamics and Control of Complex Systems,Northwestern Polytechnical University
[3] State Key Laboratory for Strength and Vibration of Mechanical Structures,Xi'an Jiaotong University
基金
中央高校基本科研业务费专项资金资助;
关键词
D O I
暂无
中图分类号
TK124 [传热学];
学科分类号
080701 ;
摘要
The electron-phonon interaction can reveal the microscopic mechanism of heat transfer in metals. The two-step heat conduction considering electron-phonon interaction has become an effective theoretical model for extreme environments, such as micro-scale and ultrafast processes. In this work, the two-step heat transfer model is further extended by considering the Burgers heat conduction model with the secondorder heat flux rate for electrons. Then, a novel generalized electron-phonon coupling thermoelasticity is proposed with the Burgers electronic heat transfer. Then, the problem of one-dimensional semi-infinite copper strip subject to a thermal shock at one side is studied by the Burgers two-step(BTS) model. The thermoelastic analytical solutions are systematically derived in the Laplace domain, and the numerical Laplace inversion method is adopted to obtain the transient responses. The new model is compared with the parabolic two-step(PTS) model and the hyperbolic two-step(HTS) model. The results show that in ultrafast heating, the BTS model has the same wave front jump as the HTS model. The present model has the faster wave speed, and predicts the bigger disturbed regions than the HTS model. More deeply, all two-step models also have the faster wave speeds than one-step models. This work may benefit the theoretical modeling of ultrafast heating of metals.
引用
收藏
页码:1927 / 1940
页数:14
相关论文
共 50 条
  • [41] Electron-phonon coupling in carbon nanotubes
    Machon, M.
    Reich, S.
    Thomsen, C.
    PHYSICA STATUS SOLIDI B-BASIC SOLID STATE PHYSICS, 2006, 243 (13): : 3166 - 3170
  • [42] Electron-phonon coupling in spherical nanocrystals
    Tkach, NV
    Voitsekhovskaya, ON
    Golovatskii, VA
    INORGANIC MATERIALS, 1997, 33 (06) : 566 - 569
  • [43] Similarity renormalization of the electron-phonon coupling
    Mielke, A
    ANNALEN DER PHYSIK, 1997, 6 (03) : 215 - 233
  • [44] ELECTRON-PHONON COUPLING IN ONE DIMENSION
    APOSTOL, M
    BALDEA, I
    JOURNAL OF PHYSICS C-SOLID STATE PHYSICS, 1982, 15 (15): : 3319 - 3331
  • [45] Electron-phonon coupling at metal surfaces
    Kroeger, J.
    REPORTS ON PROGRESS IN PHYSICS, 2006, 69 (04) : 899 - 969
  • [46] Ferromagnetism and electron-phonon coupling in the manganites
    Edwards, DM
    ADVANCES IN PHYSICS, 2002, 51 (05) : 1259 - 1318
  • [47] DYNAMIC ELECTRON-PHONON COUPLING FUNCTIONS
    COULTHARD, MA
    JOURNAL OF PHYSICS F-METAL PHYSICS, 1971, 1 (02): : 188 - +
  • [48] Quantitative regulation of electron-phonon coupling
    Pei, Shenghai
    Zhang, Zejuan
    Jiao, Chenyin
    Wang, Zhenyu
    Lv, Jian
    Zhang, Yujun
    Huang, Mingyuan
    Wang, Yanchao
    Wang, Zenghui
    Xia, Juan
    REPORTS ON PROGRESS IN PHYSICS, 2024, 87 (07)
  • [49] Electron-phonon coupling at surfaces and interfaces
    Hofmann, Ph
    Sklyadneva, I. Yu
    Rienks, E. D. L.
    Chulkov, E. V.
    NEW JOURNAL OF PHYSICS, 2009, 11
  • [50] Electron-phonon coupling in bcc lithium
    Bazhirov, Timur
    Noffsinger, Jesse
    Cohen, Marvin L.
    PHYSICAL REVIEW B, 2011, 84 (12)