A mathematical model for nanoparticle melting with size-dependent latent heat and melt temperature

被引:20
|
作者
Ribera, H. [1 ,2 ]
Myers, T. G. [1 ,2 ]
机构
[1] Ctr Recerca Matemat, Campus Bellaterra,Edifici C, Barcelona 08193, Spain
[2] Univ Politecn Cataluna, Dept Matemat Aplicada, Barcelona, Spain
关键词
Nanoparticle melting; Mathematical model; Phase change; Latent heat variation; Stefan problem; PHASE-CHANGE; PARTICLES;
D O I
10.1007/s10404-016-1810-6
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
In this paper, we study the melting of a spherical nanoparticle. The model differs from previous ones in that a number of features have been incorporated to match experimental observations. These include the size dependence of the latent heat and a cooling condition at the boundary (as opposed to the fixed temperature condition used in previous studies). Melt temperature variation and density change are also included. The density variation drives the flow of the outer fluid layer. The latent heat variation is modelled by a new relation, which matches experimental data better than previous models. A novel form of Stefan condition is used to determine the position of the melt front. This condition takes into account the latent heat variation, the energy required to create new surface and the kinetic energy of the displaced fluid layer. Results show that melting times can be significantly faster than predicted by previous theoretical models; for smaller particles, this can be around a factor 3. This is primarily due to the latent heat variation. The previously used fixed temperature boundary condition had two opposing effects on melt times: the implied infinite heat transfer led to faster melting but also artificially magnified the effect of kinetic energy, which slowed down the process. We conclude that any future models of nanoparticle melting must be based on the new Stefan condition and account for latent heat variation.
引用
收藏
页数:13
相关论文
共 50 条
  • [41] Nanoparticle-mediated cellular response is size-dependent
    Jiang, Wen
    Kim, Betty Y. S.
    Rutka, James T.
    Chan, Warren C. W.
    NATURE NANOTECHNOLOGY, 2008, 3 (03) : 145 - 150
  • [42] Size-dependent emission of a dipole coupled to a metal nanoparticle
    Viktoriia Savchuk
    Arthur R. Knize
    Pavlo Pinchuk
    Anatoliy O. Pinchuk
    MRS Advances, 2020, 5 : 3315 - 3325
  • [43] The effect of size-dependent nanoparticle energetics on catalyst sintering
    Campbell, CT
    Parker, SC
    Starr, DE
    SCIENCE, 2002, 298 (5594) : 811 - 814
  • [44] Size-dependent thermal behavior of silver nanofluids in heat pipes: a comparative study of nanoparticle sizes
    Elumalai, Sivakumar
    Kadamban, Manikandan
    Dhairiyasamy, Ratchagaraja
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2025,
  • [45] Liquid-drop model for the size-dependent melting of low-dimensional systems
    Nanda, KK
    Sahu, SN
    Behera, SN
    PHYSICAL REVIEW A, 2002, 66 (01): : 132081 - 132088
  • [46] Size-dependent cohesive energy, melting temperature, and debye temperature of Ag and Au nanoparticles: a theoretical and comparative study
    Khalaf, Sirouhin Fawaz
    AL-Rashid, Saeed Naif Turki
    JOURNAL OF NANOPARTICLE RESEARCH, 2025, 27 (03)
  • [47] Size-dependent melting of self-assembled indium nanostructures
    Dippel, M
    Maier, A
    Gimple, V
    Wider, H
    Evenson, WE
    Rasera, RL
    Schatz, G
    PHYSICAL REVIEW LETTERS, 2001, 87 (09) : 955051 - 955054
  • [48] Size-Dependent Microplastic Fragmentation Model
    Perez-Munuzuri, Vicente
    JOURNAL OF MARINE SCIENCE AND ENGINEERING, 2024, 12 (07)
  • [49] Size-dependent fluorescence of bioaerosols: Mathematical model using fluorescing and absorbing molecules in bacteria
    Hill, Steven C.
    Williamson, Chatt C.
    Doughty, David C.
    Pan, Yong-Le
    Santarpia, Joshua L.
    Hill, Hanna H.
    JOURNAL OF QUANTITATIVE SPECTROSCOPY & RADIATIVE TRANSFER, 2015, 157 : 54 - 70
  • [50] Size-Dependent Melting Behavior of Colloidal In, Sn, and Bi Nanocrystals
    Liu, Minglu
    Wang, Robert Y.
    SCIENTIFIC REPORTS, 2015, 5