Up to which temperature ultrasound can heat the particle?

被引:19
作者
Cherepanov, Pavel V. [1 ]
Kollath, Anna [1 ]
Andreeva, Dania V. [1 ]
机构
[1] Univ Bayreuth, Phys Chem 2, Bayreuth, Germany
关键词
Ultrasound; Temperature; Particles; Vapor pressure; Viscosity; Crystal size; INTERPARTICLE COLLISIONS DRIVEN; HIGH-INTENSITY ULTRASOUND; SONOCHEMICAL SYNTHESIS; WILLIAMSON-HALL; GRAIN-SIZE; CAVITATION; NICKEL;
D O I
10.1016/j.ultsonch.2015.03.002
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Crystallographic property such as crystallite size has been used for evaluation of the temperature up to which high intensity ultrasound can heat metal particles depending on physical properties of sonication medium and particle concentration. We used >100 mu m metal particles as an in situ indicator for ultrasonically induced temperature in the particle interior. Based on powder X-ray diffraction monitoring of Al3Ni2 crystallite sizes after ultrasound treatment the average minimum temperature (T) over bar (min)(particle)) of sonicated particles in various sonication media was estimated. Additionally, it was found that crystallite size in ultrasonically treated metal particle depends on the frequency of interparticle collision. Through the adjustment of particle concentration, it is possible to either accelerate the atomic diffusion or force the melting and recrystallization processes. Overall, the energy released from collapsing cavitation bubble can be controllably transferred to the sonication matter through the appropriate choice of sonication medium and the adjustment of particle concentration. (C) 2015 Elsevier B.V. All rights reserved.
引用
收藏
页码:9 / 14
页数:6
相关论文
共 29 条
  • [1] Abramov O.V., 1998, HIGH INTENSITY ULTRA
  • [2] ASHOKKUMAR M, 2007, KIRKOTHMER ENCY CHEM
  • [3] Sonochemical formation of colloidal platinum
    Caruso, RA
    Ashokkumar, M
    Grieser, F
    [J]. COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2000, 169 (1-3) : 219 - 225
  • [4] The use of ultrasonic cavitation for near-surface structuring of robust and low-cost AlNi catalysts for hydrogen production
    Cherepanov, P. V.
    Melnyk, I.
    Skorb, E. V.
    Fratzl, P.
    Zolotoyabko, E.
    Dubrovinskaia, N.
    Dubrovinsky, L.
    Avadhut, Y. S.
    Senker, J.
    Leppert, L.
    Kuemmel, S.
    Andreeva, D. V.
    [J]. GREEN CHEMISTRY, 2015, 17 (05) : 2745 - 2749
  • [5] Ultrasound assisted formation of Al-Ni electrocatalyst for hydrogen evolution
    Cherepanov, Pavel V.
    Ashokkumar, Muthupandian
    Andreeva, Dania V.
    [J]. ULTRASONICS SONOCHEMISTRY, 2015, 23 : 142 - 147
  • [6] Effect of high intensity ultrasound on Al3Ni2, Al3Ni crystallite size in binary AlNi (50 wt% of Ni) alloy
    Cherepanov, Pavel V.
    Melnyk, Inga
    Andreeva, Dania V.
    [J]. ULTRASONICS SONOCHEMISTRY, 2015, 23 : 26 - 30
  • [7] On the grain size softening in nanocrystalline materials
    Conrad, H
    Narayan, J
    [J]. SCRIPTA MATERIALIA, 2000, 42 (11) : 1025 - 1030
  • [8] INTERPARTICLE COLLISIONS DRIVEN BY ULTRASOUND
    DOKTYCZ, SJ
    SUSLICK, KS
    [J]. SCIENCE, 1990, 247 (4946) : 1067 - 1069
  • [9] Efficient three-component coupling catalysed by mesoporous copper-aluminum based nanocomposites
    Dulle, Jana
    Thirunavukkarasu, K.
    Mittelmeijer-Hazeleger, Marjo C.
    Andreeva, Daria V.
    Shiju, N. Raveendran
    Rothenberg, Gadi
    [J]. GREEN CHEMISTRY, 2013, 15 (05) : 1238 - 1243
  • [10] Ebbing D., 2007, General Chemistry