Experimental determination of thermal conductivity and diffusivity using a partially heated surface method without heat flux transducer

被引:7
|
作者
Borges, Valerio Luiz [1 ]
Sousa, Priscila F. B. [1 ]
Guimaraes, Gilmar [1 ]
机构
[1] Univ Fed Uberlandia, FEMEC, Sch Mech Engn, BR-38400 Uberlandia, MG, Brazil
关键词
inverse problem; dynamic observers; heat flux estimation; thermal properties identification; thermal diffusivity; thermal conductivity;
D O I
10.1080/17415970802166659
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This study presents a new experimental technique to obtain the thermal conductivity of conductor and non-conductor materials of small dimensions. As usual, the thermal conductivity estimation involves a thermal model with a known heat flux input. The main contribution of this study is the use of inverse techniques to estimate the heat flux input instead of measuring with heat transducers. It can be observed that the presence of transducers represents an additional experimental limitation for small samples. Besides the experimental difficulties, the smaller the transducer dimensions the more difficult it is to obtain the calibration curves due to the low sensitivity. The procedure proposed here is based on the following steps: (i) development of experimental apparatus and thermal model considering a heat flux input in part of the sample surface while the remaining surfaces are kept isolated; (ii) estimation of a dimensionless heat flux, (t), proportional to the heat flux input using inverse techniques; (iii) estimation of thermal diffusivity; (iv) comparison between this heat flux, (t), with the total heat flux supplied by the heating element P/S1 to estimate the thermal conductivity of the sample.
引用
收藏
页码:1047 / 1067
页数:21
相关论文
共 50 条
  • [21] Simultaneous determination of thermal conductivity, thermal diffusivity and specific heat in sI methane hydrate
    Waite, W. F.
    Stern, L. A.
    Kirby, S. H.
    Winters, W. J.
    Mason, D. H.
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2007, 169 (02) : 767 - 774
  • [22] EXPERIMENTAL-METHOD TO DETERMINE THE HEAT-PRODUCTION RATE, THERMAL-DIFFUSIVITY, AND CONDUCTIVITY OF SOLIDS
    IIDA, Y
    OHTANI, S
    STEPHAN, K
    REVIEW OF SCIENTIFIC INSTRUMENTS, 1984, 55 (10): : 1648 - 1653
  • [23] DETERMINATION OF THE THERMAL-CONDUCTIVITY AND DIFFUSIVITY OF THIN FIBERS BY THE COMPOSITE METHOD
    BRENNAN, JJ
    BENTSEN, LD
    HASSELMAN, DPH
    JOURNAL OF MATERIALS SCIENCE, 1982, 17 (08) : 2337 - 2342
  • [24] Experimental Determination of Polycrystalline Salt Rock Thermal Conductivity, Diffusivity and Specific Heat From 20 to 240°C
    Ren, Yiwei
    Yuan, Qiang
    Kang, Yanfei
    Wei, Like
    Li, Zongze
    Jiang, Deyi
    He, Huayong
    Xu, Hong
    FRONTIERS IN EARTH SCIENCE, 2022, 10
  • [25] Determination of the Thermal Conductivity and Volumetric Heat Capacity of Substance from Heat Flux
    Gorchakov, A. Yu.
    Zubov, V. I.
    COMPUTATIONAL MATHEMATICS AND MATHEMATICAL PHYSICS, 2024, 64 (04) : 833 - 847
  • [26] DETERMINATION OF THERMAL CONDUCTIVITY BY THE METHOD OF THE INITIAL STAGE OF WARMING UP A SAMPLE BY A CONSTANT HEAT FLUX
    Bol'shev, K. N.
    Zarichnyak, Yu P.
    Ivanov, V. A.
    JOURNAL OF ENGINEERING PHYSICS AND THERMOPHYSICS, 2018, 91 (05) : 1342 - 1346
  • [27] THERMAL-DIFFUSIVITY, HEAT-CAPACITY AND THERMAL-CONDUCTIVITY OF POROUS PARTIALLY-STABILIZED ZIRCONIA
    SWAIN, MV
    JOHNSON, LF
    SYED, R
    HASSELMAN, DPH
    JOURNAL OF MATERIALS SCIENCE LETTERS, 1986, 5 (08) : 799 - 802
  • [28] Effects of radiation and thermal diffusivity on heat transfer over a stretching surface with variable heat flux
    Seddeek, MA
    Abdelmeguid, MS
    PHYSICS LETTERS A, 2006, 348 (3-6) : 172 - 179
  • [29] Sensitivity of the interpretation of the experimental ion thermal diffusivity to the determination of the ion conductive heat flux (vol 21, 042508, 2014)
    Stacey, W. M.
    PHYSICS OF PLASMAS, 2014, 21 (05)
  • [30] Determination of thermal conductivity of insulating gels using the inverse heat transfer method
    Glissman, C. R.
    Gill, W.
    Thermal Conductivity 28: Thermal Expansion 16, 2006, 28 : 22 - 31