Skip to main content
Log in

Questions of the diagnostics of high-temperature material testing regimes by using inverse problems

  • Published:
Journal of engineering physics Aims and scope

Abstract

A comparative analysis is performed of the efficiency and operability of heat-flux sensors in checking out the temperature regimes of textile material tests. Questions of the practical application of inverse heat-conduction problem (IHCP) sensors are considered.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

Abbreviations

τ :

time

qr :

incident radiant heat-flux density

α, λ:

thermal diffusivity and conduc-tivity coefficients

R:

membrane radius

T:

temperature

α :

regularization parameter

Fo:

Fourier number

b:

thickness

xi :

coordinate

Θ:

model temperature

¯p:

strength attenuation coefficient

min:

minimal

m:

mean

in:

inner

mea:

measured

ini:

initial

Literature cited

  1. G. E. Vishnevskii and O. F. Shlenskii, “Influence of porosity and component content on the heat conduction of glass-plastics,” Plastich. Massy, No. 11, 34–38 (1970).

    Google Scholar 

  2. V. M. Kirillov, “Influence of fabric structure on heat conduction of glass-plastics,” Plastich. Massy, No. 11, 39–40 (1970).

    Google Scholar 

  3. B. P. Bobkov, M. Kh. Ibragimov, and E. V. Nomofilov, “Investigation of the inertia of microthermocouple measurements of nonstationary temperatures,” Teplofiz. Vys. Temp., No. 4, 57–61 (1964).

    Google Scholar 

  4. S. S. Filimonov, B. A. Khrustalev, A. A. Aigistov, and A. M. Rakov, “Investigation of the integrated absorptivity of paint and varnish coatings under exposure to radiation flux,” Geliotekhnika, No. 1, 49–56 (1975).

    Google Scholar 

  5. G. V. Kirilenko and L. Ya. Paderin, “Investigation of gradient radiant energy detectors,” Uch. Zap. TsAGI,6, No. 2, 156–160 (1975).

    Google Scholar 

  6. R. Gordon, “Instrument for direct measurement of radiation heat flux,” Rev. Scientific Instruments,24, No. 5, 115–119 (1953).

    Google Scholar 

  7. O. M. Alifanov, “Regularization of solutions of inverse heat-conduction problems,” in: Heat and Mass Transfer [in Russian], Vol. 8, Nauka i Tekhnika, Minsk (1972), pp. 89–98.

    Google Scholar 

  8. O. M. Alifanov, “Application of the regularization principle to construct approximate inverse heat-conduction problemssolutions,” Inzh.-Fiz. Zh.,23, No. 6, 1084–1091 (1972).

    Google Scholar 

  9. O. M. Alifanov, Identification of Heat Transfer Processes of Flying Vehicles [in Russian], Mashinostroenie, Moscow (1979).

    Google Scholar 

  10. O. M. Alifanov, “Solution of the inverse heat-conduction problem by iteration methods,” Inzh.-Fiz. Zh.,26, No. 4, 682–689 (1974).

    Google Scholar 

  11. O. F. Shlenskii, Thermal Properties of Glass-Plastics [in Russian], Khimiya, Moscow (1973).

    Google Scholar 

Download references

Authors

Additional information

Translated from Inzhenerno-Fizicheskii Zhurnal, Vol. 45, No. 5, pp. 721–726, November, 1983.

Rights and permissions

Reprints and permissions

About this article

Cite this article

Zantsev, V.K., Vishnevskii, G.E. Questions of the diagnostics of high-temperature material testing regimes by using inverse problems. Journal of Engineering Physics 45, 1218–1222 (1983). https://doi.org/10.1007/BF01254721

Download citation

  • Received:

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF01254721

Keywords

Navigation