Skip to main content
Log in

A Method for Estimating Heat-Shielding Properties of Mineral Wool Insulation Based on Silicate Fibrous Materials

  • Published:
Glass and Ceramics Aims and scope Submit manuscript

Abstract

A method for estimation of the heat-shielding properties of gas-filled mineral wool insulators is considered, which takes into account the mechanism of interrelated heat and mass transfer processes and their intensities, depending on the service conditions, design specifics, and technological parameters of the insulating material.

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

REFERENCES

  1. V. L. Berdichevskii, Variation Principles of Continuous Medium Mechanics [in Russian], Moscow (1983).

  2. G. N. Dul'nev and Yu. P. Zarichnyak, Thermal Conductivity of Mixtures and Composites [in Russian], Leningrad (1974).

  3. A. V. Lykov, Heat and Mass Transfer [in Russian], Moscow (1971).

  4. A. Misnar, Thermal Conductivity of Solids, Liquids, Gases, and Their Compositions [in Russian], Moscow (1968).

  5. V. G. Petrov-Denisov and L. A. Maslennikov, Heat and Moisture Exchange Processes in Industrial Heat Insulation [in Russian], Moscow (1983).

  6. J. D. Verschoor and P. Greebler, “Heat transfer by gas conduction and radiation in fibrous insulation,” ASME Trans., 74 (1952).

  7. V. G. Pogontsev, “Study of the optimum density of fibrous heatinsulating materials,” in: Refrigeration Machinery [in Russian], Moscow (1980).

  8. S. P. Vnukov, V. A. Ryabov, and D. V. Fedoseev, “Thermal conduction of fiberglass systems,” Inzh-Fiz. Zh., 21(5) (1971).

  9. Yu. K. Malikov, V. G. Lisenko, and V. A. Shirinkin, “Radiation heat exchange in a fibrous material layer,” Teplofiz. Vys. Temp., 23(4) (1985).

  10. M. K. Kumaran and D. G. Stephenson, “Heat transport through fibrous insulation materials,” J. Therm. Ins., 11 (1988).

  11. C. Langlais, “Thermal gradients effect on thermal properties measurements,” J. Therm. Ins., 11 (1988).

  12. V. L. Mal'ter, N. V. Bol'shakov, and A. V. Andreev, “A method and some results of semi-empirical description of thermal conduction in composite materials,” Inzh-Fiz. Zh., 39(6) (1980).

  13. I. S. Klein and V. I. Polezhaev, “Convective heat exchange in permeable porous media,” in: Institute of Mechanics Problems, USSR Academy of Sciences, Preprint No. 3 [in Russian], Moscow (1978).

  14. V. A. Brainovskaya, V. R. Kogan, and V. I. Polezhaev, “The effect of permeability anisotropy on convection and heat transfer in a porous circular interlayer,” Izv. Akad. Nauk SSSR, Ser. MZhG, No. 1 (1980).

  15. V. G. Petrov-Denisov and P. D. Lebedev, “Hydrodynamic, heat and mass transfer in a bed of fine non-porous particles,” Int. J. Heat Mass Transfer, 7 (1964).

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Petrov-Denisov, V.G., Zholudov, V.S. & Gur'ev, V.V. A Method for Estimating Heat-Shielding Properties of Mineral Wool Insulation Based on Silicate Fibrous Materials. Glass and Ceramics 57, 314–317 (2000). https://doi.org/10.1023/A:1007178017430

Download citation

  • Issue Date:

  • DOI: https://doi.org/10.1023/A:1007178017430

Keywords

Navigation