Inverse Heat Transfer Study of a Power Transmission Line Tower Foundation

Author:

Zhang Daqian1,Duan Xili2

Affiliation:

1. School of Energy and Power Engineering,Chongqing University, Chongqing 400044, China; Faculty of Engineering and Applied Science,Memorial university of Newfoundland, St. John's, NL A1B 3X5, Canada

2. Faculty of Engineering and Applied Science, Memorial university of Newfoundland, St. John's, A1B 3X5, NL, Canada

Abstract

Abstract In some northern regions, power transmission lines are built with metal tower footings buried in the permafrost. With a high thermal conductivity, the tower footing has a significant thermal effect on the foundation and the nearby permafrost. Heat transfer models were previously developed to predict the thermal effect with line heat source assumptions, without knowing the exact spatial distribution and temporal variation of the heat source strength. This limited the accuracy of these heat transfer models. In this work, an inverse heat transfer method (IHTM) based on dynamic matrix control (DMC) theory is developed to better estimate the heat source strength representing the tower footing. The methodology is validated with numerical simulations and experimental data. It is found that the distribution of heat source varies spatially and temporally in a more complicated way than what was assumed in previous studies. The inversed heat source is then used to reconstruct the temperature fields in a tower foundation, which provides more accurate heat transfer analysis for design and maintenance of the foundation.

Funder

Natural Sciences and Engineering Research Council of Canad

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference29 articles.

1. Permafrost, Infrastructure, and Climate Change: A GIS-Based Landscape Approach to Geotechnical Modeling;Arct. Antarct. Alp. Res,2012

2. Patterns of Soil Temperature and Moisture in the Active Layer and Upper Permafrost at Barrow, Alaska: 1993–1999;Global Planet. Change,2001

3. Ground Thermal Response to Heat Conduction in a Power Transmission Tower Foundation;Heat Mass Transfer,2008

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