LAPSE:2023.4551v1
Published Article

LAPSE:2023.4551v1
Effects of Albedo and Thermal Inertia on Pavement Surface Temperatures with Convective Boundary Conditions—A CFD Study
February 23, 2023
Abstract
The urban heat island (UHI) effect increases the ambient temperatures in cities and alters the energy budget of building materials. Urban surfaces such as pavements and roofs absorb solar heat and re-emit it back into the atmosphere, contributing towards the UHI effect. Over the past few decades, researchers have identified albedo and thermal inertia as two of the most significant thermal properties that influence pavement surface temperatures under a given solar load. However, published data for comparisons of albedo and thermal inertia are currently inadequate. This work focuses on asphalt and concrete as two important materials used in the construction of pavements. Computational fluid dynamics (CFD) analyses are performed on asphalt and concrete pavements with the same dimensions and under the same ambient conditions. Under given conditions, the pavement top surface temperature is evaluated with varying albedo and thermal inertia values. The results show that the asphalt surface temperatures are consistently higher than the concrete surface temperatures. Surface temperatures under solar load reduce with increasing albedo and thermal inertia values for both asphalt and concrete pavements. The CFD results show that increasing the albedo is more effective in reducing pavement surface temperatures than increasing the thermal inertia.
The urban heat island (UHI) effect increases the ambient temperatures in cities and alters the energy budget of building materials. Urban surfaces such as pavements and roofs absorb solar heat and re-emit it back into the atmosphere, contributing towards the UHI effect. Over the past few decades, researchers have identified albedo and thermal inertia as two of the most significant thermal properties that influence pavement surface temperatures under a given solar load. However, published data for comparisons of albedo and thermal inertia are currently inadequate. This work focuses on asphalt and concrete as two important materials used in the construction of pavements. Computational fluid dynamics (CFD) analyses are performed on asphalt and concrete pavements with the same dimensions and under the same ambient conditions. Under given conditions, the pavement top surface temperature is evaluated with varying albedo and thermal inertia values. The results show that the asphalt surface temperatures are consistently higher than the concrete surface temperatures. Surface temperatures under solar load reduce with increasing albedo and thermal inertia values for both asphalt and concrete pavements. The CFD results show that increasing the albedo is more effective in reducing pavement surface temperatures than increasing the thermal inertia.
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Keywords
albedo, Computational Fluid Dynamics, pavement materials, thermal inertia
Subject
Suggested Citation
Acharya T, Riehl B, Fuchs A. Effects of Albedo and Thermal Inertia on Pavement Surface Temperatures with Convective Boundary Conditions—A CFD Study. (2023). LAPSE:2023.4551v1
Author Affiliations
Acharya T: Department of Physics and Engineering, California State University, Bakersfield, CA 93311, USA
Riehl B: Department of Physics and Engineering, California State University, Bakersfield, CA 93311, USA; McIntosh & Associates Engineering, Inc., Bakersfield, CA 93309, USA
Fuchs A: Dean’s Office, California State Polytechnic University, Pomona, CA 91768, USA
Riehl B: Department of Physics and Engineering, California State University, Bakersfield, CA 93311, USA; McIntosh & Associates Engineering, Inc., Bakersfield, CA 93309, USA
Fuchs A: Dean’s Office, California State Polytechnic University, Pomona, CA 91768, USA
Journal Name
Processes
Volume
9
Issue
11
First Page
2078
Year
2021
Publication Date
2021-11-19
ISSN
2227-9717
Version Comments
Original Submission
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PII: pr9112078, Publication Type: Journal Article
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LAPSE:2023.4551v1
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https://doi.org/10.3390/pr9112078
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Feb 23, 2023
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