Preview

Heat Resistance and Heat-and-Mass Transfer in Road Pavements

https://doi.org/10.21122/1029-7448-2019-62-6-536-546

Abstract

The paper presents a fragment of on-going investigations directed on creation of optimal information environment that ensures an access to the R&D publications from the known scientific journals and other scientific serials which are necessary for qualitative execution of scientific and technological activities on priority areas in highway engineering. A citation analysis has been applied while using data of Journal Citation Reports for selection of world scientific publications which are necessary for execution of investigations on heat and mass transfer in road dressings. Their deformations occur under various climatic conditions due to heat and mass transfer processes, interaction of transport flows and road surface that leads to crack formation in depth and on the surface of road dressings. Structure of constructive layers especially which are created with the help of technogenic wastes (asphalt-, reinforced concrete, concrete, brick scrap and products of their recycling, various wastes of production etc.) exerts an influence on heat and mass transfer. The paper presents results of investigations on heat flows, boundary layers according to viscosity, air velocity, geometric characteristics, permeability, capillary pressures in materials. It has been shown that calculations based on principles of complex number usage have specific features in engineering practice: it is required to observe their accuracy in approaches, calculation reduction due to some accuracy degradation as a consequence of transition from complex numbers to their modules with exclusion of phase shift account and related with propagation of thermal waves. In this respect calculations of heat resistance without phase shifts are considered as rather important if they are in agreement with principles based on the fact that a complexity is characterized by thermal absorptivity of the material in a great number of calculations. The investigations have been supported by Henan Center for Outstanding Overseas Scientists, Grant Number GZS 2018006 (People’s Republic of China, Henan Province).

About the Authors

B. M. Khroustalev
Belarusian National Technical University
Belarus

Address for correspondence: Khroustalev Boris M. – Belarusian National Technical University, 65 Nezavisimosty Ave., 220013, Minsk, Republic of Belarus. Tel.: +375 17 265-96-56    tgv_fes@bntu.by

 



. Liu Tingguo
Gaoyuan Company
China
Henan Province


V. D. Akeliev
Belarusian National Technical University
Belarus
Minsk


. Li Zhongyu
Gaoyuan Company
China
Henan Province


H. Yu. Aliakseyeu
Belarusian National Technical University
Belarus
Minsk


V. V. Zankаvich
Gaoyuan Company
China
Henan Province


References

1. Sabai M. M. (2013) Construction and Demolition Waste Recycling into Innovative Building Materials for Sustainable Construction in Tanzania. Eindhoven University of Technology. Eindhoven, Technische Universiteit Eindhoven. https://doi.org/10.6100/IR757934.

2. Bazaz J. B., Khayati M. (2012) Properties and Performance of Concrete Made with Recycled Low-Quality Crushed Brick. Journal of Materials in Civil Engineering, 24 (4), 330–338. https://doi.org/10.1061/(ASCE)MT.1943-5533.0000385.

3. Lalla J. R. F., Mwasha A. (2014) Investigating the Compressive Strengths of Guanapo Recycled Aggregate Concrete as Compared to That of its Waste Material. West Indian Journal of Engineering, 36 (2), 12–19.

4. Khroustalev B. M., Nesenchuk A. P., Timoshpolsky V. I., Akeliev V. D., Sednin V. A., Kopko V. M., Nerezko A. V. (2007) Heat and Mass Transfer. Part 1. Minsk, Belarusian National Technical University. 606 (in Russian).

5. Khrustalev B. M., Nesenchuk A. P., Akeliev V. D., Sednin V. A., Kopko V. M., Timoshpol’skii V. I., Sednin A. V., Nerez’ko A. V. (2009) Heat and Mass Transfer. Part 2. Minsk, Belarusian National Technical University, 273 (in Russian).

6. Khroustalev B. M., Tingguo Liu, Akeliev V. D., Aliakseyeu Yu. H., Jicun Shi, Zankovich V. V. (2018) Specific Features of Heat-and-Mass Transfer Processes in Road Dressings. Energetika. Izvestiya Vysshikh Uchebnykh Zavedenii i Energeticheskikh Obedinenii SNG = Energetika. Proceedings of CIS Higher Education Institutions and Power Engineering Associations, 61 (6), 517–526 (in Russian). https://doi.org/10.21122/1029-7448-2018-61-6-517-526.

7. Pshembaev M. K., Kovalev Ya. N., Akeliev V. D. (2015) Estimation of Concrete Pavement Temperature Fields and their Gradients. Energetika. Izvestiya Vysshikh Uchebnykh Zavedenii i Energeticheskikh Obedinenii SNG = Energetika. Proceedings of CIS Higher Education Institutions and Power Engineering Associations, (4), 54–63 (in Russian).

8. Fraile-Garcia E., Ferreiro-Cabello J., López-Ochoa L. M., López-González L. M. (2017) Study of Technical Feasibility of Increasing the Amount of Recycled Concrete Waste Used in ReadyMix Concrete Production. Materials, 10 (7), 817. https://doi.org/10.3390/ma10070817.

9. Teltaev B. B. (2015) Regular Features in Self-Organization of Low-Temperature Cracking in Asphalt-Concrete Road Pavement. Doklady Natsionalnoi Akademii Nauk Respubliki Kazakhstan = Reports of the National Academy of Sciences of Republic of Kazakhstan, (4), 40–65 (in Russian).

10. Amarasiri A., Grenfell J. (2015) Numerical Modeling of Thermal Cracking of Pavements. International Journal of Pavement Research & Technolog, 8 (2), 85–93. https://doi.org/10.6135/ijprt.org.tw/2015.8(2).85.

11. Schlichting H. (1960) Boundary-Layer Theory. New York: McGraw-Hill.

12. Pekhovich A. I., Zhidkikh V. M. (1976) Calculation of Thermal Regime for Solid Bodies. Leningrad, Energiya Publ. 352 (in Russian).

13. Bogoslovskii V. N. (1982) Building Engineering Thermal Physics: Thermophysical Fundamentals on Air Heating, Ventilation and Conditioning. Moscow, Vysshaya Shkola Publ. 415 (in Russian).


Review

For citations:


Khroustalev B.M., Liu Tingguo , Akeliev V.D., Li Zhongyu , Aliakseyeu H.Yu., Zankаvich V.V. Heat Resistance and Heat-and-Mass Transfer in Road Pavements. ENERGETIKA. Proceedings of CIS higher education institutions and power engineering associations. 2019;62(6):536-546. https://doi.org/10.21122/1029-7448-2019-62-6-536-546

Views: 814


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 1029-7448 (Print)
ISSN 2414-0341 (Online)