DEVELOPMENT OF LOW-TEMPERATURE HYDRONIC RADIANT FLOOR HEATING SYSTEMS AND MODERN ENERGY-EFFICIENT STRUCTURAL SOLUTIONS
PDF (Uzbek)

Keywords

water-based underfloor heating system heating efficiency heat flux computational assessment low-temperature heating energy efficiency

How to Cite

Khamrayev, S. I., Kamolov, B. I., & Kakhromonov, R. A. (2026). DEVELOPMENT OF LOW-TEMPERATURE HYDRONIC RADIANT FLOOR HEATING SYSTEMS AND MODERN ENERGY-EFFICIENT STRUCTURAL SOLUTIONS . Alternative Energy, 22(1), 65-73. https://doi.org/10.70769/2181-2284.ME.1(22).2026.8

Abstract

A significant share of energy consumption in residential and public buildings is associated with space heating systems. Conventional radiator heating systems operate with high-temperature heat carriers, resulting in increased heat losses and reduced energy efficiency. Therefore, low-temperature hydronic radiant floor heating systems represent an effective solution for improving thermal comfort while reducing energy consumption. This study evaluates the thermal performance of water-based radiant floor heating systems using analytical methods.

Materials and Methods

The performance of the hydronic floor heating system was evaluated using analytical methods based on energy balance equations and heat transfer principles. A mathematical model was developed to determine the heat flux transferred through the floor structure as a function of the supply water temperature. The calculations considered conductive, convective, and radiative heat transfer mechanisms.

Results

The simulation results demonstrated that the heat flux delivered through the radiant floor increased almost linearly with increasing supply water temperature. Furthermore, the required heating capacity could be achieved even under low-temperature operating conditions while maintaining high energy efficiency.

Conclusion

The analytical evaluation confirms that hydronic radiant floor heating systems are a suitable low-temperature and energy-efficient heating technology. The proposed calculation approach provides a practical tool for designing such systems and selecting optimal operating conditions, contributing to energy conservation and improved building energy performance.

PDF (Uzbek)

References

[1]. Duffie J.A., Beckman W.A. Solar Engineering of Thermal Processes. – 4th ed. – Hoboken: John

Wiley & Sons, 2013. – 928 p.

[2]. Incropera F.P., DeWitt D.P., Bergman T.L., Lavine A.S. Fundamentals of Heat and Mass

Transfer. – 7th ed. – Hoboken: John Wiley & Sons, 2011. – 1072 p.

[3]. ASHRAE. ASHRAE Handbook: HVAC Systems and Equipment. – Atlanta: American Society

of Heating, Refrigerating and Air-Conditioning Engineers (ASHRAE), 2020.

[4]. EN 1264-2:2021. Water Based Surface Embedded Heating and Cooling Systems – Part 2: Floor

Heating. – Brussels: European Committee for Standardization (CEN), 2021.

[5]. ISO 11855-1:2021. Building Environment Design – Embedded Radiant Heating and Cooling

Systems – Part 1. – Geneva: International Organization for Standardization (ISO), 2021.

[6]. Olesen B.W. Radiant floor heating in theory and practice // ASHRAE Journal. – 2002. – Vol.

44, No. 7. – P. 19–26.

[7]. Zalba B., Marín J.M., Cabeza L.F., Mehling H. Review on thermal energy storage with phase

change materials and applications // Applied Thermal Engineering. – 2003. – Vol. 23, No. 3. –

P. 251–283.

[8]. Khamraev S.I. Study of the combined solar heating system of residential houses // BIO Web of

Conferences. – 2023. – Vol. 71. – Article 02017.

Creative Commons License

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

Copyright (c) 2026 Xamrayev, S.I., Kamolov, B.I., Qaxromonov, R.A. (Muallif)

Downloads

Download data is not yet available.