THERMAL SCIENCE

International Scientific Journal

Authors of this Paper

External Links

LAY-OUT OF AIR SOURCE HEAT PUMP HEATING SYSTEM IN LUGANG LOGISTICS PARK

ABSTRACT
In order to understand the process of using the heat pump heat organization, the author proposes to conduct a study based on the concept of heat pump air heating system in "Land Port Logistics Park". The author first analyzed the heating characteristics of the ground transportation fleet according to the actual situation, optimized the design of the heat pump, and proposed the same plan. Second, taking some provincial underground parks as examples, the actual performance of the park's air source heat pump heating system was tested. According to the test, the temperature difference between the supply and return water is 3-4°C, and the average COP of the entire heating season is only 2.1. Based on the analysis and analysis, the meaning of the problem in the actual operation of the heat pump is explained, the cause of the problem is the determination of the pressure and the design plan. After installation, energy consumption can be further reduced, and it advises on the progress and use of the ventilation system. By using electric equipment to heat the docks in the port, it is possible to meet the heating needs of the park and reduce energy consumption and air pollution. Good this is a green and low carbon promise.
KEYWORDS
PAPER SUBMITTED: 2023-03-22
PAPER REVISED: 2023-06-02
PAPER ACCEPTED: 2023-07-29
PUBLISHED ONLINE: 2024-04-13
DOI REFERENCE: https://doi.org/10.2298/TSCI2402313L
CITATION EXPORT: view in browser or download as text file
THERMAL SCIENCE YEAR 2024, VOLUME 28, ISSUE Issue 2, PAGES [1313 - 1320]
REFERENCES
  1. Yu, Q., Cao, J., & Tan, X. . Simulation and optimisation study on a solar space heating system in baotou, china. Proceedings of the Institution of Civil Engineers, Energy, 14 (2022), 3, p. 175
  2. Xue, D., et al., Prediction of Structural Mechanical Properties of Energy-Saving Materials for Solar Photovoltaic Photo-Thermal System Based on Deep Learning, Thermal Science, 27 (2023), 2A, pp. 1109-1116
  3. Zhang, Q., et al., Numerical and Experimental Investigation on Dynamic Thermal Performance of Floor Heating System with Phase Change Material for Thermal Storage, Indoor and Built Environment, 30 (2021), 5, pp. 621-634
  4. Wu, Q., et al., Day-Ahead Stochastic Optimal Operation of the Integrated Electricity and Heating System Considering Reserve of Flexible Devices, in: Optimal Operation of Integrated Multi-Energy Systems under Uncertainty, Elsevier, Amsterdam, The Netherland, 2022, pp. 221-249
  5. He, Z., et al., Optimization of the Solar Space Heating System with Thermal Energy Storage Using Data-Driven Approach, Renewable Energy, 1 (2022), 9, 01
  6. Envelope, A. S. R., et al., Robust Control of a Central Heating System Using a Cascade Controller Based on Quantitative Feedback Theory, IFAC-PapersOnLine, 55 (2022), 1, pp. 866-871
  7. Sun, Y., et al., Performance Analysis of Air Source Heat Pump Space Heating System with an Adaptive Control for Supply Water Temperature, Applied Thermal Engineering, 2 (2022), 1, 1
  8. Zhu, X., et al., Snow-Melting Pavement Design Strategy with Electric Cable Heating System Balancing Snow Melting, Energy Conservation, and Mechanical Performance, Resources, Conservation and Recycling, 1 (2022), 7, 7
  9. Guan, Z., Cui, Y., Thermal Load Analysis and Control of Four-Stroke High Speed Diesel Engine, Thermal Science, 25 (2021), 4B, pp. 2871-2879
  10. Xu, A., Thermal Energy Storage Technology and Its Application in Power Data Remote Transmission, Thermal Science, 27 (2023), 2A, pp. 1175-1181

© 2024 Society of Thermal Engineers of Serbia. Published by the Vinča Institute of Nuclear Sciences, National Institute of the Republic of Serbia, Belgrade, Serbia. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution-NonCommercial-NoDerivs 4.0 International licence