Coupling a road solar thermal collector and borehole thermal energy storage for building heating: First experimental and numerical results

被引:11
作者
Buscemi, Alessandro [1 ]
Beccali, Marco [1 ]
Guarino, Stefania [1 ]
Lo Brano, Valerio [1 ]
机构
[1] Univ Palermo, Dept Engn, Viale Sci, Palermo, Italy
关键词
Renewable building heating systems; Borehole thermal energy storage; Road thermal collector; Thermal measurements in soils; Pilot plants; Dynamic numerical simulations; GLOBAL SENSITIVITY-ANALYSIS; EFFICIENCY; SYSTEM; DESIGN; MODEL;
D O I
10.1016/j.enconman.2023.117279
中图分类号
O414.1 [热力学];
学科分类号
摘要
The adoption of more efficient technologies that integrate renewable resources for heating buildings is a key action for increasing sustainability in the residential sector in the European Union. Borehole thermal energy storage and road thermal collector systems, which have mainly been integrated in colder countries to develop renewable systems, aimed at preventing the freezing of road surfaces in winter, could also be used in warmer countries to develop sustainable heating systems for buildings. In this experimental-numerical study, the possibility of integrating these two systems for the heating of buildings located in the Mediterranean region is investigated for the first time. To this end, a pilot plant was built at the facility test site of the University of Palermo, with the aim of demonstrating the possibility of storing solar energy in summer and recovering it in winter. A new method is proposed to characterize both the thermal conductivity and diffusivity of the different materials in the design phase of the plant. The results of simulations conducted with a validated numerical model show that the proposed system, characterized by an average annual collector efficiency of 10% and a seasonal storage efficiency of 80%, can reduce the length of borehole heat exchangers by about three times compared with a conventional geothermal heat pump plant.
引用
收藏
页数:18
相关论文
共 56 条
[31]  
Klein S. A., 2010, TRNSYS 17 TRANSIENT, P1
[32]   Seasonal Thermal-Energy Storage: A Critical Review on BTES Systems, Modeling, and System Design for Higher System Efficiency [J].
Lanahan, Michael ;
Tabares-Velasco, Paulo Cesar .
ENERGIES, 2017, 10 (06)
[33]   An inversion method to estimate the thermal properties of heterogeneous soil for a large-scale borehole thermal energy storage system [J].
Li, Pengchao ;
Guo, Fang ;
Yang, Xudong .
ENERGY AND BUILDINGS, 2022, 263
[34]   A review of thermal energy storage technologies for seasonal loops [J].
Mahon, Harry ;
O'Connor, Dominic ;
Friedrich, Daniel ;
Hughes, Ben .
ENERGY, 2022, 239
[35]   A novel and versatile solar Borehole Thermal Energy Storage assisted by a Heat Pump. Part 1: System description [J].
Maragna, Charles ;
Rey, Charlotte ;
Perreaux, Marc .
RENEWABLE ENERGY, 2023, 208 :709-725
[36]  
Meteonorm, 2012, METEONORM Global Meteorological Database. Handbook Part II. Theory
[37]   Numerical investigation of geothermal pavements: Design optimisation & boundary conditions [J].
Motamedi, Yaser ;
Makasis, Nikolas ;
Gu, Xiaoying ;
Narsilio, Guillermo A. ;
Arulrajah, Arul ;
Horpibulsuk, Suksun .
TRANSPORTATION GEOTECHNICS, 2022, 37
[38]   Performance evaluation of an industrial borehole thermal energy storage (BTES) project - Experiences from the first seven years of operation [J].
Nilsson, Emil ;
Rohdin, Patrik .
RENEWABLE ENERGY, 2019, 143 :1022-1034
[39]   Empirical Validation and Numerical Predictions of an Industrial Borehole Thermal Energy Storage System [J].
Nilsson, Emil ;
Rohdin, Patrik .
ENERGIES, 2019, 12 (12)
[40]   A survey of wind convection coefficient correlations for building envelope energy systems' modeling [J].
Palyvos, J. A. .
APPLIED THERMAL ENGINEERING, 2008, 28 (8-9) :801-808