Cold Climate Challenges: Analysis of Heat Recovery Efficiency in Ventilation Systems

被引:0
作者
Prozuments, Aleksejs [1 ]
Zemitis, Jurgis [1 ]
Bulanovs, Aleksejs [1 ]
机构
[1] Riga Tech Univ, Fac Civil Engn, Dept Heat Engn & Technol, LV-1048 Riga, Latvia
关键词
heat recovery; mechanical ventilation; energy efficiency; cold climate; heat exchanger; BUILDING ENERGY EFFICIENCY; MECHANICAL VENTILATION; RESIDENTIAL BUILDINGS; EUROPEAN-UNION; PERFORMANCE; CONSUMPTION; EXCHANGERS; HUMIDITY; COMFORT; LOSSES;
D O I
10.3390/en16227483
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
As building energy consumption gains ever-increasing attention worldwide, the focus on addressing it through the examination and optimization of efficient heat recovery solutions continues to intensify. With well-insulated and airtight buildings, the proportion of heating needs attributed to ventilation is growing, leading to the widespread integration and optimization of heat recovery solutions in mechanical ventilation systems. Heat recovery in ventilation is a highly efficient strategy for reducing heat losses and conserving energy. This study involves the investigation of a ventilation unit installed in an apartment situated in Riga, Latvia, as a practical examination of heat recovery system efficiency within the Latvian climate conditions, representing a cold climate region. The objective of this study was to examine the heat recovery efficiency of the ventilation system in the Latvian climate with variable outdoor and exhaust air parameters, given that the dry heat recovery efficiency is different from the actual heat recovery efficiency. The ventilation unit was equipped with a plate heat exchanger at an airflow rate of 105 m(3)/h. To evaluate heat recovery efficiency, extensive measurements of air temperature and relative humidity were conducted. The collected data was analyzed, employing statistical regression analysis to ensure measurement reliability and assess correlations. The findings indicated a strong correlation between variables such as heat content, moisture content, and sensible air parameters. It was observed that the actual heat recovery efficiency was 6% higher than the calculated dry efficiency, emphasizing the importance of considering real-world conditions in heat recovery assessments. Additionally, regression analysis demonstrated a positive linear correlation with a coefficient of 0.77, highlighting the dependency between actual measurements and the theoretical model. These quantitative outcomes provide essential insights for optimizing heat recovery systems and enhancing energy-efficient ventilation practices, especially in cold climate environments. Moreover, this study highlights the strong correlation between variables such as heat content, moisture content, and sensible air parameters. Findings offer essential insights for optimizing heat recovery systems and enhancing energy-efficient ventilation practices, especially in cold climate environments.
引用
收藏
页数:15
相关论文
共 77 条
  • [51] Dynamic model of counter flow air to air heat exchanger for comfort ventilation with condensation and frost formation
    Nielsen, Toke Rammer
    Rose, Jorgen
    Kragh, Jesper
    [J]. APPLIED THERMAL ENGINEERING, 2009, 29 (2-3) : 462 - 468
  • [52] Nord N., 2017, Building Energy Efficiency in Cold Climates, VVolume 2, DOI [10.1016/B978-0-12-409548-9.10190-3, DOI 10.1016/B978-0-12-409548-9.10190-3]
  • [53] Energy pricing during the COVID-19 pandemic: Predictive information-based uncertainty indexes with machine learning algorithm
    Olubusoye, Olusanya E.
    Akintande, Olalekan J.
    Yaya, OlaOluwa S.
    Ogbonna, Ahamuefula E.
    Adenikinju, Adeola F.
    [J]. INTELLIGENT SYSTEMS WITH APPLICATIONS, 2021, 12
  • [54] Energy performance gap of the Italian residential building stock: Parametric energy simulations for theoretical deviation assessment from standard conditions
    Palladino, Domenico
    [J]. APPLIED ENERGY, 2023, 345
  • [55] MANGOret: An optimization framework for the long-term investment planning of building multi-energy system and envelope retrofits
    Petkov, Ivalin
    Mavromatidis, Georgios
    Knoeri, Christof
    Allan, James
    Hoffmann, Volker H.
    [J]. APPLIED ENERGY, 2022, 314
  • [56] Ventilated facade integrated with the HVAC system for cold climate
    Petrichenko, M. R.
    Nemova, D. V.
    Kotov, E. V.
    Tarasova, D. S.
    Sergeev, V. V.
    [J]. MAGAZINE OF CIVIL ENGINEERING, 2018, 77 (01): : 47 - 58
  • [57] Ventilation of buildings with heat recovery systems: Thorough energy and exergy analysis for indoor thermal wellness
    Picallo-Perez, A.
    Sala-Lizarraga, J. M.
    Odriozola-Maritorena, M.
    Hidalgo-Betanzos, J. M.
    Gomez-Arriaran, I.
    [J]. JOURNAL OF BUILDING ENGINEERING, 2021, 39
  • [58] Prozuments A., 2021, Long-Term Assessment Methodology of Building Stock Thermal Energy Consumption, DOI [10.7250/9789934226205, DOI 10.7250/9789934226205]
  • [59] Indoor humidity of dwellings and association with building characteristics, behaviors and health in a northern climate
    Psomas, Theofanis
    Teli, Despoina
    Langer, Sarka
    Wahlgren, Paula
    Wargocki, Pawel
    [J]. BUILDING AND ENVIRONMENT, 2021, 198
  • [60] Environment, social and governance research of infrastructure investment: A literature review
    Qi, Xia
    Wang, Bowen
    Gao, Qun
    [J]. JOURNAL OF CLEANER PRODUCTION, 2023, 425