The Exploitation of Low-Temperature Hot Water Boiler Sources with High-Temperature Heat Pump Integration

被引:10
|
作者
Goricanec, Darko [1 ]
Ivanovski, Igor [2 ]
Krope, Jurij [1 ]
Urbancl, Danijela [1 ]
机构
[1] Univ Maribor, Fac Chem & Chem Engn, Smetanova Ul 17, Maribor 2000, Slovenia
[2] IVD Maribor, Valvasorjeva Ulica 73, Maribor 2000, Slovenia
关键词
renewable energy sources; hot water boilers; high-temperature heat pumps; district heating; economic analysis; ECONOMIC-ANALYSIS; ENERGY; COGENERATION; EFFICIENCY; SYSTEM;
D O I
10.3390/en13236311
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
The article presents an original and innovative technical solution for the exploitation of low-temperature excess heat from hot water boilers that use gas or liquid fuel for the needs of high-temperature heating in buildings or in industry. The primary fuel efficiency used for hot water boilers can be significantly increased by utilizing the excess low-temperature heat of flue gases that are discharged into the environment and thus also reduce CO2 emissions. Hot water systems usually operate at higher temperatures of the heating water, which is transported to the heat consumer via supply pipe, and the cooled heating water is returned to the hot water boiler via the return pipe. For the excess low-temperature heat exploitation of the flue gases from hot water boiler, it is necessary to install a condenser in the flue gas discharge pipe, where condensation of water vapour present in the flue gas heats water or a mixture of water and glycol. The heating water, which is cooled and returned from the heat consumer via the return pipe, is led to the condenser of the high-temperature heat pump, where it is preheated and then led to the hot water boiler, where it is heated to the final temperature. A computer simulation with the Aspen plus software package for the series or parallel connection of high-temperature heat pump to a hot water heating system and the economic analysis of the excess heat exploitation from the flue gases are also performed.
引用
收藏
页数:12
相关论文
共 50 条
  • [1] Exploitation of low-temperature energy sources from cogeneration gas engines
    Caf, A.
    Urbancl, D.
    Trop, P.
    Goricanec, D.
    ENERGY, 2016, 108 : 86 - 92
  • [2] Analysis of the Potential of Low-Temperature Heat Pump Energy Sources
    Neuberger, Pavel
    Adamovsky, Radomir
    ENERGIES, 2017, 10 (11):
  • [3] HIGH-TEMPERATURE HEAT PUMP INTEGRATION INTO DISTRICT HEATING SYSTEM
    Jakovleva, Ludmila
    20TH INTERNATIONAL SCIENTIFIC CONFERENCE ENGINEERING FOR RURAL DEVELOPMENT, 2021, : 1312 - 1316
  • [4] Break-even of high-temperature heat pump integration for milk spray drying
    Schlosser, Florian
    Zysk, Sebastian
    Walmsley, Timothy G.
    Kong, Lana
    Zuehlsdorf, Benjamin
    Meschede, Henning
    ENERGY CONVERSION AND MANAGEMENT, 2023, 291
  • [5] State of the art in low-temperature and high-temperature electrolysis
    Ayers, Katherine E.
    Marina, Olga A.
    MRS BULLETIN, 2024, 49 (12) : 1226 - 1234
  • [6] Performance Analysis of the Technology of High-Temperature Boiler Feed Water to Recover the Waste Heat of Mid-Low-Temperature Flue Gas
    Xu, Weigang
    Jin, Yuzhen
    Zhu, Linhang
    Li, Zeqing
    ACS OMEGA, 2021, 6 (40): : 26318 - 26328
  • [7] Performance of the very high-temperature heat pump with low GWP working fluids
    Mikielewicz, Dariusz
    Wajs, Jan
    ENERGY, 2019, 182 : 460 - 470
  • [8] Evaluating low-temperature heat sources for large-scale heat pump integration: A method using open-source data and indicators
    Fuchs, Nicolas
    Yanez, Guillermo
    Nkongdem, Bertrand
    Thomsen, Jessica
    APPLIED ENERGY, 2025, 377
  • [9] Performance analysis of different high-temperature heat pump systems for low-grade waste heat recovery
    Cao, Xing-Qi
    Yang, Wei-Wei
    Zhou, Fu
    He, Ya-Ling
    APPLIED THERMAL ENGINEERING, 2014, 71 (01) : 291 - 300
  • [10] Flexible operation and integration of high-temperature heat pumps using large temperature glides
    Knorr, Lukas
    Schlosser, Florian
    Horstmann, Nils
    Divkovic, Denis
    Meschede, Henning
    APPLIED ENERGY, 2024, 368