Dynamic simulation of an integrated energy system for buildings in cold climates with thermal energy storage

被引:21
作者
Farrokhi, Meysam [1 ]
Motallebzadeh, Roghayyeh [1 ]
Javani, Nader [2 ]
Ebrahimpour, Abdolsalam [1 ]
机构
[1] Islamic Azad Univ, Dept Mech Engn, Tabriz Branch, Tabriz, Iran
[2] Yildiz Tech Univ, Dept Mech Engn, Istanbul, Turkey
关键词
Hotel building; Dynamic simulation; Renewable energies; District heating; GAS-TURBINE; CCHP SYSTEM; PERFORMANCE ANALYSIS; OPTIMAL-DESIGN; SOLAR; EXERGY; EFFICIENCY; OPTIMIZATION; FEASIBILITY; SELECTION;
D O I
10.1016/j.seta.2021.101459
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
In the current study, a building of a Hotel in cold weather conditions is simulated to be powered by a Combined Cooling, Heating and Power (CCHP) system in a transient manner. The system is comprised of photovoltaic thermal panels as renewable technology, coupled with a power block of MGT and cooling devices to produce the needs of the building. To handle the energy flows effectively, the system is able to sense the temperate of ambient with different controllers occupied in the system. Using TRNSYS as a promising and powerful tool to carry out the research dynamically, the thermodynamic, economic, and environmental behavior of the system is investigated. Research results dawned on the fact that the integrated system can generate all the needs of the proposed Hotel. Simulation outcomes indicate that an auxiliary heater plays a critical role since the temperature of 120 degrees C is constantly required for heating and cooling generation, and the power input to the heater is a challenging value. Although the heater is on and working 85% of the year, the results of the system show that in 65% of the year, the generated power is more than the power demand of the house. Moreover, the annual GHG emission is 0.16 Ton/MWh, in which the minimum of CO2 to the environment happens in July, and the maximum happens in January with 0.085 Ton/MWh and 0.17 Ton/MWh, respectively. Exergy analysis results show that the combustion chamber and PVT are the main sources of exergy destruction in the whole system. The building dynamic simulation results show that the system requires 34 kW cooling demand and 47 kW heating demand.
引用
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页数:13
相关论文
共 52 条
[1]   Energy, exergy, and economic evaluations of a CCHP system by using the internal combustion engines and gas turbine as prime movers [J].
Abbasi, Mohammad ;
Chahartaghi, Mahmood ;
Hashemian, Seyed Majid .
ENERGY CONVERSION AND MANAGEMENT, 2018, 173 :359-374
[2]   Modeling heating demands in a Chinese-style solar greenhouse using the transient building energy simulation model TRNSYS [J].
Ahamed, Md Shamim ;
Guo, Huiqing ;
Tanino, Karen .
JOURNAL OF BUILDING ENGINEERING, 2020, 29
[3]   Development and assessment of an integrated biomass-based multi-generation energy system [J].
Ahmadi, Pouria ;
Dincer, Ibrahim ;
Rosen, Marc A. .
ENERGY, 2013, 56 :155-166
[4]   Energy and exergy analyses of hydrogen production via solar-boosted ocean thermal energy conversion and PEM electrolysis [J].
Ahmadi, Pouria ;
Dincer, Ibrahim ;
Rosen, Marc A. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (04) :1795-1805
[5]   Thermoeconomic modeling of a small-scale gas turbine-photovoltaic-electrolyzer combined-cooling-heating-and-power system for distributed energy applications [J].
Arsalis, Alexandros ;
Alexandrou, Andreas N. ;
Georghiou, George E. .
JOURNAL OF CLEANER PRODUCTION, 2018, 188 :443-455
[6]   Analysis and optimization of a fuel cell integrated with series two-stage organic Rankine cycle with zeotropic mixtures [J].
Azad, Amirreza ;
Fakhari, Iman ;
Ahmadi, Pouria ;
Javani, Nader .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2022, 47 (05) :3449-3472
[7]   Multi-objective optimization of a tri-generation system based on biomass gasification/digestion combined with S-CO2 cycle and absorption chiller [J].
Balafkandeh, S. ;
Zare, V. ;
Gholamian, E. .
ENERGY CONVERSION AND MANAGEMENT, 2019, 200
[8]   Feasibility study of a smart building energy system comprising solar PV/T panels and a heat storage unit [J].
Behzadi, Amirmohammad ;
Arabkoohsar, Ahmad .
ENERGY, 2020, 210
[9]   Energy, exergy and exergoeconomic (3E) analyses and multi-objective optimization of a solar and geothermal based integrated energy system [J].
Behzadi, Amirmohammad ;
Gholamian, Ehsan ;
Ahmadi, Pouria ;
Habibollahzade, Ali ;
Ashjaee, Mehdi .
APPLIED THERMAL ENGINEERING, 2018, 143 :1011-1022
[10]  
Bejan A., 1995, Thermal design and optimization