Evaluating the Thermal Performance and Environmental Impact of Agricultural Greenhouses Using Earth-to-Air Heat Exchanger: An Experimental Study

被引:7
|
作者
Hamdane, Samia [1 ,2 ]
Pires, Luis Carlos Carvalho [2 ,3 ]
Silva, Pedro Dinho [2 ,3 ]
Gaspar, Pedro Dinis [2 ,3 ]
机构
[1] Mohamed Khider Univ, Lab Mech Engn LGM, BP 145 RP, Biskra 07000, Algeria
[2] Univ Beira Interior, Dept Electromech Engn, Rua Marques Avila & Bolama, P-6201001 Covilha, Portugal
[3] C MAST Ctr Mech & Aerosp Sci & Technol, P-6201001 Covilha, Portugal
来源
APPLIED SCIENCES-BASEL | 2023年 / 13卷 / 02期
关键词
greenhouse; earth-to-air heat exchanger; CO2; emissions; energy consumption; environmental impact; sustainability; REGION; SYSTEM;
D O I
10.3390/app13021119
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The thermal performance and environmental impact of agricultural greenhouses (GH) connected to earth-to-air heat exchanger (EAHE) systems depend on the ambient temperature, soil temperature, EAHE system, and greenhouse specifications. The impact of an EAHE system on the temperature and humidity of a GH microclimate, as well as its effects on CO2 emissions and heating energy consumption, are determined experimentally. Two scaled-down models of agricultural GHs (2 x 1.4 x 1.4 m(3)) were developed. Each GH was equipped with a heater. A spiral EAHE system was integrated into only one of the GHs. The temperature differences in the microclimate range from 3.5 degrees C to 7.5 degrees C, with the microclimates of GH + EAHE and GH being quite similar. In summary, the EAHE system helped to reduce the hourly energy consumption of the heating system by more than 40%. It also reduced emissions to the environment by more than 100 g (CO2)/hour. The EAHE coefficient of performance (COP) for the cooling mode has a higher average value than that for the heating mode. The closed-loop performed better in cooling mode, while the open-loop performed better in heating mode. When the difference between the set temperature in the heater and the air outlet temperature of the EAHE system is smaller, the heater performs better in reducing energy consumption and CO2 emissions of the heater. The COPheating range is between 0 and 3.4 and the COPcooling range is between 0.5 and 7.3. The energy consumption ranges between 0 and 1.41 kWh and the CO2 emissions are between 0 and 359.55 g. Thus, using EAHE in agricultural greenhouses improves thermal performance and reduces environmental impact, providing an overall benefit in terms of energy consumption and environmental sustainability.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Improvement of earth-to-air heat exchanger performance by adding cost-efficient soil
    El Khachine, Houda
    Ouahabi, Mohamed Hatim
    Taoukil, Driss
    ENERGY EXPLORATION & EXPLOITATION, 2024, 42 (02) : 589 - 602
  • [32] Experimental and numerical study of a vertical earth-to-air heat exchanger system integrated with annular phase change material
    Liu, Zhengxuan
    Yu, Zhun
    Yang, Tingting
    El Mankibi, Mohamed
    Roccamena, Letizia
    Sun, Ying
    Sun, Pengcheng
    Li, Shuisheng
    Zhang, Guoqiang
    ENERGY CONVERSION AND MANAGEMENT, 2019, 186 : 433 - 449
  • [33] Experimental study of an earth-to-air heat exchanger coupled to the solar chimney for heating and cooling applications in arid regions
    Nasreddine Sakhri
    Younes Menni
    Ali J. Chamkha
    Giulio Lorenzini
    Houari Ameur
    Noureddine Kaid
    Mohammed Bensafi
    Journal of Thermal Analysis and Calorimetry, 2021, 145 : 3349 - 3358
  • [34] Experimental study of an earth-to-air heat exchanger coupled to the solar chimney for heating and cooling applications in arid regions
    Sakhri, Nasreddine
    Menni, Younes
    Chamkha, Ali J.
    Lorenzini, Giulio
    Ameur, Houari
    Kaid, Noureddine
    Bensafi, Mohammed
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2021, 145 (06) : 3349 - 3358
  • [35] Pseudo transient numerical study of an earth-to-air heat exchanger for different climates of Mexico
    Xaman, J.
    Hernandez-Lopez, I.
    Alvarado-Juarez, R.
    Hernandez-Perez, I.
    Alvarez, G.
    Chavez, Y.
    ENERGY AND BUILDINGS, 2015, 99 : 273 - 283
  • [36] Designing and evaluating a new earth-to-air heat exchanger system in hot summer and cold winter areas
    Liu, Zhengxuan
    Yu, Zhun
    Yang, Tingting
    Li, Shuisheng
    El Mankibi, Mohamed
    Roccamena, Letizia
    Qin, Di
    Zhang, Guoqiang
    INNOVATIVE SOLUTIONS FOR ENERGY TRANSITIONS, 2019, 158 : 6087 - 6092
  • [37] Performance analysis of domed roof integrated with earth-to-air heat exchanger system to meet thermal comfort conditions in buildings
    Akbarpoor, Ali Mirzazade
    Poshtiri, Amin Haghighi
    Biglari, Faraz
    RENEWABLE ENERGY, 2021, 168 (168) : 1265 - 1293
  • [38] Experimental and numerical study of an earth-to-air heat exchanger for air cooling in a residential building in hot semi-arid climate
    Khabbaz, Mohamed
    Benhamou, Brahim
    Limam, Karim
    Hollmuller, Pierre
    Hamdi, Hassan
    Bennouna, Amin
    ENERGY AND BUILDINGS, 2016, 125 : 109 - 121
  • [39] Low exergy modelling and performance analysis of greenhouses coupled to closed earth-to-air heat exchangers (EAHEs)
    Hepbasli, Arif
    ENERGY AND BUILDINGS, 2013, 64 : 224 - 230
  • [40] Optimizing the thermal environment of greenhouse with multi-pipe earth-to-air heat exchanger system using the Taguchi method
    Qi, Di
    Liu, Qian
    Zhao, Chuangyao
    Li, Shixiong
    Song, Bingye
    Li, Angui
    APPLIED THERMAL ENGINEERING, 2024, 242