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The performance analysis of a high-efficiency dual-channel Trombe wall in winter

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  • Liu, Huifang
  • Li, Peijia
  • Yu, Bendong
  • Zhang, Mingyi
  • Tan, Qianli
  • Wang, Yu

Abstract

In order to improve the thermal efficiency of Trombe wall in winter conditions, a novel system of high-efficiency dual-channel Trombe wall was proposed in this paper. The influence of different baffle shapes (that is corrugated C-shaped baffle and flat baffle) and their location on the thermal performance of the novel system were studied experimentally. In addition, the mathematical model of the dual-channel Trombe wall system was established and validated. The optimal configuration and position of the insulation baffle were discussed by simulation. Experimental results showed that the heating effect was the best when the total channel thickness was 0.5 m, and the baffle was 0.2 m apart from the glass cover. For dual-channel Trombe wall with corrugated C-shaped baffle, the temperature difference between the inlet and outlet, the indoor air temperature, the maximum thermal efficiency, and the maximum volume flow rate were 8.1 °C, 21.7 °C, 58.1%, and 240.9 m³/h, respectively, which were 4.9 °C, 5.6 °C, 5.1 times, and 98% higher than that of the traditional Trombe wall. Similar conclusions can be obtained for dual-channel Trombe wall with flat baffle, which was also superior to traditional Trombe wall. The simulation results indicated that the thermal efficiency would be optimal when the thickness ratio of outer air channel to total air channel was 0.3–0.4, 0.4 to 0.5 for dual-channel Trombe wall with corrugated C-shaped baffle and flat baffle, respectively. Furthermore, both the ambient temperature and solar radiation intensity had positive effect on thermal efficiency. The results could provide beneficial effect on the development of the improved Trombe wall.

Suggested Citation

  • Liu, Huifang & Li, Peijia & Yu, Bendong & Zhang, Mingyi & Tan, Qianli & Wang, Yu, 2022. "The performance analysis of a high-efficiency dual-channel Trombe wall in winter," Energy, Elsevier, vol. 253(C).
  • Handle: RePEc:eee:energy:v:253:y:2022:i:c:s0360544222009902
    DOI: 10.1016/j.energy.2022.124087
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    References listed on IDEAS

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    1. Dong, Jiankai & Chen, Zhihua & Zhang, Long & Cheng, Yuanda & Sun, Suyuting & Jie, Jia, 2019. "Experimental investigation on the heating performance of a novel designed trombe wall," Energy, Elsevier, vol. 168(C), pages 728-736.
    2. Souayfane, Farah & Biwole, Pascal Henry & Fardoun, Farouk, 2018. "Thermal behavior of a translucent superinsulated latent heat energy storage wall in summertime," Applied Energy, Elsevier, vol. 217(C), pages 390-408.
    3. Sergei, Kostikov & Shen, Chao & Jiang, Yiqiang, 2020. "A review of the current work potential of a trombe wall," Renewable and Sustainable Energy Reviews, Elsevier, vol. 130(C).
    4. Zhu, Na & Li, Shanshan & Hu, Pingfang & Lei, Fei & Deng, Renjie, 2019. "Numerical investigations on performance of phase change material Trombe wall in building," Energy, Elsevier, vol. 187(C).
    5. Wang, Dengjia & Hu, Liang & Du, Hu & Liu, Yanfeng & Huang, Jianxiang & Xu, Yanchao & Liu, Jiaping, 2020. "Classification, experimental assessment, modeling methods and evaluation metrics of Trombe walls," Renewable and Sustainable Energy Reviews, Elsevier, vol. 124(C).
    6. Shi, Long, 2019. "Impacts of wind on solar chimney performance in a building," Energy, Elsevier, vol. 185(C), pages 55-67.
    7. Yu, Bendong & Li, Niansi & Xie, Hao & Ji, Jie, 2021. "The performance analysis on a novel purification-cleaning trombe wall based on solar thermal sterilization and thermal catalytic principles," Energy, Elsevier, vol. 225(C).
    8. Victor Lohmann & Paulo Santos, 2020. "Trombe Wall Thermal Behavior and Energy Efficiency of a Light Steel Frame Compartment: Experimental and Numerical Assessments," Energies, MDPI, vol. 13(11), pages 1-25, May.
    9. Hernández-López, I. & Xamán, J. & Zavala-Guillén, I. & Hernández-Pérez, I. & Moreno-Bernal, P. & Chávez, Y., 2020. "Thermal performance of a solar façade system for building ventilation in the southeast of Mexico," Renewable Energy, Elsevier, vol. 145(C), pages 294-307.
    10. Hong, Xiaoqiang & Leung, Michael K.H. & He, Wei, 2019. "Effective use of venetian blind in Trombe wall for solar space conditioning control," Applied Energy, Elsevier, vol. 250(C), pages 452-460.
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    1. Li, Niansi & Gu, Tao & Yu, Bendong & Ji, Jie & Liu, Xiaoyong, 2023. "A ventilated wall integrated with heating/catalytic blinds: Catalyst, system design and performance study," Renewable Energy, Elsevier, vol. 212(C), pages 792-802.
    2. Li, Wei & Ling, Xiang, 2023. "Performance analysis of a sorption heat storage-photocatalytic combined passive solar envelope for space heating and air purification," Energy, Elsevier, vol. 280(C).
    3. Bevilacqua, Piero & Bruno, Roberto & Szyszka, Jerzy & Cirone, Daniela & Rollo, Antonino, 2022. "Summer and winter performance of an innovative concept of Trombe wall for residential buildings," Energy, Elsevier, vol. 258(C).

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