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Optimization and evaluation of a solar energy, heat pump and desiccant wheel hybrid system in a nearly zero energy building

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  • Building Systems and Components
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Abstract

Traditional conventional air conditioners (CACs) are not applicable to nearly zero energy buildings (NZEBs), especially for residential buildings in regions with a humid climate in China. On the one hand, indoor thermal environment can be significantly affected in buildings by adopting insulations with higher thermal resistance and air tightness. On the other hand, CACs may not be able to meet the energy requirement of NZEBs when dehumidification is in high demand. Therefore, in this paper, a novel hybrid system, which featured solar panel, a multi-evaporator and multi-condenser heat pump, and a desiccant wheel, i.e., the SHDW system was proposed. The evaporator is for pre-cooling, and the desiccant wheel (DW) for handling the whole moisture load. The regeneration air of DW is heated by heat recovery condenser and the solar panel. By varying the evaporation temperature of HP, the energy performance was evaluated, and compared with that of a typical CAC, for controlling indoor temperature and humidity of a residential NZEB, using TRNSYS. The simulations were conducted for Shanghai (in a humid climate) in summer (July and August) and the transition seasons (June and September). The results showed that, first, the optimized evaporation temperature of the system is determined to be 12 °C and 9 °C, respectively, on a typical day both in summer and the transition seasons. Second, the daily coefficient of performances are 3.4 and 2.4 in summer and in transition seasons, respectively. Third, compared to either the temperature or humidity control mode of the CAC, the proposed SHDW system showed better promise for achieving indoor thermal comfort for residential NZEBs, especially in transition seasons. In a typical weekend, the daily energy consumption of the proposed SHDW system is 9.0% and 12.3% lower than that of the CAC with humidity control mode, respectively, in summer and the transition seasons.

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References

  • ASHRAE (2013). ANSI/ASHRAE Standard 55: Thermal Environmental Conditions for Human Occupancy. Atlanta, GA, USA: American Society of Heating, Refrigerating and Air-Conditioning Engineers.

    Google Scholar 

  • Beccali M, Finocchiaro P, Nocke B (2009). Energy and economic assessment of desiccant cooling systems coupled with single glazed air and hybrid PV/thermal solar collectors for applications in hot and humid climate. Solar Energy, 83: 1828–1846.

    Article  Google Scholar 

  • Beccali M, Finocchiaro P, Nocke B (2012). Energy performance evaluation of a demo solar desiccant cooling system with heat recovery for the regeneration of the adsorption material. Renewable Energy, 44: 40–52.

    Article  Google Scholar 

  • Cao T, Lee H, Hwang Y, Radermacher R, Chun H-H (2014). Experimental investigations on thin polymer desiccant wheel performance. International Journal of Refrigeration, 44: 1–11.

    Article  Google Scholar 

  • Cejudo López JM, Hernández FF, Muñoz FD, Andrés AC (2013). The optimization of the operation of a solar desiccant air handling unit coupled with a radiant floor. Energy and Buildings, 62: 427–435.

    Article  Google Scholar 

  • Comino F, Ruiz de Adana M, Peci F (2018). Energy saving potential of a hybrid HVAC system with a desiccant wheel activated at low temperatures and an indirect evaporative cooler in handling air in buildings with high latent loads. Applied Thermal Engineering, 131: 412–427.

    Article  Google Scholar 

  • De Antonellis S, Intini M, Joppolo CM (2015). Desiccant wheels effectiveness parameters: Correlations based on experimental data. Energy and Buildings, 103: 296–306.

    Article  Google Scholar 

  • Ding GL, Zhang CL (2001). Simulation and Optimization of Refrigeration and Air Conditioner. Beijing: Science Press. (in Chinese)

    Google Scholar 

  • Ge TS, Ziegler F, Wang RZ, Wang H (2010). Performance comparison between a solar driven rotary desiccant cooling system and conventional vapor compression system (performance study of desiccant cooling). Applied Thermal Engineering, 30: 724–731.

    Article  Google Scholar 

  • Ge F, Guo X, Hu Z, Chu Y (2011). Energy savings potential of a desiccant assisted hybrid air source heat pump system for residential building in hot summer and cold winter zone in China. Energy and Buildings, 43: 3521–3527.

    Article  Google Scholar 

  • Goodarzia G, Thirukonda N, Heidari S, Akbarzadeh A, Date A (2017). Performance evaluation of solid desiccant wheel regenerated by waste heat or renewable energy. Energy Procedia, 110: 434–439.

    Article  Google Scholar 

  • Guidara Z, Elleuch M, Ben Bacha H (2013). New solid desiccant solar air conditioning unit in Tunisia: Design and simulation study. Applied Thermal Engineering, 58: 656–663.

    Article  Google Scholar 

  • Holman J (2009). Heat Transfer, 10th edn. New York: McGraw Hill.

    Google Scholar 

  • Howe R (1983). Model and performance characteristics of a commercially-sized hybrid air conditioning system which utilizes a rotary desiccant dehumidifier. Master Thesis, University of Wisconsin-Madison, USA.

    Google Scholar 

  • Hürdoğan E, Büyükalaca O, Yılmaz T, Hepbasli A, Uçkan İ (2012). Investigation of solar energy utilization in a novel desiccant based air conditioning system. Energy and Buildings, 55: 757–764.

    Article  Google Scholar 

  • Jiang Y (2005). Current building energy consumption in China and effective energy efficiency measures. Journal of HV & AC, 35(5): 30–40. (in Chinese)

    Google Scholar 

  • Jiang Y (2006). Building Energy Efficiency Technology and Application. Beijing: China Architecture and Building Press. (in Chinese)

    Google Scholar 

  • La D, Dai Y, Li Y, Ge T, Wang R (2011). Case study and theoretical analysis of a solar driven two-stage rotary desiccant cooling system assisted by vapor compression air-conditioning. Solar Energy, 85: 2997–3009.

    Article  Google Scholar 

  • Li W, Tao W, Kang H, Li H, Xin R (1997). Experimental study on heat transfer and resistance performance of integral finned tube heat exchanger. Journal of Mechanical Engineering, 33(1): 81–86. (in Chinese)

    Article  Google Scholar 

  • Liu J, Ding G (2006). Simulation and experimental study on the characteristics of residential heat exchanger with R410A. Journal of Shanghai Jiaotong University, 40(2): 262–266. (in Chinese)

    Google Scholar 

  • MHURC (2019). GB/T51350-2019. Technical Standard for Nearly Zero Energy Buildings. Ministry of Housing and Urban-Rural Development of China. (in Chinese)

  • Muthu S, Talukdar P, Jain S (2016). Effect of regeneration section angle on the performance of a rotary desiccant wheel. Journal of Thermal Science and Engineering Applications, 8(1): 011013.

    Article  Google Scholar 

  • Nie L, Tang S (2015). Multi-objective optimization of orc systems and performance analysis under off-design condition. Dynamical Systems and Control, 2015(4): 25–35. (in Chinese)

    Article  Google Scholar 

  • O’Kelly M, Walter ME, Rowland JR (2014). Simulated hygrothermal performance of a Passivhaus in a mixed humid climate under dynamic load. Energy and Buildings, 81: 211–218.

    Article  Google Scholar 

  • Rjibi A, Kooli S, Guizani A (2018). The effects of regeneration temperature of the desiccant wheel on the performance of desiccant cooling cycles for greenhouse thermally insulated. Heat and Mass Transfer, 54: 3427–3443.

    Article  Google Scholar 

  • Schultz KJ, Beckman WA, Mitchell JW (1983). The performance of desiccant dehumidifier air-conditioning systems using cooled dehumidifiers. University of Wisconsin-Madison, USA.

    Google Scholar 

  • Shah MM (1979). A general correlation for heat transfer during film condensation inside pipes. International Journal of Heat and Mass Transfer, 22: 547–556.

    Article  Google Scholar 

  • Sheng Y, Zhang Y, Deng N, Fang L, Nie J, Ma L (2013). Experimental analysis on performance of high temperature heat pump and desiccant wheel system. Energy and Buildings, 66: 505–513.

    Article  Google Scholar 

  • Wang H, Touber S (1991). Distributed and non-steady-state modelling of an air cooler. International Journal of Refrigeration, 14: 98–111.

    Article  Google Scholar 

  • White SD, Kohlenbach P, Bongs C (2009). Indoor temperature variations resulting from solar desiccant cooling in a building without thermal backup. International Journal of Refrigeration, 32: 695–704.

    Article  Google Scholar 

  • Xiang J (2003). Possibility of passive solar energy applied in hot summer and cold winter areas: sub-project of architectural design research in hot summer and cold winter areas. Master Thesis, Huazhong University of Science and Technology, China.

    Google Scholar 

  • Zendehboudi A, Esmaeili H (2016). Effect of supply/regeneration section area ratio on the performance of desiccant wheels in hot and humid climates: an experimental investigation. Heat and Mass Transfer, 52: 1175–1181.

    Article  Google Scholar 

  • Zhu Y (2005). Built Environment, 2nd edn. Beijing: China Architecture and Building Press. (in Chinese)

    Google Scholar 

Download references

Acknowledgements

This research is supported by the China National Key R&D Program during the 13th Five-year Plan Period (No. 2017YFC0702600).

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Correspondence to Xing Su.

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Tian, S., Su, X., Shao, X. et al. Optimization and evaluation of a solar energy, heat pump and desiccant wheel hybrid system in a nearly zero energy building. Build. Simul. 13, 1291–1303 (2020). https://doi.org/10.1007/s12273-020-0627-0

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  • DOI: https://doi.org/10.1007/s12273-020-0627-0

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