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Articles

Thermoelectric Module Integrated Fuel Cell in a Liquid Desiccant-Assisted Air-Conditioning System

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References

  • K. S. Rambhad, P. V. Walke, and D. J. Tidke, “Solid desiccant dehumidification and regeneration methods – a review,” Renew. Sustain. Energ. Rev., vol. 59, pp. 73–83, 2016.
  • M. H. Kim, J. Y. Park, and J. W. Jeong, “Simplified model for packed-bed tower regenerator in a liquid desiccant system,” Appl. Therm. Eng., vol. 89, pp. 717–726, 2015.
  • A. Lowenstein, “Review of liquid dessciant technology for HVAC applications,” HVAC&R Res., vol. 14, no. 6, pp. 819–839, 2008.
  • R. Kumar and A. K. Asati, “Experimental study on effectiveness of celdek packed liquid desiccant cooling system,” Heat Transf. Eng., vol. 39, no. 10, pp. 914–922, 2018.
  • C. Liang and S. Zeng, “Multi-Objective design optimization of hollow fiber membrane-based liquid desiccant module using particle swarm optimization algorithm,” Heat Transf. Eng., pp. 1–11, 2017.
  • M. H. Kim, J. Y. Park, M. K. Sung, A. S. Choi, and J. W. Jeong, “Annual operating energy savings of liquid desiccant and evaporative-cooling-assisted 100% outdoor air system,” Energ. Build., vol. 76, pp. 538–550, 2014.
  • J. A. Duffie and W. A. Beckman, Solar Engineering of Thermal Processes. Hoboken, NJ, USA: Wiley, 2013.
  • M. H. Kim, H. W. Dong, J. Y. Park, and J. W. Jeong, “Primary energy savings in desiccant and evaporative cooling-assisted 100% outdoor air system combined with a fuel cell,” Appl. Energ., vol. 180, pp. 446–456, 2016.
  • T. A. H. Ratlamwala, M. A. Gadalla, and I. Dincer, “Thermodynamic analyses of an integrated PEMFC – TEARS-geothermal system for sustainable buildings,” Energ. Build., vol. 44, pp. 73–80, 2012.
  • A. Adam, E. S. Fraga, and D. J. L. Brett, “Options for residential building services design using fuel cell based micro-CHP and the potential for heat integration,” Appl. Energ., vol. 138, pp. 685–694, 2015.
  • A. N. Moh’d A, B. M. Tashtoush, and A. A. Jaradat, “Modeling and simulation of thermoelectric device working as a heat pump and an electric generator under Mediterranean climate,” Energy, vol. 90, pp. 1239–1250, 2015.
  • J. Ramousse, D. Sgorlon, G. Fraisse, and M. Perier-Muzet, “Analytical optimal design of thermoelectric heat pumps,” Appl. Therm. Eng., vol. 82, pp. 48–56, 2015.
  • W. Goetzler, M. Guernsey, J. Young, J. Fuhrman, and O. Abdelaziz, The Future of Air Conditioning for Buildings. Burlington, MA, USA: Energy Efficiency & Renewable Energy, Building Technologies Office, 2016.
  • H. Lee, Thermoelectrics: Design and Materials. Hoboken, NJ, USA: Wiley, 2016.
  • M. Boonyasri, J. Jamradloedluk, C. Lertsatitthanakorn, A. Therdyothin, and S. Soponronnarit, “Increasing the efficiency of a thermoelectric generator using an evaporative cooling system,” J. Electric. Mater., vol. 46, no. 5, pp. 3043–3048, 2017.
  • A. Makki, S. Omer, Y. Su, and H. Sabir, “Numerical investigation of heat pipe-based photovoltaic–thermoelectric generator (HP-PV/TEG) hybrid system,” Energy Convers. Manag., vol. 112, pp. 274–287, 2016.
  • H. Zhang et al., “Application of cascading thermoelectric generator and cooler for waste heat recovery from solid oxide fuel cells,” Energ. Convers. Manag., vol. 148, pp. 1382–1390, 2017.
  • S. Baskaya, S. Karaaslan, T. Calisir, M. Z. Yilmazoglu, and T. O. Yilmaz, “Experimental and numerical study on thermoelectric generator performance applied to a condensing combi boiler,” Heat Transf. Eng., vol. 36, no. 14–15, pp. 1292–1302, 2015.vol
  • C. Udomsakdigool, J. Hirunlabh, J. Khedari, and B. Zeghmati, “Design optimization of a new hot heat sink with a rectangular fin array for thermoelectric dehumidifiers,” Heat Transf. Eng., vol. 28, no. 7, pp. 645–655, 2007.
  • R. Rabari, S. Mahmud, A. Dutta, and M. Biglarbegian, “Effect of convection heat transfer on performance of waste heat thermoelectric generator,” Heat Transf. Eng., vol. 36, no. 17, pp. 1458–1471, 2015.
  • Y. W. Kim, J. Ramousse, G. Fraisse, P. Dalicieux, and P. Baranek, “Optimal sizing of a thermoelectric heat pump (THP) for heating energy-efficient buildings,” Energ. Build., vol. 70, pp. 106–116, 2014.
  • A. Allouhi et al., “Dynamic analysis of a thermoelectric heating system for space heating in a continuous-occupancy office room,” Appl. Therm. Eng., vol. 113, pp. 150–159, 2017.
  • C. Martin-Gomez et al., “Thermoelectric cooling heating unit prototype,” Build. Serv. Eng. Res. Technol., vol. 37, no. 4, pp. 431–449, 2016.
  • J. Ramousse and M. Perier-Muzet, “Entropy generation minimization in thermoelectric heat pump systems with multi-channel heat exchangers,” Int. J. Thermodyn., vol. 19, no. 2, pp. 82–90, 2016.
  • M. Z. Yilmazoglu, “Experimental and numerical investigation of a prototype thermoelectric heating and cooling unit,” Energ. Build., vol. 113, pp. 51–60, 2016.
  • H. Lim, S. Y. Cheon, and J. W. Jeong, “Empirical analysis for the heat exchange effectiveness of a thermoelectric liquid cooling and heating unit,” Energies, vol. 11, no. 3, pp. 580–593, 2018.
  • American Society of Heating, Refrigerating and Air-Conditioning Engineers, “Chapter 26: Air-to-air energy recovery equipment,” in Handbook: HVAC Systems and Equipment. Atlanta, GA, USA: ASHRAE, 2016, pp. 26.1–26.31.
  • M. H. Kim, “Energy performance evaluation of liquid desiccant and evaporative cooling-assisted 100% outdoor air system,” Ph.D. dissertation, Dept. Arch. Eng., Hanyang Univ., Seoul, South Korea, 2016.
  • H. W. Dong, H. Cho, and J. W. Jeong, “Optimal desiccant solution temperature in a cross flow regenerator using LiCl solution,” Presented at the 10th International Symposium on Heating Ventilation and Air conditioning, Jinan, China, Oct. 20, 2017.
  • American Society of Heating, Refrigerating and Air-conditioning Engineers, ANSI/ASHRAE/IES Standard 90.1-2013. Energy Standard for Buildings except Low-rise Residential Buildings. Atlanta, GA, USA: ASHRAE, 2013.
  • Korea Energy Agency, Regulations for the Operation of Building Energy Efficiency Rating System. Seoul, Republic of Korea: Korea Energy Agency:. [Online]. Available: http://building.energy.or.kr/resource/2017-71_explanation.pdf. Accessed: July 24, 2018.
  • American Society of Heating, Refrigerating and Air-conditioning Engineers, International Weather for Energy Calculations (Ver. 2). Atlanta, GA, USA: American Society of Heating, Refrigerating and Air-conditioning Engineers. [Online]. Available: https://www.ashrae.org/technical-resources/bookstore/ashrae-international-weather-files-for-energy-calculations-2-0-iwec2. Accessed: July, 24, 2018.
  • American Society of Heating, Refrigerating and Air-conditioning Engineers, ANSI/ASHRAE Standard 62.1-2013. Ventilation for Acceptable Indoor Air Quality. Atlanta, GA, USA: ASHRAE, 2013.
  • J. Y. Park, D. S. Yoon, S. J. Lee, and J. W. Jeong, “Empirical model for predicting the dehumidification effectiveness of a liquid desiccant system,” Energ. Build., vol. 126, pp. 447–454, 2016.
  • American Society of Heating, Refrigerating and Air-conditioning Engineers, “Chapter 1: Psychrometric,” in Handbook: Fundamentals. Atlanta, GA, USA: ASHRAE, 2013.
  • N. Fumo, and D. Y. Goswami, “Study of an aqueous lithium chloride desiccant system: air dehumidification and desiccant regeneration,” Sol. Energ., vol. 72, no. 4, pp. 351–361, 2002.
  • T. Katejanekarn, S. Chirarattananon, and S. Kumar, “An experimental study of a solar-regenerated liquid desiccant ventilation pre-conditioning system,” Sol. Energ., vol. 83, no. 6, pp. 920–933, 2009.
  • M. H. Kim, J. S. Park, and J. W. Jeong, “Energy saving potential of liquid desiccant in evaporative-cooling-assisted 100% outdoor air system,” Energy, vol. 59, pp. 726–736, 2013.
  • T. Katejanekarn, and S. Kumar, “Performance of a solar-regenerated liquid desiccant ventilation pre-conditioning system,” Energ. Build., vol. 40, no. 7, pp. 1252–1267, 2008.
  • M. H. Kim, J. H. Kim, O. H. Kwon, A. S. Choi, and J. W. Jeong, “Energy conservation potential of an indirect and direct evaporative cooling assisted 100% outdoor air system,” Build. Serv. Eng. Res. Technol., vol. 32, no. 4, pp. 345–360, 2011.
  • M. H. Kim, J. Y. Park, J. S. Park, and J. W. Jeong, “Application of desiccant systems for improving the performance of an evaporative cooling-assisted 100% outdoor air system in hot and humid climates,” J. Build. Perform. Simul., vol. 8, no. 3, pp. 173–190, 2015.
  • X. Wei et al., “Performance analyses of counter-flow closed wet cooling towers based on a simplified calculation method,” Energies, vol. 10, no. 3, pp. 282–296, 2017.
  • P. Stabat, and D. Marchio, “Simplified model for indirect-contact evaporative cooling-tower behaviour,” Appl. Energ., vol. 78, no. 4, pp. 433–451, 2004.
  • S. Ham, S. Jo, H. W. Dong, and J. W. Jeong, “A simplified PEM fuel cell model for building cogeneration applications,” Energ. Build., vol. 107, pp. 213–225, 2015.
  • H. Lim and J. W. Jeong, “Energy saving potential of thermoelectric modules integrated into liquid desiccant system for solution heating and cooling,” Appl. Therm. Eng., vol. 136, pp. 49–62, 2018.
  • I. Beausoleil-Morrison et al., Specifications for Modelling Fuel Cell and Combustion Based Residential Cogeneration Devices within Whole Building Simulation Programs, A Report of Subtask B of FC + COGEN-SIM, The Simulation of Building-integrated Fuel Cell and Other Cogeneration Systems. Glasgow, UK: Annex 42 of the International Energy Agency Energy Conservation in Buildings and Community Systems Programme, 2007. Rep. 2007-6704.
  • M. Chen and G. J. Snyder, “Analytical and numerical parameter extraction for compact modeling of thermoelectric coolers,” Int. J. Heat Mass Transf., vol. 60, pp. 689–699, 2013.
  • Y. Jaluria, Design and Optimization of Thermal Systems, 2nd ed. Boca Raton, FL, USA: CRC, 2008.
  • U.S. Department of Energy, EnergyPlusTM Version8.5 Documentation: Engineering Reference. Washington, DC, USA: U.S. Department of Energy. [Online]. Available: https://energyplus.net/documentation. Accessed: Jul. 24, 2018.
  • K. D. Navien, “Technical Data Sheet for NGB 560 20K,” [Online]. Available: http://www.kdnavien.co.kr/product/detail/74?pdLgMuSeq=35&pdSmMuSeq=37. Accessed: Mar. 20, 2018.
  • M. H. Kim, S. W. Ham, J. S. Park, and J. W. Jeong, “Impact of integrated hot water cooling and desiccant-assisted evaporative cooling systems on energy savings in a data center,” Energy, vol. 78, pp. 384–396, 2014.
  • Energy Labs Inc., “Evaporative cooling systems,” [Online]. Available: https://www.energylabs.com/web2/brochures/ELI_evaporative.PDF. Accessed: Mar. 20, 2018.
  • P. M. V Subbarao, “Thermal analysis and design of cooling tower,” Presented at the Mechanical Engineering Department of Indian Institute of Technology, Delhi.
  • C. Wang, C. Calderon, and Y. D. Wang, “An experimental study of a thermoelectric heat exchange module for domestic space heating,” Energ. Build., vol. 145, pp. 1–21, 2017.
  • D. Sun et al., “The real-time study of solar thermoelectric generator,” Appl. Therm. Eng., vol. 119, pp. 347–359, 2017.
  • J. Chen et al., “Enhanced efficiency of thermoelectric generator by optimizing mechanical and electrical structures,” Energies, vol. 10, no. 9, pp. 1329–1343, 2017.
  • A. J. Minnich, M. S. Dresselhaus, Z. Ren, and G. Chen, “Bulk nanostructured thermoelectric materials: current research and future prospects,” Energ. Environ. Sci., vol. 2, no. 5, pp. 466–479, 2009.
  • J. Androulakis et al., “Spinodal decomposition and nucleation and growth as a means to bulk nanostructured thermoelectrics: enhanced performance in Pb1-xSn xTe-PbS,” J. Am. Chem. Soc., vol. 129, no. 31, pp. 9780–9788, 2007.
  • J. P. Heremans et al., “Enhancement of thermoelectric of the electronic density of states,” Science, vol. 321, no. 5888, pp. 554–557, 2008.

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