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A Fundamental Study on the Composition for the Hybrid Dehumidification System Using Thermoelectric Device

열전소자를 활용한 하이브리드 제습시스템의 구성에 관한 기초적 연구

  • Ryu, Seong-Ryong (Department of Architectural Engineering, Kumoh National Institute of Technology) ;
  • Yeom, Ho-Jin (Department of Architectural Engineering, Kumoh National Institute of Technology) ;
  • Lee, Hyun-Jae (Department of Architectural Engineering, Kumoh National Institute of Technology) ;
  • Cho, Hyun (R&D Center, POSCO E&C)
  • 류성룡 (금오공과대학교 건축학부) ;
  • 염호진 (금오공과대학교 건축학부) ;
  • 이현제 (금오공과대학교 건축학부) ;
  • 조현 (포스코건설 R&D Center)
  • Received : 2018.11.06
  • Accepted : 2018.11.27
  • Published : 2018.12.31

Abstract

In this paper, the hybrid dehumidification system using thermoelectric device is based on the idea of utilizing waste heat from the heat dissipation side of thermoelectric device as a heat source to regenerate chemical desiccant. We would like to apply this system to spaces required dehumidification due to continuous moisture generation or local high humidity in the houses. And, we want to confirm the possibility of developing the hybrid dehumidification system that combines passive dehumidification using chemical desiccant with active dehumidification using thermoelectric device.

Keywords

Acknowledgement

Supported by : 한국연구재단

References

  1. Hwang, W.-B., Kim, Y.-C., Lee, D.-Y. (2012). A Study on the Performance Evaluation of a Hybrid Desiccant Cooling System. Korean Journal of Air-Conditioning and Refrigeration Engineering, 24(2), 121-128. https://doi.org/10.6110/KJACR.2012.24.2.121
  2. Moon, H.-K., Han, M.-Y. (2016). Development of Low Temperature Regenerative Polymeric Desiccant Rotor. Magazine of the SAREK, 45(6), 36-45.
  3. Rincon-Casado, A., Martinez, A., Araiz, M., Pavon-Dominguez, P., Astrain, D. (2018). An experimental and computational approach to thermoelectric-based conditioned mattress. Applied Thermal Engineering, 135, 472-482. https://doi.org/10.1016/j.applthermaleng.2018.02.084
  4. Vian, J. G., Astrain, D., Dominguez, M. (2002). Numerical modelling and a design of a thermoelectric dehumidifier. Applied Thermal Engineering, 22, 407-422. https://doi.org/10.1016/S1359-4311(01)00102-8
  5. Yao, Y., Sun, Y., Sun, D., Sang, C., Sun, M., Shen, L., Chen, H. (2017). Optimization design and experimental study of thermoelectric dehumidifier. Applied Thermal Engineering, 123, 820-829. https://doi.org/10.1016/j.applthermaleng.2017.05.172
  6. Yoo, S.-Y., Hong, C.-P., Shim W.-S. (2004). A Study on the Performance of Thermoelectric Module and Thermoelectric Cooling System. Korean Journal of Air-Conditioning and Refrigeration Engineering, 16(1), 62-70.
  7. Zhao, D., Lu, X., Fan, T., Wu, Y.S., Lou, L., Wang, Q., Fan, J., Yang, R. (2018). Personal thermal management using portable thermoelectrics for potential building energy saving, Applied Energy, 218, 282-291. https://doi.org/10.1016/j.apenergy.2018.02.158
  8. Kim, H.-J., Cho, S.-H., Jeong, J.-W. (2015). Applicability Analysis of Thermoelectric Cooling System in Dedicated Outdoor Air System. Conference Proceeding of the KIAEBS, 121-122.