Development of Nano Ceramic Structures for HEPA Type Breathing Wall

HEPA Filter형 숨쉬는 벽체용 나노세라믹 여재개발

  • Kim, Jong-Won (School of Architecture, Pusan National University) ;
  • Ahn, Young-Chull (School of Architecture, Pusan National University) ;
  • Kim, Gil-Tae (Housing & Urban Research Institute, Korea National Housing Corporation)
  • Published : 2008.04.10

Abstract

In the perspective of saving energy in buildings, high performance of insulation and air tightness for improving the heating and the cooling efficiency has brought the positive effect in an economical view. However, these building energy saving technologies cause the lack of ventilation, which is the direct cause of increasing the indoor contaminants, and it is also very harmful to residents because they spend over 90% of their time in the indoor area. Therefore, the ventilation is important to keep indoor environment clean and it can also save energy consumption. In this study, a HEPA type breathing wall is designed as a passive ventilation system to collect airborne particles and to supply fresh outdoor air. To make fine porous structures, polymer nano fibers which were made by electro spinning method are used as a precursor. The nano fibers are coated with SiO2 nano particles and finally the HEPA type breathing wall is made by sintering in the electric furnace at $300\sim500^{\circ}C$. The pressure drops of nano ceramic structure are 8.2, 25.5 and 44.9 mmAq at the face velocity of 2.0, 5.9 and 8.8 cm/s, respectively. Also the water vapor permeability is $3.6g/m^2{\cdot}h{\cdot}mmHg$. In this research, the porous nano ceramic structures are obtained and the possibility for the usage of a material for HEPA type breathing wall can be obtained.

Keywords

References

  1. Jang, Y. S. and Park, H. S., 2004, A study on thermal performance analysis of the sustainable clayed hollow block wall, Journal of the Korea Institute of Ecological Architecture and Environment, Vol. 4, No. 3, pp. 65-70
  2. Yoon, S. and Hoyano, A., 1998, Passive ventilation system that incorporates a pitched roof constructed of breathing walls for use in a passive solar house, Solar Energy, Vol. 64, No. 4-6, pp. 189-195 https://doi.org/10.1016/S0038-092X(98)00083-8
  3. Imbabi, M. S., 2006, Full-scale evaluation of energy use and emissions reduction of a dynamic breathing building, WREC-IX(World Renewable Energy Congress) Invited paper
  4. Jo, S. M., Lee, W. S., and Chun, S. W., 2002, Nanofiber technology and applications, Fiber Technology and Industry Vol. 6
  5. Lee, S. G., Choi, S. S., and Joo, C. W., 2002, Nanofiber formation of polyetherimide under various electrospinning conditions, Journal of the Korean Fiber Society Vol. 39
  6. KS, F., 2007, Measuring method of water vapor permeability for building materials, Korean Standard
  7. Lee, J. W. and Lim, J. M., 2004, The Experimental study on an effect of Korean Paper(Hanji) on indoor humidity control, Korean Journal of Air-Conditioning and Refrigeration Engineering, Vol. 16, No. 6, pp. 599-607