Fabrication of Porous Ceramics and Multi-layered Ceramics Containing Porous Layers; I. Pore Structure

다공성 세라믹스와 다공질층을 포함하는 적층체의 제조에 관한 연구;I. 기공구조

  • 이해원 (한국과학기술연구원 세라믹스연구부) ;
  • 윤복규 (한국과학기술연구원 세라믹스연구부) ;
  • 송휴섭 (한국과학기술연구원 세라믹스연구부)
  • Published : 1994.09.01

Abstract

Tape casting technique was successfully applied to produce porous ceramics and multi-layered ceramics containing porous layers, where spherical hollow polymer particles were introduced as pore precursors. In the presence of extreme differences in density and size between Al2O3 and pore precursor particles, hindered settling was effective in preventing segregation of component particles and packing behavior of mixed powders was improved through bimodal packing. There were two transitions in packing behavior of mixed powders. The first transition took place at 40~50 vol% pore precursor addition, where majority of pores changed from close to open pore state. The other transition occured at 60~70 vol% pore precursor addition, where pore precursor particles formed a continuous network structure.

Keywords

References

  1. Advances in Powder Technology Porous Materials R.M. German;G.Y. Chem(ed.)
  2. Am. Ceram. Soc. Bull. v.70 no.7 Corrosion Resistant Ceramics L.M. Sheppard
  3. Am. Ceram. Soc. Bull. v.70 no.9 Assessment of Porous Ceramic Materials for Hot Gas Filtration Applications M.A. Alvin;T.E. Lippert;J.E. Lane
  4. J. Ceram. Soc Japan v.100 no.4 Low Dielectric Constant Glass-Ceramic Composite with Controlled Isolated Porosity K. Kata;Y. Shimada
  5. Ceramic Transactions v.19 Processing of Silicate Glass/Silicon Nitride Composies with Controlled Microporosity M.D. Sacks;M.S. Randall;G.W. Scheiffele;R. Raghunathan;J.H. Simmos;M.D. Sacks(ed.)
  6. Chemical and Process Engineering v.49 no.2 Particulate Mixture Bulk Densities K. Ridgway;K.J Trbuck
  7. Industrial and Englineering Chemistry v.23 Grading Aggreates I-Mathematical Relations for Beds of Broken Solids of Maximum Density C.C. Furnas
  8. Powder Technology v.23 An Empirical Method of Estimating the Vold Fraction in Mixtures of Uniform Patricles of Different Size R.F. Fedors;R.F. Landel
  9. Processing of Crystallme Ceramics Packing and Sintering Relations for Binary Powders G.Y. Onoda;G.L. Messing;H. Palmour(ed.);R.F. Davis(ed.);T.M. Hare(ed.)
  10. The Physics of Amorphous Solids R. Zallen
  11. Sintering and Related Phenomena The Sintering of Crystalline Oxides I, Interaction between Grain Boundaries and Pores W.D. Kingery;Fraancous;G.C. Kuczynski(ed.);N.A. Hooten(ed.);G.N. Gilbon(ed.) Gorden(ed.);Breach(ed.)
  12. Advances in Ceramics v.12 Sinterabilty of ZrO₂Al₂O₃Powders;The Role of Coordination Number Distribution F.F. Lange;B.I. Davis;N. Claussen(ed.);M. Ruhle(ed.);A.H. Heuer(ed.)
  13. J. Am. Ceram. Soc. v.71 no.7 Effect of Pore Distribution on Microstrure Development: II, First and Second Generation Pores J. Zhao;M.P. Harmer
  14. J. Am. Ceram. Soc. v.75 no.9 Densification of Large Pores. I. Experiments E.B. Slamovich;F.F. Lange
  15. J. Am. Ceram. Soc. v.36 no.2 Discussion of Ryshkewitch Paper W. Duckworth
  16. Adv. Ceram. Mat. v.3 no.1 Effect of Flaws on the Fracture Behavior of Structural Ceramics: A Review J.P. Singh
  17. J. Am. Ceram. Soc. v.71 no.5 Suspension Processing of Al₂O₃SiC Whisker Composites M.D. Sacks;Hae-Weon Lee;O.E. Rojas
  18. J. Am. Ceram. Soc. v.67 no.4 Sintering of Bimodally Distributed Alumina Powders J.P. Smith;G.L. Messing
  19. J. Am. Ceram. Soc. v.72 no.6 Observation of Poly(Vinyl Butyral)-Dibutyl Phthalate Binder Capillary Migration M. Cima;M. Dudziak;J. Lewis
  20. J. Am. Ceram. Soc. v.773 no.3 Theoretical Model for Binder Burnout P. Calbert;M. Cima
  21. Keramont Report No. RD-805-91-1 Aluminum Nitride Ceramics through Tape Casting H.W. Lee