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Engineering and structural materials

Gas permeability of ice-templated, unidirectional porous ceramics

ORCID Icon, ORCID Icon, & ORCID Icon
Pages 313-323 | Received 16 Jan 2016, Accepted 01 Jun 2016, Published online: 18 Jul 2016

References

  • Colombo P, Scheffer M. Cellular ceramics: structucture, properties and applications, manufacturing. Weinheim:Wiley; 2005.
  • Studart AR, Gonzenbach UT, Tervoort E, et al. Processing routes to macroporous ceramics: a review. J. Am. Ceram. Soc. 2006 Jun;89:1771–1789.
  • Innocentini MDM, Sepulveda P, Salvini VR, et al. Permeability and structure of cellular ceramics: a comparison between two preparation techniques. J. Am. Ceram. Soc. 1998;81:3349–3352.
  • Biasetto L, Colombo P, Innocentini MDM, et al. Gas permeability of microcellular ceramic foams. Ind. Eng. Chem. Res. 2007;46:3366–3372.
  • Okada K, Isobe T, Katsumata K, et al. Porous ceramics mimicking nature - preparation and properties of microstructures with unidirectionally oriented pores. Sci. Technol. Adv. Mater. 2011 Dec;12:064701.
  • Weiss A, Fahn R, Hofmann U. Nachweis der geruststruktur in thixotropen gelen. Die Naturwissenschaften. 1952;39:351–352.
  • Nakazawa H, Yamada H, Fujita T, et al. Texture control of clay-aerogel through the crystallization process of ice. Clay Sci. 1987;6:269–276.
  • Fukasawa J, Tsujii K. Higher-order structure formation of ultrafine boehmite particles in sols, gels, and dried materials. J. Colloid Interface Sci. 1988;125:155–161.
  • Lottermoser A. Über das Ausfrieren von Hydrosolen. Berichte der deutschen chemischen Gesellschaft. 1908;41:3976–3979.
  • Foote HW, Saxton B. The effect of freezing on certain inorganic hydrogels. J. Am. Chem. Soc. 1916;38:588–609.
  • Deville S. Freeze-casting of porous ceramics: a review of current achievements and issues. Adv. Eng. Mater. 2008 Mar;10:155–169.
  • Wegst UGK, Schecter M, Donius AE, et al. Biomaterials by freeze casting. Philos. Trans. Ser. A. 2010;368:2099–121.
  • Fukasawa T, Ando M, Ohji T. Filtering properties of porous ceramics with unidirectionally aligned pores. J. Ceram. Soc. Jpn. 2002;110:627–631.
  • Fukushima M, Nakata M, Zhou Y, et al. Fabrication and properties of ultra highly porous silicon carbide by the gelation-freezing method. J. Eur. Ceram. Soc. 2010 Oct;30:2889–2896.
  • Ohji T, Fukushima M. Macro-porous ceramics: processing and properties. Int. Mater. Rev. 2012 Mar;57:115–131.
  • Pekor C, Groth B, Nettleship I. The effect of polyvinyl alcohol on the microstructure and permeability of freeze-cast alumina. J. Am. Ceram. Soc. Jan 2010;93:115–120.
  • Seuba J, Deville S, Guizard C, et al. Scientific Reports. Mechanical properties and failure behavior of unidirectional porous materials. 2016;6:1–11.
  • Deville S, Viazzi C, Leloup J, et al. Ice shaping properties, similar to that of antifreeze proteins, of a zirconium acetate complex. PLoS ONE. 2011 Oct;6:1–6.
  • Deville S, Saiz E, Tomsia AP. Ice-templated porous alumina structures. Acta Mater. 2007;55:1965–1974.
  • Fukasawa T, Deng Z, Ando M, et al. Synthesis of porous silicon nitride with unidirectionally aligned channels using freeze-drying process. J. Am. Ceram. Soc. 2002;85:2151–2155.
  • Li W, Porter MM, Olevsky EA, et al. Sintering of bi-porous titanium dioxide scaffolds: experimentation, modeling and simulation. Mater. Sci. Eng. A. 2015;636:148–156.
  • Hu LF, Wang CA, Huang Y, et al. Control of pore channel size during freeze casting of porous YSZ ceramics with unidirectionally aligned channels using different freezing temperatures. J. Eur. Ceram. Soc. 2010 Dec;30:3389–3396.
  • Fukasawa T, Deng ZY, Ando M, et al. Pore structure of porous ceramics synthesized from water-based slurry by freeze-dry process. J. Mater. Sci. 2001;36:2523–2527.
  • Lichtner A, Roussel D, Jauffrès D, et al. Effect of macro-pore anisotropy on the mechanical properties of porous ceramics. J. Am. Ceram. Soc. 2015;99:979–987.
  • Innocentini MDM, Faleiros RK, Pisani R, et al. Permeability of porous gelcast scaffolds for bone tissue engineering. J. Porous Mater. 2010;17:615–627.
  • Innocentini MDM, Salvini VR, Pandolfelli VC. Assessment of Forchheimer’s equation to predict the permeability of ceramic foams. J. Am. Ceram. Soc. 1999;82:1945–1948.
  • Acchar W, Ramalho EG, Souza FBM, et al. Characterization of cellular ceramics for high-temperature applications. J. Mater. Sci. 2008 Sep;43:6556–6561.
  • Young D, Warren C, Gadkaree K, et al. SAE Technical Paper. Silicon carbide for diesel particulate filter applications: material development and thermal design. 2002:01–0324.
  • Edouard D, Lacroix M, Huu CP, et al. Pressure drop modeling on SOLID foam: state-of-the art correlation. Chem. Eng. J. 2008 Oct;144:299–311.
  • Ergun S. Fluid flow through packed columns. Chemical engineering progress. 1952;48.
  • Lacroix M, Nguyen P, Schweich D, et al. Pressure drop measurements and modeling on SiC foams. Chem. Eng. Sci. 2007 Jun;62:3259–3267.
  • Comiti J, Renaud M. A new model for determining mean structure parameters of fixed beds from pressure drop measurements: application to beds packed with parallelepipedal particles. Chem. Eng. Sci. 1989;44:1539–1545.
  • Moreira EA, Innocentini MDM, Coury JR. Permeability of ceramic foams to compressible and incompressible flow. J. Eur. Ceram. Soc. 2004 Sep;24:3209–3218.
  • Innocentini MDM, Salvini VR, Macedo A, et al. Prediction of ceramic foams permeability using Ergun equation. Mater. Res. 1999;2:283–289.
  • Hu Z, Lu K. Evolution of pores and tortuosity during sintering. J. Am. Ceram. Soc. 2014;97:2383–2386.