4.6 Article

Investigation of the Damage Phenomenology with Dependence on the Macroporosity and Microporosity of Porous Freeze Foams

Journal

MATERIALS
Volume 16, Issue 6, Pages -

Publisher

MDPI
DOI: 10.3390/ma16062484

Keywords

ceramic foam; compressive strength; porous ceramics; non-destructive testing

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Freeze foams are cellular, ceramic structures with hierarchical pore structures that can cover a wide range of applications by tailoring their morphology and strength. The correlation between pore-forming influencing factors and resulting mechanical properties was quantified in order to manufacture foams that align with component requirements, which is an important step towards the widespread application of these promising materials. Foams with independently adjustable porosities were produced and systematically investigated, revealing different material failure characteristics.
Freeze Foams are cellular, ceramic structures with hierarchical pore structures that are manufactured using the direct foaming process. By tailoring their morphology and strength, these foam structures are able to cover a wide range of application. Earlier works identified that pore-forming influencing factors (water and air content, suspension temperature, as well as pressure reduction rate) dictate the constitution on a macroscopic and microscopic scale. Therefore, the ability to manufacture foams whose properties align with the component requirements would be an important step in advancing towards a widespread application of these promising materials. With this goal in mind, the correlation between the pore-forming influencing factors and the resulting mechanical properties was quantified. Foams with independently adjustable porosities were produced at the micro and macro scales and evaluated according to their material failure behavior under compressive loads. As a result, foams with determined macroporosities between 38 and 62%, microporosities between 25 and 42%, and compression strengths between 1 and 7 MPa with different material failure characteristics were manufactured and systematically investigated.

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