A meta-analysis of the mechanical properties of ice-templated ceramics and metals
arXiv:1505.03333 · doi:10.1088/1468-6996/16/4/043501
Abstract
Ice templating, also known as freeze casting, is a popular shaping route for macroporous materials. Over the past 15 years, it has been widely applied to various classes of materials, and in particular ceramics. Many formulation and process parameters, often interdependent, affect the outcome. It is thus difficult to understand the various relationships between these parameters from isolated studies where only a few of these parameters have been investigated. We report here the results of a meta analysis of the structural and mechanical properties of ice templated materials from an exhaustive collection of records. We use these results to identify which parameters are the most critical to control the structure and properties, and to derive guidelines to optimize the mechanical response of ice templated materials. We hope these results will be a helpful guide to anyone interested in such materials.
31 pages, 16 figures, 172 references. Datasets and Jupyter (IPython) Notebook available from Figshare (http://dx.doi.org/10.6084/m9.figshare.1412626) as soon as the paper is published
References in corpus (9)
- Freezing as a path to build complex composites
- Freeze-Casting of Porous Ceramics: A Review of Current Achievements and Issues
- Freeze casting of hydroxyapatite scaffolds for bone tissue engineering
- Architectural control of freeze-cast ceramics through additives and templating
- In Situ X-Ray Radiography and Tomography Observations of the Solidification of Alumina Particles Suspensions. Part I: Initial Instants
- Ice-lens formation and geometrical supercooling in soils and other colloidal materials
- Particles redistribution and structural defects development during ice templating
- Dynamics of the freezing front during the solidification of a colloidal alumina aqueous suspension: in situ X-ray radiography, tomography and modeling
- Crystal Templating with Mutually Miscible Solvents: A Simple Path to Hierarchical Porosity