ProgramMaster Logo
Conference Tools for 2024 TMS Annual Meeting & Exhibition
Login
Register as a New User
Help
Submit An Abstract
Propose A Symposium
Presenter/Author Tools
Organizer/Editor Tools
About this Abstract
Meeting 2024 TMS Annual Meeting & Exhibition
Symposium Simulations/Experiments Integration for Next Generation Hypersonic Materials
Presentation Title CALPHAD-based Thermal Conductivity Modeling Appended with Porosity Effects for Ultra-high Temperature Ceramics Suitable for Hypersonic Applications
Author(s) Soumya Sridar, Wei Xiong
On-Site Speaker (Planned) Soumya Sridar
Abstract Scope Ultra-high temperature ceramics (UHTC) have a combination of refractoriness with high thermal conductivity and good thermal shock resistance. Since thermal conductivity is an important attribute, efforts are required to develop high-fidelity models to estimate it. Porosity formed during the synthesis of UHTCs can affect their thermal conductivity. Therefore, this work aims to model the thermal conductivity of UHTCs using the CALPHAD (Calculation of Phase Diagrams) technique with the addition of porosity. Pure ZrB2 and ZrB2-based composites such as ZrB2-B4C and ZrB2-ZrC are chosen as the candidate systems. Different models to estimate effective thermal conductivity, including porosity, are the rule of mixtures, Maxwell-Eucken, and effective medium theory. These models are appended to the CALPHAD model for dense material, and the effectiveness of each model for predicting the thermal conductivity of porous UHTCs is investigated. The developed model is useful for estimating the thermal conductivity of porous materials.
Proceedings Inclusion? Planned:

OTHER PAPERS PLANNED FOR THIS SYMPOSIUM

CALPHAD-based Thermal Conductivity Modeling Appended with Porosity Effects for Ultra-high Temperature Ceramics Suitable for Hypersonic Applications
Correlative Multiscale 3D Investigation of Damage in Angle-interlocked Ceramic Matrix Composites
Design and Rapid Solidification Analysis of Refractory Multi-principal Element Alloys
First-principles Calculations of Diffusion Coefficients in High-temperature Carbides
Foundational Molecular Dynamic Models and Experiments of SiC Oxidation for Materials Development in Extreme Environments
High-temperature Oxygen Plasma Experiments and Atomistic Simulations of Active Oxidation in Nanocrystalline SiC Woven Fibers
Mechanical and Structural Characterization of Ultra-fast Boriding Process on Refractory Metals
Mesoscale Thermomechanical Modeling of Woven Carbon Composites
Metal Di-boride (MB2 | M = Ti, Zr, Nb, Hf, Ta) Properties Above 3000 ˚C
Rapid Computational Design and Experimental Validation of Ductile High Entropy Alloys for Extreme Environments
Size Effect at High Temperature in Additive Metals

Questions about ProgramMaster? Contact programming@programmaster.org