Nonlinear Heat Transfer From Particles in Supercritical Carbon Dioxide Near the Critical Point

Author:

Martin Michael James1,Rasmussen Elizabeth G.23,Yellapantula Shashank1

Affiliation:

1. National Renewable Energy Laboratory, High Performance Algorithms and Complex Fluids Group, 15013 Denver West Parkway, Golden, CO 80401

2. National Renewable Energy Laboratory, High Performance Algorithms and Complex Fluids Group, 15013 Denver West Parkway, Golden, CO 80401;

3. Department of Mechanical Engineering, University of Washington, Seattle, WA 98195

Abstract

Abstract Particle to fluid heat transfer in supercritical carbon dioxide (sCO2) is encountered in energy technologies and in materials synthesis. Near the critical point, the extreme pressure and temperature sensitivity of sCO2’s thermal conductivity will change the expected heat transfer in these systems. The current work combines the Kirchoff transformation for thermal conductivity with the conduction shape factor for a sphere, allowing prediction of heat transfer in these systems and quantification of the impact of these property changes. Results show that the heat transfer is non-linear for supercritical heat transfer, with the non-linearity particularly significant near the critical point. The results also show that approaches such as an average thermal conductivity based on film temperature are unlikely to accurately predict heat transfer in this region. The methods described in this paper can be applied to fluid–particle heat transfer at low Reynolds number in other fluids with large variations in thermal conductivity.

Funder

National Renewable Energy Laboratory

U.S. Department of Energy

Publisher

ASME International

Subject

Fluid Flow and Transfer Processes,General Engineering,Condensed Matter Physics,General Materials Science

Reference23 articles.

1. Transcritical or Supercritical CO2 Cycles Using Both Low- and High-Temperature Heat Sources;Kim;Energy,2012

2. Thermodynamic Study of Advanced Supercritical Carbon Dioxide Power Cycles for Concentrating Solar Power Systems;Turchi;ASME J. Sol. Eng.,2013

3. Heat Transfer Models of Moving Packed-Bed Particle-to-sco2 Heat Exchangers;Albrecht;ASME J. Sol. Energy Eng.,2019

4. Demonstration of the Allam Cycle: An Update on the Development Status of a High Efficiency Supercritical Carbon Dioxide Power Process Employing Full Carbon Capture;Allam;Energy Procedia,2017

5. An Investigation of Real Gas Effects in Supercritical CO2 Centrifugal Compressors;Baltadjiev;ASME J. Turbomach.,2015

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