Evaluation of Mathematical Models for CO2 Frost Formation in a Cryogenic Moving Bed

Author:

Cann David1,Font-Palma Carolina1ORCID

Affiliation:

1. School of Engineering, University of Hull, Hull HU6 7RX, UK

Abstract

Moving bed heat exchangers (MBHE)s are used in industrial applications including waste heat recovery and the drying of solids. As a result, energy balance models have been developed to simulate the heat transfer between a moving bed and the gas phase. Within these energy balance models, phase change of components within the gas phase has not been considered as the liquefaction or desublimation of the gas phase does not occur in typical industrial applications. However, available energy balance models for cryogenic CO2 capture (CCC) have only focused on fixed packed beds. The development of a suitable energy balance model to predict the energy duties for MBHEs that include phase change would be beneficial for CCC applications. This work investigated the development of moving bed energy balance models for the design of moving bed columns that involve phase change of CO2 into frost, using existing models for MBHEs and fixed-bed CCC capture. The models were evaluated by comparison with available moving bed experimental work and simulated data, predicted energy duty requirements and bed flow rates from the suggested moving bed CCC models to maintain thermal equilibrium. The comparisons showed a consistent prediction between the various methods and closely align with the available experimental and simulated data. Comparisons of energy duty and bed flow rate predictions from the developed energy balance models with simulated cases for an oil-fired boiler, combined cycle gas turbine (CCGT) and biogas upgrading showed energy duty requirements for the gas phase with a proximity of 0.1%, 20.8%, and 3.4%, respectively, and comparisons of gas energy duties from developed energy balance models with energy duties derived from experimental results were compared with a proximity of 1.1%, 1.1% and 0.6% to experimental results for CO2 % v/v concentrations of 18%, 8% and 4%.

Funder

Royal Academy of Engineering

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction

Reference20 articles.

1. El-Sheikh, S. (2022, November 24). Conference of the Parties 2022, UNFCCC, Editor. Available online: https://unfccc.int/documents/624444.

2. Carbon Capture and Storage: How Green Can Black Be?;Haszeldine;Science,2009

3. Font-Palma, C., Cann, D., and Udemu, C. (2021). Review of Cryogenic Carbon Capture Innovations and Their Potential Applications. C, 7.

4. Baxter, L., Baxter, A., and Burt, S. (2009, January 20–23). Cryogenic CO2 Capture as a Cost-Effective CO2 Capture Process. Proceedings of the 26th Annual International Pittsburgh Coal Conference 2009, PCC 2009, Pittsburgh, PA, USA.

5. Analysis of CO2 frost formation properties in cryogenic capture process;Song;Int. J. Greenh. Gas Control,2013

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