Simulation of a Thermal Recuperative Incinerator of VOCs with a Special Focus on the Heat Exchanger

Author:

Zdanowski Francisco1ORCID,Malico Isabel1ORCID,Canhoto Paulo2ORCID,Lima Rui Pedro3

Affiliation:

1. IDMEC, Escola de Ciências e Tecnologia, Universidade de Évora, R. Romão Ramalho 59, 7000-671 Évora, Portugal

2. Instituto de Ciências da Terra, Escola de Ciências e Tecnologia, Universidade de Évora, R. Romão Ramalho 59, 7000-671 Évora, Portugal

3. CCEnergia, Pavilhão Multiusos, Av. Dr. Mário Soares, 2040-413 Rio Maior, Portugal

Abstract

Simulation and modeling of thermal recuperative incinerators may play an important role in enhancing efficiency and ensuring compliance with environmental regulations. In this context, the primary objective of this study is to simulate and comprehensively understand the operation of a geometrically complex thermal recuperative incinerator with an integrated preheater featuring varying levels of heat recovery. To achieve this objective, a simple yet effective 0D model was developed. This modeling approach allows for a holistic evaluation of the performance of the incinerator, enabling the assessment of key parameters, such as temperatures and heat transfer rates, under varying operating conditions. Successful validation of the model is established by comparing its results with measurements from an industrial thermal recuperative incinerator in operation at a vehicle assembly plant, with maximum relative differences of around 9%. Simulations for different percentages of flue gases bypassing the preheater were conducted, indicating a good compromise between heat transfer and pressure drop and a 22% heat recovery at around 50%. The model presented in this paper provides a robust foundation for comprehensively assessing and optimizing the performance of thermal recuperative incinerators and systems that comprise thermal recuperative incinerators, with implications for waste management and sustainable energy recovery systems.

Funder

Fundação para a Ciência e a Tecnologia

MOSIPO

IDMEC

ICT- Institute of Earth Sciences

Publisher

MDPI AG

Subject

Applied Mathematics,Computational Mathematics,General Engineering

Reference41 articles.

1. Air Pollution Control in the Finishing Industry;Whitall;Met. Finish.,1999

2. Thermal Recuperative Incineration of VOCs: CFD Modelling and Experimental Validation;Salvador;Appl. Therm. Eng.,2006

3. Evaluation of Abatement Options to Reduce Formaldehyde Emissions in Vehicle Assembly Paint Shops Using the Life Cycle Methodology;Granadero;Clean. Environ. Syst.,2023

4. A Review of the Current Automotive Manufacturing Practice from an Energy Perspective;Giampieri;Appl. Energy,2020

5. Chronopoulos, G., Cakmak, G.-E., Tempany, P., Klein, G., Brinkmann, T., Zerger, B., and Roudier, S. (2020). Best Available Techniques (BAT) Reference Document on Surface Treatment Using Organic Solvents Including Preservation of Wood and Wood Products with Chemicals: Industrial Emissions Directive 2010/75/EU (Integrated Pollution Prevention and Control), Publications Office of the European Union.

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