Biomass Combustion in the Helically Coiled Domestic Boiler Combined with the Equilibrium/Chemical Kinetics CFD Approach

Author:

Wardach-Święcicka Izabela1ORCID,Polesek-Karczewska Sylwia1,Kardaś Dariusz1ORCID

Affiliation:

1. The Szewalski Institute of Fluid-Flow Machinery, Polish Academy of Sciences, 80-231 Gdansk, Poland

Abstract

In the face of threats related to energy supply and climate change, the use of biomass is gaining importance, particularly in distributed energy systems. Combustion of biomass, including residue biomass, is considered one of the routes to increase the share of renewables in energy generation. The modeling of gaseous phase reactions remains crucial in predicting the combustion behavior of biomass and pollutant emissions. However, their simulation becomes a challenging task due to the computational cost. This paper presents a numerical analysis of the combustion process of a gas mixture released during biomass decomposition in a domestic 25 kW coil-type boiler. Three types of biogenic fuels were taken into consideration. The work aimed at examining the available tools for modeling gas burning, thus the geometry of the system was limited only to the 2D case. The thermodynamic equilibrium composition of pyrolysis gas was determined and implemented in Ansys to simulate the process. The computational results showed the potential of detailed, but reduced, combustion mechanisms of CH4/CO/H2 mixtures in predicting the main process features. The mechanism involving 85 reactions appeared to be more reliable compared to that comprising 77 reactions, particularly for volatiles with higher H2 content, whilst offering an acceptable calculation time. The burning characteristics obtained for volatiles with less CH4 and more H2 are in good agreement with the real operation conditions reported for the boiler.

Publisher

MDPI AG

Subject

Engineering (miscellaneous)

Reference44 articles.

1. Biomass co-firing technology with policies, challenges, and opportunities: A global review;Roni;Renew. Sustain. Energy Rev.,2017

2. Zarzycki, R., Kobyłecki, R., and Bis, Z. (2020). Numerical Analysis of the Combustion of Gases Generated during Biomass Carbonization. Entropy, 22.

3. International Energy Agency (IEA) (2021, February 14). Net Zero by 2050, A Roadmap for the Global Energy Sector. Available online: https://iea.blob.core.windows.net/assets/deebef5d-0c34-4539-9d0c-10b13d840027/NetZeroby2050-ARoadmapfortheGlobalEnergySector_CORR.pdf.

4. Experimental and numerical analysis of fine particle and soot formation in a modern 100 MW pulverized biomass heating plant;Kuittinen;Combust. Flame,2022

5. NOx reduction in a 40 t/h biomass fired grate boiler using internal flue gas recirculation technology;Tu;Appl. Energy,2018

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