Biomass Combustion in the Helically Coiled Domestic Boiler Combined with the Equilibrium/Chemical Kinetics CFD Approach
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[1] D. Kardaś,et al. Prediction of Pyrolysis Gas Composition Based on the Gibbs Equation and TGA Analysis , 2023, Energies.
[2] C. Hochenauer,et al. Experimental evaluation of primary measures for NOX and dust emission reduction in a novel 200 kW multi-fuel biomass boiler , 2021 .
[3] T. Turzyński,et al. Comparative Analysis of Pelletized and Unpelletized Sunflower Husks Combustion Process in a Batch-Type Reactor , 2021, Materials.
[4] T. Turzyński,et al. Application of a Lumped Multi-Section Model for Analyzing the Thermal Performance of a Small-Scale Biomass Boiler , 2021, Journal of Thermal Science.
[5] J. Míguez,et al. Numerical transient modelling of the fouling phenomena and its influence on thermal performance in a low-scale biomass shell boiler , 2020 .
[6] F. Popescu,et al. A Mathematical Model of Biomass Combustion Physical and Chemical Processes , 2020, Energies.
[7] Niko Samec,et al. The impacts of different profiles of the grate inlet conditions on freeboard CFD in a waste wood-fired grate boiler , 2020 .
[8] Zbigniew Bis,et al. Numerical Analysis of the Combustion of Gases Generated during Biomass Carbonization , 2020, Entropy.
[9] T. O. Babarinde,et al. Combustion models for biomass: A review , 2020 .
[10] J. Badur,et al. Thermal utilization of meat and bone meals. Performance analysis in terms of drying process, pyrolysis and kinetics of volatiles combustion , 2019, Fuel.
[11] Xavier Besseron,et al. The XDEM Multi-physics and Multi-scale Simulation Technology: Review on DEM-CFD Coupling, Methodology and Engineering Applications , 2018, Particuology.
[12] T. Turzyński,et al. Front velocity in the combustion of blends of poultry litter with straw , 2018, Fuel Processing Technology.
[13] R. Patil. Isothermal laminar fluid flow in spiral tube coils , 2018, Heat and Mass Transfer.
[14] Wenming Yang,et al. NOX reduction in a 40 t/h biomass fired grate boiler using internal flue gas recirculation technology , 2017, Applied Energy.
[15] Saleh Mamun,et al. Biomass co-firing technology with policies, challenges, and opportunities: A global review , 2017 .
[16] C. Mandl,et al. Strategies and technologies towards zero emission biomass combustion by primary measures , 2017 .
[17] J. Salvadó,et al. Estimating heat transfer losses caused by alkali salt deposits in biomass combustion , 2017 .
[18] Joaquín Capablo. Formation of alkali salt deposits in biomass combustion , 2016 .
[19] A. Dudek,et al. The effect of biomass co-combustion in a CFB boiler on solids accumulation on surfaces of P91 steel tube samples , 2016 .
[20] I. Gökalp,et al. Review on CFD based models for co-firing coal and biomass , 2015 .
[21] Ramin Mehrabian,et al. Multi-physics modelling of packed bed biomass combustion , 2014 .
[22] Wael I. A. Aly,et al. Correlations for heat transfer coefficient and pressure drop in the annulus of concentric helical coils , 2014 .
[23] Masoud Rahimi,et al. Experimental study and genetic algorithm-based multi-objective optimization of thermal and flow characteristics in helically coiled tubes , 2013 .
[24] J. Collazo,et al. Numerical simulation of a small-scale biomass boiler , 2012 .
[25] Mohammad Ali Akhavan-Behabadi,et al. Experimental Investigation on Flow Boiling Heat Transfer and Pressure Drop of HFC-134a inside a Vertical Helically Coiled Tube , 2012 .
[26] Alexander M. Starik,et al. Syngas Oxidation Mechanism , 2010 .
[27] Marek Pronobis,et al. Evaluation of the influence of biomass co-combustion on boiler furnace slagging by means of fusibility correlations , 2005 .
[28] Truls Liliedahl,et al. Pyrolysis of large wood particles: a study of shrinkage importance in simulations☆ ☆ , 2003 .
[29] Robert J. Kee,et al. CHEMKIN-III: A FORTRAN chemical kinetics package for the analysis of gas-phase chemical and plasma kinetics , 1996 .
[30] A. Welch. General and Inorganic Chemistry , 1947, Nature.
[31] H. Timonen,et al. Experimental and numerical analysis of fine particle and soot formation in a modern 100 MW pulverized biomass heating plant , 2022, Combustion and Flame.
[32] C. Pfeifer,et al. Categorization of small-scale biomass combustion appliances by characteristic numbers , 2021 .
[33] C. Hochenauer,et al. Bioenergy technologies, uses, market and future trends with Austria as a case study , 2021 .
[34] J. Porteiro,et al. Steady CFD combustion modeling for biomass boilers: An application to the study of the exhaust gas recirculation performance , 2019, Energy Conversion and Management.
[35] Mikko Hupa,et al. Biomass combustion technology development – It is all about chemical details , 2017 .
[36] Anh N. Phan,et al. Characterisation of slow pyrolysis products from segregated wastes for energy production. , 2008 .
[37] O. Senneca,et al. Kinetics of pyrolysis, combustion and gasification of three biomass fuels , 2007 .
[38] J. Lédé,et al. A new model for thermal volatilization of solid particles undergoing fast pyrolysis , 1983 .