Academic literature on the topic 'Excess enthalpy burners'

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Journal articles on the topic "Excess enthalpy burners"

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Gauthier, George P., Graeme M. G. Watson, and Jeffrey M. Bergthorson. "Burning rates and temperatures of flames in excess-enthalpy burners: A numerical study of flame propagation in small heat-recirculating tubes." Combustion and Flame 161, no. 9 (2014): 2348–60. http://dx.doi.org/10.1016/j.combustflame.2014.02.011.

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Fotiadis, Kyriakos, Akrivi Asimakopoulou, Penelope Baltzopoulou, et al. "Experimental Characterization of a Novel Foam Burner Design for the Low-Excess-Enthalpy Combustion of Very Lean Syngas Mixtures." Energies 16, no. 19 (2023): 7014. http://dx.doi.org/10.3390/en16197014.

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In the present work, a novel foam burner design is proposed and experimentally evaluated for operation with highly diluted syngas mixtures. The lab-scale burner consists of a purpose-built, square-shaped, high-temperature-grade stainless steel tubular reactor filled with square-sectioned siliconized silico carbide (SiSiC) foams. The assembly was installed in an electrical furnace. Spatially resolved temperature measurements were obtained along the reactor axis, while simultaneous measurements of CO, CO2, H2, O2, and N2 were taken at the burner exit and the water levels were recorded upstream a
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Lee, Dae Keun, and Dong-Soon Noh. "Experimental and theoretical study of excess enthalpy flames stabilized in a radial multi-channel as a model cylindrical porous medium burner." Combustion and Flame 170 (August 2016): 79–90. http://dx.doi.org/10.1016/j.combustflame.2016.05.010.

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Junjie, Chen. "Fundamental Study and Technology Development of the Catalytic Micro-Combustion." J. of Physical and Chemical Sciences Volume 2, Issue 1 (2014). https://doi.org/10.5281/zenodo.1000287.

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Micro-combustion study has flourished over the past decade. Yet, most of the commercial potential of micro-combustion is still to come. Aside from portable electronics, emerging drivers stem from the energy problem of declining fossil fuel reserves and their large environmental footprint upon combustion. The need to capitalize on underutilized energy sources and renewables further stimulate energy research in microsystems. The device miniaturization leads to a large surface area to volume ratio and enhanced heat and mass transfer rates. Both of these effects render homogeneous micro-combustion
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Sun, Bowen, Xin Kang, and Yu Wang. "Combustion characteristics of ammonia–air in a heat-recirculating Swiss-roll burner." Physics of Fluids 36, no. 11 (2024). http://dx.doi.org/10.1063/5.0233685.

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Ammonia has emerged as a promising carbon-free fuel for mitigating greenhouse gas emissions. However, its application in practical combustion systems is limited by several issues including its low heating value and slow flame propagation speed, which have posed challenges in maintaining stable combustion. As an attempt to resolve these issues, we numerically investigated premixed ammonia–air combustion using a detailed chemical mechanism in a heat-recirculating, Swiss-roll burner that was proposed based on the concept of “excess-enthalpy.” The main focus was put on the flame stabilizations as
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Conference papers on the topic "Excess enthalpy burners"

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Díaz Ávila, William Yesid, Víctor Antonio Nova Casares, Adrián Enrique Ávila Gómez, Rafael David Gómez Vásquez, and Álvaro Ángel Arrieta Almario. "Experimental Characterization of the Combustion Process of Briquettes From Corn Cob and Coconut Fibers Residues." In ASME 2015 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2015. http://dx.doi.org/10.1115/imece2015-51599.

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This study presents the experimental combustion characteristics of biomass briquettes made from agricultural wastes (coconut fiber and corn cob) of Córdoba-Colombia. For this thermochemical conversion, the actual heat transfer during the process and the main combustion characteristics are also studied. Initially, several corncob and coconut fibers briquettes were produced and burned. The non-adiabatic flame temperatures and the air velocity were measured. To study the combustion process dynamics, a process simulation was performed in EES Software© using the typical mass balances of a combustio
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Wettstein, Hans E. "How Is a Correct GT Combustor Heat Balance Established?" In ASME Turbo Expo 2020: Turbomachinery Technical Conference and Exposition. American Society of Mechanical Engineers, 2020. http://dx.doi.org/10.1115/gt2020-14235.

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Abstract The heat balance of gas turbine (GT) combustors is used for determining the average Combustor Exit Temperature (CET). It is important for designing the hot parts in this area. Sensor measurements of the CET are nearly impossible due to its high level up to above 1700°C. Therefore it is typically evaluated based on a 1-D cycle calculation, in which the combustor receives compressed air and fuel and it discharges the hot combustion gas at the temperature CET. In the classic approach the fuel heat received in the combustor is evaluated based on the lower heating value (LHV) of the fuel a
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