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Original Articles

Sources of Combustion Irreversibility

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Pages 41-61 | Received 02 Jun 1992, Accepted 05 Oct 1994, Published online: 17 Apr 2007

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Saleel Ismail & Pramod S. Mehta. (2011) Evaluation of the effects of fuel and combustion-related processes on exergetic efficiency. Fuel 90:5, pages 1818-1825.
Crossref
V. Kalyana Chakravarthy, C. Stuart Daw & Josh A. Pihl. (2011) Thermodynamic Analysis of Alternative Approaches to Chemical Looping Combustion. Energy & Fuels 25:2, pages 656-669.
Crossref
Bibhuti B. Sahoo, Ujjwal K. Saha & Niranjan Sahoo. (2011) Theoretical performance limits of a syngas–diesel fueled compression ignition engine from second law analysis. Energy 36:2, pages 760-769.
Crossref
K. Dean Edwards, Robert Wagner & Thomas Briggs. Investigating Potential Light-duty Efficiency Improvements through Simulation of Turbo-compounding and Waste-heat Recovery Systems. Investigating Potential Light-duty Efficiency Improvements through Simulation of Turbo-compounding and Waste-heat Recovery Systems.
A. Abassi, Sh. Khalilarya & S. Jafarmadar. (2010) The influence of the inlet charge temperature on the second law balance under the various operating engine speeds in DI Diesel engine. Fuel 89:9, pages 2425-2432.
Crossref
M. Ghazikhani, M.E. Feyz & A. Joharchi. (2010) Experimental investigation of the Exhaust Gas Recirculation effects on irreversibility and Brake Specific Fuel Consumption of indirect injection diesel engines. Applied Thermal Engineering 30:13, pages 1711-1718.
Crossref
Kalyan K. Srinivasan, Pedro J. Mago & Sundar R. Krishnan. (2010) Analysis of exhaust waste heat recovery from a dual fuel low temperature combustion engine using an Organic Rankine Cycle. Energy 35:6, pages 2387-2399.
Crossref
Jonathan M. Cullen & Julian M. Allwood. (2010) Theoretical efficiency limits for energy conversion devices. Energy 35:5, pages 2059-2069.
Crossref
Noureddine Hajjaji, Viviane Renaudin, Ammar Houas & Marie Noëlle Pons. (2010) Factorial design of experiment (DOE) for parametric exergetic investigation of a steam methane reforming process for hydrogen production. Chemical Engineering and Processing: Process Intensification 49:5, pages 500-507.
Crossref
Sheng Chen, Jing Li, Haifeng Han, Zhaohui Liu & Chuguang Zheng. (2010) Effects of hydrogen addition on entropy generation in ultra-lean counter-flow methane-air premixed combustion. International Journal of Hydrogen Energy 35:8, pages 3891-3902.
Crossref
Amornrat KAEWPRADAP & Satoshi KADOWAKI. (2010) Intrinsic Instability of Premixed Flames at Sufficiently Low Activation Energy. TRANSACTIONS OF THE JAPAN SOCIETY FOR AERONAUTICAL AND SPACE SCIENCES, AEROSPACE TECHNOLOGY JAPAN 8:0, pages 15-21.
Crossref
Geoffrey Hammond & Adrian Winnett. (2009) The Influence of Thermodynamic Ideas on Ecological Economics: An Interdisciplinary Critique. Sustainability 1:4, pages 1195-1225.
Crossref
C.D. Rakopoulos & C.N. Michos. (2009) Generation of combustion irreversibilities in a spark ignition engine under biogas–hydrogen mixtures fueling. International Journal of Hydrogen Energy 34:10, pages 4422-4437.
Crossref
Alejandro Briones & Suresh Aggarwal. (2009) Second Law Analysis of Hydrogen-Enriched Methane-Air Flames. Second Law Analysis of Hydrogen-Enriched Methane-Air Flames.
. 2009. Diesel Engine Transient Operation. Diesel Engine Transient Operation 277 304 .
K-Y Teh, S L Miller & C F Edwards. (2008) Thermodynamic requirements for maximum internal combustion engine cycle efficiency. Part 2: Work extraction and reactant preparation strategies. International Journal of Engine Research 9:6, pages 467-481.
Crossref
C D Rakopoulos, C N Michos & E G Giakoumis. (2008) Studying the effects of hydrogen addition on the second-law balance of a biogas-fuelled spark ignition engine by use of a quasi-dimensional multi-zone combustion model. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering 222:11, pages 2249-2268.
Crossref
S.S. Mondal. (2008) Modelling of transport processes and associated thermodynamic irreversibilities in ignition and combustion of a pulverized coal particle. International Journal of Thermal Sciences 47:11, pages 1442-1453.
Crossref
Na ZhangNoam Lior. (2008) Comparative Study of Two Low CO2 Emission Power Generation System Options With Natural Gas Reforming. Journal of Engineering for Gas Turbines and Power 130:5.
Crossref
C.D. Rakopoulos, C.N. Michos & E.G. Giakoumis. (2008) Availability analysis of a syngas fueled spark ignition engine using a multi-zone combustion model. Energy 33:9, pages 1378-1398.
Crossref
P. J. Mago, K. K. Srinivasan, L. M. Chamra & C. Somayaji. (2008) An examination of exergy destruction in organic Rankine cycles. International Journal of Energy Research 32:10, pages 926-938.
Crossref
Hari Shanker Sivadas & Jerald A. Caton. (2008) Effects of exhaust gas recirculation on exergy destruction due to isobaric combustion for a range of conditions and fuels. International Journal of Energy Research 32:10, pages 896-910.
Crossref
N R McGlashan. (2008) Chemical-looping combustion — a thermodynamic study. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science 222:6, pages 1005-1019.
Crossref
S.K. Som & A. Datta. (2008) Thermodynamic irreversibilities and exergy balance in combustion processes. Progress in Energy and Combustion Science 34:3, pages 351-376.
Crossref
K. Dean Edwards, Robert M. Wagner & Ronald L. Graves. Identification of Potential Efficiency Opportunities in Internal Combustion Engines Using a Detailed Thermodynamic Analysis of Engine Simulation Results. Identification of Potential Efficiency Opportunities in Internal Combustion Engines Using a Detailed Thermodynamic Analysis of Engine Simulation Results.
Na Zhang & Noam Lior. (2008) Two novel oxy-fuel power cycles integrated with natural gas reforming and CO2 capture. Energy 33:2, pages 340-351.
Crossref
C.D. Rakopoulos, M.A. Scott, D.C. Kyritsis & E.G. Giakoumis. (2008) Availability analysis of hydrogen/natural gas blends combustion in internal combustion engines. Energy 33:2, pages 248-255.
Crossref
S. K. Som, G. K. Agrawal & Suman Chakraborty. (2007) Thermodynamics of flame impingement heat transfer. Journal of Applied Physics 102:4.
Crossref
Geoffrey P. Hammond. (2007) Industrial energy analysis, thermodynamics and sustainability. Applied Energy 84:7-8, pages 675-700.
Crossref
T Yamamoto, N Lior, T Furuhata & N Arai. (2007) A novel high-performance low-NO x fuel-rich/fuel-lean two-stage combustion gas and steam turbine system for power and heat generation . Proceedings of the Institution of Mechanical Engineers, Part A: Journal of Power and Energy 221:4, pages 433-446.
Crossref
Noam Lior & Na Zhang. (2007) Energy, exergy, and Second Law performance criteria. Energy 32:4, pages 281-296.
Crossref
P. S. Chavannavar & J. A. Caton. (2006) Destruction of availability (exergy) due to combustion processes: A parametric study. Proceedings of the Institution of Mechanical Engineers, Part A: Journal of Power and Energy 220:7, pages 655-668.
Crossref
J. T. Farrell, J. G. Stevens & W. Weissman. A Second Law Analysis of High Efficiency Low Emission Gasoline Engine Concepts. A Second Law Analysis of High Efficiency Low Emission Gasoline Engine Concepts.
Noam Lior, Wladimir Sarmiento-Darkin & Hassan S. Al-Sharqawi. (2006) The exergy fields in transport processes: Their calculation and use. Energy 31:5, pages 553-578.
Crossref
Na Zhang & Noam Lior. (2006) Proposal and Analysis of a Novel Zero CO2 Emission Cycle With Liquid Natural Gas Cryogenic Exergy Utilization. Journal of Engineering for Gas Turbines and Power 128:1, pages 81-91.
Crossref
S. K. Som, S. S. Mondal & S. K. Dash. (2005) Energy and Exergy Balance in the Process of Pulverized Coal Combustion in a Tubular Combustor. Journal of Heat Transfer 127:12, pages 1322-1333.
Crossref
C.D. Rakopoulos & E.G. Giakoumis. (2005) The influence of cylinder wall temperature profile on the second-law diesel engine transient response. Applied Thermal Engineering 25:11-12, pages 1779-1795.
Crossref
C. D. Rakopoulos & E. G. Giakoumis. Second-Law Analysis of Indirect Injection Turbocharged Diesel Engine Operation under Steady-State and Transient Conditions. Second-Law Analysis of Indirect Injection Turbocharged Diesel Engine Operation under Steady-State and Transient Conditions.
Noam Lior. 2004. The Engineering Handbook, Second Edition. The Engineering Handbook, Second Edition.
C.D. Rakopoulos & E.G. Giakoumis. (2004) Availability analysis of a turbocharged diesel engine operating under transient load conditions. Energy 29:8, pages 1085-1104.
Crossref
S. Douvartzides, F. Coutelieris & P. Tsiakaras. (2004) Exergy analysis of a solid oxide fuel cell power plant fed by either ethanol or methane. Journal of Power Sources 131:1-2, pages 224-230.
Crossref
C.D. Rakopoulos & E.G. Giakoumis. Parametric Study of Transient Turbocharged Diesel Engine Operation from the Second-Law Perspective. Parametric Study of Transient Turbocharged Diesel Engine Operation from the Second-Law Perspective.
J De Ruyck, V Lavric, D Baetens & V Plesu. (2003) Broadening the capabilities of pinch analysis through virtual heat exchanger networks. Energy Conversion and Management 44:14, pages 2321-2329.
Crossref
S. Douvartzides, F. Coutelieris & P. Tsiakaras. (2003) Energy and exergy analysis of a solid oxide fuel cell plant fueled by ethanol and methane. Ionics 9:3-4, pages 293-296.
Crossref
S.L. Douvartzides, F.A. Coutelieris & P.E. Tsiakaras. (2003) On the systematic optimization of ethanol fed SOFC-based electricity generating systems in terms of energy and exergy. Journal of Power Sources 114:2, pages 203-212.
Crossref
I.L. Leites, D.A. Sama & N. Lior. (2003) The theory and practice of energy saving in the chemical industry: some methods for reducing thermodynamic irreversibility in chemical technology processes. Energy 28:1, pages 55-97.
Crossref
S. K. Som & N. Y. Sharma. (2002) Energy and Exergy Balance in the Process of Spray Combustion in a Gas Turbine Combustor. Journal of Heat Transfer 124:5, pages 828-836.
Crossref
Noam Lior. (2002) Thoughts about future power generation systems and the role of exergy analysis in their development. Energy Conversion and Management 43:9-12, pages 1187-1198.
Crossref
Jerald A. Caton. A Cycle Simulation Including the Second Law of Thermodynamics for a Spark-Ignition Engine: Implications of the Use of Multiple-Zones for Combustion. A Cycle Simulation Including the Second Law of Thermodynamics for a Spark-Ignition Engine: Implications of the Use of Multiple-Zones for Combustion.
Takahisa Yamamoto, Tomohiko Furuhata, Norio Arai & Noam Lior. (2002) Analysis of a High-Efficiency Low-Emissions "Chemical Gas Turbine" System. Journal of Propulsion and Power 18:2, pages 432-439.
Crossref
Kousuke Nishida, Toshimi Takagi & Shinichi Kinoshita. (2002) Analysis of entropy generation and exergy loss during combustion. Proceedings of the Combustion Institute 29:1, pages 869-874.
Crossref
C.D Rakopoulos & D.C Kyritsis. (2001) Comparative second-law analysis of internal combustion engine operation for methane, methanol, and dodecane fuels. Energy 26:7, pages 705-722.
Crossref
Dimitrios C. Kyritsis & Constantinos D. Rakopoulos. Parametric Study of the Availability Balance in an Internal Combustion Engine Cylinder. Parametric Study of the Availability Balance in an Internal Combustion Engine Cylinder.
R. J. Braun, R. A. Gaggioli & W. R. Dunbar. (1999) Improvements of a Molten Carbonate Fuel Cell Power Plant via Exergy Analysis. Journal of Energy Resources Technology 121:4, pages 277-285.
Crossref
Noam Lior. (1997) Energy, exergy and thermoeconomic analysis of the effects of fossil-fuel superheating in nuclear power plants. Energy Conversion and Management 38:15-17, pages 1585-1593.
Crossref
Noam Lior. (1997) Advanced energy conversion to power. Energy Conversion and Management 38:10-13, pages 941-955.
Crossref
William R. Dunbar & Noam Lior. (2016) Teaching Power Cycles by Comparative First- and Second-Law Analysis of Their Evolution. International Journal of Mechanical Engineering Education 25:1, pages 13-31.
Crossref

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