Maximizing Net Fuel Economy Improvement from Fusel Alcohol Blends in Gasoline Using Multivariate Optimization
暂无分享,去创建一个
Joshua S. Heyne | Ryan Davis | A. George | A. Landera | Zhibin Yang | Eric A. Monroe | Lily Behnke | Bernard Nguyen
[1] I. Schifter,et al. Merit function for simultaneous optimization of fuel properties, naturally aspirated spark-ignition engines equipped with port fuel injection system, and regulated emissions , 2021, Fuel.
[2] C. Avedisian,et al. Simulating combustion of a seven-component surrogate for a gasoline/ethanol blend including soot formation and comparison with experiments , 2021 .
[3] Joshua S. Heyne,et al. High-performance jet fuel optimization and uncertainty analysis , 2020 .
[4] S. M. Sarathy,et al. Understanding the synergistic blending octane behavior of 2-methylfuran , 2020 .
[5] J. Szybist. Knock Mitigation Effectiveness of EGR across the Pressure-Temperature Domain , 2020 .
[6] O. Kaario,et al. Blending Behavior of Hydrocarbon and Oxygenate Molecules to Optimize RON and MON for Modern Spark-Ignition Engines (SI) , 2020, SAE Technical Paper Series.
[7] J. Bowie,et al. Isobutanol production freed from biological limits using synthetic biochemistry , 2020, Nature Communications.
[8] J. Dernotte,et al. Downsized-Boosted Gasoline Engine with Exhaust Compound and Dilute Advanced Combustion , 2020 .
[9] J. Dec,et al. Experimental Evaluation of a Custom Gasoline-Like Blend Designed to Simultaneously Improve ϕ-Sensitivity, RON and Octane Sensitivity , 2020 .
[10] Joshua S. Heyne,et al. Orthogonal Reference Surrogate Fuels for Operability Testing , 2020, Energies.
[11] Jason C. Quinn,et al. Conversion of distiller's grains to renewable fuels and high value protein: Integrated techno-economic and life cycle assessment. , 2019, Environmental science & technology.
[12] Ryan Davis,et al. Top Ten Blendstocks Derived From Biomass For Turbocharged Spark Ignition Engines. , 2019 .
[13] R. Davis,et al. Development of a closed-loop process for fusel alcohol production and nutrient recycling from microalgae biomass. , 2019, Bioresource technology.
[14] Jason C. Quinn,et al. Integrated techno economic and life cycle assessment of the conversion of high productivity, low lipid algae to renewable fuels , 2019, Algal Research.
[15] Karl O. Albrecht,et al. Discovery of novel octane hyperboosting phenomenon in prenol biofuel/gasoline blends , 2019, Fuel.
[16] C. Sluder. Estimation of the Fuel Efficiency Potential of Six Gasoline Blendstocks Identified by the U.S. Department of Energy’s Co-Optimization of Fuels and Engines Program , 2019, SAE Technical Paper Series.
[17] Russell K. Denney,et al. Improvement in Jet Aircraft Operation with the Use of High-Performance Drop-in Fuels , 2019, AIAA Scitech 2019 Forum.
[18] Joshua S. Heyne,et al. Properties Calculator and Optimization for Drop-in Alternative Jet Fuel Blends , 2019, AIAA Scitech 2019 Forum.
[19] F. Liu,et al. Engineering Microbial Consortia for Bioconversion of Multisubstrate Biomass Streams to Biofuels , 2018, Biofuels - Challenges and opportunities.
[20] Nicholas P. Cernansky,et al. A new chemical kinetic method of determining RON and MON values for single component and multicomponent mixtures of engine fuels , 2018, Combustion and Flame.
[21] Peter C. St. John,et al. Measuring and predicting sooting tendencies of oxygenates, alkanes, alkenes, cycloalkanes, and aromatics on a unified scale , 2018 .
[22] R. Davis,et al. Bioconversion of distillers’ grains hydrolysates to advanced biofuels by an Escherichia coli co-culture , 2017, Microbial Cell Factories.
[23] Karl O. Albrecht,et al. Selection Criteria and Screening of Potential Biomass-Derived Streams as Fuel Blendstocks for Advanced Spark-Ignition Engines , 2017 .
[24] James T. Edwards,et al. Reference Jet Fuels for Combustion Testing , 2017 .
[25] R. Davis,et al. Cofactor engineering of ketol-acid reductoisomerase (IlvC) and alcohol dehydrogenase (YqhD) improves the fusel alcohol yield in algal protein anaerobic fermentation , 2016 .
[26] Bengt Johansson,et al. Blending Octane Number of Ethanol in HCCI, SI and CI Combustion Modes , 2016 .
[27] Thomas G. Leone,et al. The Effect of Compression Ratio, Fuel Octane Rating, and Ethanol Content on Spark-Ignition Engine Efficiency. , 2015, Environmental science & technology.
[28] Robert L. McCormick,et al. Heat of Vaporization Measurements for Ethanol Blends Up to 50 Volume Percent in Several Hydrocarbon Blendstocks and Implications for Knock in SI Engines , 2015 .
[29] George Jackson,et al. Group contribution methodology based on the statistical associating fluid theory for heteronuclear molecules formed from Mie segments. , 2014, The Journal of chemical physics.
[30] Stephen Kemble,et al. MIDACO on MINLP space applications , 2013 .
[31] Robert L. McCormick,et al. Utilization of Renewable Oxygenates as Gasoline Blending Components , 2011 .
[32] Salil Arora,et al. Update of Distillers Grains Displacement Ratios for Corn Ethanol Life-Cycle Analysis , 2011 .
[33] J. Pronk,et al. The Ehrlich Pathway for Fusel Alcohol Production: a Century of Research on Saccharomyces cerevisiae Metabolism , 2008, Applied and Environmental Microbiology.
[34] Christopher P. Kolodziej,et al. What fuel properties enable higher thermal efficiency in spark-ignited engines? , 2021 .
[35] N. Mac Dowell,et al. Development of robust models for the prediction of Reid vapor pressure (RVP) in fuel blends and their application to oxygenated biofuels using the SAFT-γ approach , 2021 .
[36] Michael J. Brear,et al. The octane numbers of ethanol blended with gasoline and its surrogates , 2014 .