Probing the Low-Temperature Chain-Branching Mechanism for N-Butane Autoignition Chemistry Via Time-Resolved Measurements of Ketohydroperoxide Formation in Photolytically Initiated N-C4H10 Oxidation

Probing the Low-Temperature Chain-Branching Mechanism for N-Butane Autoignition Chemistry Via Time-Resolved Measurements of Ketohydroperoxide Formation in Photolytically Initiated N-C4H10 Oxidation
Title Probing the Low-Temperature Chain-Branching Mechanism for N-Butane Autoignition Chemistry Via Time-Resolved Measurements of Ketohydroperoxide Formation in Photolytically Initiated N-C4H10 Oxidation PDF eBook
Author
Publisher
Pages 13
Release 2015
Genre
ISBN

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Combustion Chemistry and the Carbon Neutral Future

Combustion Chemistry and the Carbon Neutral Future
Title Combustion Chemistry and the Carbon Neutral Future PDF eBook
Author Kenneth Brezinsky
Publisher Elsevier
Pages 666
Release 2023-02-16
Genre Science
ISBN 0323993109

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As the demands for cleaner, more efficient, reduced and zero carbon emitting transportation increase, the traditional focus of Combustion Chemistry research is stretching and adapting to help provide solutions to these contemporary issues. Combustion Chemistry and the Carbon Neutral Future: What will the Next 25 Years of Research Require? presents a guide to current research in the field and an exploration of possible future steps as we move towards cleaner, greener and reduced carbon combustion chemistry. Beginning with a discussion of engine emissions and soot, the book goes on to discuss a range of alternative fuels, including hydrogen, ammonia, small alcohols and other bio-oxygenates, natural gas, syngas and synthesized hydrocarbon fuels. Methods for predicting and improving efficiency and sustainability, such as low temperature and catalytic combustion, chemical looping, supercritical fluid combustion, and diagnostic monitoring even at high pressure, are then explored. Some novel aspects of biomass derived aviation fuels and combustion synthesis are also covered. Combining the knowledge and experience of an interdisciplinary team of experts in the field, Combustion Chemistry and the Carbon Neutral Future: What will the Next 25 Years of Research Require? is an insightful guide to current and future focus areas for combustion chemistry researchers in line with the transition to greener, cleaner technologies. - Provides insight on current developments in combustion chemistry as a tool for supporting a reduced-carbon future - Reviews modeling and diagnostic tools, in addition to key approaches and alternative fuels - Includes projections for the future from leaders in the field, pointing current and prospective researchers to potentially fruitful areas for exploration

Additional Chain-branching Pathways in the Low-temperature Oxidation of Branched Alkanes

Additional Chain-branching Pathways in the Low-temperature Oxidation of Branched Alkanes
Title Additional Chain-branching Pathways in the Low-temperature Oxidation of Branched Alkanes PDF eBook
Author
Publisher
Pages 11
Release 2015
Genre
ISBN

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Chain-branching reactions represent a general motif in chemistry, encountered in atmospheric chemistry, combustion, polymerization, and photochemistry; the nature and amount of radicals generated by chain-branching are decisive for the reaction progress, its energy signature, and the time towards its completion. In this study, experimental evidence for two new types of chain-branching reactions is presented, based upon detection of highly oxidized multifunctional molecules (HOM) formed during the gas-phase low-temperature oxidation of a branched alkane under conditions relevant to combustion. The oxidation of 2,5-dimethylhexane (DMH) in a jet-stirred reactor (JSR) was studied using synchrotron vacuum ultra-violet photoionization molecular beam mass spectrometry (SVUV-PI-MBMS). Specifically, species with four and five oxygen atoms were probed, having molecular formulas of C8H14O4 (e.g., diketo-hydroperoxide/keto-hydroperoxy cyclic ether) and C8H16O5 (e.g., keto-dihydroperoxide/dihydroperoxy cyclic ether), respectively. The formation of C8H16O5 species involves alternative isomerization of OOQOOH radicals via intramolecular H-atom migration, followed by third O2 addition, intramolecular isomerization, and OH release; C8H14O4 species are proposed to result from subsequent reactions of C8H16O5 species. The mechanistic pathways involving these species are related to those proposed as a source of low-volatility highly oxygenated species in Earth's troposphere. At the higher temperatures relevant to auto-ignition, they can result in a net increase of hydroxyl radical production, so these are additional radical chain-branching pathways for ignition. Furthermore, the results presented herein extend the conceptual basis of reaction mechanisms used to predict the reaction behavior of ignition, and have implications on atmospheric gas-phase chemistry and the oxidative stability of organic substances.

Time-resolved Measurements of Product Formation in Neopentane Oxidation

Time-resolved Measurements of Product Formation in Neopentane Oxidation
Title Time-resolved Measurements of Product Formation in Neopentane Oxidation PDF eBook
Author
Publisher
Pages 11
Release 2015
Genre
ISBN

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Unraveling Autoignition Chemistry of N-butane from Pressure-dependent Product Formation Measurements

Unraveling Autoignition Chemistry of N-butane from Pressure-dependent Product Formation Measurements
Title Unraveling Autoignition Chemistry of N-butane from Pressure-dependent Product Formation Measurements PDF eBook
Author
Publisher
Pages 21
Release 2013
Genre
ISBN

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Computational Fluid and Solid Mechanics 2003

Computational Fluid and Solid Mechanics 2003
Title Computational Fluid and Solid Mechanics 2003 PDF eBook
Author K.J Bathe
Publisher Elsevier
Pages 2485
Release 2003-06-02
Genre Technology & Engineering
ISBN 008052947X

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Bringing together the world's leading researchers and practitioners of computational mechanics, these new volumes meet and build on the eight key challenges for research and development in computational mechanics.Researchers have recently identified eight critical research tasks facing the field of computational mechanics. These tasks have come about because it appears possible to reach a new level of mathematical modelling and numerical solution that will lead to a much deeper understanding of nature and to great improvements in engineering design.The eight tasks are: - The automatic solution of mathematical models - Effective numerical schemes for fluid flows - The development of an effective mesh-free numerical solution method - The development of numerical procedures for multiphysics problems - The development of numerical procedures for multiscale problems - The modelling of uncertainties - The analysis of complete life cycles of systems - Education - teaching sound engineering and scientific judgement Readers of Computational Fluid and Solid Mechanics 2003 will be able to apply the combined experience of many of the world's leading researchers to their own research needs. Those in academic environments will gain a better insight into the needs and constraints of the industries they are involved with; those in industry will gain a competitive advantage by gaining insight into the cutting edge research being carried out by colleagues in academia. Features - Bridges the gap between academic researchers and practitioners in industry - Outlines the eight main challenges facing Research and Design in Computational mechanics and offers new insights into the shifting the research agenda - Provides a vision of how strong, basic and exciting education at university can be harmonized with life-long learning to obtain maximum value from the new powerful tools of analysis

Low-temperature Combustion and Autoignition

Low-temperature Combustion and Autoignition
Title Low-temperature Combustion and Autoignition PDF eBook
Author M.J. Pilling
Publisher Elsevier
Pages 823
Release 1997-11-27
Genre Science
ISBN 0080535658

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Combustion has played a central role in the development of our civilization which it maintains today as its predominant source of energy. The aim of this book is to provide an understanding of both fundamental and applied aspects of low-temperature combustion chemistry and autoignition. The topic is rooted in classical observational science and has grown, through an increasing understanding of the linkage of the phenomenology to coupled chemical reactions, to quite profound advances in the chemical kinetics of both complex and elementary reactions. The driving force has been both the intrinsic interest of an old and intriguing phenomenon and the centrality of its applications to our economic prosperity. The volume provides a coherent view of the subject while, at the same time, each chapter is self-contained.