Listing 1 - 10 of 16 | << page >> |
Sort by
|
Choose an application
How to achieve unlimited, safe, clean and low-cost energy by laser- or beam-driven inertial nuclear fusion has preoccupied all winners of the Edward Teller Medal since its inception in 1991. This book presents their findings, meeting discussions, and personal insights from Edward Teller himself. Expect discussion of important advances anticipated in the future such as multi-billion dollar fusion research projects (NIF), and new schemes such as the petawatt-picosecond laser-plasma interactions evoking new physics and coupling mechanisms. For the first time, laser technology of the new century i
Inertial confinement fusion. --- Nuclear fusion. --- Fusion, Nuclear --- Fusion reactions --- Fusion --- Nuclear reactions --- Fusion, Inertial confinement --- Inertial fusion --- Pellet fusion --- Controlled fusion
Choose an application
Woody biomass is most widely used for energy production. In the United States, roughly 2% of the energy consumed annually is generated from wood and wood-derived fuels. Woody biomass needs to be preprocessed and pretreated before it is used for energy production. Preprocessing and pretreatments improve the physical, chemical, and rheological properties, making them more suitable for feeding, handling, storage transportation, and conversion. Mechanical preprocessing technologies such as size reduction and densification, help improve particle size distribution and density. Thermal pretreatment can reduce grinding energy and torrefied ground biomass has improved sphericity, particle surface area, and particle size distribution. This book focuses on several specific topics, such as understanding how forest biomass for biofuels impacts greenhouse gas emissions; mechanical preprocessing, such as densification of forest residue biomass, to improve physical properties such as size, shape, and density; the impact of thermal pretreatment temperatures on woody biomass chemical composition, physical properties, and microstructure for thermochemical conversions such as pyrolysis and gasification; the grindability of torrefied pellets; use of wood for gasification and as a filter for tar removal; and understanding the pyrolysis kinetics of biomass using thermogravimetric analyzers.
grindability --- torrefied biomass --- pellet --- energy consumption --- co-firing --- biomass --- gasification --- tar --- syngas cleaning --- dry filter --- pyrolysis --- chemical composition --- micro-structure --- physical properties --- scanning electron microscopy --- wood --- thermal pretreatment --- torrefaction --- timber --- harvest residues --- ethanol --- GHG savings --- Michigan --- variety and rootstock selection --- almond tree --- agricultural practices --- halophytes --- Phoenix dactylifera --- Salicornia bigelovii --- thermogravimetric analysis --- torrefied biomass --- correlation --- ultimate analysis --- solid yield --- heating value --- OLS --- 2-inch top pine residue + switchgrass blends --- pelleting process variables --- pellet quality --- specific energy consumption --- response surface models --- hybrid genetic algorithm --- pelleting --- functional groups --- pellet strength --- combustion efficiency --- forest biomass --- Australia --- biomass energy potential --- emission --- bioenergy
Choose an application
POLITICAL SCIENCE --- Public Affairs & Administration --- Inertial confinement fusion --- Physics --- Physical Sciences & Mathematics --- Nuclear Physics --- Government policy --- Inertial confinement fusion. --- United States. --- Fusion, Inertial confinement --- Inertial fusion --- Pellet fusion --- NIF --- Controlled fusion
Choose an application
The aim of this book is to investigate critical economic aspects and price risks along international pellet supply chains, and to offer new insights into the interconnections between the sector, the various supply risks within the market and guidelines for de-risking biomass supply chains. It provides three real case studies as practical examples of determining actual supply costs from resource production to end-user, and in doing so identifies and analyzes general economic performance indicators and price drivers for biomass supply chains. It also investigates the impact of several risks like raw material prices, exchange and freight rates on total prices. As a result, the reader learns how price risks are hedged to avoid project defaults and how to achieve the renewable energy targets of the end-user. Practical guidelines for recognising critical economic issues in biomass supply chains and for applying adequate de-risk strategies are also provided. Offering insights to a broad audience, this book is intended for researchers and professionals interested in renewable energy systems, biomass resource management and supply chain management. It also provides an invaluable resource to policy makers seeking guidelines for successfully managing the introduction of sustainable biomass projects.
Business logistics --- Wood pellets. --- Economic aspects. --- Fuel pellets, Wood --- Pellet fuel --- Pellets, Wood --- Wood fuel pellets --- Wood pellet fuel --- Fuelwood --- Pelletizing --- Wood waste --- Supply chain management --- Industrial management --- Logistics --- Environmental economics. --- Biotechnology. --- Energy Policy, Economics and Management. --- Environmental Economics. --- Environmental Engineering/Biotechnology. --- Chemical engineering --- Genetic engineering --- Economics --- Environmental quality --- Environmental aspects --- Economic aspects --- Energy policy. --- Energy and state. --- Environmental engineering. --- Environmental control --- Environmental effects --- Environmental stresses --- Engineering --- Environmental health --- Environmental protection --- Pollution --- Sustainable engineering --- Energy and state --- Power resources --- State and energy --- Industrial policy --- Energy conservation --- Government policy
Choose an application
The use of biomass and organic waste material as a primary resource for the production of fuels, chemicals, and electric power is of growing significance in light of the environmental issues associated with the use of fossil fuels. For this reason, it is vital that new and more efficient technologies for the conversion of biomass are investigated and developed. Today, various advanced methods can be used for the conversion of biomass. These methods are broadly classified into thermochemical conversion, biochemical conversion, and electrochemical conversion. This book collects papers that consider various aspects of sustainability in the conversion of biomass into valuable products, covering all the technical stages from biomass production to residue management. In particular, it focuses on experimental and simulation studies aiming to investigate new processes and technologies on the industrial, pilot, and bench scales.
Research & information: general --- Physics --- biomass pellet --- laser-induced breakdown spectroscopy --- chemometrics --- quality indexes --- biogas --- circular economy --- bioeconomy --- wastes --- energy --- R.E.S --- biomass --- anaerobic --- digestion --- agriculture --- livestock --- Greece --- biorefinery --- absorbent hygiene product --- waste --- gasification --- devolatilization --- pyrolysis --- fluidized bed --- diapers --- cellulosic fraction --- chemical looping --- autothermal --- pilot plant --- Açaí --- residual seeds --- bio-oil --- distillation --- gasoline --- light kerosene --- kerosene-like fuel --- torrefaction --- agricultural by-products --- mixing ratios --- solid fuel --- pellet evaluation --- Açaí seeds --- hydrothermal carbonization --- hot compressed water --- process analysis --- HMF --- furfural --- acetic acid --- mass production --- corn stover --- hydrothermal process --- hydrochar --- adsorption --- thermo-gravimetric analysis --- scanning electron microscopy --- X-ray diffraction --- BET analysis --- disposable masks --- devolatilization tests --- Aspen Plus ®simulation --- tar analysis --- ultrasonic --- components fractionation --- lignocellulose --- ethanol treatment --- biomass gasification --- dual bubbling bed gasifier --- innovative pilot scale gasifier --- H2-rich syngas
Choose an application
The papers published in this Special Issue “WP3—Innovation in Agriculture and Forestry Sector for Energetic Sustainability” bring together some of the latest research results in the field of biomass valorization and the process of energy production and climate change and other areas relevant to energetic sustainability [1–20]. Moreover, several works address the very important topic of evaluating the safety aspects for energy plant use [21–24]. Responses to our call generated the following statistics:• Submissions (21);• Publications (15);• Rejections (6);• Article types: research articles (13), reviews (2). Of the submitted papers, 15 have been successfully published as articles. Reviewing and selecting the papers for this Special Issue was very inspiring and rewarding. We also thank the editorial staff and reviewers for their efforts and help during the process. For better comprehension, the contributions to this Special Issue are divided into sections, as follows.
biomass waste --- gasification --- power generation --- internal combustion engine --- CHP --- Aspen Plus --- rotary dryer --- drying process --- thermal energy --- wood chips --- life cycle analysis --- environmental valuation --- biochar --- willow --- pig manure --- renewable energy --- biomass --- olive pomace --- combustion --- ORC --- working fluid --- beet tops --- rotary cutting device --- tractor --- oscillations --- differential equations --- optimal parameters --- biomass production --- greenhouse --- multiple environmental parameters --- interactive optimization scheme --- spatial distributed factors --- online–offline strategy --- CFD-EA --- chipping --- pellet --- poplar --- SRWC --- pelletization --- biomass quality --- energy quality --- horse skidding --- winch skidding --- cable yarder --- life cycle assessment --- societal assessment --- economic assessment --- multi-criteria decision analysis --- sustainable forest management --- innovation --- agriculture --- forestry --- energy --- sustainability --- updraft --- syngas --- oxidizing agent --- energy saving --- efficiency --- controlled environment --- agricultural residues --- market --- anaerobic digestion --- global warming potential --- externalities --- compost --- woody pellet --- agropellet --- quality --- standards --- blending --- sugar beet --- beet top cutting --- tractor–harvester aggregate --- n/a --- online-offline strategy --- tractor-harvester aggregate
Choose an application
As the world enters the third decade of the 21st century, a shift in global energy demand and use is anticipated. The transportation industry is one of the largest energy users, with major environmental consequences. Additionally, with the most ambitious electric vehicle predictions, the bulk of cars sold in 2040 will still have internal combustion engines. As a result, we must continue to explore all options for reducing IC engine emissions, as well as pathways to reduce potential vehicle CO2 emissions. Hydrogen, on the other hand, which can be used in both internal combustion engines and fuel cells, is seen as one of the future's most important energy vectors. In terms of production, storage, and application, this technology still faces several challenges. This Special Issue features original research papers, as well as important review articles on current issues relating to laboratory research and in-vehicle test results on different renewable combustion strategies that seek to reduce environmental impact.
turbine-based combined cycle engine --- TBCC --- rocket-augmented --- trajectory optimization --- Gauss pseudospectral method --- efficiency analysis --- combined design --- integrated design --- RCEM --- GCI --- gasoline --- biodiesel --- fuel injection pressure --- circular economy --- coal power plant --- coal combustion products --- industrial waste --- swirl burner --- waste biogas --- hydrogen --- oxygen --- combustion --- flame stability --- blow-off limit --- biomass combustion --- pellet boiler --- CFD modeling --- renewable heating --- waste cooking oil --- transesterification --- response surface methodology --- central composite design --- liquefied natural gas --- diesel engine --- greenhouse gas emissions --- sustainable development --- acetone-butanol-ethanol mixture --- spray visualization --- emissions --- power boilers --- the load-bearing structures --- damage assessment --- fires --- tanks --- lignite --- anthropogenic emission --- mercury removal --- flue gases purification --- low-cost asorbents
Choose an application
Laser-Plasma Interactions and Applications covers the fundamental and applied aspects of high power laser-plasma physics. With an internationally renowned team of authors, the book broadens the knowledge of young researchers working in high power laser-plasma science by providing them with a thorough pedagogical grounding in the interaction of laser radiation with matter, laser-plasma accelerators, and inertial confinement fusion. The text is organised such that the theoretical foundations of the subject are discussed first, in Part I. In Part II, topics in the area of high energy density physics are covered. Parts III and IV deal with the applications to inertial confinement fusion and as a driver of particle and radiation sources, respectively. Finally, Part V describes the principle diagnostic, targetry, and computational approaches used in the field. This book is designed to give students a thorough foundation in the fundamental physics of laser-plasma interactions. It will also provide readers with knowledge of the latest research trends and elucidate future exciting challenges in laser-plasma science.
Laser-plasma interactions. --- Physics --- Physical Sciences & Mathematics --- Atomic Physics --- Inertial confinement fusion. --- Fusion, Inertial confinement --- Inertial fusion --- Pellet fusion --- Interactions, Laser-plasma --- Physics. --- Nuclear fusion. --- Atoms. --- Matter. --- Plasma (Ionized gases). --- Lasers. --- Photonics. --- Atoms and Molecules in Strong Fields, Laser Matter Interaction. --- Plasma Physics. --- Nuclear Fusion. --- Laser Technology, Photonics. --- Atomic, Molecular, Optical and Plasma Physics. --- New optics --- Optics --- Light amplification by stimulated emission of radiation --- Masers, Optical --- Optical masers --- Light amplifiers --- Light sources --- Optoelectronic devices --- Nonlinear optics --- Optical parametric oscillators --- Gaseous discharge --- Gaseous plasma --- Magnetoplasma --- Ionized gases --- Atoms --- Dynamics --- Gravitation --- Substance (Philosophy) --- Chemistry, Physical and theoretical --- Matter --- Stereochemistry --- Fusion, Nuclear --- Fusion reactions --- Fusion --- Nuclear reactions --- Natural philosophy --- Philosophy, Natural --- Physical sciences --- Constitution --- Laser-plasma interactions --- Controlled fusion --- Laser beams --- Plasma (Ionized gases) --- Optics, Lasers, Photonics, Optical Devices.
Choose an application
This book provides readers with an introductory understanding of Inertial Electrostatic Confinement (IEC), a type of fusion meant to retain plasma using an electrostatic field. IEC provides a unique approach for plasma confinement, as it offers a number of spin-off applications, such as a small neutron source for Neutron Activity Analysis (NAA), that all work towards creating fusion power. The IEC has been identified in recent times as an ideal fusion power unit because of its ability to burn aneutronic fuels like p-B11 as a result of its non-Maxwellian plasma dominated by beam-like ions. This type of fusion also takes place in a simple mechanical structure small in size, which also contributes to its viability as a source of power. This book posits that the ability to study the physics of IEC in very small volume plasmas makes it possible to rapidly investigate a design to create a power-producing device on a much larger scale. Along with this hypothesis the book also includes a conceptual experiment proposed for demonstrating breakeven conditions for using p-B11 in a hydrogen plasma simulation. This book also: Offers an in-depth look, from introductory basics to experimental simulation, of Inertial Electrostatic Confinement, an emerging method for generating fusion power Discusses how the Inertial Electrostatic Confinement method can be applied to other applications besides fusion through theoretical experiments in the text Details the study of the physics of Inertial Electrostatic Confinement in small-volume plasmas and suggests that their rapid reproduction could lead to the creation of a large-scale power-producing device Perfect for researchers and students working with nuclear fusion, Inertial Electrostatic Confinement (IEC) Fusion: Fundamentals and Applications also offers the current experimental status of IEC research, details supporting theories in the field and introduces other potential applications that stem from IEC.
Inertial confinement fusion. --- Nuclear fusion. --- Nuclear engineering. --- Inertial confinement fusion --- Fusion, Inertial confinement --- Inertial fusion --- Pellet fusion --- Scientific applications --- Fusion, Nuclear --- Fusion reactions --- Atomic power engineering --- Engineering. --- Atoms. --- Physics. --- Matter. --- Thermodynamics. --- Heat engineering. --- Heat transfer. --- Mass transfer. --- Nuclear Engineering. --- Nuclear Fusion. --- Engineering Thermodynamics, Heat and Mass Transfer. --- Atoms and Molecules in Strong Fields, Laser Matter Interaction. --- Controlled fusion --- Fusion --- Nuclear reactions --- Engineering --- Nuclear physics --- Nuclear energy --- Mass transport (Physics) --- Thermodynamics --- Transport theory --- Heat transfer --- Thermal transfer --- Transmission of heat --- Energy transfer --- Heat --- Mechanical engineering --- Chemistry, Physical and theoretical --- Dynamics --- Mechanics --- Physics --- Heat-engines --- Quantum theory --- Atoms --- Gravitation --- Substance (Philosophy) --- Natural philosophy --- Philosophy, Natural --- Physical sciences --- Matter --- Stereochemistry --- Construction --- Industrial arts --- Technology --- Constitution --- Nuclear Energy. --- Nuclear energy. --- Atomic energy --- Atomic power --- Energy, Atomic --- Energy, Nuclear --- Nuclear power --- Power, Atomic --- Power, Nuclear --- Force and energy --- Power resources --- Nuclear engineering --- Nuclear facilities --- Nuclear power plants --- Nuclear physics.
Choose an application
Biofuels have recently attracted a lot of attention, mainly as alternative fuels for applications in energy generation and transportation. The utilization of biofuels in such controlled combustion processes has the great advantage of not depleting the limited resources of fossil fuels while leading to emissions of greenhouse gases and smoke particles similar to those of fossil fuels. On the other hand, a vast amount of biofuels are subjected to combustion in small-scale processes, such as for heating and cooking in residential dwellings, as well as in agricultural operations, such as crop residue removal and land clearing. In addition, large amounts of biomass are consumed annually during forest and savanna fires in many parts of the world. These types of burning processes are typically uncontrolled and unregulated. Consequently, the emissions from these processes may be larger compared to industrial-type operations. Aside from direct effects on human health, especially due to a sizeable fraction of the smoke emissions remaining inside residential homes, the smoke particles and gases released from uncontrolled biofuel combustion impose significant effects on the regional and global climate. Estimates have shown the majority of carbonaceous airborne particulate matter to be derived from the combustion of biofuels and biomass. “Production of Biofuels and Numerical Modelling of Chemical Combustion Systems” comprehensively overviews and includes in-depth technical research papers addressing recent progress in biofuel production and combustion processes. To be specific, this book contains sixteen high-quality studies (fifteen research papers and one review paper) addressing techniques and methods for bioenergy and biofuel production as well as challenges in the broad area of process modelling and control in combustion processes.
microalgae --- hydrothermal liquefaction --- pretreatment --- low O and N biocrude --- biodiesel --- esterification --- free fatty acids --- glycerol --- waste cooking oil --- Computational Fluid Dynamics --- two-stroke --- dual-fuel engine --- simulation --- pre-combustion chamber --- internal combustion engine --- particulate matter emissions --- biomorphic silicon carbide --- vegetal waste --- diesel particulate filter --- biocrude --- metal-oxide catalyst --- bioethanol --- dilute acid pretreatment --- enzymatic hydrolysis --- olive stones --- Pachysolen tannophilus --- response surface methodology --- compression ignition --- direct injection --- cryogenic gas --- diesel engines --- dual fuel engines --- natural gas --- greenhouse gas emissions --- particulate matter --- carotenoids --- extremophiles --- microalgal biotechnology --- eucalyptus kraft lignin --- tree leaf --- pellet --- additive --- biofuel --- circular economy --- piston bowl --- alternative fuel --- vanes --- emulsified biofuel --- combustion --- gasification --- olive --- olive oils --- olive-pruning debris --- olive pomaces --- pyrolysis --- biogas --- environmental impact --- life cycle assessment --- olive pomace --- sustainability --- TGA --- hemicellulose --- cellulose --- lignin --- pseudocomponent kinetic model --- biomass --- culture --- scale-up --- Phaeodactylum tricornutum --- burning characteristics --- fatty acid methyl ester --- added water content --- fuel structure --- distillation temperature --- layered double hydroxide --- toluene steam reforming --- tar --- Ni-based catalyst --- hydrotalcite --- hydrogen production --- n/a
Listing 1 - 10 of 16 | << page >> |
Sort by
|