Books on the topic 'Natural gas/hydrogen mixtures'

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1

Tabak, John. Natural gas and hydrogen. New York NY: Facts On File, 2009.

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2

Rashed, Abuagela Husein. Reduction rates of thin nickel oxide foils with hydrogen and hydrogen-helium gas mixtures: Effective diffusivities of porous product. Ann Arbor, MI: UMI Dissertation Services, 1991.

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3

Singh, Jag J. Measurement of viscosity of gaseous mixtures at atmospheric pressure. [Washington, D.C.]: National Aeronautics and Space Administration, Scientific and Technical Information Branch, 1986.

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4

Archer, G. T. Safety aspects of the effects of hydrogen sulphide concentrations in natural gas. [Sudbury]: HSE Books, 1998.

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5

Younglove, Ben. Speed of sound data and related models for mixtures of natural gas constituents. Gaithersburg, MD: U.S. Dept. of Commerce, National Institute of Standards and Technology, 1993.

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6

Sprinkle, Danny R. On-line measurement of heat of combustion of gaseous hydrocarbon fuel mixtures. Hampton, Va: Langley Research Center, 1996.

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7

Environment, Alberta Alberta, ed. Sulphur recovery guidelines for sour gas plants in Alberta. [Calgary]: ERCB, 1988.

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8

McDonald, L. Garner. Frictional ignition of natural gas-air mixtures by alternative coal-cutter bit shank materials. Washington, D.C: Dept. of the Interior, Bureau of Mines, 1992.

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9

Dingle, Oliver, and E. Steinmetz. Gasfahrzeuge: Die passende Antwort auf die CO2-Herausforderung der Zukunft? Renningen: expert-Verl, 2004.

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10

Tian ran qi tan qing tong wei su fen liu dong li xue ji qi ying yong. Beijing: Shi you gong ye chu ban she, 2010.

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11

Alberta Energy and Utilities Board. Public safety and sour gas final report. Calgary, AB: Alberta Energy and Utilities Board, 2007.

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12

Chongqing an quan gong cheng xue yuan, ed. Tian ran qi cai shu zuo ye liu hua qing fang hu. Chongqing: Xi nan shi fan da xue chu ban she, 2010.

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13

Alberta. Energy Resources Conservation Board, ed. A Technical study of shelter versus evacuation when faced with a release of hydrogen sulphide. Edmonton: Alberta Public Safety Services, 1992.

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14

Leahey, D. M. A preliminary study of the chemical composition and combustion efficiency of a sour gas flare. Edmonton, Alta: Research Management Division, Alberta Environment, 1985.

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15

Riebau, Allen R. Regional risk identification analysis applicable to resource development of H₂S-contaminated natural gas fields in southwest Wyoming. Springfield, VA: Denver, CO], 1988.

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16

T, Hathaway W., Kangas Ronald, United States. Federal Transit Administration. Office of Research, Demonstration, and Innovation, and Technology & Management Systems, Inc, eds. Clean air program: Design guidelines for bus transit systems using compressed natural gas as an alternative fuel. [Washington, DC]: Office of Research, Demonstration, and Innovation, U.S. Dept. of Transportation, Federal Transit Administration, 1996.

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17

Alp, E. Risk approach: An approach for estimating risk to public safety from uncontrolled sour gas releases. Calgary, Alta: Energy Resources Conservation Board, 1990.

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18

Alberta. Energy Resources Conservation Board. and Concord Environmental Corporation, eds. Field measurement program: Atmospheric dispersion tracer study under stable conditions and meteorological study. Calgary, Alta: Energy Resources Conservation Board, 1990.

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19

Corporation, Concord Environmental. Summary ERCB field measurement program and Concord Environmental Corporation GASCON2 and risk approach. Calgary, Alta: The Board, 1990.

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20

Alp, E. GASCON2: A model to estimate ground-level H₂S and SO₂ concentrations and consequences from uncontrolled sour gas releases. Calgary, Alta: Energy Resources Conservation Board, 1990.

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21

Ahuja, J. K. Numerical simulation of shock-induced combustion past blunt bodies using shock-fitting technique. Washington, D. C: American Institute of Aeronautics and Astronautiacs, 1994.

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22

Yudaev, Vasiliy. Hydraulics. ru: INFRA-M Academic Publishing LLC., 2021. http://dx.doi.org/10.12737/996354.

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The textbook corresponds to the general education programs of the general courses "Hydraulics" and "Fluid Mechanics". The basic physical properties of liquids, gases, and their mixtures, including the quantum nature of viscosity in a liquid, are described; the laws of hydrostatics, their observation in natural phenomena, and their application in engineering are described. The fundamentals of the kinematics and dynamics of an incompressible fluid are given; original examples of the application of the Bernoulli equation are given. The modes of fluid motion are supplemented by the features of the transient flow mode at high local resistances. The basics of flow similarity are shown. Laminar and turbulent modes of motion in pipes are described, and the classification of flows from a creeping current to four types of hypersonic flow around the body is given. The coefficients of nonuniformity of momentum and kinetic energy for several flows of Newtonian and non-Newtonian fluids are calculated. Examples of solving problems of transient flows by hydraulic methods are given. Local hydraulic resistances, their use in measuring equipment and industry, hydraulic shock, polytropic flow of gas in the pipe and its outflow from the tank are considered. The characteristics of different types of pumps, their advantages and disadvantages, and ways of adjustment are described. A brief biography of the scientists mentioned in the textbook is given, and their contribution to the development of the theory of hydroaeromechanics is shown. The four appendices can be used as a reference to the main text, as well as a subject index. Meets the requirements of the federal state educational standards of higher education of the latest generation. For students of higher educational institutions who study full-time, part-time, evening, distance learning forms of technological and mechanical specialties belonging to the group "Food Technology".
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23

Hydrogen recovery from gas mixtures using metal hydrides suspended in slurry. Luxembourg: Commission ofthe European Communities Directorate-General Information Market and Innovation, 1985.

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24

Wagner, Robert Simon. Proton and deuteron spin relaxation in hydrogen-deuteride helium gas mixtures. 1989.

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25

Engineers, Society of Automotive, and Future Transportation Technology Conference and Exposition (1993 : San Antonio, Tex.), eds. Alternative fuels: Alcohols, hydrogen, natural gas and propane. Warrendale, PA: Society of Automotive Engineers, 1993.

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26

Biswas, Sayan. Physics of Turbulent Jet Ignition: Mechanisms and Dynamics of Ultra-lean Combustion. Springer, 2019.

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27

Biswas, Sayan. Physics of Turbulent Jet Ignition: Mechanisms and Dynamics of Ultra-lean Combustion. Springer, 2018.

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28

Testa, Primo. Natural Gas and Hydrogen: Energy and the Environment Series. Scitus Academics LLC, 2018.

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29

1927-, McCarthy J. Howard, and Geological Survey (U.S.), eds. Soil gas studies around hydrogen-rich natural gas wells in northern Kansas. [Reston, Va.?]: U.S. Dept. of the Interior, Geological Survey, 1986.

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30

Scurlock, Ralph G. G. Stratification, Rollover and Handling of LNG, LPG and Other Cryogenic Liquid Mixtures. Springer, 2015.

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31

Scurlock, Ralph G. Stratification, Rollover and Handling of LNG, LPG and Other Cryogenic Liquid Mixtures. Springer London, Limited, 2015.

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32

Craig, Bruce D. Sour-gas design considerations (Henry L. Doherty series). Society of Petroleum Engineers, 1993.

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33

Holbrook, J. H., and H. J. Cialone. Effects of Sng/Hydrogen Gas Mixtures on High Pressure Pipelines (Ng-18 Report, No 151). Amer Gas Assn, 1985.

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34

Barquin, Julian, Franziska Hölzl, William J. Nuttall, François Lévêque, and Jean-Michel Glachant. Security of Energy Supply in Europe: Natural Gas, Nuclear and Hydrogen. Elgar Publishing Limited, Edward, 2010.

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35

Thakur, Amit Kumar, Zuohua Huang, and M. A. Fanhua. Hydrogen-Enriched Compressed Natural Gas Engines: A Technology for Low Impact Engines. Elsevier Science & Technology, 2022.

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36

Thakur, Amit Kumar, Zuohua Huang, and M. A. Fanhua. Hydrogen-Enriched Compressed Natural Gas Engines: A Technology for Low Impact Engines. Elsevier Science & Technology Books, 2022.

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37

executive, Health and safety. Safety Aspects of the Effects of Hydrogen Sulphide Concentrations in Natural Gas. Health and Safety Executive (HSE), 1998.

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38

Are there new directions in transportation fuels?: What about methanol? EVs? natural gas? LPG? hydrogen? Norwalk, CT: Business Communications Co., 1987.

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39

Clean air program: Use of hydrogen to power the advanced technology transit bus (ATTB) : an assessment. [Washington, DC]: U.S. Dept. of Transportation, Federal Transit Administration, Office of Research Demonstration and Innovation, 1997.

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40

F, Robertson Thomas, and United States. National Aeronautics and Space Administration., eds. The carbon dioxide chaperon efficiency for the reaction H + O₂ + M [yields] HO₂ + M from ignition delay times behind reflected shock waves. [Washington, DC]: National Aeronautics and Space Administration, 1987.

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41

T, Hathaway W., Kangas Ronald, United States. Federal Transit Administration. Office of Research, Demonstration, and Innovation, Technology & Management Systems, Inc, and John A. Volpe National Transportation Systems Center (U.S.), eds. Clean air program: Design guidelines for bus transit systems using liquified petroleum gas (LPG) as an alternative fuel. [Washington, D.C.]: U.S. Dept. of Transportation, Federal Transit Administration, Office of Research, Demonstration, and Innovation, 1996.

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42

Muk, Hwang Soon, DeWitt Kenneth J, and United States. National Aeronautics and Space Administration., eds. High temperature kinetic study of the reactions H + O₂ = OH + O and O + H₂ = OH + H in H₂/O₂ system by shock tube - laser absorption spectroscopy. [Washington, D.C.]: National Aeronautics and Space Administration, 1995.

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43

Numerical simulation of shock-induced combustion past blunt bodies using shock-fitting technique: Progress report for the period ended June 30, 1994. Norfolk, Va: Old Dominion University Research Foundation, 1994.

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44

J, Singh D., Tiwari S. N, and United States. National Aeronautics and Space Administration., eds. Numerical simulation of shock-induced combustion past blunt bodies using shock-fitting technique: Progress report for the period ended June 30, 1994. Norfolk, Va: Old Dominion University Research Foundation, 1994.

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45

Fleming, Ruven, and Joshua P. Fershee. The ‘Hydrogen Economy’ in the United States and the European Union. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198822080.003.0008.

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The chapter provides a wide-ranging look at prospects for ‘the hydrogen economy’ regarding fuel. In the European Union, hydrogen may be a means to address the intermittency of supply in the renewables sector. The US emphasis on hydrogen to operate motor vehicles contrasts with the EU’s broader climate change driven move to explore alternatives to fossil fuel. Regarding drivers of energy innovation, it is striking that the US introduction of hydrogen is specifically aimed at the transport sector and was driven by security of supply reasons rather than climate change. Further technological innovation is evident in that hydrogen can be injected into the natural gas grid or stored in dedicated reservoirs. In this regard, the chapter analyses the legal innovations required, by considering the impact on and interaction with the storage provisions of the EU Gas Directive and the proposed storage provision in the recast Electricity Directive.
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46

All Electric America: A Climate Solution and the Hopeful Future. Solar Flare Press, 2016.

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47

Delgado Martín, Jordi, Andrea Muñoz-Ibáñez, and Ismael Himar Falcón-Suárez. 6th International Workshop on Rock Physics: A Coruña, Spain 13 -17 June 2022: Book of Abstracts. 2022nd ed. Servizo de Publicacións da UDC, 2022. http://dx.doi.org/10.17979/spudc.000005.

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[Abstract] The 6th International Workshop on Rock Physics (6IWRP) was held A Coruña, Spain, between 13th and 17th of June, 2022. This meeting follows the track of the five successful encounters held in Golden (USA, 2011), Southampton (UK, 2013), Perth (Australia, 2015), Trondheim (Norway, 2017) and Hong Kong (China, 2019). The aim of the workshop was to bring together experiences allowing to illustrate, discuss and exchange recent advances in the wide realm of rock physics, including theoretical developments, in situ and laboratory scale experiments as well as digital analysis. While rock physics is at the core of the oil & gas industry applications, it is also essential to enable the energy transition challenge (e.g. CO2 and H2 storage, geothermal), ensure a safe and adequate use of natural resources and develop efficient waste management strategies. The topics of 6IWRP covered a broad spectrum of rock physics-related research activities, including: • Experimental rock physics. New techniques, approaches and applications; Characterization of the static and dynamic properties of rocks and fluids; Multiphysics measurements (NMR, electrical resistivity…); Deep/crustal scale rock physics. • Modelling and multiscale applications: from the lab to the field. Numerical analysis and model development; Data science applications; Upscaling; Microseismicity and earthquakes; Subsurface stresses and tectonic deformations. • Coupled phenomena and rock properties: exploring interactions. Anisotropy; Flow and fractures; Temperature effects; Rock-fluid interaction; Fluid and pressure effects on geophysical signatures. • The energy transition challenge. Applications to energy storage (hydrogen storage in porous media), geothermal resources, energy production (gas hydrates), geological utilization and storage of CO2, nuclear waste disposal. • Rock physics templates: advances and applications. Quantitative assessment; Applications to reser voir characterization (role of seismic wave anisotropy and fracture networks). • Advanced rock physics tools. Machine learning; application of imaging (X-ray CT, X-ray μCT, FIB-SEM…) to obtain rock proper ties. This book compiles more than 50 abstracts, summarizing the works presented in the 6IWRP by rock physicists from all over the world, belonging to both academia and industry. This book means an updated overview of the rock physics research worldwide.
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