Books on the topic 'Cage hydrocarbons'

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1

1927-, Olah George A., and Schleyer, Paul von R., 1930-, eds. Cage hydrocarbons. New York: Wiley, 1990.

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2

1936-, Ōsawa Eiji, and Yonemitsu Osamu 1930-, eds. Carbocyclic cage compounds: Chemistry and applications. New York, N.Y: VCH, 1992.

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3

Birnstingl, J. Low-temperature thermal desorption: Hydrocarbon and PCB remediation case studies. London: CIRIA, 2000.

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4

Hogg, Judith Ann. A case-control study of chronic pancreatitis and hydrocarbon exposure. Manchester: University of Manchester, 1993.

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5

Continuous soil gas measurements: Worst case risk parameters. West Conshohocken, PA: ASTM International, 2013.

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6

E, Osawa, and Yonemitsu O, eds. Carbocyclic Cage Compounds: Chemistry and Applications. VCH Verlagsgesellschaft, Germany, 1992.

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7

C, Brown D., Gorsline D. S, Schweller W. J, and Society of Economic Paleontologists and Minerologists. Pacific Section., eds. Deep-marine sedimentation: Depositional models and case histories in hydrocarbon exploration & development. Los Angeles: The Pacific Section SEPM, 1990.

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8

Deep-marine sedimentation: Depositional models and case histories in hydrocarbon exploration & development. Bakersfield, CA: Pacific Section SEPM, The Society of Sedimentary Geology, 1990.

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9

Narr, Wayne, David S. Schechter, and Laird B. Thompson. Naturally Fractured Reservoir Characterization. Society of Petroleum Engineers, 2006. http://dx.doi.org/10.2118/9781613999615.

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Naturally fractured reservoirs present unique and specialized challenges to hydrocarbon extraction. Naturally Fractured Reservoir Characterization seeks to confront many of these challenges by providing an introduction to the engineering and geological character of naturally fractured reservoirs. The focus is on understanding fractures in a reservoir – how to determine whether fractures are important to hydrocarbon producibility, and if so, how to analyze the fracture system for the purpose of improved reservoir management. Topics discussed include the geological character of fracture systems, how to recognize and describe them, their effect on reservoir performance, how to distribute them in a reservoir model, and different approaches to flow simulation. A blend of engineering and geological data and tools are used to optimize our understanding of this class of reservoirs. Case histories of several naturally fractured reservoirs are presented to show that a range of strategies may be required to successfully address the complexity of this diverse class of reservoirs.
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10

Geophysical Exploration Technology Applications In Lithological And Stratigraphic Reservoirs. Elsevier Science Publishing Co Inc, 2014.

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11

Lee, P. J. Statistical Methods for Estimating Petroleum Resources. Edited by Jo Anne DeGraffenreid. Oxford University Press, 2008. http://dx.doi.org/10.1093/oso/9780195331905.001.0001.

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This book describes procedures for determining the total hydrocarbon (petroleum) resource or resource potential in a region. Statistical concepts and methods employed in petroleum resource assessment are the subject of the manuscript, extensively illustrated by numerous real case studies. Prof. Lee's computer-aided Petroleum Information Management and Resource Evaluation System (PETRIMES) methodology has been adopted by governments around the world and by major multinational oil companies to perform resource assessment and to predict future oil and gas production. Though this methodology is so widely used, there is no "user's guide" to it, and this book will be the definitive resource for PETRIMES users.
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12

Gluckman, Sir Peter, Mark Hanson, Chong Yap Seng, and Anne Bardsley. Foods, exposures, and lifestyle risk factors in pregnancy and breastfeeding. Oxford University Press, 2015. http://dx.doi.org/10.1093/med/9780198722700.003.0030.

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Advice for pregnant women on food avoidance, dangerous exposures, and inappropriate behaviours abounds on the internet and through various information sources. This chapter reviews the evidence base for such advice and clarifies issues where common advice is not supported by credible data. Foods containing potential teratogens, mutagens, or toxicants that need consideration include liver (high vitamin A), some herbal teas, contaminated grains, predatory fish, caffeine-containing foods, and various sources of foodborne infections. Exposure to environmental toxicants such as lead, pesticides, herbicides, polycyclic aromatic hydrocarbons, bisphenol-A, and other endocrine-disrupting chemicals should be avoided, as should alcohol consumption and cigarette smoking. Restrictive diets and unusual dietary cravings (pica) need to be properly managed. Evidence for harm from personal care products is generally weak, but pregnant women may choose to avoid some unnecessary exposures.
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13

Pievatolo, Antonio, and Fabrizio Ruggeri. Bayes linear uncertainty analysis for oil reservoirs based on multiscale computer experiments. Edited by Anthony O'Hagan and Mike West. Oxford University Press, 2018. http://dx.doi.org/10.1093/oxfordhb/9780198703174.013.10.

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This article discusses the results of a Bayes linear uncertainty analysis for oil reservoirs based on multiscale computer experiments. Using the Gullfaks oil and gas reservoir located in the North Sea as a case study, the article demonstrates the applicability of Bayes linear methods to address highly complex problems for which the full Bayesian analysis may be computationally intractable. A reservoir simulation model, run at two different levels of complexity, is used, and a simulator of a hydrocarbon reservoir represents properties of the reservoir on a three-dimensional grid. The article also describes a general formulation for the approach to uncertainty analysis for complex physical systems given a computer model for that system. Finally, it presents the results of simulations and forecasting for the Gullfaks reservoir.
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14

Craig, Tevendale, and Bakstad Samantha. Part I Commercial Arbitration in the Energy Sector, 2 Upstream Oil and Gas Disputes. Oxford University Press, 2018. http://dx.doi.org/10.1093/law/9780198805786.003.0002.

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This chapter focuses on Joint Operating Agreements (JOAs). A JOA is an agreement between two or more companies which defines their respective rights and obligations in the exploration of a hydrocarbon project. The purpose of the JOA is for the participating companies to share risks (costs) and rewards (revenues) in relation to the project, and to define their respective roles. Among other things, the chapter discusses leading model form JOAs, as well as the interpretation and application of clauses typically found in JOAs, such as exculpatory or liability limitation clauses, pre-emption clauses, and clauses dealing with the consequences of a party's default or forfeiture. It also analyzes case law from various jurisdictions regarding implied or statutory obligations, such as duties of ‘good and fair dealing’ and fiduciary duties amongst the partners.
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15

James, Harrison. 8 Environmental Regulation of Seabed Activities within and beyond National Jurisdiction. Oxford University Press, 2017. http://dx.doi.org/10.1093/law/9780198707325.003.0008.

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Chapter 8 considers the regulation of seabed activities within and beyond national jurisdiction. First, the legal framework for seabed activities within national jurisdiction is examined, highlighting the central role played by coastal States, the basic rules that apply by virtue of UNCLOS, and the opportunities for supplementary global or regional rules to improve marine environmental protection. The chapter undertakes a case study of the development of rules and standards relating to the hydrocarbon industry. The chapter then turns to the regulation of seabed activities beyond national jurisdiction. In this context, UNCLOS confers significant legislative and enforcement powers on the International Seabed Authority, which acts on behalf of the international community to regulate deep-seabed mining. The chapter analyses the way in which environmental protection has been integrated into Regulations to date, and discusses future challenges remaining in this respect.
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16

Ogiesoba, Osareni C., and William A. Ambrose. Systematic Approach to Identifying Hydrocarbon Sweet Spots Using Integrated Seismic Multiattribute, Wireline-Log, and Core Analyses: Case Study from the Upper Cretaceous Taylor Serbin Field, Southeast Texas. University of Texas at Austin Bureau of Economic Geology, 2021.

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17

Verdini Trejo, Bruno. Winning Together. The MIT Press, 2018. http://dx.doi.org/10.7551/mitpress/9780262037136.001.0001.

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Through an analysis of prominent transboundary natural resource management negotiation cases, Winning Together outlines how government, industry, and NGOs can effectively overcome past grievances, break the status quo, resolve conflicts, and create mutual gains in high-stakes water, energy, and environmental disputes. The book examines two landmark international negotiations between the United States and Mexico, both with agreements signed in 2012 after several decades of deadlock. The first case involves the conflict over the shared hydrocarbon reservoirs in the Gulf of Mexico, containing significant oil and natural gas resources. The second analyzes the dispute, amidst severe drought and increased climate risks, over the environmental resources and shared waters of the Colorado River, providing irrigation and water supply to more than 40 million people. For the first time, the two countries established a binational framework to co-develop and jointly manage these transboundary natural resources, as partners. Through unprecedented interviews with over 70 negotiators on both sides of the border, the book underscores strategies by which resource management practitioners can effectively increase river basin supply, re-think irrigation and storage infrastructure, restore ecosystems and habitats, enhance coordination between private and state owned companies, improve energy transition and planning, and re-define the scope and impact of diplomatic partnerships. Winning Together shows how developed and developing countries can move beyond hard-bargaining tactics and avoid the ultimatums that accompany the presumption that there are not enough resources to go around, and that one side must win and the other must inevitably lose.
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