Academic literature on the topic 'Energy arbitrage'
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Journal articles on the topic "Energy arbitrage"
Overturf, Michael C., and Brian Flynn. "Energy Sufficiency Arbitrage." Distributed Generation & Alternative Energy Journal 27, no. 4 (September 2012): 53–73. http://dx.doi.org/10.1080/21563306.2012.10554222.
Full textFlamm, Benjamin, Annika Eichler, Roy S. Smith, and John Lygeros. "Price arbitrage using variable-efficiency energy storage." Journal of Physics: Conference Series 1343 (November 2019): 012060. http://dx.doi.org/10.1088/1742-6596/1343/1/012060.
Full textBrivio, Claudio, Stefano Mandelli, and Marco Merlo. "Battery energy storage system for primary control reserve and energy arbitrage." Sustainable Energy, Grids and Networks 6 (June 2016): 152–65. http://dx.doi.org/10.1016/j.segan.2016.03.004.
Full textBassett, Kyle, Rupp Carriveau, and David S. K. Ting. "Energy arbitrage and market opportunities for energy storage facilities in Ontario." Journal of Energy Storage 20 (December 2018): 478–84. http://dx.doi.org/10.1016/j.est.2018.10.015.
Full textHashmi, Md Umar, Deepjyoti Deka, Ana Busic, Lucas Pereira, and Scott Backhaus. "Arbitrage With Power Factor Correction Using Energy Storage." IEEE Transactions on Power Systems 35, no. 4 (July 2020): 2693–703. http://dx.doi.org/10.1109/tpwrs.2020.2969978.
Full textNakajima, Tadahiro. "Expectations for Statistical Arbitrage in Energy Futures Markets." Journal of Risk and Financial Management 12, no. 1 (January 15, 2019): 14. http://dx.doi.org/10.3390/jrfm12010014.
Full textPonnaganti, Pavani, Birgitte Bak-Jensen, Brian Vejrum Wæhrens, and Jesper Asmussen. "Assessment of Energy Arbitrage Using Energy Storage Systems: A Wind Park’s Perspective." Energies 14, no. 16 (August 4, 2021): 4718. http://dx.doi.org/10.3390/en14164718.
Full textSalles, Mauricio, Junling Huang, Michael Aziz, and William Hogan. "Potential Arbitrage Revenue of Energy Storage Systems in PJM." Energies 10, no. 8 (July 27, 2017): 1100. http://dx.doi.org/10.3390/en10081100.
Full textPeñaranda, Andrés F., David Romero-Quete, and Camilo A. Cortés. "Grid-Scale Battery Energy Storage for Arbitrage Purposes: A Colombian Case." Batteries 7, no. 3 (September 3, 2021): 59. http://dx.doi.org/10.3390/batteries7030059.
Full textGundogdu, Burcu, Daniel Gladwin, and David Stone. "Battery energy management strategies for UK firm frequency response services and energy arbitrage." Journal of Engineering 2019, no. 17 (June 1, 2019): 4152–57. http://dx.doi.org/10.1049/joe.2018.8226.
Full textDissertations / Theses on the topic "Energy arbitrage"
Nishi, Hirofumi. "Market Efficiency, Arbitrage and the NYMEX Crude Oil Futures Market." Thesis, University of North Texas, 2016. https://digital.library.unt.edu/ark:/67531/metadc862846/.
Full textBangaru, S. R. V. Babu. "Time series modeling of spot energy prices for strategic fuel management and gas/electricity arbitrage." Thesis, Massachusetts Institute of Technology, 1997. http://hdl.handle.net/1721.1/10427.
Full textAbrams, Philip. "Simulering och känslighetsanalys av ett pumpkraft-dagvattendammsystem : En utvärdering av potential för småskalig energilagring av solelsöverskott eller arbitrage." Thesis, Högskolan i Halmstad, Akademin för ekonomi, teknik och naturvetenskap, 2020. http://urn.kb.se/resolve?urn=urn:nbn:se:hh:diva-42111.
Full textNydahl, Helena, and Annica Marmolin. "Smarta elnät med fokus på energilager; en lösning till hållbar tryckluftsförsörjning inom industrin : Simulering och optimering av energilager för utjämning av intermittenta energikällor." Thesis, Karlstads universitet, Fakulteten för hälsa, natur- och teknikvetenskap (from 2013), 2015. http://urn.kb.se/resolve?urn=urn:nbn:se:kau:diva-37060.
Full textThe world’s energy demand is expected to increase and at the same time the environmental requirements are becoming stricter. To deal with the climate change and the greenhouse gas emissions, the use of fossil fuel need to decrease, while the energy efficiency and renewable energy production must increase. A greater share of intermittent renewable energy on the electricity market entails challenges. If there is no need for electricity when the wind is blowing or when the sun is shining the electricity is lost, this leads to production and consumption of electricity must occur simultaneously. To expand the renewable energy and make it more efficient, society must develop a smart grid. There are different opinions about what it takes to create smart grids, but electrical energy storage, EES, reappears frequently in the literature. There are even scientists who believe that investment in intermittent renewable energy sources is not an option unless energy can be stored. Compressed air energy storage is a technique that uses compressed air to store energy until there is a demand. The Swedish industry accounts for over a third of total energy consumption in the country. Over 90 % of the all manufacturing industry uses compressed air. There are big and small users of compressed air depending on the industry. In this study, an international status description is given in the development of smart grids with a focus on electrical energy storage systems. The aim of this study is to be an information carrier that creates discussion and new ideas. The international status description is based on field visits, literature surveys and interviews. The results from the international status description shows that interest in electric energy storage systems is increasing since it is a central part in the development of smart grids. Between 2011 and 2013 the investments increased in electrical energy storage with 521 %. One reason for this increase is the international trend of micro grids and small decentralized power plants. With the increased demand for energy storage, new energy storage systems are created and existing systems evolve. The purpose of the study is also to examine if energy storage is a solution for a sustainable supply of compressed air in the industry. The goal is to design a compressed air system consisting of wind turbines and energy storage with a certain volume and maximum pressure, for a large and a small compressed air consumer. The study will also determine the cost saving for the big users is an optimized through arbitrage. The design is based on simulations in Simulink and the optimization is done in MATLAB. The selected compressed air system for the large consumer is based on one wind turbine, energy storage of 200 m3 with a maximum pressure of 10 bar. The coverage ratio, i.e. the proportion of the air need that is covered by wind energy with energy storage, is 26 %. An investment in this system would give reduced energy consumption by 48 % leading to a cost reduction of about 1.2 million SEK and a reduced environmental impact equivalent to 532 tons of CO2-equivalents. The generator then has an efficiency of 85 %, and the compressor has 90 %. The selected compressed air system for the smaller consumer achieves a coverage rate of 61 % with the following dimensions; one windmill, energy storage of 20 m3 and maximum pressure of 30 bar. An investment in this system would give a reduced energy consumption by 93 %, leading to a cost reduction of about 26 000 SEK and a reduced environmental impact equivalent to 10.7 ton of CO2 equivalents. The difference between a windmill and a wind turbine is that the windmill does not produce electricity instead it uses kinetic energy directly. A system consisting of energy storage driven by energy from the wind is more suited for smaller air requirements where it is possible to achieve greater coverage. The transition to smart grids is necessary to be able to meet all aspects of sustainable development. There is no part of smart grids that is more important. Sustainable use of compressed air in industry is a part of smart grids and to make it possible energy storage is crucial. The international status description shows that there is a growing international interest in EES but there isn’t one EES alone that will solve the integration of renewable energy. The techniques for energy storage are existing today and are growing tomorrow.
Odin, Håkan. "Svänghjul som lastutjämning." Thesis, Mittuniversitetet, Institutionen för kemiteknik, 2020. http://urn.kb.se/resolve?urn=urn:nbn:se:miun:diva-39271.
Full textBörger, Reik H. "Energy-related commodity futures - statistics, models and derivatives." [S.l. : s.n.], 2007. http://nbn-resolving.de/urn:nbn:de:bsz:289-vts-60248.
Full textAbran, Eszter, Elin Andersson, and Rova Therese Nilsson. "Battery Storage for Grid Application : A case study of implementing a Lithium-ion storage system for power peak shaving and energy arbitrage." Thesis, Uppsala universitet, Institutionen för samhällsbyggnad och industriell teknik, 2021. http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-443558.
Full textSalevid, Karin. "Market Requirements for Pumped Storage Profitability : Expected Costs and Modelled Price Arbitrage Revenues, Including a Case Study of Juktan." Thesis, Uppsala universitet, Elektricitetslära, 2013. http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-210136.
Full textBränström, Amanda, and Jonna Söderberg. "Combining Smart Energy Storage with a Nordic PV Park : An explorative study of revenue-improving and cost-reducing battery services." Thesis, Uppsala universitet, Byggteknik och byggd miljö, 2021. http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-447012.
Full textRibeiro, Diogo Albaneze Gomes. "Arbitragem no setor de energia elétrica." Pontifícia Universidade Católica de São Paulo, 2015. https://tede2.pucsp.br/handle/handle/6881.
Full textThis study aims to investigate the use of arbitration in contracts executed in the electric power sector, analyzing not only their pertinence, but, principally, their effective application in generation, distribution, transmission, and commercialization contracts of electricity. The industry, after going through a process of unbundling, that distinguished the monopolized activities likely to be provided for in the/a competition regime, underwent major innovations introduced by Law 9.648/1998 (that created the independent electricity producer and made commercialization an autonomous activity). As a result of these innovations, the contractual relationship between the actors of the sector multiplied, turning it into one of the most complex regulated markets and, consequently, propitious to the use of alternative mechanisms for conflict resolution, including arbitration. In this context, the use of mediation, conciliation, and arbitration institutes came to be expressly provided for in various industry standards, and, in some situations, mandatory use as in the commercialization of electricity. For these reasons, arbitration in the electricity sector is turning into a field that, increasingly, deserves attention from the arbitration community
O presente trabalho tem por objetivo investigar a utilização da arbitragem nos contratos firmados no setor de energia elétrica, analisando não apenas o seu cabimento, mas, principalmente, a sua efetiva aplicação nos contratos de geração, distribuição, transmissão e comercialização de energia elétrica. O setor, após passar por um processo de desintegração vertical (unbundling), que distinguiu as atividades monopolizadas das suscetíveis de serem prestadas em regime de competição, passou por importantes inovações trazidas pela Lei 9.648/1998 (que criou a figura do produtor independente de energia elétrica e a comercialização como atividade autônoma). Como resultado dessas inovações, multiplicaram-se as relações contratuais entre os agentes do setor, transformando-o em um dos mercados regulados mais complexos e, consequentemente, propícios para a utilização de mecanismos alternativos de solucionar conflitos, incluindo a arbitragem. Nesse contexto, a utilização dos institutos da mediação, conciliação e arbitragem passou a ser expressamente prevista em diversas normas do setor, sendo, em algumas situações, de uso obrigatório como ocorre no âmbito da comercialização de energia elétrica. Por esses motivos, a arbitragem no setor de energia elétrica vem se transformando em um campo que vem, cada vez mais, merecendo atenção da comunidade arbitral
Books on the topic "Energy arbitrage"
Krause, Timothy A. Pricing of Futures Contracts. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780190656010.003.0015.
Full textKaj, Hobér. The Energy Charter Treaty. Oxford University Press, 2020. http://dx.doi.org/10.1093/law/9780199660995.001.0001.
Full textMaxi, Scherer, ed. International Arbitration in the Energy Sector. Oxford University Press, 2018. http://dx.doi.org/10.1093/law/9780198805786.001.0001.
Full textMahnoush H, Arsanjani, and Reisman W Michael. Part I Conclusion of Treaties, 5 Provisional Application of Treaties in International Law: The Energy Charter Treaty Awards. Oxford University Press, 2011. http://dx.doi.org/10.1093/acprof:oso/9780199588916.003.0005.
Full textClarke, Andrew. Temperature and its measurement. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199551668.003.0003.
Full textEmmanuel, Gaillard, and McNeill Mark. Part I Investment Treaties and the Settlement of Investment Disputes: The Framework, 2 The Energy Charter Treaty. Oxford University Press, 2018. http://dx.doi.org/10.1093/law/9780198758082.003.0002.
Full textBernardo M, Cremades. Part VII Witnesses and Perjury, 19 The Expert Witness in International Arbitration. Oxford University Press, 2016. http://dx.doi.org/10.1093/law/9780198783206.003.0020.
Full textKendra, Magraw. Notable Developments in International Investment Arbitration Case Law. Oxford University Press, 2017. http://dx.doi.org/10.1093/law-iic/9780198809722.016.0003.
Full textSanders, Rebecca. Deprivations of Life and Liberty. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780190870553.003.0004.
Full textT. Wave Phenomena. Courier Dover Publications, 2014.
Find full textBook chapters on the topic "Energy arbitrage"
Schoubben, Frederiek. "Environmental Regulatory Arbitrage by Business Groups in the Context of the European Union’s Emission Trading System (EU-ETS)." In Regulations in the Energy Industry, 7–31. Cham: Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-32296-0_2.
Full textCruise, James, and Stan Zachary. "The Optimal Control of Storage for Arbitrage and Buffering, with Energy Applications." In Springer Proceedings in Mathematics & Statistics, 209–27. Cham: Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-99052-1_11.
Full textYamaleev, Nail K., and M. H. Carpenter. "Energy Stable WENO Schemes of Arbitrary Order." In Computational Fluid Dynamics 2010, 81–87. Berlin, Heidelberg: Springer Berlin Heidelberg, 2011. http://dx.doi.org/10.1007/978-3-642-17884-9_8.
Full textCalif, Rudy, François G. Schmitt, and Yongxiang Huang. "The Scaling Properties of the Turbulent Wind Using Empirical Mode Decomposition and Arbitrary Order Hilbert Spectral Analysis." In Research Topics in Wind Energy, 43–49. Berlin, Heidelberg: Springer Berlin Heidelberg, 2014. http://dx.doi.org/10.1007/978-3-642-54696-9_7.
Full textDavis, B. R., P. A. Wawrzynek, and A. R. Ingraffea. "Simulation of Arbitrary Mixed-Mode Crack Growth Using an Energy-Based Approach." In Fracture, Fatigue, Failure, and Damage Evolution, Volume 5, 1–9. Cham: Springer International Publishing, 2014. http://dx.doi.org/10.1007/978-3-319-06977-7_1.
Full textBoztaş, Serdar. "New Lower Bounds on the Periodic Crosscorrelation of QAM Codes with Arbitrary Energy." In Applied Algebra, Algebraic Algorithms and Error-Correcting Codes, 410–19. Berlin, Heidelberg: Springer Berlin Heidelberg, 1999. http://dx.doi.org/10.1007/3-540-46796-3_39.
Full textPedretti, Giacomo. "One Step in-Memory Solution of Inverse Algebraic Problems." In Special Topics in Information Technology, 63–76. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-62476-7_6.
Full textPUCACCO, GIUSEPPE. "INTEGRABILITY AT FIXED AND ARBITRARY ENERGY." In The Ninth Marcel Grossmann Meeting, 796–97. World Scientific Publishing Company, 2002. http://dx.doi.org/10.1142/9789812777386_0069.
Full text"Chapter 6. Asymptotics When the Energy Is Arbitrary." In Blow-up Theory for Elliptic PDEs in Riemannian Geometry (MN-45), 83–200. Princeton University Press, 2009. http://dx.doi.org/10.1515/9781400826162.83.
Full textMatsumoto, Mitsuo. "An Approach for Estimating Geothermal Reservoir Productivity under Access Limitations Associated with Snowy and Mountainous Prospects." In Geothermal Energy [Working Title]. IntechOpen, 2021. http://dx.doi.org/10.5772/intechopen.96314.
Full textConference papers on the topic "Energy arbitrage"
Coronel, Tamatia, Enrique Buzarquis, and Gerardo A. Blanco. "Analyzing energy storage system for energy arbitrage." In 2017 IEEE URUCON. IEEE, 2017. http://dx.doi.org/10.1109/urucon.2017.8171883.
Full textMathieu, Johanna L., Maryam Kamgarpour, John Lygeros, and Duncan S. Callaway. "Energy arbitrage with thermostatically controlled loads." In 2013 European Control Conference (ECC). IEEE, 2013. http://dx.doi.org/10.23919/ecc.2013.6669582.
Full textCoronel, Tamatia, Enrique Buzarquis, and Gerardo A. Blanco. "Analyzing feasibility of energy storage system for energy arbitrage." In 2017 CHILEAN Conference on Electrical, Electronics Engineering, Information and Communication Technologies (CHILECON). IEEE, 2017. http://dx.doi.org/10.1109/chilecon.2017.8229547.
Full textChen, Aoxia, and Pankaj K. Sen. "Deployment of battery energy storage system for energy arbitrage applications." In 2016 North American Power Symposium (NAPS). IEEE, 2016. http://dx.doi.org/10.1109/naps.2016.7747920.
Full textde Souza, Jonas V., Antonio E. C. Momesso, Felipe M. dos S. Monteiro, Rodrigo B. Otto, and Eduardo N. Asada. "Intelligent Management of Battery System for Energy Arbitrage." In 2019 IEEE Milan PowerTech. IEEE, 2019. http://dx.doi.org/10.1109/ptc.2019.8810805.
Full textByrne, C., and G. Verbic. "Feasibility of residential battery storage for energy arbitrage." In 2013 Australasian Universities Power Engineering Conference (AUPEC). IEEE, 2013. http://dx.doi.org/10.1109/aupec.2013.6725471.
Full textVejdan, Sadegh, and Santiago Grijalva. "The Value of Real-Time Energy Arbitrage with Energy Storage Systems." In 2018 IEEE Power & Energy Society General Meeting (PESGM). IEEE, 2018. http://dx.doi.org/10.1109/pesgm.2018.8585767.
Full textWang, Zhigang, Shifa Gao, Changhong Meng, Zhi Zhang, Chao Xue, Siyi Yin, Jia Zhang, Tian Mao, and Bingjie Zhao. "A Fast Calculation Method Supporting Price Arbitrage for Energy Storage." In 2020 IEEE 4th Conference on Energy Internet and Energy System Integration (EI2). IEEE, 2020. http://dx.doi.org/10.1109/ei250167.2020.9347280.
Full textShapiro, Carl R., Chengda Ji, and Dennice F. Gayme. "Real-time energy market arbitrage via aerodynamic energy storage in wind farms." In 2020 American Control Conference (ACC). IEEE, 2020. http://dx.doi.org/10.23919/acc45564.2020.9147730.
Full textJafari, Mehdi, Kara Rodby, John Leonard Barton, Fikile Brushett, and Audun Botterud. "Improved Energy Arbitrage Optimization with Detailed Flow Battery Characterization." In 2019 IEEE Power & Energy Society General Meeting (PESGM). IEEE, 2019. http://dx.doi.org/10.1109/pesgm40551.2019.8974070.
Full textReports on the topic "Energy arbitrage"
Castro Abril, Miguel. Intermittent Renewable Energy, Hydropower Dynamics and the Profitability of Storage Arbitrage. Inter-American Development Bank, May 2020. http://dx.doi.org/10.18235/0002360.
Full textKintner-Meyer, Michael CW, Patrick J. Balducci, Whitney G. Colella, Marcelo A. Elizondo, Chunlian Jin, Tony B. Nguyen, Vilayanur V. Viswanathan, and Yu Zhang. National Assessment of Energy Storage for Grid Balancing and Arbitrage: Phase 1, WECC. Office of Scientific and Technical Information (OSTI), June 2012. http://dx.doi.org/10.2172/1131386.
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