Добірка наукової літератури з теми "Electric power facilities"

Оформте джерело за APA, MLA, Chicago, Harvard та іншими стилями

Оберіть тип джерела:

Ознайомтеся зі списками актуальних статей, книг, дисертацій, тез та інших наукових джерел на тему "Electric power facilities".

Біля кожної праці в переліку літератури доступна кнопка «Додати до бібліографії». Скористайтеся нею – і ми автоматично оформимо бібліографічне посилання на обрану працю в потрібному вам стилі цитування: APA, MLA, «Гарвард», «Чикаго», «Ванкувер» тощо.

Також ви можете завантажити повний текст наукової публікації у форматі «.pdf» та прочитати онлайн анотацію до роботи, якщо відповідні параметри наявні в метаданих.

Статті в журналах з теми "Electric power facilities"

1

MIKAMI, Yasuo. "Electric Power Facilities and Weather." Wind Engineers, JAWE 2008, no. 114 (2008): 3–4. http://dx.doi.org/10.5359/jawe.2008.3.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
2

Kaliberda, I. V., S. S. Nefedov, and A. V. Pomerantsev. "Problems of Ensuring Seismic Resistance of Power Grid Facilities during Earthquakes." Occupational Safety in Industry, no. 10 (October 2020): 40–47. http://dx.doi.org/10.24000/0409-2961-2020-10-40-47.

Повний текст джерела
Анотація:
The electric grid system is the basis for functioning of the Unified electric power system of Russia and technologically isolated electric power systems. One of the most serious problems in the electric power industry is the aging of the fixed assets of already built and operating power grid facilities. The second problem is to clarify the seismic hazard of the territories of the Russian Federation in the direction of its growth. As a result, the number of power grid facilities fall into the zones of increased seismic hazard. In the zone of 7 points or more, approximately 30 % of the entire length of electric networks and transformer capacities are located. Information is provided about the characteristics of seismic load and how the objects respond to an earthquake. The experience of earthquakes testifies to the high vulnerability of the overhead power lines, cable power lines, substations, power transformers, relay protection equipment and automation under intense seismic loads. Information is provided about massive damage to the power grid during earthquakes in the territory of Russia, Armenia, and other countries of the world. Frequently occurring short circuits during earthquakes in electrical networks, at transformer substations, in electrical equipment elements of power grid facilities lead to fires. It is determined that power grid facilities have less seismic resistance than electric power generation facilities, than buildings and structures where electrical equipment is located. The problem of insufficiency of the current regulatory framework for ensuring seismic resistance of electric power facilities was also identified. Possible measures to prevent accident rate and increase the resistance, reliability, and seismic stability of power grid facilities in case of earthquakes are considered. The development of normative regulation will allow to take measures to ensure the seismic stability of power grid facilities in operation, and to ensure that control and supervision activities are carried out at a higher level.
Стилі APA, Harvard, Vancouver, ISO та ін.
3

Sovey, James S., Robert H. Vetrone, Stanley P. Grisnik, Roger M. Myers, and James E. Parkes. "Test facilities for high-power electric propulsion." Journal of Propulsion and Power 10, no. 1 (January 1994): 18–24. http://dx.doi.org/10.2514/3.23706.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
4

SUGIYAMA, TAKESHI. "Noise Reduction Design of Electric Power Facilities." Journal of the Institute of Electrical Engineers of Japan 123, no. 8 (2003): 505–8. http://dx.doi.org/10.1541/ieejjournal.123.505.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
5

Evseev, A. M., V. N. Meshcheryakov, and A. I. Boikov. "Electric-Power-Quality Characteristics of Industrial DC Electric-Arc Facilities." Russian Electrical Engineering 92, no. 12 (December 2021): 772–77. http://dx.doi.org/10.3103/s1068371221120063.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
6

Istomin, S. G., and A. E. Perestenko. "Assessment of the electric power loss components by the electric stock and electric power supply facilities." Proceedings of Petersburg Transport University 17, no. 3 (September 2020): 387–96. http://dx.doi.org/10.20295/1815-588x-2020-3-387-396.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
7

Suzuki, Hideyo. "New Aseismic Design Technology for Electric Power Facilities." IEEJ Transactions on Power and Energy 110, no. 6 (1990): 460–64. http://dx.doi.org/10.1541/ieejpes1990.110.6_460.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
8

KUROSAWA, Kiyoshi. "Fiber-Optic Current Sensors for Electric Power Facilities." Review of Laser Engineering 24, Supplement (1996): 311–14. http://dx.doi.org/10.2184/lsj.24.supplement_311.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
9

KUROSAWA, Kiyoshi. "Optical Fiber Current Sensors for Electric Power Facilities." Review of Laser Engineering 33, no. 9 (2005): 592–97. http://dx.doi.org/10.2184/lsj.33.592.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
10

Watanabe, Kaoru. "Lighting Facilities of Tohoku Electric Power Head Office." JOURNAL OF THE ILLUMINATING ENGINEERING INSTITUTE OF JAPAN 87, no. 7 (2003): 477–79. http://dx.doi.org/10.2150/jieij1980.87.7_477.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.

Дисертації з теми "Electric power facilities"

1

MacGregor, Paul R. "The net utility revenue impact of small power producing facilities operating under spot pricing policies." Diss., Georgia Institute of Technology, 1989. http://hdl.handle.net/1853/13845.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
2

Ghoudjehbaklou, Hassan. "On the optimization of homeostatic utility controls as applied to small power producing facilities." Diss., Georgia Institute of Technology, 1985. http://hdl.handle.net/1853/15624.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
3

Condron, Ewell D. "Cost Savings Realized Through Proper Sizing of an Excessive Instrument Air System." Thesis, University of North Texas, 2003. https://digital.library.unt.edu/ark:/67531/metadc4428/.

Повний текст джерела
Анотація:
The purpose of this research was to determine if installing a smaller air compressor could reduce the electrical usage of a large semiconductor manufacturing plant. A 200 horsepower Atlas Copco compressor was installed with the existing 500 horsepower Ingersoll-Rand compressors. Testing was conducted during the regular manufacturing process at MEMC Southwest in Sherman, Texas. Analysis of the data found that installing the new compressor could reduce electrical consumption. The study also found there are specific operational setpoints that allow the compressor to operate more efficiently.
Стилі APA, Harvard, Vancouver, ISO та ін.
4

Lin, Yufeng, and 林宇锋. "On some issues of integrating distributed generations in the smart grid." Thesis, The University of Hong Kong (Pokfulam, Hong Kong), 2010. http://hub.hku.hk/bib/B44744808.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
5

Світлична, Олена Євгеніївна. "Вибір параметрів ефективних засобів блискавкозахисту електроенергетичних об'єктів за допомогою моделювання електрофізичних процесів". Thesis, НТУ "ХПІ", 2016. http://repository.kpi.kharkov.ua/handle/KhPI-Press/19651.

Повний текст джерела
Анотація:
Дисертація на здобуття наукового ступеня кандидата технічних наук за спеціальністю 05.14.02 – електричні станції, мережі і системи. – Національний технічний університет "Харківський політехнічний інститут", Харків 2016. Дисертаційна робота присвячена вирішенню актуального науково-технічного завдання вибору параметрів ефективних засобів блискавкозахисту електроенергетичних об'єктів за допомогою вдосконалених моделей електрофізичних процесів на фінальній стадії руху лідерного каналу блискавки до землі з урахуванням можливості появи зустрічного лідера від наземних об'єктів. За допомогою фізичного та математичного моделювання електрофізичних процесів розвитку електричного пробою у системах з заземленими електродами, що мають загострені або округлені вершини, доведено, що наявність або відсутність корони, а також її інтенсивність, пропорційна току корони, не оказує впливу на імовірність поразки заземленого електрода високовольтним розрядом при рівнях прикладеної постійної напруги, що відповідають умовам грозової обстановки. Запропоновано статистичну модель для визначення імовірності удару блискавки в електроенергетичні об'єкти з урахуванням їх висоти і габаритів, а також можливості розвитку від них зустрічної іскри. Ця модель заснована на використанні експериментальних даних щодо параметрів блискавок, а також процесів при пробої довгих повітряних проміжків. Наведено результати експериментальних досліджень кореляції між інтенсивністю коронування заземленого електрода (імітує блискавковідвід за умови грози) та імовірністю влучення в нього високовольтного імпульсного розряду (імітує удар блискавки).
Thesis for scientific degree of candidate of technical sciences, specialty 05.14.02 – electrical power stations, networks and systems. - National Technical University "Kharkov Polytechnic Institute", Kharkov 2016. The thesis is devoted to solution of modern scientific and technical problem of choosing of the parameters of effective means of lightning protection of electric power facilities using advanced models the electrical processes in the final stages of motion of leader channel of lightning to the ground with regard of the possibility of appearance of an ascending leader from grounded objects. A statistical model for determination of the probability of lightning strokes at objects on the ground, taking into account their height and size, as well as probabilities of development of ascending sparks from them, based on the usage of experimental data on the parameters of lightning and the electrical physical processes at breakdown of long air gaps has been proposed. The results of experimental studies of the correlation between the intensity of corona from earthed electrodes (simulate a lightning rod in a thunderstorm situation) and probability of being hit by a high-voltage impulse discharges (simulate lightning strike) have been presented.
Стилі APA, Harvard, Vancouver, ISO та ін.
6

Светличная, Елена Евгеньевна. "Выбор параметров эффективных средств молниезащиты электроэнергетических объектов с помощью моделирования электрофизических процессов". Thesis, НТУ "ХПИ", 2015. http://repository.kpi.kharkov.ua/handle/KhPI-Press/19652.

Повний текст джерела
Анотація:
Диссертация на соискание ученой степени кандидата технических наук по специальности 05.14.02 – Электрические станции, сети и системы. – Национальный технический университет "Харьковский политехнический институт", Харьков 2016. Диссертационная работа посвящена решению актуальной научно-технической задачи выбора параметров эффективных средств молниезащиты электроэнергетических объектов с помощью усовершенствованных моделей электрофизических процессов на финальной стадии продвижения лидерного канала молнии к земле с учетом возможности появления встречного лидера от заземленных объектов. В диссертации обоснована цель и актуальность проводимых исследований, проведен обзор известных из литературы экспериментальных данных о параметрах лидерного канала молнии при высоковольтном разряде. Проведен анализ существующих методов моделирования электромагнитных процессов при продвижении лидерного канала молнии к земле, а также методов расчета электрического поля в системах с тонкими длинными проводящими объектами типа разрядных каналов и проводящих стержней. Предложена статистическая модель для определения вероятности удара молнии в электротехнические объекты с учетом их высоты и габаритов, а также возможности развития от них встречной искры, основанная на использовании имеющихся данных о параметрах молний и электрофизических процессах при пробое длинных воздушных промежутков. Компьютерное моделирование процессов, сопровождающих продвижение лидерного канала молнии на последнем этапе перед "выбором" места удара заземленного объекта, позволило определить прогнозируемое число поражений молниеотводов и защищаемого нестандартного электротехнического объекта (цистерны с нефтепродуктами). При этом оценена степень влияния числа используемых молениеотводов на вероятность поражения защищаемого объекта, а также показано, что применение тросовых молниеотводов выбранной конфигурации позволяет практически исключить попадание молнии в рассмотренный объект в течение всего срока его эксплуатации.
Thesis for scientific degree of candidate of technical sciences, specialty 05.14.02 – electrical power stations, networks and systems. - National Technical University "Kharkov Polytechnic Institute", Kharkov 2016. The thesis is devoted to solution of modern scientific and technical problem of choosing of the parameters of effective means of lightning protection of electric power facilities using advanced models the electrical processes in the final stages of motion of leader channel of lightning to the ground with regard of the possibility of appearance of an ascending leader from grounded objects. A statistical model for determination of the probability of lightning strokes at objects on the ground, taking into account their height and size, as well as probabilities of development of ascending sparks from them, based on the usage of experimental data on the parameters of lightning and the electrical physical processes at breakdown of long air gaps has been proposed. The results of experimental studies of the correlation between the intensity of corona from earthed electrodes (simulate a lightning rod in a thunderstorm situation) and probability of being hit by a high-voltage impulse discharges (simulate lightning strike) have been presented.
Стилі APA, Harvard, Vancouver, ISO та ін.
7

Ramos, Mário César Giacco. "Uma contribuição para a área de saúde por meio da verificação do impacto da qualidade de energia e das instalações elétricas nos equipamentos eletromédicos." Universidade de São Paulo, 2009. http://www.teses.usp.br/teses/disponiveis/3/3143/tde-01072009-120057/.

Повний текст джерела
Анотація:
Em todos os segmentos da sociedade, a utilização de equipamentos eletrônicos projetados e construídos com avançadas tecnologias eletrônicas e controlados por microprocessadores aumenta a cada dia. Na área de saúde, denominados de equipamentos eletromédicos, dão suporte aos setores de diagnóstico, tratamento ou, procedimento cirúrgico, melhorando a qualidade dos serviços e o atendimento aos pacientes. No entanto, o sucesso global do processo deverá considerar a qualidade das instalações elétricas nesses ambientes, bem como a qualidade da energia elétrica fornecida a esses equipamentos. Este trabalho tem como objetivo comprovar, por meio de pesquisa em laboratório, o risco de diagnósticos médicos baseados em informações fornecidas por equipamentos eletromédicos, alimentados em redes elétricas que não atendem às normas vigentes ou, totalmente perturbadas por outros equipamentos típicos dos ambientes médico-hospitalares. A metodologia aplicada consistiu em medições dos parâmetros referentes à qualidade de energia elétrica nos estabelecimentos assistenciais de saúde. Atenção especial foi dada ao conteúdo harmônico de tensão e aos afundamentos de tensão de curta duração produzidos por equipamentos de raios X, mamografia, tomografia computadorizada, ressonância magnética nuclear e motores elétricos de indução. Em seguida, essas perturbações foram reproduzidas em fontes de tensão específicas para essa finalidade, instaladas no Laboratório do Centro Tecnológico de Qualidade de Energia da Escola Politécnica da Universidade de São Paulo, conhecido como Enerq-ct. Equipamentos eletromédicos portáteis, gentilmente cedidos por diversos fabricantes nacionais, foram submetidos a esses sinais para verificação do seu desempenho. Os resultados obtidos demonstram a importância da qualidade de energia elétrica bem como, a qualidade dos serviços de manutenção nas instalações elétricas desses ambientes.
Through all segments of our society, there is a daily increase in the use of electronic equipment designed and built with advanced electronic technology and computerized control. In the health-medical area, designated electromedical equipment, they provide support to sectors in charge of diagnosis, treatment or surgical procedures, improving the quality of services and the manner patients are cared for. However, the global success of this process must take into consideration the quality of electrical installations at these facilities, as well as the electrical power supplied to the equipment. The aim of this work is to attest through laboratory research the risk of medical diagnoses based on information provided by electromedical equipment powered through electrical networks which do not meet the standards in effect, or which are completely disturbed by other equipment typical of electromedical environments. The methodology applied consisted of measurements of the parameters referring to the quality of electrical power in health care facilities. Especial attention was given to the voltage harmonic content and to short duration voltage sags caused by X-ray, mammography, computerized tomography and nuclear magnetic resonance equipment or by induction motors. Later, these disturbances were reproduced in power supplies which are specific to this objective, installed at Laboratório do Centro Tecnológico de Qualidade de Energia da Escola Politécnica da Universidade de São Paulo- Energy Quality Technological Center of the Technical School of the University of Sao Paulo , known as Enerq-ct. Portable electromedical equipment, kindly supplied by national manufacturers, were subjected to these signals for assessment of their performance. The results obtained demonstrate the importance of the quality of electrical power as well as the quality of maintenance of electrical installations within these environments.
Стилі APA, Harvard, Vancouver, ISO та ін.
8

Rallières, Olivier. "Modélisation et caractérisation de Piles A Combustible et Electrolyseurs PEM." Phd thesis, Institut National Polytechnique de Toulouse - INPT, 2011. http://tel.archives-ouvertes.fr/tel-00819317.

Повний текст джерела
Анотація:
Cette thèse s'inscrit dans le contexte de la production et de l'utilisation du vecteur énergétique hydrogène dont le potentiel est très prometteur dans un paysage énergétique renouvelé. Plus exactement, cette étude traite des électrolyseurs et des piles à combustible de technologie PEM (membranes échanges de protons) fonctionnant à basse température. Dans une très large majorité, les études présentées ici se sont inscrites en partenariat étroit avec HELION Hydrogen Power, notamment dans le cadre du projet ANR AIRELLES (2008- 2011). Tout d'abord sont posées les bases de modèles (quasi-statique, dynamique petits signaux, dynamique forts signaux) génériques et applicables à une pile à combustible et à un électrolyseur. Les méthodologies de caractérisation ainsi que les techniques de paramétrisation de ces modèles utilisées sont ensuite exposées. L'intérêt de croiser toutes ces approches pour caractériser au plus juste les composants est illustré. A partir de cette vision commune des deux composants, le document est scindé en trois parties : - Une première partie porte sur une validation et une exploitation des modèles proposés via différentes études sur des piles à combustible alimentées en H 2 /air : 1) La recherche de signatures d'un engorgement et d'un assèchement d'une pile alimentée en H 2 /air. Ces signatures sont comparées à celles d'une pile alimentée en H 2 /0 2 . 2) L'analyse des impacts d'harmoniques de courant hautes fréquences (représentatives d'un convertisseur continu-continu de type boost) sur un cœur de pile. Ces travaux s'inscrivent dans le cadre d'une collaboration avec le laboratoire FEMTO-ST/FCLAB (projet CNRS CO-CONPAC). - Une seconde partie porte sur la validation et la paramétrisation des modèles proposés pour l'électrolyseur. Deux techniques originales ont été proposées et testées : la première consiste en une approche multispectres d'impédance et la seconde en une approche multibalayages basses fréquences. - Une troisième partie décrit les moyens d'essais qui ont été conçus et déployés au cours de cette thèse aboutissant à une plateforme significative de tests dédiée à l'hydrogène sur le site l'INPT (Toulouse Labège).
Стилі APA, Harvard, Vancouver, ISO та ін.
9

Wang, Jinn-Liang, and 王進良. "A Study on Magnetic-Field Shielding for Electric Power Facilities." Thesis, 2002. http://ndltd.ncl.edu.tw/handle/05678921795896949727.

Повний текст джерела
Анотація:
碩士
國立臺灣科技大學
電機工程系
90
This thesis is to study Magnetic-field Shielding for Electric Power Facilities. For this study, FLUX3D has been applied to evaluate the magnetic-field shielding properties of metal plates for reducing magnetic-field coupling interferences due to three-phase power inductances. Also, measurements and mitigations of surrounding power frequency magnetic fields produced by a substation in a commercial building have been performed. The major sources of the 60Hz magnetic fields come from the currents of the low-voltage cables in substation. To mitigate the magnetic fields, the power cables are bundled together with suitable phase arrangements, so that the magnetic fields from the three-phase currents may cancel each other. However, there are still some minor magnetic sources in the substation, and to further reduce their effects, aluminum plates are used to shield the magnetic fields, where FLUX3D has been applied to simulate and design the shielding structures. Besides, the effects of the electromagnetic interferences for the communication system of the automatic feeders are also studied. Low-frequency magnetic fields around the equipments of the communication system are measured. Then, an experimental setup is established to test the electromagnetic interference and susceptibility for the communication system. Also, the Electromagnetic Transients Program (EMTP) has been applied to determine the longitudinally magnetic-field induced voltages from power lines to communication cables for the communication system of the automatic feeders.
Стилі APA, Harvard, Vancouver, ISO та ін.
10

Hsu, Hui-sheng, and 徐惠笙. "Compensation and Feedback of Erecting Power Transmission and Distribution Facilities by Electric Power Utilites." Thesis, 2010. http://ndltd.ncl.edu.tw/handle/91047082457539189056.

Повний текст джерела
Анотація:
碩士
國立中正大學
法律所
98
When Electric Power Utilities erect power transmission or distribution facilities, depriving or damaging the property rights of the land owners is unavoidable. However, power facilities relate to public interests, especially power transmission & distribution facilities .Therefore, most countries empower electric power utilities to use both public and private lands by law which means that land owners are obligated to endure trespassing or infringing of their lands and property rights. Nevertheless, if the restriction to property goes beyond social obligation boundaries of the property, then it falls into the scope of special sacrifices and shall be adequately compensated. According to the law, when power utilities mount or lay pipelines, cables on /in or under other people’s land or building, they exercise rights of neighbors which is of a private law nature instead of exercising public power. People’s worries of insecurity and their feelings of unfairness comes due to power transmission or distribution facilities are within the scope of private law. There are regulations of Compensation for mental suffering of private nature in Civil Law, compensation for mental suffering due to power transmission or distribution facilities would be treated as the same(insecurity and environmental injustice). There are a few problems with the compensation and feedback system and practices of the existing electric power utilities and thus bring about endless protests so far. If separating superficies, underline compensation, legalization of feedback, enhancing communication and participation adopted, to make people actually experience and aware of the benefits of power utilities and good intentions, resolution to the avoiding complex and protests of the residents close by would be possible, and thus this will also help create of a win-win situation between electric power utilities and the local population.
Стилі APA, Harvard, Vancouver, ISO та ін.

Книги з теми "Electric power facilities"

1

Office, United States Western Area Power Administration Billings Area. Montana electrical facilities. [Billings, Mont.]: The Office, 1989.

Знайти повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
2

Sterling, Rick. Development of PURPA qualifying facilities in Idaho. Boise, Idaho: Idaho Dept. of Water Resources, Energy Division, 1990.

Знайти повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
3

California. Legislature. Senate. Select Committee to Investigate Price Manipulation of the Wholesale Energy Market. Operation and maintenance of generation facilities. Sacramento, CA: Senate Publications, 2001.

Знайти повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
4

Massachusetts. Office of Energy Resources. Cogeneration in state facilities. Boston: Massachusetts Executive Office of Energy Resources, 1987.

Знайти повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
5

Massachusetts. Office of Energy Resources. Cogeneration projects for state facilities. Boston: Massachusetts Executive Office of Energy Resources, 1988.

Знайти повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
6

Bishop, David N. Electrical systems for oil and gas production facilities. 2nd ed. Research Triangle Park, N.C: Instrument Society of America, 1992.

Знайти повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
7

Bishop, David N. Electrical systems for oil and gas production facilities. Research Triangle Park, N.C: Instrument Society of America, 1988.

Знайти повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
8

Obara, Shin'ya. Distribution optimizing plan for small-scale energy systems. New York: Nova Science Publishers, 2008.

Знайти повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
9

Eliassen, Åge Jørgen. Småkraftverkene i Saltdal. [Saltdal?]: Dragefossen Kraftanlegg AS, 1998.

Знайти повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
10

New York (State). Legislature. Assembly. Standing Committee on Energy. Article X of the public service law, the siting approval process for major electric generating facilities: [hearing]. [New York?: Regal Reporting Services, 2002.

Знайти повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.

Частини книг з теми "Electric power facilities"

1

Saushev, Alecsandr, Nikolai Shirokov, and Sergey Kuznetsov. "Preventive Protection of Ship’s Electric Power System from Reverse Power." In International Scientific Conference Energy Management of Municipal Facilities and Sustainable Energy Technologies EMMFT 2019, 388–98. Cham: Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-57450-5_33.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
2

Alekseeva, Tatyana, Natalya Ryabchyonok, and Leonid Astrakhantsev. "Technology of Electric Power Efficient Use in Transport." In International Scientific Conference Energy Management of Municipal Transportation Facilities and Transport EMMFT 2017, 120–33. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-70987-1_13.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
3

Nakajima, Chikahito, and Massimiliano Pontil. "Maintenance Training of Electric Power Facilities Using Object Recognition by SVM." In Pattern Recognition with Support Vector Machines, 112–19. Berlin, Heidelberg: Springer Berlin Heidelberg, 2002. http://dx.doi.org/10.1007/3-540-45665-1_9.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
4

Pinchukov, Pavel, and Svetlana Makasheva. "Improving Methods for Reliability Assessment of Electric Power Systems." In International Scientific Conference Energy Management of Municipal Transportation Facilities and Transport EMMFT 2017, 162–69. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-70987-1_17.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
5

Selby, K. Anthony, Paul R. Puckorius, and Kris R. Helm. "The use of Reclaimed Water in Electric Power Stations and Other Industrial Facilities." In Clean Water: Factors that Influence Its Availability, Quality and Its Use, 183–93. Dordrecht: Springer Netherlands, 1996. http://dx.doi.org/10.1007/978-94-009-0299-2_19.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
6

Manukhina, Lyubov. "Analysis of the Reproduction of Generating Capacities of Electric Power Industry of the Russian Federation." In International Scientific Conference Energy Management of Municipal Transportation Facilities and Transport EMMFT 2017, 1254–64. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-70987-1_134.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
7

Rezinkina, Marina M., Yevgen I. Sokol, Artur O. Zaporozhets, Oleg G. Gryb, Ihor T. Karpaliuk, and Sergiy V. Shvets. "Mathematical Modeling of the Electromagnetic Processes of the Corona’s Formation During the Operation of Electric Power Facilities." In Control of Overhead Power Lines with Unmanned Aerial Vehicles (UAVs), 99–118. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-69752-5_7.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
8

Rezinkina, Marina M., Yevgen I. Sokol, Artur O. Zaporozhets, Oleg G. Gryb, Ihor T. Karpaliuk, and Sergiy V. Shvets. "Physical Modeling of the Electrophysical Processes of the Formation of the Corona During the Operation of Electric Power Facilities." In Control of Overhead Power Lines with Unmanned Aerial Vehicles (UAVs), 119–26. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-69752-5_8.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
9

Audin, Lindsay. "Understanding Power Pricing." In Lowering Your Facility’s Electric Rates, 17–28. Lilburn, GA : Fairmont Press, [2017]: River Publishers, 2020. http://dx.doi.org/10.1201/9781003151302-4.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
10

Audin, Lindsay. "Managing Competitive Power Procurement." In Lowering Your Facility’s Electric Rates, 131–40. Lilburn, GA : Fairmont Press, [2017]: River Publishers, 2020. http://dx.doi.org/10.1201/9781003151302-17.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.

Тези доповідей конференцій з теми "Electric power facilities"

1

SOVEY, JAMES, ROBERT VETRONE, STANLEY GRISNIK, ROGER MYERS, and JAMES PARKES. "Test facilities for high power electric propulsion." In Conference on Advanced SEI Technologies. Reston, Virigina: American Institute of Aeronautics and Astronautics, 1991. http://dx.doi.org/10.2514/6.1991-3499.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
2

Dutt, Dale, Keith Thomassen, Jim Sovey, and Mario Fontana. "Nuclear electric propulsion development and qualification facilities." In Proceedings of the ninth symposium on space nuclear power systems. AIP, 1992. http://dx.doi.org/10.1063/1.41883.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
3

Alves, Renato, Pedro Neves, D. Goncalves, J. G. Pinto, Jose Batista, and Joao L. Afonso. "Electric power quality monitoring results in different facilities." In IECON 2009 - 35th Annual Conference of IEEE Industrial Electronics (IECON 2009). IEEE, 2009. http://dx.doi.org/10.1109/iecon.2009.5415137.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
4

Shumuta, Yoshiharu. "Seismic Risk Management System for Electric Power Facilities." In Sixth U.S. Conference and Workshop on Lifeline Earthquake Engineering (TCLEE) 2003. Reston, VA: American Society of Civil Engineers, 2003. http://dx.doi.org/10.1061/40687(2003)69.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
5

Morozova, Olga Y. "Analysis of Typical Electric Power Facilities Requiring Remote Monitoring." In 2020 IEEE Conference of Russian Young Researchers in Electrical and Electronic Engineering (EIConRus). IEEE, 2020. http://dx.doi.org/10.1109/eiconrus49466.2020.9039389.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
6

Lew, Jennifer. "SafeBuild: Risk-Based Analysis of Overhead Electric Distribution Facilities." In 2021 IEEE Power & Energy Society General Meeting (PESGM). IEEE, 2021. http://dx.doi.org/10.1109/pesgm46819.2021.9638161.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
7

Diblik, Martin, and Leos Beran. "Electric drives and laboratory facilities for its education." In 2010 14th International Power Electronics and Motion Control Conference (EPE/PEMC 2010). IEEE, 2010. http://dx.doi.org/10.1109/epepemc.2010.5606820.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
8

Haji, Maha N., Kimberly Lau, and Alice M. Agogino. "Human Power Generation in Fitness Facilities." In ASME 2010 4th International Conference on Energy Sustainability. ASMEDC, 2010. http://dx.doi.org/10.1115/es2010-90195.

Повний текст джерела
Анотація:
As energy usage across the world continues to rise, there is a strong need to develop new methods for energy conservation and power generation, particularly approaches that have less environmental impacts. Although human power is not ideal in terms of life cycle costs [1], there are promising application areas for human power in emerging regions where electric power is either not available or not affordable [2]. There is also untapped potential for harnessing human power at most fitness facilities. This paper focuses on the feasibility of capturing this energy at fitness facilities, particularly the Recreational Sports Facility (RSF) at University of California, Berkeley, which averages over 2,800 patrons per day. In particular, we estimated that patrons using 28 elliptical machines would supply approximately 10,000 kWh into the electric grid over a year. This amounts to only 0.7% of the RSF’s total energy needs, but is valuable nonetheless. An additional benefit in human power generation is its positive social impact. A survey of the RSF users has evinced remarkable enthusiasm for implementing energy generation technology into the facility, both as a power generation tool and as an educational resource. This paper will also address the social benefits of human power generation technology in the gym.
Стилі APA, Harvard, Vancouver, ISO та ін.
9

Prokhorov, D., N. Pavlov, and T. Petrova. "Accidents at Electric Power Facilities of Russian Federation Northern Regions." In 2020 International Multi-Conference on Industrial Engineering and Modern Technologies (FarEastCon). IEEE, 2020. http://dx.doi.org/10.1109/fareastcon50210.2020.9271155.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
10

Van Dyke, Melissa. "Test Facilities in Support of High Power Electric Propulsion Systems." In SPACE TECHNOLOGY AND APPLICATIONS INT.FORUM-STAIF 2003: Conf.on Thermophysics in Microgravity; Commercial/Civil Next Generation Space Transportation; Human Space Exploration; Symps.on Space Nuclear Power and Propulsion (20th); Space Colonization (1st). AIP, 2003. http://dx.doi.org/10.1063/1.1541325.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.

Звіти організацій з теми "Electric power facilities"

1

Rusk, Todd, Ryan Siegel, Linda Larsen, Tim Lindsey, and Brian Deal. Technical and Financial Feasibility Study for Installation of Solar Panels at IDOT-owned Facilities. Illinois Center for Transportation, August 2021. http://dx.doi.org/10.36501/0197-9191/21-024.

Повний текст джерела
Анотація:
The Smart Energy Design Assistance Center assessed the administrative, technical, and economic aspects of feasibility related to the procurement and installation of photovoltaic solar systems on IDOT-owned buildings and lands. To address administrative feasibility, we explored three main ways in which IDOT could procure solar projects: power purchase agreement (PPA), direct purchase, and land lease development. Of the three methods, PPA and direct purchase are most applicable for IDOT. While solar development is not free of obstacles for IDOT, it is administratively feasible, and regulatory hurdles can be adequately met given suitable planning and implementation. To evaluate IDOT assets for solar feasibility, more than 1,000 IDOT sites were screened and narrowed using spatial analytic tools. A stakeholder feedback process was used to select five case study sites that allowed for a range of solar development types, from large utility-scale projects to small rooftop systems. To evaluate financial feasibility, discussions with developers and datapoints from the literature were used to create financial models. A large solar project request by IDOT can be expected to generate considerable attention from developers and potentially attractive PPA pricing that would generate immediate cash flow savings for IDOT. Procurement partnerships with other state agencies will create opportunities for even larger projects with better pricing. However, in the near term, it may be difficult for IDOT to identify small rooftop or other small on-site solar projects that are financially feasible. This project identified two especially promising solar sites so that IDOT can evaluate other solar site development opportunities in the future. This project also developed a web-based decision-support tool so IDOT can identify potential sites and develop preliminary indications of feasibility. We recommend that IDOT begin the process of developing at least one of their large sites to support solar electric power generation.
Стилі APA, Harvard, Vancouver, ISO та ін.
2

Singh, G. ,. Westinghouse Hanford. Engineering study for the phase 1 privatization facilities electrical power. Office of Scientific and Technical Information (OSTI), July 1996. http://dx.doi.org/10.2172/325356.

Повний текст джерела
Стилі APA, Harvard, Vancouver, ISO та ін.
3

An Input Linearized Powertrain Model for the Optimal Control of Hybrid Electric Vehicles. SAE International, March 2022. http://dx.doi.org/10.4271/2022-01-0741.

Повний текст джерела
Анотація:
Models of hybrid powertrains are used to establish the best combination of conventional engine power and electric motor power for the current driving situation. The model is characteristic for having two control inputs and one output constraint: the total torque should be equal to the torque requested by the driver. To eliminate the constraint, several alternative formulations are used, considering engine power or motor power or even the ratio between them as a single control input. From this input and the constraint, both power levels can be deduced. There are different popular choices for this one control input. This paper presents a novel model based on an input linearizing transformation. It is demonstrably superior to alternative model forms, in that the core dynamics of the model (battery state of energy) are linear, and the non-linearities of the model are pushed into the inputs and outputs in a Wiener/Hammerstein form. The output non-linearities can be approximated using a quadratic model, which creates a problem in the linear-quadratic framework. This facilitates the direct application of linear control approaches such as LQR control, predictive control, or Model Predictive Control (MPC). The paper demonstrates the approach using the ELectrified Vehicle library for sImulation and Optimization (ELVIO). It is an open-source MATLAB/Simulink library designed for the quick and easy simulation and optimization of different powertrain and drivetrain architectures. It follows a modelling methodology that combines backward-facing and forward-facing signal path, which means that no driver model is required. The results show that the approximated solution provides a performance that is very close to the solution of the original problem except for extreme parts of the operating range (in which case the solution tends to be driven by constraints anyway).
Стилі APA, Harvard, Vancouver, ISO та ін.
Ми пропонуємо знижки на всі преміум-плани для авторів, чиї праці увійшли до тематичних добірок літератури. Зв'яжіться з нами, щоб отримати унікальний промокод!

До бібліографії