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Artykuły w czasopismach na temat "Integration of wind power"
DeMeo, E. A., W. Grant, M. R. Milligan i M. J. Schuerger. "Wind plant integration [wind power plants". IEEE Power and Energy Magazine 3, nr 6 (listopad 2005): 38–46. http://dx.doi.org/10.1109/mpae.2005.1524619.
Pełny tekst źródłaYan, Qing You, Xin Yan i Si Qi He. "Forecast of Energy Storage Applied in Wind Power Integration". Applied Mechanics and Materials 291-294 (luty 2013): 531–35. http://dx.doi.org/10.4028/www.scientific.net/amm.291-294.531.
Pełny tekst źródłaBasit, Abdul, Tanvir Ahmad, Asfand Yar Ali, Kaleem Ullah, Gussan Mufti i Anca Daniela Hansen. "Flexible Modern Power System: Real-Time Power Balancing through Load and Wind Power". Energies 12, nr 9 (6.05.2019): 1710. http://dx.doi.org/10.3390/en12091710.
Pełny tekst źródłaNiu, Yukun, Jun Wen, Limin Ma i Shujie Wang. "Analysis of Offshore Wind Power Integration". Journal of Physics: Conference Series 1920, nr 1 (1.05.2021): 012009. http://dx.doi.org/10.1088/1742-6596/1920/1/012009.
Pełny tekst źródłaBollen, Math H. J., i Kai Yang. "Harmonic aspects of wind power integration". Journal of Modern Power Systems and Clean Energy 1, nr 1 (czerwiec 2013): 14–21. http://dx.doi.org/10.1007/s40565-013-0001-7.
Pełny tekst źródłaOkundamiya, Michael S. "Power Electronics for Grid Integration of Wind Power Generation System". Journal of Communications Technology, Electronics and Computer Science 9 (27.12.2016): 10. http://dx.doi.org/10.22385/jctecs.v9i0.129.
Pełny tekst źródłaRen, Hui, Dan Xia Yang, David Watts i Xi Chen. "The Impact of Large Scale Wind Power Integration on a Regional Power Grid - A Case Study". Applied Mechanics and Materials 472 (styczeń 2014): 219–25. http://dx.doi.org/10.4028/www.scientific.net/amm.472.219.
Pełny tekst źródłaNiyonzima, Celestin. "Wind Power Penetration and Integration in Rwanda". Journal of Information and Technology 6, nr 1 (24.03.2022): 19–46. http://dx.doi.org/10.53819/81018102t4035.
Pełny tekst źródłaZhou, Xi Chao, Fu Chao Liu i Jing Jing Zheng. "Analyses on Integration of Wind Power into Gansu Power Grid". Advanced Materials Research 608-609 (grudzień 2012): 569–72. http://dx.doi.org/10.4028/www.scientific.net/amr.608-609.569.
Pełny tekst źródłaM, Sinan, Sivakumar W M i Anguraja R. "Power System Voltage Stability analysis with Renewable power Integration". International Journal of Innovative Technology and Exploring Engineering 10, nr 6 (30.04.2021): 114–17. http://dx.doi.org/10.35940/ijitee.f8828.0410621.
Pełny tekst źródłaRozprawy doktorskie na temat "Integration of wind power"
Shams, Solary Arasto. "Wind power plants integration to the power grid". Thesis, KTH, Skolan för elektro- och systemteknik (EES), 2016. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-200633.
Pełny tekst źródłaAlnaami, Zurya, i José Duenas. "Wind Power Integration and Operational Challenges". Thesis, KTH, Industriell ekologi, 2016. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-189059.
Pełny tekst źródłaDuenas, José, i Zurya Alnaami. "Wind Power Integration and Operational Challenges". Thesis, KTH, Skolan för elektro- och systemteknik (EES), 2016. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-200629.
Pełny tekst źródłaMatevosyan, Julija. "Wind Power Integration in Power Systems with Transmission Bottlenecks". Doctoral thesis, Stockholm, 2006. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-4108.
Pełny tekst źródłaSolvang, Tarjei Benum. "Large-scale wind power integration in Nordland". Thesis, Norwegian University of Science and Technology, Department of Electrical Power Engineering, 2007. http://urn.kb.se/resolve?urn=urn:nbn:no:ntnu:diva-9596.
Pełny tekst źródłaNord-Norsk Vindkraft AS is planning to build two wind farms in Nordland, Norway. The wind farms are located at Sleneset and Sjonfjellet. The planned total installed power is 653 MW. An important part of the planning phase is to perform steady-state and dynamic analyses, to simulate the impacts from the wind farms on the existing power system in the area. The steady-state analysis is performed by Norsk Systemplan og Enøk AS (NORSEC). The project presented in this master thesis is part of the dynamic analysis. The overall objective for this project is to illustrate the dynamic impacts from the wind farms on the existing power system and the differences in impact depending on the various control strategies being used. The following elements are included in the assignment: - Establish a steady-state and dynamic grid model describing the power system in question. - Determine whether the wind farms are able to reach full production during different configurations without reaching an unacceptable operating state. - Examine the impact from and behaviour of transformers with load tap changers. - Illustrate the differences between different control modes in the wind farm connection point. The model used in this project is established by converting the steady-state model used in the steady-state analysis from Netbas to SIMPOW. The time in the steady-state model is set to January 2009. The steady-state model is then expanded by introducing aggregated doubly-fed induction generators for power production in the wind farms. For some of the simulations, a static VAR compensator is inserted at Bardal. The dynamic model is established by introducing a dynamic description of the components in the steady-state model. Due to lack of dynamic data, typical values are used for some of the components. The comparison between the power flows from the basic model provided by NORSEC and the initial converted SIMPOW model show small differences in reactive power flow. These differences were, however to be expected, due to changes made when converting the model from Netbas to SIMPOW but are not considered important for the conclusions to be drawn from the project. Simulations describing an increase in wind power production from 50% to 100% are performed on the dynamic model describing the grid between Salten and Tunnsjødal. The timeframe of increase varies depending of the objective for the specific case. The simulations performed on the dynamic model indicate a need for reactive power compensation between the wind farms and the connection point at Nedre Røssåga. Without reactive power compensation on the radial connection, the wind farms are not able to reach full wind power production without breaching either voltage or thermal limits. This is the case even if local compensation is added at the wind farms. With an SVC in voltage control placed at Bardal, the wind farms are able to reach full power production without violating any specified limits. The SVC maintains acceptable voltage levels within the radial. However, the amount of imported reactive power at the connection point increases during the production increase. This causes a depression in voltage in the rest of the grid. If the SVC at Bardal is set to control the reactive power flow in the connection point, simulations indicate that the amount of reactive power drawn from the main grid can be considerable reduced. This, however, results in a larger need for reactive power production within the radial. A larger reactive power production increases the voltages. Without voltage control at the wind farms or voltage regulation by load tap changers, the simulations show that the voltage at the generator terminals increases above 1.05 pu. Simulations demonstrate that tap-operations in the transformer at the connection point between the main grid and the wind farm radial increases the amount of imported reactive power. This takes place when the SVC operates in voltage control. The need for reactive power production within the radial is then reduced. The tendency is the same whether voltage control is introduced at the wind farms or not. When the SVC operates in reactive power control and no voltage control is present at the wind farms, tap-operations from the same transformer result in an increase in reactive power production within the radial. However, if voltage control is included at the wind farms, tap-operations at the connection point will decrease the reactive power production. This is because in voltage control the wind farms are consuming reactive power in order to maintain a specified terminal voltage. The results from the simulations indicate that the number of tap-operations from the transformer at the connection point is reduced when the SVC at Bardal operates in reactive power control compared to when it operates in voltage control. However, no wind models based on statistics are introduced in this project. It is therefore uncertain to what extent a similar result would be obtained under more realistic conditions. All the simulations show that when the production from the wind farms increases, the voltages in the grid outside the radial decreases. This is due to increased reactive losses. The decrease is largest when the SVC at Bardal operates in voltage control due to reactive power drawn by the radial connection. The area in the main grid with the largest decrease is located between the connection point at Nedre Røssåga and Trofors. This project is only a part of the necessary dynamic analyses that have to be carried out in the planning phase for the wind farms at Sleneset and Sjonfjellet. A natural continuation of this project could be to perform analyses in a light load situation, and analyses of the systems response to disturbances. Wind models obtained from statistical wind data should also be included in future dynamic analyses.
Bryans, L. "Grid integration of large-scale wind power". Thesis, Queen's University Belfast, 2006. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.438115.
Pełny tekst źródłaOlauson, Jon. "Modelling Wind Power for Grid Integration Studies". Doctoral thesis, Uppsala universitet, Elektricitetslära, 2016. http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-302837.
Pełny tekst źródłaGesino, Alejandro J. [Verfasser]. "Power reserve provision with wind farms : Grid integration of wind power / Alejandro J. Gesino". Kassel : Kassel University Press, 2011. http://d-nb.info/1017005591/34.
Pełny tekst źródłaHalliday, J. A. "Wind meteorology and the integration of electricity generated by wind turbines". Thesis, University of Strathclyde, 1988. http://oleg.lib.strath.ac.uk:80/R/?func=dbin-jump-full&object_id=21325.
Pełny tekst źródłaVerez, Guillaume. "System integration of large scale offshore wind power". Thesis, Norges teknisk-naturvitenskapelige universitet, Institutt for elkraftteknikk, 2011. http://urn.kb.se/resolve?urn=urn:nbn:no:ntnu:diva-12608.
Pełny tekst źródłaKsiążki na temat "Integration of wind power"
Fort, J. D. Wind power integration. Manchester: UMIST, 1994.
Znajdź pełny tekst źródła(Firm), Xcel Energy. Wind integration study. Knoxville, TN: EnerNex Corp., 2004.
Znajdź pełny tekst źródłaHeier, Siegfried. Grid integration of wind energy conversion systems. Chichester: Wiley, 1998.
Znajdź pełny tekst źródłaGrid integration of wind energy conversion systems. Wyd. 2. Chichester, West Sussex, England: Wiley, 2006.
Znajdź pełny tekst źródłaCommission, Minnesota Public Utilities, EnerNex Corporation, Midwest Independent System Operator i WindLogics Inc, red. Final report: 2006 Minnesota wind integration study. Knoxville, TN: EnerNex Corporation, 2006.
Znajdź pełny tekst źródła(Firm), GE Energy. Western Wind and Solar Integration Study. Golden, Colo: National Renewable Energy Laboratory, 2010.
Znajdź pełny tekst źródłaMello, Phillip De. Summary of recent wind integration studies: Experience from 2007 - 2010. Sacramento, California]: [California Energy Commission], 2012.
Znajdź pełny tekst źródłaNational Renewable Energy Laboratory (U.S.), red. Initial economic analysis of utility-scale wind integration in Hawaii. Golden, CO: National Renewable Energy Laboratory, 2012.
Znajdź pełny tekst źródłaJarass, L. Windenergie: Zuverlässige Integration in die Energieversorgung. Wyd. 2. Berlin: Springer, 2009.
Znajdź pełny tekst źródłaDing, Tao. Power System Operation with Large Scale Stochastic Wind Power Integration. Singapore: Springer Singapore, 2017. http://dx.doi.org/10.1007/978-981-10-2561-7.
Pełny tekst źródłaCzęści książek na temat "Integration of wind power"
Matevosyan, Julia, i Pengwei Du. "Wind Integration in ERCOT". W Power Electronics and Power Systems, 1–25. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-55581-2_1.
Pełny tekst źródłaEstanqueiro, Ana. "Wind Integration in Portugal". W Wind Power in Power Systems, 569–94. Chichester, UK: John Wiley & Sons, Ltd, 2012. http://dx.doi.org/10.1002/9781119941842.ch25.
Pełny tekst źródłaWanser, Sven, i Frank Ehlers. "Grid Integration". W Understanding Wind Power Technology, 369–405. Chichester, UK: John Wiley & Sons, Ltd, 2014. http://dx.doi.org/10.1002/9781118701492.ch10.
Pełny tekst źródłaJauch, Clemens. "Grid Integration of Wind Turbines". W Wind Power Technology, 427–90. Cham: Springer International Publishing, 2023. http://dx.doi.org/10.1007/978-3-031-20332-9_10.
Pełny tekst źródłaOsborn, Dale. "Wind Power Grid Integration wind power grid integration : Transmission Planning wind power grid integration transmission planning". W Encyclopedia of Sustainability Science and Technology, 12174–202. New York, NY: Springer New York, 2012. http://dx.doi.org/10.1007/978-1-4419-0851-3_90.
Pełny tekst źródłaOsborn, Dale. "Wind Power Grid Integration wind power grid integration : Transmission Planning wind power grid integration transmission planning". W Renewable Energy Systems, 1740–68. New York, NY: Springer New York, 2013. http://dx.doi.org/10.1007/978-1-4614-5820-3_90.
Pełny tekst źródłaRodríguez García, Juan Ma, Olivia Alonso García i Miguel de la Torre Rodríguez. "Wind Power Integration Experience in Spain". W Wind Power in Power Systems, 595–622. Chichester, UK: John Wiley & Sons, Ltd, 2012. http://dx.doi.org/10.1002/9781119941842.ch26.
Pełny tekst źródłaHolttinen, Hannele. "Overview of Integration Studies - Methodologies and Results". W Wind Power in Power Systems, 361–86. Chichester, UK: John Wiley & Sons, Ltd, 2012. http://dx.doi.org/10.1002/9781119941842.ch17.
Pełny tekst źródłaGuo, Qinglai, i Hongbin Sun. "Voltage Control for Wind Power Integration Areas". W Power Electronics and Power Systems, 269–99. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-55581-2_9.
Pełny tekst źródłaChi, Yongning, Zhen Wang, Yan Li i Weisheng Wang. "Large-Scale Wind Power Integration into the Chinese Power System". W Wind Power in Power Systems, 689–706. Chichester, UK: John Wiley & Sons, Ltd, 2012. http://dx.doi.org/10.1002/9781119941842.ch30.
Pełny tekst źródłaStreszczenia konferencji na temat "Integration of wind power"
Strbac, G. "Integration of wind power". W IET Seminar on Kyoto - at What Price? How GHG Markets are Impacting the Power Industry. IEE, 2006. http://dx.doi.org/10.1049/ic:20060251.
Pełny tekst źródłaHaupt, Sue Ellen, Gerry Wiener, Yubao Liu, Bill Myers, Juanzhen Sun, David Johnson i William Mahoney. "A Wind Power Forecasting System to Optimize Power Integration". W ASME 2011 5th International Conference on Energy Sustainability. ASMEDC, 2011. http://dx.doi.org/10.1115/es2011-54773.
Pełny tekst źródłaMugambi, G., i L. Cai. "Influence of power oscillation damping assets reactive power capacity on damping low-frequency power system oscillations". W 21st Wind & Solar Integration Workshop (WIW 2022). Institution of Engineering and Technology, 2022. http://dx.doi.org/10.1049/icp.2022.2776.
Pełny tekst źródłaPartinen, P., P. H. Nielsen, O. P. Janhunen, L. Linnamaa, N. Akel, K. Nayebi, T. Lund i A. Harjula. "Tuning of power plant voltage and reactive power controllers considering equivalent short circuit ratio". W 21st Wind & Solar Integration Workshop (WIW 2022). Institution of Engineering and Technology, 2022. http://dx.doi.org/10.1049/icp.2022.2832.
Pełny tekst źródłaLew, Debra, Charles Alonge, Michael Brower, Jaclyn Frank, Lavelle Freeman, Kirsten Orwig, Cameron Potter i Yih-Huei Wan. "Wind data inputs for regional wind integration studies". W 2011 IEEE Power & Energy Society General Meeting. IEEE, 2011. http://dx.doi.org/10.1109/pes.2011.6039695.
Pełny tekst źródłaDanneman, Eugene R., i Stephen J. Beuning. "Wind Integration: System and Generation Issues". W ASME 2010 Power Conference. ASMEDC, 2010. http://dx.doi.org/10.1115/power2010-27128.
Pełny tekst źródłaBergsträβer né Schütt, J., H. Becker, T. Schellien, S. Liebehentze i U. Spanel. "Areal power plant: aggregation system to control a multitude of distributed generators during power system restoration - demonstration results". W 21st Wind & Solar Integration Workshop (WIW 2022). Institution of Engineering and Technology, 2022. http://dx.doi.org/10.1049/icp.2022.2758.
Pełny tekst źródłaCarlson, Ola, i Stefan Lundberg. "Integration of wind power by DC-power systems". W 2005 IEEE Russia Power Tech. IEEE, 2005. http://dx.doi.org/10.1109/ptc.2005.4524793.
Pełny tekst źródłaZhong, Jin, Yunhe Hou i Felix F. Wu. "Wind power forecasting and integration to power grids". W 2010 International Conference on Green Circuits and Systems (ICGCS). IEEE, 2010. http://dx.doi.org/10.1109/icgcs.2010.5542999.
Pełny tekst źródłaSoares, B. M. M., I. C. da Costa, J. P. A. E. Santo, P. E. A. Cardoso i S. L. B. Pereira. "Obtaining flat initialization of complex renewable power plant models". W 21st Wind & Solar Integration Workshop (WIW 2022). Institution of Engineering and Technology, 2022. http://dx.doi.org/10.1049/icp.2022.2816.
Pełny tekst źródłaRaporty organizacyjne na temat "Integration of wind power"
DeCesaro, J., i K. Porter. Wind Energy and Power System Operations: A Review of Wind Integration Studies to Date. Office of Scientific and Technical Information (OSTI), grudzień 2009. http://dx.doi.org/10.2172/970337.
Pełny tekst źródłaO'Neill, Barbara, i Ilya Chernyakhovskiy. Designing Wind and Solar Power Purchase Agreements to Support Grid Integration. Office of Scientific and Technical Information (OSTI), lipiec 2016. http://dx.doi.org/10.2172/1262663.
Pełny tekst źródłaMakarov, Yuri V., Zhenyu Huang, Pavel V. Etingov, Jian Ma, Ross T. Guttromson, Krishnappa Subbarao i Bhujanga B. Chakrabarti. Wind Energy Management System Integration Project Incorporating Wind Generation and Load Forecast Uncertainties into Power Grid Operations. Office of Scientific and Technical Information (OSTI), wrzesień 2010. http://dx.doi.org/10.2172/985583.
Pełny tekst źródłaVenkataramanan, Giri, Bernard Lesieutre, Thomas Jahns i Ankur R. Desai. Integration of Wind Energy Systems into Power Engineering Education Program at UW-Madison. Office of Scientific and Technical Information (OSTI), wrzesień 2012. http://dx.doi.org/10.2172/1215792.
Pełny tekst źródłaMakarov, Yuri V., Zhenyu Huang, Pavel V. Etingov, Jian Ma, Ross T. Guttromson, Krishnappa Subbarao i Bhujanga B. Chakrabarti. Wind Energy Management System EMS Integration Project: Incorporating Wind Generation and Load Forecast Uncertainties into Power Grid Operations. Office of Scientific and Technical Information (OSTI), styczeń 2010. http://dx.doi.org/10.2172/977321.
Pełny tekst źródłaConstantinescu, E. M., V. M. Zavala, M. Rocklin, S. Lee i M. Anitescu. Unit commitment with wind power generation: integrating wind forecast uncertainty and stochastic programming. Office of Scientific and Technical Information (OSTI), październik 2009. http://dx.doi.org/10.2172/1009334.
Pełny tekst źródłaDenholm, P., G. Brinkman, D. Lew i M. Hummon. Operation of Concentrating Solar Power Plants in the Western Wind and Solar Integration Phase 2 Study. Office of Scientific and Technical Information (OSTI), maj 2014. http://dx.doi.org/10.2172/1132184.
Pełny tekst źródłaHansen, Clifford W. Validation of simulated irradiance and power for the Western Wind and Solar Integration Study. Phase II. Office of Scientific and Technical Information (OSTI), październik 2012. http://dx.doi.org/10.2172/1055649.
Pełny tekst źródłaBrooks, Daniel, EPRI, Aidan, EPRI Tuohy, Sidart, LCG Consulting Deb, Srinivas, LCG Consulting Jampani, Brendan, Consultant Kirby i Jack, Consultant King. DOE: Integrating Southwest Power Pool Wind Energy into Southeast Electricity Markets. Office of Scientific and Technical Information (OSTI), listopad 2011. http://dx.doi.org/10.2172/1029965.
Pełny tekst źródłaSmith, J. Charles, Brian Parsons, Thomas Acker, Michael Milligan, Robert Zavidil, Matthew Schuerger i Edgar DeMeo. Best Practices in Grid Integration of Variable Wind Power: Summary of Recent US Case Study Results and Mitigation Measures. Office of Scientific and Technical Information (OSTI), styczeń 2010. http://dx.doi.org/10.2172/1218415.
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