Repository landing page

We are not able to resolve this OAI Identifier to the repository landing page. If you are the repository manager for this record, please head to the Dashboard and adjust the settings.

Dynamic Frequency Response of Wind Power Plants

Abstract

Elproduktion fra vindkraft har hurtigt vokset i de seneste fem år på verdensplan. I mange lande har vind energimål sat i intervallet fra 20% til 50% af al elproduktion på grund af bekymringerne for CO2-emissioner, fossile brændsler omkostninger og energieffektivitet. For at opretholde en bæredygtig og pålidelig drift af elsystemet for disse mål, har transmissionssystemoperatørerne (TSO) revideredes de forsyningsnetkodeks krav. Også, skal TSO'erne planlægger den fremtidige udvikling af elsystemet med forskellige vind indtrængen scenarier at integrere mere vindkraft i henhold til deres netkrav. I disse scenarier særligt med høje vindkraft penetration sager, konventionelle kraftværker (CPPs) sådanne som gamle termiske kraftværker planlægges at blive erstattet med vindkraftværker (WPPs). Derfor vil elsystemet stabilitet blive påvirket og kontrol evne WPPs ville blive undersøgt.Formålet med dette projekt er at analysere og identificere elsystemet krav til synkroniserende strømforsyning og inerti svar kontrol af WPPs i høj vindkraft penetration scenarier. Den dynamiske frekvensrespons WPPs er realiseret som den synkroniserende strømforsyning og inerti svar kontrol i denne afhandling. Derfor er vurderingen af dynamiske frekvensrespons udførelse af WPPs udført. Et generisk elsystemet model og en generisk WPP model med flere forskellige vindkraftprojekter indtrængen scenarier gennemføres på en RMS værktøjskasse, som er udviklet til vinden integrationsstudier.For den inerti respons undersøgelse bliver en ny kontrol foreslåede metode, som forbedrer de eksisterende kontrolbestemmelser begreber i forhold til at reducere den frigjorte energi og peak aktiv magt WPPs. Det er også vist, at når evnen til WPPs betragtes foreslåede kontrol metode har mindre indflydelse på elsystemet frekvens i forhold til eksisterende styringskoncepter. En anden fordel ved den foreslåede inerti respons regulator tuning metode, som kan anvendes som en generisk fremgangsmåde til enhver power system med høj vindkraft penetrationen.Desuden er en vurderingsmetode af synkroniseringssekvensen strømforsyning fra WPPs udviklet til synkroniserende strømforsyning. De simulering Resultaterne viser, at integration af WPPs har reduceret synkroniserende power flow mellem CPPs i høj vindkraft penetration scenarier. Desuden er kontrolmetoder til at støtte synkronisering magt foreslået og evalueret med den udviklede metode.Electricity generation from wind energy has rapidly increased for the last five years worldwide. In many countries, wind energy targets have been set in the range of 20% to 50% of all electricity generation due to the concerns of CO2 emissions, fossil fuel costs, and energy efficiency. In order to maintain sustainable and reliable operation of the power system for these targets, transmission system operators (TSOs) have revised the grid code requirements. Also, the TSOs are planning the future development of the power system with various wind penetration scenarios to integrate more wind power according to their grid codes. In these scenarios particularly with high wind power penetration cases, conventional power plants (CPPs) such as old thermal power plants are planned to be replaced with wind power plants (WPPs). Consequently, the power system stability will be affected and the control capability of WPPs would be investigated.The objective of this project is to analyze and identify the power system requirements for the synchronizing power support and inertial response control of WPPs in high wind power penetration scenarios. The dynamic frequency response of WPPs is realized as the synchronizing power support and inertial response control in this thesis. Accordingly, the assessment of dynamic frequency response performance of WPPs is carried out. A generic power system model and a generic WPP model with various wind power penetration scenarios are implemented in a RMS toolbox which is developed for the wind integration studies.For the inertial response study, a new control method is proposed which improves the existing control concepts in terms of reducing the released energy and peak active power of WPPs. It is also shown that when the capability of WPPs considered proposed control method has less impact of the power system frequency compared to existing control concepts. Another advantage of the proposed inertial response control has the tuning methodology which can be utilized as a generic approach for any power system with high wind power penetration levels.Additionally, an assessment methodology of the synchronizing power support from WPPs is developed for the synchronizing power support. The simulation results show that integration of WPPs have reduced the synchronizing power flow between CPPs in high wind power penetration scenarios. Moreover, the control methods to support synchronizing power are proposed and evaluated with the developed methodology

Similar works

This paper was published in VBN.

Having an issue?

Is data on this page outdated, violates copyrights or anything else? Report the problem now and we will take corresponding actions after reviewing your request.