848 resultados para grid codes


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Isolated electrical systems lack electrical interconnection to other networks and are usually placed in geographically isolated areas—mainly islands or locations in developing countries. Until recently, only diesel generators were able to assure a safe and reliable supply in exchange for very high costs for fuel transportation and system operation. Transmission system operators (TSOs) are increasingly seeking to replace traditional energy models based on large groups of conventional generation units with mixed solutions where diesel groups are held as backup generation and important advantages are provided by renewable energy sources. The grid codes determine the technical requirements to be fulfilled by the generators connected in any electrical network, but regulations applied to isolated grids are more demanding. In technical literature it is rather easy to find and compare grid codes for interconnected electrical systems. However, the existing literature is incomplete and sparse regarding isolated grids. This paper aims to review the current state of isolated systems and grid codes applicable to them, specifying points of comparison and defining the guidelines to be followed by the upcoming regulations.

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Electrical power systems are changing their traditional structure, which was based on a little number of large generating power plants placed at great distances from loads by new models that tend to split the big production nodes in many smaller ones. The set of small groups which are located close to consumers and provide safe and quality energy is called distributed generation (DG). The proximity of the sources to the loads reduces losses associated with transportation and increases overall system efficiency. DG also favors the inclusion of renewable energy sources in isolated electrical systems or remote microgrids, because they can be installed where the natural resource is located. In both cases, as weak grids unable to get help from other nearby networks, it is essential to ensure appropriate behavior of DG sources to guarantee power system safety and stability. The grid codes sets out the technical requirements to be fulfilled for the sources connected in these electrical networks. In technical literature it is rather easy to find and compare grid codes for interconnected electrical systems. However, the existing literature is incomplete and sparse regarding isolated electrical systems and this happens due to the difficulties inherent in the pursuit of codes. Some countries have developed their own legislation only for their island territory (as Spain or France), others apply the same set of rules as in mainland, another group of island countries have elaborated a complete grid code for all generating sources and some others lack specific regulation. This paper aims to make a complete review of the state of the art in grid codes applicable to isolated systems, setting the comparison between them and defining the guidelines predictably followed by the upcoming regulations in these particular systems.

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Wind turbines based on doubly fed induction generators (DFIG) become the most popular solution in high power wind generation industry. While this topology provides great performance with the reduced power rating of power converter, it has more complicated structure in comparison with full-rated topologies, and therefore leads to complexity of control algorithms and electromechanical processes in the system. The purpose of presented study is to present a proper vector control scheme for the DFIG and overall control for the WT to investigate its behavior at different wind speeds and in different grid voltage conditions: voltage sags, magnitude and frequency variations. The key principles of variable-speed wind turbine were implemented in simulation model and demonstrated during the study. Then, based on developed control scheme and mathematical model, the set of simulation is made to analyze reactive power capabilities of the DFIG wind turbine. Further, the rating of rotor-side converter is modified to not only generate active rated active power, but also to fulfill Grid Codes. Results of modelling and analyzing of the DFIG WT behavior under different speeds and different voltage conditions are presented in the work.

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Tässä työssä tutkitaan muuttuvanopeuksisen tuulivoimakäytön verkkoliityntöjä, verkkomääräyksiä ja mittausmenetelmiä Euroopassa. Yleiset tuulivoimalaitoksen verkkomääräyksiin liittyvät asiat on selitetty standardisarjassa IEC 61000 ja mittauksiin liittyvät säännökset standardissa IEC 61400-21. Työssä selvitetään Euroopan yleiset verkkomääräykset ja vertaillaan niitä keskenään, sekä määritetään tärkeimmät mittaukset. Lisäksi esitellään eräs standardimittauksiin soveltuva mittalaite ja analysoidaan täystehomuokkaimen suorituskykyä tuulivoimapuistossa. Työssä havaittiin, että standardin mukaisten mittausten toteuttaminen ja analysointi on hyvin haastava prosessi. Verkkomääräysten eroavaisuudet aiheuttavat hankaluuksia tuulivoimalan valmistajan ja verkko-operaattorien välillä. Täten myös konvertterivalmistajan täytyy olla selvillä käytössä olevista verkkomääräyksistä ja standardeista.

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Tämä työ on tehty Lappeenrannan teknillisessä yliopistossa, meneillään olevan tuulivoimalasimulaattorin kehitystyön yhteydessä. Työssä käydään läpi simulaattorissa käytettyjen generaattorisillan ja verkkosillan säätöperiaatteita, tehdään katsaus siirtoverkon jännitevikoihin sekä tuulivoimalan toimintaan näissä vikatilanteissa. Työn varsinainen tutkimuskohde on verkkosillan säädön toiminnan simuloiminen siirtoverkon jännitevioissa ja säädön parannusehdotukset.

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Tuulivoimatekniikan nopea kehitys on lisännyt tuulivoimakapasiteetin määrää sähköverkoissa. Eri maiden siirtoverkko-operaattorit ovatkin julkaisseet tuulivoimaloille omat verkkomääräyksensä. Työssä tutkitaan tuulivoimaloiden tekniikkaa, eri maiden verkko-operaattoreiden asettamia verkkomääräyksiä tuulivoimalle sekä arvioidaan näiden kehitystä tulevaisuudessa. Tutkittaviksi alueiksi on valittu maita, joiden siirtoverkot ovat rakenteeltaan erilaisia ja joissa tuulivoimaloille asetetut vaatimukset sekä asennetun tuulivoimakapasiteetin määrät vaihtelevat. Verkkomääräyksiä käsitellessä on keskitytty vain tärkeimpiin teknisiin vaatimuksiin. Eri verkkomääräykset eroavat toisistaan rakenteeltaan sekä vaatimuksiltaan ja ne ovat tiukentuneet tuulivoiman osuuden kasvaessa kokonaisenergiantuotannosta. Tämä on vaikeuttanut sähköverkoissa toimivien osapuolien operointia. Verkkomääräyksien harmonisoinnille ja kehittämiselle onkin tarvetta verkon kaikkien osapuolien toimintaedellytyksien parantamiseksi. Tuulivoimaloiden sisältämän tehoelektroniikan ja älykkäiden sähköverkkojen kehityksen myötä voidaan tuulivoimalla saavuttaa myös monia etuja esimerkiksi muihin tuotantotapoihin verrattuna.

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Euroopan unionin asettamat uusiutuvan energian lisäämistavoitteet ovat kasvattaneet hajautetun tuotannon määrää Euroopassa. Eri hajautetun tuotannon verkkokoodit asettavat tuotantolaitoksille omat vaatimuksensa, mikä vaikeuttaa eri toimijoita, joten yhtenäiselle verkkokoodille on tarvetta. ENTSO-E onkin luomassa tällä hetkellä Euroopan unionille yhtenäisiä pilottiverkkokoodeja, joiden tarkoitus on myöhemmin kattaa kaikkia tuotantolaitoksia koko Euroopassa. Tämän vuoksi ENTSO-E:n verkkokoodien vaatimuksia on syytä tutkia. Tässä diplomityössä tarkastellaan hajautetun tuotannon nykyisiä ja ENTSO-E:n kehitteillä olevia verkkokoodeja. Työssä tutkitaan myös älykkäiden verkkojen ja verkkokoodien kehitystä. Verkkokoodien vertailuja suoritetaan pohjoismaisesta näkökulmasta, mutta vertailuun on otettu myös muita Euroopan maita. Tarkastelu painottuu siirto- ja jakeluverkkokoodien osalta tuulivoimalle asetettaviin vaatimuksiin. Mikrotuotannon verkkokoodien ja käytännön toimien tarkastelu keskittyy invertterin kautta verkkoonliitettäviin tuotantolaitoksiin, joissa aurinkotuotanto on merkittävin tuotantomuoto.

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Increasingly growing share of distributed generation in the whole electrical power system’s generating system is currently a worldwide tendency, driven by several factors, encircling mainly difficulties in refinement of megalopolises’ distribution networks and its maintenance; widening environmental concerns adding to both energy efficiency approaches and installation of renewable sources based generation, inherently distributed; increased power quality and reliability needs; progress in IT field, making implementable harmonization of needs and interests of different-energy-type generators and consumers. At this stage, the volume, formed by system-interconnected distributed generation facilities, have reached the level of causing broad impact toward system operation under emergency and post-emergency conditions in several EU countries, thus previously implementable approach of their preliminary tripping in case of a fault, preventing generating equipment damage and disoperation of relay protection and automation, is not applicable any more. Adding to the preceding, withstand capability and transient electromechanical stability of generating technologies, interconnecting in proximity of load nodes, enhanced significantly since the moment Low Voltage Ride-Through regulations, followed by techniques, were introduced in Grid Codes. Both aspects leads to relay protection and auto-reclosing operation in presence of distributed generation generally connected after grid planning and construction phases. This paper proposes solutions to the emerging need to ensure correct operation of the equipment in question with least possible grid refinements, distinctively for every type of distributed generation technology achieved its technical maturity to date and network’s protection. New generating technologies are equivalented from the perspective of representation in calculation of initial steady-state short-circuit current used to dimension current-sensing relay protection, and widely adopted short-circuit calculation practices, as IEC 60909 and VDE 0102. The phenomenon of unintentional islanding, influencing auto-reclosing, is addressed, and protection schemes used to eliminate an sustained island are listed and characterized by reliability and implementation related factors, whereas also forming a crucial aspect of realization of the proposed protection operation relieving measures.

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Short-term variability in the power generated by large grid-connected photovoltaic (PV) plants can negatively affect power quality and the network reliability. New grid-codes require combining the PV generator with some form of energy storage technology in order to reduce short-term PV power fluctuation. This paper proposes an effective method in order to calculate, for any PV plant size and maximum allowable ramp-rate, the maximum power and the minimum energy storage requirements alike. The general validity of this method is corroborated with extensive simulation exercises performed with real 5-s one year data of 500 kW inverters at the 38.5 MW Amaraleja (Portugal) PV plant and two other PV plants located in Navarra (Spain), at a distance of more than 660 km from Amaraleja.

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During the last decade, wind power generation has seen rapid development. According to the U.S. Department of Energy, achieving 20\% wind power penetration in the U.S. by 2030 will require: (i) enhancement of the transmission infrastructure, (ii) improvement of reliability and operability of wind systems and (iii) increased U.S. manufacturing capacity of wind generation equipment. This research will concentrate on improvement of reliability and operability of wind energy conversion systems (WECSs). The increased penetration of wind energy into the grid imposes new operating conditions on power systems. This change requires development of an adequate reliability framework. This thesis proposes a framework for assessing WECS reliability in the face of external disturbances, e.g., grid faults and internal component faults. The framework is illustrated using a detailed model of type C WECS - doubly fed induction generator with corresponding deterministic and random variables in a simplified grid model. Fault parameters and performance requirements essential to reliability measurements are included in the simulation. The proposed framework allows a quantitative analysis of WECS designs; analysis of WECS control schemes, e.g., fault ride-through mechanisms; discovery of key parameters that influence overall WECS reliability; and computation of WECS reliability with respect to different grid codes/performance requirements.

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Quasi-uniform grids of the sphere have become popular recently since they avoid parallel scaling bottle- necks associated with the poles of latitude–longitude grids. However quasi-uniform grids of the sphere are often non- orthogonal. A version of the C-grid for arbitrary non- orthogonal grids is presented which gives some of the mimetic properties of the orthogonal C-grid. Exact energy conservation is sacrificed for improved accuracy and the re- sulting scheme numerically conserves energy and potential enstrophy well. The non-orthogonal nature means that the scheme can be used on a cubed sphere. The advantage of the cubed sphere is that it does not admit the computa- tional modes of the hexagonal or triangular C-grids. On var- ious shallow-water test cases, the non-orthogonal scheme on a cubed sphere has accuracy less than or equal to the orthog- onal scheme on an orthogonal hexagonal icosahedron. A new diamond grid is presented consisting of quasi- uniform quadrilaterals which is more nearly orthogonal than the equal-angle cubed sphere but with otherwise similar properties. It performs better than the cubed sphere in ev- ery way and should be used instead in codes which allow a flexible grid structure.

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We propose new classes of linear codes over integer rings of quadratic extensions of Q, the field of rational numbers. The codes are considered with respect to a Mannheim metric, which is a Manhattan metric modulo a two-dimensional (2-D) grid. In particular, codes over Gaussian integers and Eisenstein-Jacobi integers are extensively studied. Decoding algorithms are proposed for these codes when up to two coordinates of a transmitted code vector are affected by errors of arbitrary Mannheim weight. Moreover, we show that the proposed codes are maximum-distance separable (MDS), with respect to the Hamming distance. The practical interest in such Mannheim-metric codes is their use in coded modulation schemes based on quadrature amplitude modulation (QAM)-type constellations, for which neither the Hamming nor the Lee metric is appropriate.

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We show that commutative group spherical codes in R(n), as introduced by D. Slepian, are directly related to flat tori and quotients of lattices. As consequence of this view, we derive new results on the geometry of these codes and an upper bound for their cardinality in terms of minimum distance and the maximum center density of lattices and general spherical packings in the half dimension of the code. This bound is tight in the sense it can be arbitrarily approached in any dimension. Examples of this approach and a comparison of this bound with Union and Rankin bounds for general spherical codes is also presented.

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Embedded sensitivity analysis has proven to be a useful tool in finding optimum positions of structure reinforcements. However, it was not clear how sensitivities obtained from the embedded sensitivity method were related to the normal mode, or operational mode, associated to the frequency of interest. In this work, this relationship is studied based on a finite element of a slender sheet metal piece, with preponderant bending modes. It is shown that higher sensitivities always occur at nodes or antinodes of the vibrating system. [DOI: 10.1115/1.4002127]