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A cellular approach to optimize the integration of renewable generation into distribution networks
(2022)
The steady growth of the renewable-based technologies in the last twenty years has changed the character of the power systems significantly. Until today, there are more than 112 GW installed photovoltaic and wind parks in Germany and around 90% of the installed renewable generators are integrated into distribution networks. As a result, distribution networks are often facing congestion problems and more investments are needed for the required network development plans.
The political decisions in Germany for increasing the share of renewables in electricity consumption up to 65% until 2030 and the nuclear phase out until 2022 and further shutdowns of the coal power plants raised serious concerns about the reliability of power supply and feasibility of the transition plan.
The present dissertation has a look over the recent developments and offers a methodology for reduction of the resulted costs from further integration of renewable generators into the distribution networks. The suggested methodology is based on a cellular approach and helps also to postpone the unnecessary costly network expansions. Furthermore, it helps to integrate the renewable generators in an optimized way which has an added value to move towards the defined sustainability goals.
The proposed methodology has two steps. The first step is made up of the cellular approach and grey wolf optimization in MATLAB environment. In this step, the optimal combination of technologies for fulfillment of the defined goals are found out. The second step consists of the quasi dynamic simulations in PowerFactory environment. In this step, the suggested results from MATLAB optimization are investigated in semi-real situations. With the quasidynamic simulations, it is checked whether the results are tolerable from the point of view of network operation and whether it is possible to facilitate the network operation with certain strategies.
Energy demand of continents, countries, communities and individuals will continue to increase in the phase of increasing population and improvement in the living standards of people. The attempt to meet this ever increasing demand and at the same time protect the environment has resulted in the fast growth of power generation from renewable sources of energy especially from wind through wind power plants and solar through photovoltaic power plants. This growth has been facilitated by various support schemes such as feed-in-tariff scheme, feed-in-premium and quota scheme. Further growth is expected in the future. This is because of the existing support schemes and the expectation of the emergence of improved technologies for harvesting renewable energy.
This development of power generation from renewable sources of energy although positive lead to some distinctive negative effects on the existing electrical network to which they are connected. These negative effects are known and well documented. The fluctuating nature of wind and solar radiation at any given location over a given period of observation is seen to translate into the power they feed into the power network. This fluctuating infeed requires more active management of the network by system operators so as to ensure continuous reliable power generation and delivery. Sometimes the management process lead to non-utilization of power produced by the renewables sources. Secondly, expansion and reinforcement of some existing networks are needed in other to accommodate renewable power generators. These come at a cost. Many studies and researches have been dedicated to finding solutions to these issues.
This work agrees with the use of storage systems as means of solving these issues but the question that remains unanswered is what the optimal way is. There is also a further push given to the view of installing renewable energy plants together with storage systems as a unit in this work. The main task presented in this work, however, is a concept of sizing renewable energy plant and storage systems as a unit. The resulting renewable energy plant-storage unit has the objective of supporting the electrical network to which it will be connected. Firstly the support should be by reducing the fluctuating effect from renewable production. Secondly by helping improve the load hosting capacity of the electrical network. This will be by supplying the part of the load demand leading to the reduction of the overall power drawn by connected loads from the electrical power network.
Historic data of renewable resource and also the load demand at the point or bus of connection are the drivers of this concept. With the earlier mentioned objectives and random or stochastic nature of data involved, particle swarm optimization method is employed in implementing the concept of sizing to arrive at an optimal solution of required sizes of the renewable energy plant-storage system.
The concept of sizing is based on proposing an ideal load demand that can be supplied by a utility under normal operating condition at all time. It follows that any extra demand should be supplied by the optimally sized renewable energy plant-storage unit. In this work sizing results of three scenarios presented. A single node network with three different types of the load was used in testing the effect of optimally sized renewable energy plant-storage system on an electrical network. The outcome of this test showed that the optimally sized renewable energy storage-system improved the ability of the test electrical network to support additional load hence load hosting capacity of test network was improved. The process required modelling and simulation all of which were carried out using MATLAB Simulink software.
A contribution to the online monitoring of partial discharges in high-voltage grid components
(2024)
Increasing utilization of HV power cable lines, and particularly the advent of long HVDC underground links, results in the need to sensitively monitor their condition, such as by tracking the emergence and development of partial discharges. This study demonstrates that existing solutions are poorly suited to the case of HVDC lines, and that a new, more sophisticated monitoring system needs to address a wide array of diverse problems. First of all, the overview of the task and main functional blocks of the monitoring system is given. Following this, selected blocks are subject to detailed examination in subsequent chapters.
The first of these blocks, a high-frequency current transformer (HFCT), is responsible for capturing the signal in the power line and transferring it to the electronics. This component receives in-depth coverage: general design considerations, computation of leakage inductance, operation in presence of a power current, resonant behavior, balanced design. Particular attention is given to the application of Finite Element Analysis (FEA) in relation to the HFCT, however, the demonstrated techniques can also be applied to other magnetic devices. Last section of the chapter presents various stages of development, experimental setups, prototypes, and the final device which has been put into series production.
The next block addresses extraction of signals from noise. A literature analysis is conducted concerning noise suppression in partial discharge recordings, and the application of the signal separation approach based on Linear Predictive Coding is shown.
In the section on localization, examples illustrating problems encountered during the development of a partial discharge localization algorithm are presented.
In the chapter devoted to laboratory tests, various auxiliary experiments conducted during the system's development are compiled, where some of them are: Time Domain Reflectometry (TDR) TDR-based line characterization, estimation of monitoring sensitivity, measurement of the cable attenuation and reflection coefficients of the accessories.
In the final chapter – field tests – the installation of the system on a 110 kV line and the measured transfer function are demonstrated.
A Simulation analysis to improve the dielectric strength inside High Voltage Vacuum Interrupters
(2015)
Vacuum circuit breakers are expected to be one of the possible alternatives for SF6 circuit breakers in transmission voltages up to 230kV because of the excellent insulation as well as environmental friendly characteristics of vacuum. But for higher voltages, maintaining the electrical insulation inside and outside the interrupter tube is very important and becoming a challenge for the design engineers. Normally a vacuum interrupter consists of metal shields sandwiched between the ceramic insulator blocks inside the tube. The primary purpose of these metal shields is to protect the insulator walls by avoiding metal vapor deposition during the arcing process. On the other hand, these metal shields also influence the electric field distribution inside the interrupter tube. The presence of the metal shields may reduce the dielectric strength of the interrupter tube if proper measures are not taken.
This research is devoted to provide the information about the possible areas inside and outside the interrupter tube that are considered as critical in terms of dielectric strength because of the presence of metal shields. Possible solutions are also given in this thesis to overcome the high field stress in these critical areas with the help of 2D simulations that are simulated in ANSYS Maxwell.
The critical areas and their respective solutions presented in this work are (1) unidentified edges outside the interrupter tube which are formed by the metal shields that are inserted between the ceramic blocks. These edges, at high field stress, may act as a source of discharges between the interrupter tube and the outer insulator. This problem can be reduced by the combination of using a pressurized insulating gas (which is in this case N2) between interrupter tube and outer insulator and by extending the unidentified edges and covering them with field grading rings which are conductive in nature. (2) Triple junctions (Vacuum-Ceramic-Metal shield) are the sources of high field stress inside the interrupter tube and are considered as a primary source of Secondary Electron Emission Avalanche that takes place on the (3) ceramic surface. The triple junction emissions can be avoided by properly designing the insulator geometry at point of contact with the metal shield. In addition, inserting metal parts of certain depth at the both ends of the ceramic insulators can also reduce the field stress at the triple junctions and avoid surface flashovers on the ceramic surface. (4) The gap between the metal shield and the contact rod is also considered to be a critical area which can be highly stressed (field) if the geometry of metal shield curvature is not properly designed. Various metal shield curvatures are proposed and simulated and an optimum geometry is suggested that reduces the electric field stress between the metal shield and contact rod. Using this optimized metal shield curvature, the diameter of the interrupter tube can be reduced considerably which in turn reduces the size of the interrupter tube.
Durch die schnell steigende Durchdringung von innerstädtischen Photovoltaikanlagen und Elektrofahrzeugen in den Niederspannungsnetzen wird die zukünftige Versorgungsinfrastruktur herausgefordert. Die Schwerpunkte der Netzauswirkungen werden auf das Spannungsband und die tolerierte Netzbelastung der untersuchten Netze fokussiert. Das Ziel dieser Dissertation ist es, die zulässig installierbare Photovoltaikleistung in den Wohnsiedlungen zu ermitteln und die möglichen Lösungen zur Vermeidung des notwendigen Netzausbaues zu entwickeln. Zunächst wurde eine Untersuchung zur Ermittlung des Photovoltaikpotenzials in der Stadt Cottbus mit ca. 100.000 Einwohnern durchgeführt. Insgesamt ist ca. 250 MWp Photovoltaikleistung theoretisch installierbar. Dies kann zu einer maximalen Summeneinspeiseleistung von 200 MW führen, welche die derzeitige Lastspitze in Cottbus weit überschreiten würde. Zur Ermittlung der Netzauswirkungen auf die Niederspannungsnetze bei hoher Penetration von Photovoltaikanlagen und Elektrofahrzeugen wurden die folgenden drei Modelle erstellt: Das Photovoltaikeinspeisemodell basiert auf der gemessenen Globalstrahlung mit realen Zeitreihen in Cottbus. Zur Modellierung der Lastgänge von Haushalten wird das Standardlastprofil zur Verfügung gestellt. Die zusätzlichen Ladelastgänge von Elektrofahrzeugen werden den derartigen Lastgängen von Haushalten überlagert. Die Netzstruktur wurde für Ein- und Zweifamilienhaussiedlungen und Mehrfamilienhaussiedlungen modelliert. Die Simulationen wurden in der Netzberechnungssoftware ELEKTRA durchgeführt. Es ist festzuhalten, dass die installierbare Photovoltaikleistung in den Ein- und Zweifamilienhaussiedlungen beschränkt werden muss. Durch eine induktive Blindleistungsbereitstellung kann die zulässige Leistung erhöht werden. In den Mehrfamilienhaussiedlungen ist eine komplette Ausnutzung der Dachfläche mit Photovoltaikanlagen möglich. Zum Schluss wurden zwei Varianten durch Einsatz der Speichersysteme zur besseren Integration der Photovoltaikanlagen entwickelt und dann anhand eines Beispielnetzes demonstriert.
With the recent developments in electrical transmission system, HVDC transmission for long distances has become feasible. With this development, many insulators are being used in HVDC system. Different kinds of insulators are situated at different places (example: desert, near to sea, agriculture area, etc.) so they will get expose to different types of pollution. Pollution affects the behavior of insulation in terms of breakdown and withstand capability. The application experience of insulators under HVDC conditions is limited. There is a necessity to understand the flashover performance and to recognize key parameters in the design and dimensioning of insulators used under HVDC conditions. This dissertation presents the difference between the analysis of partial breakdowns at AC and DC.
The dissertation explains the behavior of a water drop on insulator shed surface energized with DC. It deals with the moving water drop and hanging drop at the edge of the shed.
There are many situations where insulator structure should be in parallel. For example, the structure of insulators in vertical disconnector equipment often is parallel. If insulators are arranged in parallel, then the behavior of the electric field is totally different. It is important to know the behavior of these insulators used in HVDC system. This report also explains the pollution and non-pollution behavior of parallel insulators energized with DC.
The results can be a source of information to optimize the design and dimensioning of HVDC insulators, especially in pollution conditions.
This PhD project started from one basic question: whether vacuum technology can be applied to 145kV electrical power system networks as a potential substitution to SF6 technology which has been utilised for decades of practice, due to environment and economic concerns. Possible threats and challenges, which might cause problems for the proposed replacement, are identified mainly in three areas: (1) small inductive current switching, (2) capacitive load current switching and (3) short-line fault switching. Three circuit-breaker programming models, therefore, have been developed based on statistic data provided by breaker manufactures: (1) a maximum di/dt fixed model which has been utilised for small inductive current switching tests and capacitive load current de-energising tests; (2) a dynamic di/dt model adopting from Mayr’s classic arc model for SF6 circuit-breakers which has been utilised for short-line fault tests; and (3) a current making model for capacitive load current energising tests. In a general conclusion, vacuum technology shows its superiority in most of the switching duties although in some rare cases, SF6 technology still stands a chance to break it even. But if we take the environment and economic factors into consideration, vacuum is definitely worth investigating in the future market.
For several decades HVDC technology was used primarily for point-to-point bulk power transmission. Although multiterminal HVDC systems are very few in number, it is expected that multiple HVDC links may be interconnected into HVDC transmission grid. Since every meshed grid requires reliable protection solution, an HVDC circuit breaker must be developed and introduced. This thesis focuses on the performance evaluation of different HVDC circuit breaker concepts. The performance evaluation study is carried out by means of numerical simulations. The obtained quantitative results describe capabilities and limitations of different HVDC circuit breaker concepts as well as the reaction of HVDC network on switching operations. Different converter protection measures and in particular application of fault current limiter were considered, too. Based on the research findings, a number of recommendations for HVDC circuit breaker development are given and suggestions for further research activities are presented.
A continually growing demand for reliable energy supply makes existing power systems more heavily loaded and evokes engineers and experts to look for feasible immediate solutions in power energy transmission. One of these solutions might be a bulk power transmission network at extra high voltages based on direct current.
Currently, high voltage direct current (HV DC) transmission has been only realized in point-to-point systems and back-to-back arrangements. Thus, the next logical step in this development would be an HV DC network. In principle, it might have certain advantages over a conventional high voltage AC system, as it could be less closely meshed covering larger areas and transmit higher electric power with lower losses.
However, no well-grounded investigations concerning possible layout and operation of an HV DC network are publicly available. Experience from the HV DC lines does not allow to make substantial conclusions regarding the requirements for an HV DC network.
Therefore, some basic questions on the operation of an HV DC network need to be answered mainly from systems simulations.
The Electric power crisis is one of the major problems in Bangladesh, the gap between demand and generation is increasing day by day. Moreover, most of the power plants are gas based which will be phased out in future. An alternate electric supply is an essential part for electrifying the developing countries, in this context an innovative approach of rural electrification including DC microgrid, mini-grid and nanogrid would be technically and economically feasible. The thesis draws also attention on the development of technology which enables community owned power system to emerge in the rural areas based on distributed SHS and demand of that community.
Firstly, the electric status and renewable potential in Bangladesh are studied and considered those data into the software based simulation to analysis the technical feasibility to implement DC microgrid by Homer pro tools. The distributed RES (Renewable Energy sources) considered solar PV and biomass. The booming of a large number of individual SHS (Solar Home System) in Bangladesh, bottom-up energy sharing concept would have studied to configure the optimal design of microgrid system and different configuration including grid connected and DC and AC system studied.
Secondly, The PV module is highly dependent on cell temperature and solar irradiance, the ambient temperature, and solar irradiance mathematical equation have been considered to model and simulate in MATLAB/SIMULINK based environment. Similarly charge controller, battery operation, and performance analysis with respect to the PV model. In the distributed energy sources are mainly SHS including large size and regular also model and simulate in MATLAB/SIMULINK software. For instance, the thesis mainly focuses on an optimal design, planning, sizing of DC hybrid microgrid, the SHS, and biomass-based power system with the goal of maximizing the efficiency and reliability. Homer Pro tool used in the work for design an optimal configuration and sizing for technical feasibility.
Finally, a model of DC microgrid compresses with micro sources like SHS systems, µ-CHP, the household loads model in MATLAB/SIMULINK. Decentralized SHS control strategies (droop control) and operation also design and model in MATLAB/SIMULINK environment, where DC – DC converter needs to couple SHS and DC microgrid.