C. Göran Andersson
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Claes Göran Andersson (born 1951) is a Swedish academic. He was a full Professor of Power Systems in the Department of Information Technology,
Swiss Federal Institute of Technology The Swiss Federal Institutes of Technology are two institutes of higher education in Switzerland (part of the ETH Domain): * Swiss Federal Institute of Technology in Lausanne Swiss most commonly refers to: * the adjectival form of Switzerland *Sw ...
in
Zürich Zurich (; ) is the list of cities in Switzerland, largest city in Switzerland and the capital of the canton of Zurich. It is in north-central Switzerland, at the northwestern tip of Lake Zurich. , the municipality had 448,664 inhabitants. The ...
,
Switzerland Switzerland, officially the Swiss Confederation, is a landlocked country located in west-central Europe. It is bordered by Italy to the south, France to the west, Germany to the north, and Austria and Liechtenstein to the east. Switzerland ...
, in 2010–2016 and is now emeritus. He is a Fellow of the Royal Swedish Academy of Engineering Sciences (since 1992), Royal Swedish Academy of Sciences (since 1994), and the Swiss Academy of Engineering Sciences (since 2015). He was also elected as an International Member of the US
National Academy of Engineering The National Academy of Engineering (NAE) is an American Nonprofit organization, nonprofit, NGO, non-governmental organization. It is part of the National Academies of Sciences, Engineering, and Medicine (NASEM), along with the National Academ ...
in 2016 for contributions to the development of high-voltage direct current (HVDC) technology and methods of power system voltage stability analysis. As of February 2019, he has earned more than 25,000 citations and his h-index is 72 (Google Scholar).


Biography

Göran Andersson earned his master's degree from
Lund University Lund University () is a Public university, public research university in Sweden and one of Northern Europe's oldest universities. The university is located in the city of Lund in the Swedish province of Scania. The university was officially foun ...
in 1975 in the field of
engineering physics Engineering physics (EP), sometimes engineering science, is the field of study combining pure science disciplines (such as physics, mathematics, chemistry or biology) and engineering disciplines (computer, nuclear, electrical, aerospace, medic ...
. He finished his PhD studies at the same institute in
mathematical physics Mathematical physics is the development of mathematics, mathematical methods for application to problems in physics. The ''Journal of Mathematical Physics'' defines the field as "the application of mathematics to problems in physics and the de ...
, namely on the theory of rotational excitations in nuclei, in 1980.'' Dissertation'' von C. Göran Andersson, Studies in the theory of rotational excitations in nuclei, Lund Universität, URL: http://libris.kb.se/bib/217890 After his PhD studies, he worked as a research engineer at
ASEA ''Allmänna Svenska Elektriska Aktiebolaget'' ( English translation: General Swedish Electrical Limited Company; Swedish abbreviation: ASEA) was a Swedish industrial company. History ASEA was founded in 1883 by Ludvig Fredholm in Västerås ...
, now
ABB ABB Group is a Swedish-Swiss multinational electrical engineering corporation. Incorporated in Switzerland as ABB Ltd., and headquartered in Zurich, it is dual-listed on the Nasdaq Nordic exchange in Stockholm, Sweden, and the SIX Swiss Excha ...
, in the HVDC division from 1980 to 1985. In 1985, he became the Section Manager for Systems Engineering in the same division until 1986. During these years he was mostly researching on dynamics and control of
power systems IBM Power Systems is a family of server computers from IBM that are based on its Power processors. It was created in 2008 as a merger of the System p and System i product lines. History IBM had two distinct POWER- and PowerPC-based hardwar ...
with a main focus on
HVDC A high-voltage direct current (HVDC) electric power transmission system uses direct current (DC) for electric power transmission, in contrast with the more common alternating current (AC) transmission systems. Most HVDC links use voltages betwe ...
. After his time at ASEA, he became a professor at the
Royal Institute of Technology KTH Royal Institute of Technology (), abbreviated KTH, is a public research university in Stockholm, Sweden. KTH conducts research and education in engineering and technology and is Sweden's largest technical university. Since 2018, KTH consist ...
at
Stockholm Stockholm (; ) is the Capital city, capital and List of urban areas in Sweden by population, most populous city of Sweden, as well as the List of urban areas in the Nordic countries, largest urban area in the Nordic countries. Approximately ...
. He was the head of the Institute for Electric Power Systems group from 1986 to 2000. His main research focus there was on dynamic stability issues in power systems. He graduated a total of 14 PhD students during his time at KTH, including Prof. Antonio Conejo (Ohio State University). In 2000, he moved to Switzerland where he became a professor at the
Swiss Federal Institute of Technology The Swiss Federal Institutes of Technology are two institutes of higher education in Switzerland (part of the ETH Domain): * Swiss Federal Institute of Technology in Lausanne Swiss most commonly refers to: * the adjectival form of Switzerland *Sw ...
, where he is heading the Power Systems Laboratory. Göran Andersson is married to Anne since 1975, and they have three children.


Research

His most recent research work can be divided into three major topics within the field of electric power systems: # Power System Dynamics and Control: he and his PhD students have studied how VSC-HVDC can be used in the European grid in order to enhance the stability. Other work aimed at investigating the pros and cons of HVDC grids. In this case the European grid was also used as test system. An important aspect considered in this work is the need of communication. As the European system connects a large number of countries, further work within this area focused on the operation of multi-area systems. The interaction between several
transmission system operator File:Electricity grid simple- North America.svg, 380px, Simplified diagram of AC electricity grid from generation stations to consumers in North America rect 2 243 235 438 Power station rect 276 317 412 556 Transformer rect 412 121 781 400 Elect ...
s, each with limited information of the status of neighboring systems, has been studied, and his group has proposed methods aiming at increasing the overall system security through exchange of selected pieces of information. Another important topic that has been covered by multiple PhD theses is the topic of demand response. His group has developed methods and tools to enable thermal loads to offer regulating and balancing power. This has resulted in the spin-off Adaptricity. A key reason why demand response has gained attention is because it can support the integration of variable renewable generation. Prof. Göran Andersson's group has also looked at how in the situation with increased uncertainty, security assessment can be done and formulated as a stochastic program with chance constraints. But the work on security is not just purely focused on the physical aspects, he has also done work on cyber-security of SCADA systems. # Power Markets: The aim of the work in this field is to develop realistic models for liberalized power markets, particularly the ones in Europe. An important aspect is the modeling of energy prices, with the aim of forecasting these. The Hourly Price Forward Curve (HPFC) is an important tool in this context, and much work is devoted to this topic. An approach, combining statistical and fundamental models, has been implemented. The original HPFC was usable only for a single price area. His group has been developing it for several areas through the incorporation of market coupling mechanisms. Another application is the valuation of pumped hydro storage plants in the new market conditions. Non-linear learning techniques are used to better capture seasonal variations. # Future Energy Systems: Prof. Andersson's group initiated the development the Energy Hub concept around 2003. It is now used by many researchers and planners worldwide. The Energy Hub has been the basis for many projects concerning future energy systems, and the concept has been further developed and adapted for new applications. Additionally, the group has worked in a number of projects regarding the integration of electrical vehicles (EV) in power systems. Together with research groups in mechanical engineering and traffic planning, the researchers at the Power Systems Laboratory have developed a model that incorporates traffic flow simulation and energy consumption while driving, so that the state-of-charge for the individual vehicles can be determined. From this, control schemes for the charging of vehicles taking into account grid constraints, power prices, and the preferences of the vehicle owners have been designed. As another line of research which falls into the topic of future energy systems, the work on developing an expansion plan taking into account corrective control that can be accomplished by HVDC links should be mentioned. It was shown that this possibility could result in substantial savings. Another main contribution of the group concerned operational flexibility, which has gained in interest due to the integration of photovoltaic and wind power, which are fluctuating. A special modeling framework, the Power Node model, was developed for this purpose. The Power Node is related to the Energy Hub and can be seen as a complement.


Advised PhD Theses

* Line Roald, "Optimization methods to manage uncertainty and risk in power systems operation", 2016 * Theodor Sebastian Borsche, " Impact of Demand and Storage Control on Power System Operation and Dynamics", 2016 * Raffael La Fauci, "Cost-Based Design of an Electric Reserve Grid Focusing on Reliability", 2015 * Marina González Vayá, "Optimizing the electricity demand of electric vehicles: creating value through flexibility", 2015 * Markus Christian Imhof, "Voltage Source Converter Based HVDC - Modelling and Coordinated Control to Enhance Power System Stability", 2015 * Hubert Abgottspon, "Hydro power planning: Multi-horizon modeling and its applications", 2015 * Tobias Winfried Haring, "On Incentive-Based Ancillary Service Markets for Incorporation of Renewable Energy Sources and Demand Response", 2015 * Marcus Christoph Hildmann, "Quantitative methods for the economic analysis of liberalized power markets", 2014 * Emil Iggland, "Methods for the secure and economical operation of inter-connected electrical power systems", 2014 * Christof Bucher, "Analysis and Simulation of Distribution Grids with Photovoltaics", 2014 * Andreas Ulbig, "Operational Flexibility in Electric Power Systems", 2014 * Maria Vrakopoulou, "Optimal decision making for secure and economic operation of power systems under uncertainty", 2013 * Olli Mäkelä, "Methods to assess and manage security in interconnected electrical power systems", 2013 * Spyros Chatzivasileiadis, "Power System Planning and Operation Methods Integrating the Controllability of HVDC", 2013 * Stephan Koch, "Demand Response Methods for Ancillary Services and Renewable Energy Integration in Electric Power Systems", 2012 * Matthias David Galus, "Agent-based modeling and simulation of large scale electric mobility in power systems", 2012 * Michèle Arnold, "On Predictive Control for Coordination in Multi-Carrier Energy Systems", 2011 * Antonios Papaemmanouil, "Coordinated transmission expansion planning of future interconnected power systems", 2011 * Marija Zima-Bockarjova, "On Security and Economy Enhancements in Power Systems by Decision Support", 2010 * Florian Kienzle, "Evaluation of Investments in Multi-Carrier Energy Systems under Uncertainty", 2010 * Monika Esther Ruh, "New Concepts and Algorithms for Fully Transparent Distribution Management Systems", 2010 * Martin Kurzidem, "Analysis of flow-based market coupling in oligopolistic power markets", 2010 * Turhan Demiray, "Simulation of Power System Dynamics using Dynamic Phasor Models", 2008 * Gabriela Hug-Glanzmann, "Coordinated Power Flow Control to Enhance Steady-State Security in Power Systems", 2008 * Mirjana Milosevic, "On the Control of Distributed Generation in Power Systems", 2007 * Malte Thoma, "Optimierte Betriebsführung von Niederspannungsnetzen mit einem hohen Anteil an dezentraler Erzeugung", 2007 * Martin Geidl, "Integrated Modeling and Optimization of Multi-Carrier Energy Systems", 2007 * Gaudenz Koeppel, "Reliability Considerations of Future Energy Systems: Multi-Carrier Systems and the Effect of Energy Storage", 2007 * Thilo Krause, "Evaluating Congestion Management Schemes in Liberalized Electricity Markets Applying Agent-based Computational Economics", 2006 * Rusejla Sadikovic, "Use of FACTS Devices for Power Flow Control and Damping of Oscillations in Power Systems", 2006 * Marek Zima, "Contributions to security of electric power systems", 2006 * Christian Schaffner, "Valuation of Controllable Devices in Liberalized Electricity Markets", 2004 * Wolfgang Hammer, "Dynamic Modeling of Line and Capacitor Commutated Converters for HVDC Power Transmission", 2003 * Andrei Karpatchev, "Increased Transmission Capacity by Forced Symmetrization", 2003 * Gunthard Orglmeister, "Ein Symmetrierkompensator für Hochspannungsleitungen", 2002 * Jost Allmeling, "Schnelle Regelung eines Aktivfilters mit niedriger Taktfrequenz für das Mittelspannungsnetz", 2001 * Tina Orfanogianni, "A flexible software environment for steady-state power flow optimization with series FACTS devices", 2000


Teaching

Professor Andersson was very active in developing and restructuring courses in the field of electric power systems at ETH Zurich. Courses that he has taught at ETH include: * Introduction to Electric Power Systems: This course is co-taught with the High Voltage Laboratory and introduces the student into basic concepts and components in the electric power system. * Power System Analysis: The focus of this class is the modeling of power systems components, the computation of the flows and voltages in the system and gives a first introduction into the dynamics and stability in power systems. * Energy System Analysis: The aim of the course is to give an introduction to the methods and tools for analyzing energy consumption, energy conversion, and energy flows. Environmental aspects are included as well as economic considerations. This course is co-taught with a variety of other faculty members. * Power System Dynamics and Control: Dynamic properties of electrical machines, networks, loads and interconnected systems are modeled and studied. Topics such as SCADA and state estimation are discussed. This course is co-taught with an external lecturer.


Awards

He has received numerous awards including the IEEE PES Outstanding Power Educator Award (2007)IEEE PES Award List
/ref> and of the George Montefiore International Award (2010). Göran Andersson is also a member of the
Royal Swedish Academy of Sciences The Royal Swedish Academy of Sciences () is one of the Swedish Royal Academies, royal academies of Sweden. Founded on 2 June 1739, it is an independent, non-governmental scientific organization that takes special responsibility for promoting nat ...
(1994), Fellow of the
IEEE The Institute of Electrical and Electronics Engineers (IEEE) is an American 501(c)(3) organization, 501(c)(3) public charity professional organization for electrical engineering, electronics engineering, and other related disciplines. The IEEE ...
(1997), Member of the Swiss Academy of Engineering Sciences (2015) and International Member of the US
National Academy of Engineering The National Academy of Engineering (NAE) is an American Nonprofit organization, nonprofit, NGO, non-governmental organization. It is part of the National Academies of Sciences, Engineering, and Medicine (NASEM), along with the National Academ ...
(2016).Announcement of department D-ITET
/ref>


References


External links



{{DEFAULTSORT:Andersson, C. Goran 1951 births Living people Swedish engineers Members of the Royal Swedish Academy of Sciences Lund University alumni Academic staff of ETH Zurich Academic staff of the KTH Royal Institute of Technology Place of birth missing (living people)