Adapting AC Lines to DC Grids for Large-Scale Renewable Power Transmission

All over the world, governments of different countries are nowadays promoting the use of clean energies in order to achieve sustainable energy systems. In this scenario, since the installed capacity is continuously increasing, renewable sources can play an important role. Notwithstanding that, some important problems may appear when connecting these sources to the grid, being the overload of distribution lines one of the most relevant. In fact, renewable generation is usually connected to the nearest AC grid, although this HV system may not have been designed considering distributed generation. In the particular case of large wind farms, the electrical grid has to transmit all the power generated by wind energy and, as a consequence, the AC system may get overloaded. It is therefore necessary to determine the impact of wind power transmission so that appropriate measures can be taken. Not only are these measures influenced by the amount of power transmitted, but also by the quality of the transmitted power, due to the output voltage fluctuation caused by the highly variable nature of wind. When designing a power grid, although AC systems are usually the most economical solution because of its highly proven technology, HVDC may arise in some cases (e.g. offshore wind farms) as an interesting alternative, offering some added values such as lower losses and better controllability. This way, HVDC technology can solve most of the aforementioned problems and has a good potential for future use. Additionally, the fast development of power electronics based on new and powerful semiconductor devices allow the spread of innovative technologies, such as VSC-HVDC, which can be applied to create DC grids. This paper focuses on the main aspects involved in adapting the existing overhead AC lines to DC grids, with the objective of improving the transmission of distributed renewable energy to the centers of consumption.

[1]  T.J. Hammons,et al.  Integrating Renewable Energy Sources into European Grids , 2006, Proceedings of the 41st International Universities Power Engineering Conference.

[2]  N. M. Ijumba,et al.  Progress report on the investigations into the recycling of existing HVAC power transmission circuits for higher power transfers using HVDC technology , 2006 .

[3]  Hans-Peter Nee,et al.  Design study of a converter interface interconnecting an energy storage with the dc-link of a VSC , 2010, 2010 IEEE PES Innovative Smart Grid Technologies Conference Europe (ISGT Europe).

[4]  Dirk Van Hertem,et al.  Multi-terminal VSC HVDC for the European supergrid: Obstacles , 2010 .

[5]  Hans-Peter Nee,et al.  Prospects and challenges of future HVDC SuperGrids with modular multilevel converters , 2011, Proceedings of the 2011 14th European Conference on Power Electronics and Applications.

[6]  C M Franck,et al.  HVDC Circuit Breakers: A Review Identifying Future Research Needs , 2011, IEEE Transactions on Power Delivery.

[7]  A. Clerici,et al.  HVDC Conversion of HVAC Lines to Provide Substantial Power Upgrading , 1991, IEEE Power Engineering Review.

[8]  L.O. Barthold,et al.  Upgrading AC transmission to DC for maximum power transfer capacity , 2008, 2008 12th International Middle-East Power System Conference.

[9]  I. Zamora,et al.  Conversion of AC distribution lines into DC lines to upgrade transmission capacity , 2011 .

[10]  H. Rahman,et al.  Power Upgrading of Transmission Line by Combining AC–DC Transmission , 2007, IEEE Transactions on Power Systems.

[11]  Inmaculada Zamora,et al.  VSC-HVDC configurations for converting AC distribution lines into DC lines , 2014 .

[12]  V.G. Agelidis,et al.  VSC-Based HVDC Power Transmission Systems: An Overview , 2009, IEEE Transactions on Power Electronics.

[13]  M.I. Khan,et al.  Conversion of AC line into HVDC , 2005, 2005 IEEE Power Engineering Society Inaugural Conference and Exposition in Africa.

[14]  L.O. Barthold,et al.  Principles and Applications of Current-Modulated HVDC Transmission Systems , 2006, 2005/2006 IEEE/PES Transmission and Distribution Conference and Exhibition.

[15]  Jos Arrillaga,et al.  High Voltage Direct Current Transmission , 2014 .

[16]  Michael Düren Clean Power from Deserts , 2011 .