9 research outputs found

    Reversible Computation: Extending Horizons of Computing

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    This open access State-of-the-Art Survey presents the main recent scientific outcomes in the area of reversible computation, focusing on those that have emerged during COST Action IC1405 "Reversible Computation - Extending Horizons of Computing", a European research network that operated from May 2015 to April 2019. Reversible computation is a new paradigm that extends the traditional forwards-only mode of computation with the ability to execute in reverse, so that computation can run backwards as easily and naturally as forwards. It aims to deliver novel computing devices and software, and to enhance existing systems by equipping them with reversibility. There are many potential applications of reversible computation, including languages and software tools for reliable and recovery-oriented distributed systems and revolutionary reversible logic gates and circuits, but they can only be realized and have lasting effect if conceptual and firm theoretical foundations are established first

    Wireless Coding Deadbeat Power Control For Doubly-fed Induction Aerogenerators In Smart Grid Applications [controle Deadbeat Codificado Sem Fio De Potencias Para Aerogeradores De Inducao Duplamente Alimentados Visando Aplicacoes Em Redes Inteligentes]

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    Smart grids comprise advanced communication infrastructure to provide balance supply, demand, and storage of energy over a region in a much more efficient manner than it is done today. However, in a smart grid, the utilization of wireless technologies for transmitting control information requires a powerful error protection to avoid any serious problems to the energetic plant. With this focus, the work is concerned with a wireless coding deadbeat power control system for a variable speed wind doubly-fed induction generator for smart grid applications.235541552Adamowicz, M., Strzelecki, R., Krzeminski, Z., Szewczyk, J., Lademan, L., Application of wireless communication to small WECS with induction generator (2010) IEEE Mediterranean Electrotechnical Conference, pp. 944-948Adamowicz, M., Strzelecki, R., Krzeminski, Z., Szewczyk, J., Lademan, L., Wireless short-range device for wind generators (2010) 12th Biennial Baltic Electronics Conference, pp. 1736-3705Anaya-Lara, O., Jenkins, N., McDonald, J.R., Communications requirements and technology for wind farm operation and maintenance (2006) IEEE International Conference on Industrial and Information Systems, pp. 173-178Barbieri, A., Piemontese, A., Colavolpe, G., On the ARMA approximation for frequency-flat rayleigh fading channels (2007) IEEE International Symposium on Information Theory, pp. 1211-1215Blau, J., Europe plans a north sea grid (2010) IEEE Spectrum, pp. 08-09Brink, S.T., Kramer, G., Design of repeataccumulate codes for iterative detection and decoding (2003) IEEE Trans. Signal Process, 51 (11), pp. 2764-2772Chen, J., Abedi, A., Distributed turbo coding and decoding for wireless sensor networks (2011) IEEE Communications Letters, 15, pp. 166-168Datta, R., Rangathan, V.T., Variable-speed wind power generation using doubly fed wound rotor induction machine - A comparison with alternative schemes (2002) IEEE Trans. on Energy Conversion, 17 (3), pp. 414-421Dinoi, L., Sottile, F., Benedetto, S., Design of versatile eIRA codes for parallel decoders (2008) IEEE Transactions on Communications, 56 (12), pp. 2060-2070(2005) DVB-S.2, Standard Specification, pp. 302-307. , ETSIFilho, A.J.S., Ruppert, E., The complex controller for three-phase induction motor direct torque control (2009) SBA - Controle e Automaçã o, 20 (2), pp. 256-262Filho, A.J.S., Ruppert, E., A deadbeat active and reactive power control for doubly-fed induction generators (2010) Electric Power Components and Systems, 38 (5), pp. 592-602Franklin, G.F., Powel, J.D., Workman, M., (1994) Digital Control of Dynamic Systems, , Addison-Wesley Publishing CompanyGallager, R.G., (1963) Low-density Parity-check Codes, , CambridgeGlinkowski, M., Hou, J., Rackliffe, G., Advances in wind energy technologies in the context of smart grid (2011) Proceedings of the IEEE, 99 (6), pp. 1083-1097Guo, J., Cai, X., Gong, Y., Decoupled control of active and reactive power for a grid-connected doubly-fed induction generator (2008) Third International Conference on Electric Utility Deregulation and Restructuring and Power Technologies, pp. 2620-2625Standard for local and metropolitan area networks, part 16: Air interface for fixed and mobile wireless access systems (2004) IEEE Std. 802.16-2004, , IEEEIlic, M.D., From hierarchical to open access electric power systems (2007) Proceedings of the IEEE, 95 (5), pp. 1060-1084Jiang, J., Narayanan, K.R., Iterative soft decision decoding of Reed Solomon (2004) IEEE Communications Letters, 8, pp. 244-246Li, F., Qiao, W., Sun, H., Wan, H., Wang, J., Xia, Y., Xu, Z., Zhang, P., Smart transmission grid: Vision and frameworks (2010) IEEE Transactions on Smart Grid, 1 (2), pp. 186-192Li, T.J., (2002) Low Complexity Capacity Approaching Schemes: Design, Analysis, and Applications, , Ph. D. dissertation, Texas AM UnivLi, Z., Zheng, F., Wu, Y., Gao, H., Offshore wind farm construction platform jack up control system (2009) World Non-grid-connected Wind Power and Energy Conference, pp. 24-26Lin, S., Costello, D.J., (2004) Error Control Coding, , Prentice HallMacKay, D.J.C., Neal, R.M., Near Shannon limit performance of low-density parity-check codes (1996) IET Electronics Letters, 32, pp. 1645-1646Morren, J., Haan, S.W.H., Ridethrough of wind turbines with doubly-fed induction generator during a voltage dip (2005) IEEE Transactions on Energy Conversion, 20 (2), pp. 435-441Novotny, D.W., Lipo, T.A., (1996) Vector Control and Dynamics of AC Drives, , Clarendon Press OxfordProakis, J.G., (2001) Digital Communications, , MCGraw-HillRichardson, T., Shokrollahi, A., Urbanke, R., Design of capacity-approaching low-density paritycheck codes (2001) IEEE Transactions on Information Theory, 47, pp. 619-637Simões, M.G., Farret, F.A., (2004) Renewable Energy Systems with Induction Generators, , CRC PressSripimanwat, K., (2010) Turbo Code Applications: A Journey from A Paper to Realization, , SpringerStrzelecki, R., Benysek, G., (2008) Power Electronics in Smart Electrical Energy Networks, , Springer-VerlagTanner, R.M., A recursive approach to low complexity codes (1981) IEEE Transactions on Information Theory, 27 (5), pp. 533-547Tapia, A., Tapia, G., Ostolaza, J.X., Sáenz, J.R., Modeling and control of a wind turbine driven doubly fed induction generator (2003) IEEE Trans. on Energy Conversion, pp. 194-204Wang, J., Du, X., Zhang, X., Comparison of wind power generation interconnection technology standards (2011) Asia-pacific Power and Energy Engineering ConferenceWanzhi, C., Zhiyong, T., Quangui, Z., Liang, C., Research of wireless communication based on lonworks for wind turbine control system (2009) IEEE International Conference on Energy and Environment Technology, pp. 787-789Xin-fang, Z., Da-ping, X., Yi-bing, L., Predictive functional control of a doubly fed induction generator for variable speed wind turbines (2004) IEEE World Congress on Intelligent Control and AutomationXiwen, W., Xiaoyan, Q., Jian, X., Xingyuan, L., Reactive power optimization in smart grid with wind power generator (2010) Asia-pacific Power and Energy Engineering ConferenceYedidia, J.S., Wang, Y., Draper, S.C., Divide and concur and difference-map BP decoders for LDPC codes (2011) IEEE Transactions on Information Theory, 57 (2), pp. 786-802Zhang, Y., Ryan, W.E., Li, Y., Structured eIRA codes with low floors (2005) Proceedings of the International Symposium on Information Theory, pp. 174-17
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