Книга Cyber-Physical Distributed Systems читать онлайн бесплатно, автор Min Xie – Fictionbook, cтраница 10
Min Xie Cyber-Physical Distributed Systems
Cyber-Physical Distributed Systems
Cyber-Physical Distributed Systems

3

  • 0
Поделиться

Полная версия:

Min Xie Cyber-Physical Distributed Systems

  • + Увеличить шрифт
  • - Уменьшить шрифт

149

Pan, I. and Das, S., 2015. Fractional order AGC for distributed energy resources using robust optimization. IEEE transactions on smart grid, 7(5), pp. 2175–2186.

150

Liu, S., Liu, P.X. and El Saddik, A., 2014. Modeling and stability analysis of automatic generation control over cognitive radio networks in smart grids. IEEE Transactions on Systems, Man, and Cybernetics: Systems, 45(2), pp. 223–234.

151

Borghetti, A., Bottura, R., Barbiroli, M. and Nucci, C.A., 2016. Synchrophasors‐based distributed secondary voltage/VAR control via cellular network. IEEE Transactions on Smart Grid, 8(1), pp. 262–274.

152

Timbus, A., Larsson, M. and Yuen, C., 2009. Active management of distributed energy resources using standardized communications and modern information technologies. IEEE Transactions on Industrial Electronics, 56(10), pp. 4029–4037.

153

Rakhshani, E., Remon, D. and Rodriguez, P., 2016. Effects of PLL and frequency measurements on LFC problem in multi‐area HVDC interconnected systems. International Journal of Electrical Power & Energy Systems, 81, pp. 140–152.

154

Tian, G., Camtepe, S. and Tian, Y.C., 2016. A deadline‐constrained 802.11 MAC protocol with QoS differentiation for soft real‐time control. IEEE Transactions on Industrial Informatics, 12(2), pp. 544–554.

155

Padilla E, Agbossou K, Cardenas A. Towards smart integration of distributed energy resources using distributed network protocol over Ethernet. IEEE Trans Smart Grid 2014; 5(4):1686–93.

156

Zurawski R. ed., 2014. Industrial communication technology handbook. CRC Press.

157

Khadanga, R.K. and Satapathy, J.K., 2015. Time delay approach for PSS and SSSC based coordinated controller design using hybrid PSO–GSA algorithm. International Journal of Electrical Power & Energy Systems, 71, pp. 262–273.

158

Pan, I. and Das, S., 2015. Fractional order AGC for distributed energy resources using robust optimization. IEEE transactions on smart grid, 7(5), pp. 2175–2186.

159

Ghoshal, S.P., 2004. Optimizations of PID gains by particle swarm optimizations in fuzzy based automatic generation control. Electric Power Systems Research, 72(3), pp. 203–212.

160

Lee, D.J. and Wang, L., 2008. Small‐signal stability analysis of an autonomous hybrid renewable energy power generation/energy storage system part I: Time‐domain simulations. IEEE Transactions on energy conversion, 23(1), pp. 311–320.

161

Khadanga, R.K. and Satapathy, J.K., 2015. Time delay approach for PSS and SSSC based coordinated controller design using hybrid PSO–GSA algorithm. International Journal of Electrical Power & Energy Systems, 71, pp. 262–273.

162

Pan, I. and Das, S., 2015. Fractional order AGC for distributed energy resources using robust optimization. IEEE transactions on smart grid, 7(5), pp. 2175–2186.

163

Liu, S., Liu, P.X. and El Saddik, A., 2014. Modeling and stability analysis of automatic generation control over cognitive radio networks in smart grids. IEEE Transactions on Systems, Man, and Cybernetics: Systems, 45(2), pp. 223–234.

164

Baghaee, H.R., Mirsalim, M. and Gharehpetian, G.B., 2016. Performance improvement of multi‐DER microgrid for small‐and large‐signal disturbances and nonlinear loads: Novel complementary control loop and fuzzy controller in a hierarchical droop‐based control scheme. IEEE Systems Journal, 12(1), pp. 444–451.

165

Baghaee, H.R., Mirsalim, M. and Gharehpetian, G.B., 2016. Real‐time verification of new controller to improve small/large‐signal stability and fault ride‐through capability of multi‐DER microgrids. IET Generation, Transmission & Distribution, 10(12), pp. 3068–3084.

166

Baghaee, H.R., Mirsalim, M., Gharehpetian, G.B. and Talebi, H.A., 2017. A decentralized power management and sliding mode control strategy for hybrid AC/DC microgrids including renewable energy resources. IEEE transactions on industrial informatics.

167

Guerrero, J.M., Loh, P.C., Lee, T.L. and Chandorkar, M., 2012. Advanced control architectures for intelligent microgrids—Part II: Power quality, energy storage, and AC/DC microgrids. IEEE Transactions on industrial electronics, 60(4), pp. 1263–1270.

168

Etemadi, A.H., Davison, E.J. and Iravani, R., 2014. A generalized decentralized robust control of islanded microgrids. IEEE transactions on Power Systems, 29(6), pp. 3102–3113.

169

Babazadeh, M. and Karimi, H., 2013. A robust two‐degree‐of‐freedom control strategy for an islanded microgrid. IEEE transactions on power delivery, 28(3), pp. 1339–1347.

170

Baghaee, H.R., Mirsalim, M. and Gharehpetian, G.B., 2016. Power calculation using RBF neural networks to improve power sharing of hierarchical control scheme in multi‐DER microgrids. IEEE Journal of Emerging and Selected Topics in Power Electronics, 4(4), pp. 1217–1225.

171

Baghaee, H.R., Mirsalim, M., Gharehpetan, G.B. and Talebi, H.A., 2017. Nonlinear load sharing and voltage compensation of microgrids based on harmonic power‐flow calculations using radial basis function neural networks. IEEE systems journal, 12(3), pp. 2749–2759.

172

Baghaee, H.R., Mirsalim, M., Gharehpetian, G.B. and Talebi, H.A., 2017. Three‐phase AC/DC power‐flow for balanced/unbalanced microgrids including wind/solar, droop‐controlled and electronically‐coupled distributed energy resources using radial basis function neural networks. IET Power Electronics, 10(3), pp. 313–328.

173

Kahrobaeian, A. and Mohamed, Y.A.R.I., 2014. Networked‐based hybrid distributed power sharing and control for islanded microgrid systems. IEEE Transactions on Power Electronics, 30(2), pp. 603–617.

174

Baghaee, H.R., Mirsalim, M., Gharehpetian, G.B. and Talebi, H.A., 2017. A generalized descriptor‐system robust H∞ control of autonomous microgrids to improve small and large signal stability considering communication delays and load nonlinearities. International Journal of Electrical Power & Energy Systems, 92, pp. 63–82.

175

Kahrobaeian, A. and Mohamed, Y.A.R.I., 2014. Networked‐based hybrid distributed power sharing and control for islanded microgrid systems. IEEE Transactions on Power Electronics, 30(2), pp. 603–617.

176

Lai, J., Zhou, H., Lu, X., Yu, X. and Hu, W., 2016. Droop‐based distributed cooperative control for microgrids with time‐varying delays. IEEE Transactions on Smart Grid, 7(4), pp. 1775–1789.

177

Dörfler, F., Jovanović, M.R., Chertkov, M. and Bullo, F., 2014. Sparsity‐promoting optimal wide‐area control of power networks. IEEE Transactions on Power Systems, 29(5), pp. 2281–2291.

178

Dörfler, F., Jovanović, M.R., Chertkov, M. and Bullo, F., 2014. Sparsity‐promoting optimal wide‐area control of power networks. IEEE Transactions on Power Systems, 29(5), pp. 2281–2291.

179

Wang, J., Conejo, A.J., Wang, C. and Yan, J., 2012. Smart grids, renewable energy integration, and climate change mitigation‐Future electric energy systems. Applied Energy, 96, pp. 1–3.

180

Desideri, U. and Yan, J., 2012. Clean energy technologies and systems for a sustainable world.

181

Manfren, M., Caputo, P. and Costa, G., 2011. Paradigm shift in urban energy systems through distributed generation: Methods and models. Applied Energy, 88(4), pp. 1032–1048.

182

Demirbas, A., 2009. Political, economic and environmental impacts of biofuels: A review. Applied energy, 86, pp. 108–117.

183

Kalantar, M., 2010. Dynamic behavior of a stand‐alone hybrid power generation system of wind turbine, microturbine, solar array and battery storage. Applied energy, 87(10), pp. 3051–3064.

184

Morales, J.M., Minguez, R. and Conejo, A.J., 2010. A methodology to generate statistically dependent wind speed scenarios. Applied Energy, 87(3), pp. 843–855.

185

Morales, J.M., Minguez, R. and Conejo, A.J., 2010. A methodology to generate statistically dependent wind speed scenarios. Applied Energy, 87(3), pp. 843–855.

186

Mahmud, K. and Town, G.E., 2016. A review of computer tools for modeling electric vehicle energy requirements and their impact on power distribution networks. Applied Energy, 172, pp. 337–359.

187

Guerra, O.J., Tejada, D.A. and Reklaitis, G.V., 2016. An optimization framework for the integrated planning of generation and transmission expansion in interconnected power systems. Applied energy, 170, pp. 1–21.

188

Parra, D., Norman, S.A., Walker, G.S. and Gillott, M., 2016. Optimum community energy storage system for demand load shifting. Applied Energy, 174, pp. 130–143.

189

Tahir, M. and Mazumder, S.K., 2015. Self‐triggered communication enabled control of distributed generation in microgrids. IEEE Transactions on Industrial Informatics, 11(2), pp. 441–449.

190

Keane, A., Ochoa, L.F., Borges, C.L., Ault, G.W., Alarcon‐Rodriguez, A.D., Currie, R.A., Pilo, F., Dent, C. and Harrison, G.P., 2012. State‐of‐the‐art techniques and challenges ahead for distributed generation planning and optimization. IEEE Transactions on Power Systems, 28(2), pp. 1493–1502.

191

Mohammed, Y.S., Mustafa, M.W. and Bashir, N., 2014. Hybrid renewable energy systems for off‐grid electric power: Review of substantial issues. Renewable and Sustainable Energy Reviews, 35, pp. 527–539.

192

Ellabban, O., Abu‐Rub, H. and Blaabjerg, F., 2014. Renewable energy resources: Current status, future prospects and their enabling technology. Renewable and Sustainable Energy Reviews, 39, pp. 748–764.

193

Zeng, B., Zhang, J., Yang, X., Wang, J., Dong, J. and Zhang, Y., 2013. Integrated planning for transition to low‐carbon distribution system with renewable energy generation and demand response. IEEE Transactions on Power Systems, 29(3), pp. 1153–1165.

194

Gill, S., Kockar, I. and Ault, G.W., 2013. Dynamic optimal power flow for active distribution networks. IEEE Transactions on Power Systems, 29(1), pp. 121–131.

195

Purchala, K., Meeus, L., Van Dommelen, D. and Belmans, R., 2005, June. Usefulness of DC power flow for active power flow analysis. In IEEE Power Engineering Society General Meeting, 2005 (pp. 454–459). IEEE.

196

Baki, A.K.M., 2014. Continuous monitoring of smart grid devices through multi protocol label switching. IEEE Transactions on Smart Grid, 5(3), pp. 1210–1215.

197

Mudumbai, R., Dasgupta, S. and Cho, B.B., 2012. Distributed control for optimal economic dispatch of a network of heterogeneous power generators. IEEE Transactions on Power Systems, 27(4), pp. 1750–1760.

198

Gungor, V.C., Sahin, D., Kocak, T., Ergut, S., Buccella, C., Cecati, C. and Hancke, G.P., 2012. A survey on smart grid potential applications and communication requirements. IEEE Transactions on industrial informatics, 9(1), pp. 28–42.

199

Ancillotti, E., Bruno, R. and Conti, M., 2013. The role of communication systems in smart grids: Architectures, technical solutions and research challenges. Computer Communications, 36(17‐18), pp. 1665–1697.

200

Gungor, V.C., Sahin, D., Kocak, T., Ergut, S., Buccella, C., Cecati, C. and Hancke, G.P., 2012. A survey on smart grid potential applications and communication requirements. IEEE Transactions on industrial informatics, 9(1), pp. 28–42.

201

Ancillotti, E., Bruno, R. and Conti, M., 2013. The role of communication systems in smart grids: Architectures, technical solutions and research challenges. Computer Communications, 36(17‐18), pp. 1665–1697.

202

Niyato, D. and Wang, P., 2012. Cooperative transmission for meter data collection in smart grid. IEEE Communications Magazine, 50(4), pp. 90–97.

203

Guo, S., Li, H., Zhao, J., Li, X. and Yan, J., 2013. Numerical simulation study on optimizing charging process of the direct contact mobilized thermal energy storage. Applied energy, 112, pp. 1416–1423.

204

Xu, Q., Mak, T., Ko, J. and Sengupta, R., 2007. Medium access control protocol design for vehicle–vehicle safety messages. IEEE Transactions on Vehicular Technology, 56(2), pp. 499–518.

205

Meng, L., Zhao, X., Tang, F., Savaghebi, M., Dragicevic, T., Vasquez, J.C. and Guerrero, J.M., 2015. Distributed voltage unbalance compensation in islanded microgrids by using a dynamic consensus algorithm. IEEE Transactions on Power Electronics, 31(1), pp. 827–838.

206

Guerrieri, L., Masera, G., Stievano, I.S., Bisaglia, P., Valverde, W.R.G. and Concolato, M., 2016. Automotive power‐line communication channels: mathematical characterization and hardware emulator. IEEE Transactions on Industrial Electronics, 63(5), pp. 3081–3090.

207

Lin, H., Veda, S.S., Shukla, S.S., Mili, L. and Thorp, J., 2012. GECO: Global event‐driven co‐simulation framework for interconnected power system and communication network. IEEE Transactions on Smart Grid, 3(3), pp. 1444–1456.

208

Gungor, V.C., Sahin, D., Kocak, T., Ergut, S., Buccella, C., Cecati, C. and Hancke, G.P., 2011. Smart grid technologies: Communication technologies and standards. IEEE transactions on Industrial informatics, 7(4), pp. 529–539.

209

Tomsovic, K., Bakken, D.E., Venkatasubramanian, V. and Bose, A., 2005. Designing the next generation of real‐time control, communication, and computations for large power systems. Proceedings of the IEEE, 93(5), pp. 965–979.

210

Bose, A., 2010. Smart transmission grid applications and their supporting infrastructure. IEEE Transactions on Smart Grid, 1(1), pp. 11–19.

211

Timbus, A., Larsson, M. and Yuen, C., 2009. Active management of distributed energy resources using standardized communications and modern information technologies. IEEE Transactions on Industrial Electronics, 56(10), pp. 4029–4037.

212

Han, G., Xu, B., Fan, K. and Lv, G., 2014. An open communication architecture for distribution automation based on IEC 61850. International Journal of Electrical Power & Energy Systems, 54, pp. 315–324.

213

Yu, F.R., Zhang, P., Xiao, W. and Choudhury, P., 2011. Communication systems for grid integration of renewable energy resources. IEEE network, 25(5), pp. 22–29.

214

Yu, F.R., Zhang, P., Xiao, W. and Choudhury, P., 2011. Communication systems for grid integration of renewable energy resources. IEEE network, 25(5), pp. 22–29.

215

Wu, J. and Chen, T., 2007. Design of networked control systems with packet dropouts. IEEE Transactions on Automatic control, 52(7), pp. 1314–1319.

216

Niyato, D., Wang, P., Han, Z. and Hossain, E., 2011, March. Impact of packet loss on power demand estimation and power supply cost in smart grid. In 2011 IEEE Wireless Communications and Networking Conference (pp. 2024–2029). IEEE.

217

Kuzlu, M., Pipattanasomporn, M. and Rahman, S., 2014. Communication network requirements for major smart grid applications in HAN, NAN and WAN. Computer Networks, 67, pp. 74–88.

218

Zeng, B., Zhang, J., Yang, X., Wang, J., Dong, J. and Zhang, Y., 2013. Integrated planning for transition to low‐carbon distribution system with renewable energy generation and demand response. IEEE Transactions on Power Systems, 29(3), pp. 1153–1165.

219

Yu, F.R., Zhang, P., Xiao, W. and Choudhury, P., 2011. Communication systems for grid integration of renewable energy resources. IEEE network, 25(5), pp. 22–29.

220

Wu, J. and Chen, T., 2007. Design of networked control systems with packet dropouts. IEEE Transactions on Automatic control, 52(7), pp. 1314–1319.

221

Niyato, D., Wang, P., Han, Z. and Hossain, E., 2011, March. Impact of packet loss on power demand estimation and power supply cost in smart grid. In 2011 IEEE Wireless Communications and Networking Conference (pp. 2024–2029). IEEE.

222

Ruiz‐Romero, S., Colmenar‐Santos, A., Mur‐Pérez, F. and López‐Rey, Á., 2014. Integration of distributed generation in the power distribution network: The need for smart grid control systems, communication and equipment for a smart city—Use cases. Renewable and sustainable energy reviews, 38, pp. 223–234.

223

Reddy, K.S., Kumar, M., Mallick, T.K., Sharon, H. and Lokeswaran, S., 2014. A review of Integration, Control, Communication and Metering (ICCM) of renewable energy based smart grid. Renewable and Sustainable Energy Reviews, 38, pp. 180–192.

224

Dotta, D., e Silva, A.S. and Decker, I.C., 2008. Wide‐area measurements‐based two‐level control design considering signal transmission delay. IEEE Transactions on Power Systems, 24(1), pp. 208–216.

225

Liu, S., Liu, X.P. and El Saddik, A., 2014. Modeling and distributed gain scheduling strategy for load frequency control in smart grids with communication topology changes. ISA transactions, 53(2), pp. 454–461.

226

Knapp, E.D. and Langill, J.T., 2014. Industrial Network Security: Securing critical infrastructure networks for smart grid, SCADA, and other Industrial Control Systems. Syngress.

227

Jacobs, K., 2010. Stochastic processes for physicists: understanding noisy systems. Cambridge University Press.

228

Zhang, H., Shi, Y. and Wang, J., 2013. Observer‐based tracking controller design for networked predictive control systems with uncertain Markov delays. International Journal of Control, 86(10), pp. 1824–1836.

229

Jiang, L., Yao, W., Wu, Q.H., Wen, J.Y. and Cheng, S.J., 2011. Delay‐dependent stability for load frequency control with constant and time‐varying delays. IEEE Transactions on Power systems, 27(2), pp. 932–941.

230

Zeng, B., Zhang, J., Yang, X., Wang, J., Dong, J. and Zhang, Y., 2013. Integrated planning for transition to low‐carbon distribution system with renewable energy generation and demand response. IEEE Transactions on Power Systems, 29(3), pp. 1153–1165.

231

Wang, Z., Liu, Y. and Liu, X., 2010. Exponential stabilization of a class of stochastic system with Markovian jump parameters and mode‐dependent mixed time‐delays. IEEE Transactions on Automatic Control, 55(7), pp. 1656–1662.

232

Pandey, S.K., Mohanty, S.R. and Kishor, N., 2013. A literature survey on load–frequency control for conventional and distribution generation power systems. Renewable and Sustainable Energy Reviews, 25, pp. 318–334.

233

Zeng, B., Zhang, J., Yang, X., Wang, J., Dong, J. and Zhang, Y., 2013. Integrated planning for transition to low‐carbon distribution system with renewable energy generation and demand response. IEEE Transactions on Power Systems, 29(3), pp. 1153–1165.

234

Wu, J. and Chen, T., 2007. Design of networked control systems with packet dropouts. IEEE Transactions on Automatic control, 52(7), pp. 1314–1319.

235

Kuzlu, M., Pipattanasomporn, M. and Rahman, S., 2014. Communication network requirements for major smart grid applications in HAN, NAN and WAN. Computer Networks, 67, pp. 74–88.

236

Zeng, B., Zhang, J., Yang, X., Wang, J., Dong, J. and Zhang, Y., 2013. Integrated planning for transition to low‐carbon distribution system with renewable energy generation and demand response. IEEE Transactions on Power Systems, 29(3), pp. 1153–1165.

237

Yu, F.R., Zhang, P., Xiao, W. and Choudhury, P., 2011. Communication systems for grid integration of renewable energy resources. IEEE network, 25(5), pp. 22–29.

238

Ruiz‐Romero, S., Colmenar‐Santos, A., Mur‐Pérez, F. and López‐Rey, Á., 2014. Integration of distributed generation in the power distribution network: The need for smart grid control systems, communication and equipment for a smart city—Use cases. Renewable and sustainable energy reviews, 38, pp. 223–234.

239

Reddy, K.S., Kumar, M., Mallick, T.K., Sharon, H. and Lokeswaran, S., 2014. A review of Integration, Control, Communication and Metering (ICCM) of renewable energy based smart grid. Renewable and Sustainable Energy Reviews, 38, pp. 180–192.

240

Majumder, R., Bag, G. and Kim, K.H., 2012. Power sharing and control in distributed generation with wireless sensor networks. IEEE Transactions on Smart Grid, 3(2), pp. 618–634.

241

Jardine, A.K., Lin, D. and Banjevic, D., 2006. A review on machinery diagnostics and prognostics implementing condition‐based maintenance. Mechanical systems and signal processing, 20(7), pp. 1483–1510.

242

Li, Y., Zuo, M.J., Lin, J. and Liu, J., 2017. Fault detection method for railway wheel flat using an adaptive multiscale morphological filter. Mechanical Systems and Signal Processing, 84, pp. 642–658.

1...89101112...15

Другие книги автора

ВходРегистрация
Забыли пароль