團隊成員
丁磊
發(fā)布時間:2021年06月29日 11:04    作者:    點擊:[]

個人信息:

丁磊,山東臨沂人,1980年生。


學術(shù)身份:

教授,博導,泰山學者特聘專家。現(xiàn)為IEEE高級會員,山東大學新型電力系統(tǒng)研究中心主任山東電機工程學會副理事長,全國短路電流計算標委會委員,中國電機工程學會中國電源學會中國自動化學會專委會委員,CIGRE B5.57工作組、C4/B5.61工作組、IEC SC 8A工作組專家。SCI期刊Int. J. Electr. Power Energy Syst. 編委持國家重點研發(fā)計劃項目課題1項、國家自然科學基金課題2項、國家電網(wǎng)總部科技項目多項,并參與多項國家973和科技部攻關(guān)計劃課題,參與制定國家標準1項。在IEEE Trans. Power Syst.等期刊發(fā)表SCI/EI論文50余篇,申請和授權(quán)發(fā)明專利30余項。2018年獲中國電力優(yōu)秀青年科技人才獎。



工作經(jīng)歷:

2022.1至今 山東大學電氣工程學院院長 黨委副書記

2018.4-2022.1山東大學電氣工程學院副院長

2015.9至今山東大學電氣工程學院教授

2010.4-2015.8 山東大學電氣工程學院副教授

2009.11-2011.7 英國曼徹斯特大學電氣與電子工程學院 Research Associate

2008.1-2009.11 清華大學電機工程與應用電子技術(shù)系博士后/助理研究員


研究方向:

低慣量電力系統(tǒng)運行控制,新能源發(fā)電并網(wǎng)控制電力系統(tǒng)主動解列


學術(shù)著作(部分)

部分已發(fā)表的期刊論文如下:

[1]Ding L, Guo Y, Wall P, et al. Identifying the Timing of Controlled Islanding Using a Controlling UEP Based Method[J]. IEEE Transactions on Power Systems, 2018,33(6): 5913-5922

[2]Ding L, Ma Z, Wall P, et al. Graph Spectra Based Controlled Islanding for Low Inertia Power Systems[J]. IEEE Transactions on Power Delivery, 2017,32(1): 302-309

[3]Ding L, Guo Y, Wall P. Performance and Suitability Assessment of Controlled Islanding Methods for Online WAMPAC Application[J]. International Journal of Electrical Power and Energy Systems,2017,84: 252-260

[4]Ding L, Wall P, Terzija V. Constrained Spectral Clustering Based Controlled Islanding[J]. International Journal of Electrical Power and Energy Systems, 2014,63: 687-694

[5]Ding L, Wall P, Terzija V, et al. Two-Step Spectral Clustering Controlled Islanding Algorithm[J].IEEE Transactions on Power Systems, 2013,28(1): 75-84.

[6]Faraji R, Ding L, Rahimi T, et al. Application of Soft-Switching Cell with Inherent Redundancy Properties for Enhancing the Reliability of Boost-Based DC-DC Converters[J]. IEEE Transactions on Power Electronics, 2021,36(11): 12342-12354.

[7]Rahimi T, Ding L, Abadifard A, et al. Unbalanced currents effect on the thermal characteristic and reliability of parallel connected power switches[J]. Case Studies in Thermal Engineering, 2021,26.

[8]Rahimi T, Ding L, Faraji R, et al. Performance Improvement of a Three-Phase Interleaved DC-DC Converter without Requiring Antisaturation Control for Postfault Conditions[J]. IEEE Transactions on Power Electronics,2021,36(7): 7378-7383.

[9]Wang X, Ding L, Ma Z, et al. Perturbation-Based Sensitivity Analysis of Slow Coherency with Variable Power System Inertia[J]. IEEE Transactions on Power Systems,2021,36(2):1121-1129.

[10]Kheshti M, Ding L, Askarian-Abyaneh H, et al. Improving frequency regulation of wind-integrated multi-area systems using LFA-fuzzy PID control[J]. International Transactions on Electrical Energy Systems,2021,31(3).

[11]Faraji R, Ding L, Rahimi T, et al. Efficient Multi-Port Bidirectional Converter with Soft-Switching Capability for Electric Vehicle Applications[J]. IEEE Access,2021,9: 107079-107094.

[12]Rahimi T, Ding L, Kheshti M, et al. Inertia Response Coordination Strategy of Wind Generators and Hybrid Energy Storage and Operation Cost-Based Multi-Objective Optimizing of Frequency Control Parameters[J]. IEEE Access,2021,9: 74684-74702.

[13]Faraji R, Ding L, Rahimi T, et al. Soft-Switched Three-Port DC-DC Converter with Simple Auxiliary Circuit[J]. IEEE Access,2021,9: 66738-66750.

[14]Kheshti M, Ding L, Bao W, et al. Toward Intelligent Inertial Frequency Participation of Wind Farms for the Grid Frequency Control[J].IEEE Transactions on Industrial Informatics,2020,16(11): 6772-6786.

[15]Bao W, Ding L, Liu Z, et al. Analytically derived fixed termination time for stepwise inertial control of wind turbines—Part I: Analytical derivation[J]. International Journal of Electrical Power and Energy Systems,2020,121.

[16]Li X, Ding L, Zhu G, et al. Transient Instability Detection Method Based on Multi-source Trajectory Information[J]. International Journal of Electrical Power and Energy Systems, 2019,113: 897-905

[17]Kheshti M, Ding L, Nayeripour M,et al. Active Power Support of Wind Turbines for Grid Frequency Events Using a Reliable Power Reference Scheme[J]. Renewable Energy, 2019,139: 1241-1254

[18]Liu P, Zhu G, Ding L, et al. High-voltage ride-through strategy for wind turbine with fully-rated converter based on current operating range[J]. International Journal of Electrical Power & Energy Systems, 2022, 141: 108101.

[19]Zhang G, Zhang F, Ding L, et al. Wind Farm Level Coordination for Optimal Inertial Control With a Second-Order Cone Predictive Model[J]. IEEE Transactions on Sustainable Energy,in press.

[20]Bao W, Wu Q, Ding L,et al. A Hierarchical Inertial Control Scheme for Multiple Wind Farms with BESSs Based on ADMM[J]. IEEE Transactions on Sustainable Energy,2021,12(2):751-761.

[21]Bao W, Wu Q, Ding L, et al. Synthetic Inertial Control of Wind Farm with BESS Based on Model Predictive Control[J]. IET Renewable Power Generation,2020,14(13): 2447-2455

[22]Guo Y, Bao W, Ding L, et al. Analytically Derived Fixed Termination Time for Stepwise Inertial Control of Wind Turbines—Part II: Application Strategy[J]. International Journal of Electrical Power & Energy Systems,2020,121

[23]Zhang F, Fu A, Ding L, et al. MPC Based Control Strategy for Battery Energy Storage Station in a Grid with High Photovoltaic Power Penetration[J].  International Journal of Electrical Power and Energy Systems, 2020,115.

[24]Zhu Z,Hou M,Ding L,et al.Optimal Photovoltaic Array Dynamic Reconfiguration Strategy Based on Direct Power Evaluation[J]. IEEE Access,2020,8: 210267-210276

[25]Zhang F, Fu A, Ding L,et al. Optimal Sizing of ESS for Reducing AGC Payment in a Power System with High PV Penetration[J]. International Journal of Electrical Power and Energy Systems, 2019,110: 809-818

[26]Phadke A.G, Wall P, Ding L, et al. Improving the Performance of Power System Protection Using Wide Area Monitoring Systems[J]. Journal of Modern Power Systems and Clean Energy, 2016,4(3): 319-331

[27]Quirós-Tortós J, Wall P, Ding L, et al. Determination of Sectionalising Strategies for Parallel Power System Restoration: A Spectral Clustering-Based Methodology[J]. Electric Power Systems Research, 2014,116: 381-390


部分已授權(quán)專利如下:

[1] 雙饋風機虛擬慣量調(diào)頻的動態(tài)轉(zhuǎn)速保護方法及系統(tǒng),ZL201911135568.3,2020.04.02

[2] 基于超速風機釋放功率提升的風電調(diào)頻控制方法及系統(tǒng),ZL201911137050.32020.04.23

[3] 棄風參與電網(wǎng)調(diào)頻的電轉(zhuǎn)氣-儲氣-燃氣輪機容量優(yōu)化配置方法及系統(tǒng),ZL201911088121.52020.02.02

[4] dq控制結(jié)構(gòu)雙饋風機正、負序轉(zhuǎn)子電流控制方法及系統(tǒng),ZL202010790352.72020.12.28

[5] 直驅(qū)風機不對稱故障直流母線二倍頻電壓抑制方法及系統(tǒng),ZL202010467590.42020.12.21

[6] 風電機組協(xié)同調(diào)頻最優(yōu)退出時間的確定方法,ZL201610976478.72019.01.04

[7] 一種雙饋風力機組慣性調(diào)頻主動轉(zhuǎn)速保護控制系統(tǒng)與方法,ZL201510509286.02017.10.27

[8] 模擬慣性與超速相結(jié)合的雙饋風機有功頻率控制器及方法,ZL201510334000.X2017.03.29

[9] 基于歸一化譜聚類和約束譜聚類的兩階段主動解列方法,ZL201110173468.72014.01.01

[10] 雙饋風機故障穿越的優(yōu)化虛擬阻抗控制方法及系統(tǒng),ZL202010435460.22021.10.22

[11] 雙饋風機故障穿越的優(yōu)化滅磁控制方法及系統(tǒng),ZL202010435455.12021.11.02

[12] 風儲交流微電網(wǎng)自動功率平衡控制方法及系統(tǒng),ZL201910637213.82020.09.25

[13] 無信號傳輸線路中實現(xiàn)非通信高速距離中繼的方法及裝置,ZL201910373023.X2021.12.17

[14] 基于WAMS實測軌跡的電力系統(tǒng)暫態(tài)穩(wěn)定綜合判別方法及系統(tǒng),ZL201810846533.X2020.07.31

[15] 風儲協(xié)調(diào)的直驅(qū)風電機組控制方法及系統(tǒng),ZL202210221146.32022.06.14


科研項目:

[1]電網(wǎng)故障下風電機組電壓/頻率暫態(tài)主動支撐技術(shù),國家重點研發(fā)計劃課題,2018-2021

[2]計及暫態(tài)穩(wěn)定約束和群特性的主動解列策略研究,國家自然科學基金面上項目,2015-2018

[3]基于譜聚類方法的電力系統(tǒng)主動解列研究,國家自然科學基金青年項目,2012-2014

[4]含高比例可再生能源的電網(wǎng)頻率協(xié)同控制技術(shù)研究,國家電網(wǎng)總部科技項目,2019-2020

[5] 高比例新能源接入電力系統(tǒng)分散集群控制,國網(wǎng)總部科技項目,2019-2021

[6]智能電網(wǎng)自愈控制關(guān)鍵技術(shù)研究,首批山東大學青年學者未來計劃,2015-2020

*更多科研項目見團隊概況科研項目


聯(lián)系方式:dinglei@sdu.edu.cn





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