Research Progress on Intelligent Control Technology of Marine Diesel Engine
1.Key Laboratory for Power Machinery and Engineering of Ministry of Education, College of Mechanical and Power Engineering,Shanghai Jiaotong University,Shanghai 200240,China;2.China Shipbuilding Power Engineering Institute Co.,Ltd.,Shanghai 200120,China
LENG Ling1, SHI Lei1, GUI Yong2, LIU Bo2, DENG Kang-yao1. Research Progress on Intelligent Control Technology of Marine Diesel Engine[J]. Journal of Propulsion Technology, 2021, 42(5): 1186-1194.
[1] Wong P K, Wong H C, Vong C M. Online Time-Sequence Incremental and Decremental Least Squares Support Vector Machines for Engine Air-Ratio Prediction[J]. International Journal of Engine Research, 2012, 13(1): 28-40.
[2] Kaddah S S, Abo-Al-Ez K M, Megahed T F. Application of Nonlinear Model Predictive Control Based on Swarm Optimization in Power Systems Optimal Operation with Wind Resources[J]. Electric Power Systems Research, 2017, 143: 415-430.
[3] Moriyasu R, Nojiri S, Matsunaga A, et al. Diesel Engine Air Path Control Based on Neural Approximation of Nonlinear MPC[J]. Control Engineering Practice, 2019, 91(10).
[4] Wong K I, Wong P K. Adaptive Air-Fuel Ratio Control of Dual-Injection Engines under Biofuel Blends Using Extreme Learning Machine[J]. Energy Conversion & Management, 2018, 165: 66-75.
[5] Bidarvatan M, Shahbakhti M. Integrated HCCI Engine Control Based on a Performance Index[J]. Journal of Engineering for Gas Turbines & Power, 2014, 136(10).
[6] Yang Z, Stobart R, Winward E. Online Adjustment of Start of Injection and Fuel Rail Pressure Based on Combustion Process Parameters of Diesel Engine[C]. Detroit: SAE International 2013 Word Congress & Exhibition, 2013.
[7] Morteza F, Omid J, Mahdi S, et al. Modeling and Controller Design Architecture for Cycle-by-Cycle Combustion Control of Homogeneous Charge Compression Ignition (HCCI) Engines: A Comprehensive Review[J]. Energy Conversion & Management, 2017, 139: 1-19.
[8] Eguchi M, Fukuda N, Ohmori H, et al. Diesel Engine Combustion Control with Onboard Calibration by Using Feedback Error Learning[C]. Kyoto: 2019 JSAE/SAE Powertrains, Fuels and Lubricants International Meeting, 2019.
[9] Utkin V L, Chang H C, Kolmanovsky I, et al. Sliding Mode Control for Variable Geometry Turbocharged Diesel Engines[C]. Chicago: American Control Conference, 2000.
[10] Upadhyay D, Utkin V I, Rizzoni G. Multivariable Control Design for Intake Flow Regulation of a Diesel Engine Using Sliding Mode[C]. Berkeley: International Federation of Automatic Control, 2002.
[11] Laghrouche S, Plestan F, Glumineau A, et al. Brief Paper: Higher Order Sliding Mode Control Based on Integral Sliding Mode[J]. Automatica, 2007, 43(3): 531-537.
[12] Wang J. Hybrid Robust Air-Path Control for Diesel Engines Operating Conventional and Low Temperature Combustion Modes[J]. IEEE Transactions on Control Systems Technology, 2008, 16(6): 1138-1151.
[13] Murtaza G, Butt Y A, Bhatti A I. Higher Order Sliding Mode Based Control Scheme for Air Path of Diesel Engine[C]. Islamabad: 2016 International Conference on Emerging Technologies, 2016.
[14] Kim S, Choi S, Deaconescu T, et al. Sliding Mode Control of Diesel Engine Air-Path System with Dual-Loop EGR and VGT Based on the Reduced-Order Model[C]. Shenzhen: Matec Web of Conferences, 2016.
[15] Mohamed G, Alisofiane A, Nicolas L. Adaptive Super Twisting Extended State Observer Based Sliding Mode Control for Diesel Engine Air Path Subject to Matched and Unmatched Disturbance[J]. Mathematics & Computers in Simulation, 2018, 151: 111-130.
[16] Qu Q, Wang H, Yang T. Nonlinear Observer Based Sliding Mode Control for a Turbocharged Diesel Engine Air-Path Equipped with EGR and VGT[C]. Wuhan: Chinese Automation Congress, 2015.
[17] Shen Y, Wang H, Tian Y, et al. Unknown Input Estimation Based Sliding Mode Control for EGR-VGT Diesel Engine Air-Path[C]. Kowloon Tong: International Conference on Systems, 2015.
[18] Zhang J, Liu L, Li X, et al. Chattering-Free Sliding Mode Control for Diesel Engine Air Path System with Actuator Faults[C]. Changchun: 5th International Federation of Automatic Control Conference on Engine and Powertrain Control, Simulation and Modeling(E-CoSM), 2018.
[19] Zhang Y, Jiang J. Bibliographical Review on Reconfigurable Fault-Tolerant Control Systems[J]. Annual Reviews in Control, 2003, 32(2): 229-252.
[20] Ali S A, Guermouche M, Langlois N. Fault-Tolerant Control Based Super-Twisting Algorithm for the Diesel Engine Air Path Subject to Loss-of-Effectiveness and Additive Actuator Faults[J]. Applied Mathematical Modelling, 2015, 39(15): 4309-4329.
[21] Li W, Zhang J, Liu L, et al. Finite-Time Fault-Tolerant Control for Diesel Engine Air Path via Extended State Observer[J]. IEEE Access, 2019, (7): 65405-65414.
[22] Eriksson L. Modeling and Control of Turbocharged SI and DI Engines[J]. Oil & Gas Science and Technology, 2007, 62(4): 523-538.
[23] Kolmanovsky I, Morall P, Nieuwstadt M, et al. Issues in Modelling and Control of Intake Flow in Variable Geometry Turbocharged Engines[C]. Lisboa: Proceeding of the 18th IFIP Conference on System Modeling and Optimization, 1997.
[24] Chen S, Yan F. Decoupled Disturbance Rejection Control for a Turbocharged Engine with a Dual-Loop Exhaust Gas Recirculation System[J]. Proceedings of the Institution of Mechanical Engineers Part D: Journal of Automobile Engineering, 2017, 232(5).
[25] Li C, Wang W, Aitouche A. Robustness Evaluation of Real-Time Fuzzy Logic Control of the VGT and EGR on a Diesel Engine[C]. Torremolinos: 23rd Mediterranean Conference on Control and Automation, 2015.
[26] García-Nieto S, Salcedo J, Martínez M, et al. Air Management in a Diesel Engine Using Fuzzy Control Techniques[J]. Information Sciences, 2009, 179(19): 3392-3409.
[27] Wang J. Robust Nonlinear Control with Singularity Avoidance for Diesel Engines Having Multiple Combustion Modes[C]. New York: American Control Conference, 2007.
[28] Guzzella L, Amstutz A. Control of Diesel Engines[J]. IEEE Control Systems, 1998, 18(5): 53-71.
[29] Shi C, Guo C, Sun C. Application of Intelligence Controller for Marine Main Engine System[C]. Dalian: World Congress on Intelligent Control and Automation, 2006.
[30] Meng W, Guo C. Research on Speed Intelligent Control Based on Neural Networks for Large Marine Main Diesel Engine[C]. Jinan: World Congress on Intelligent Control and Automation, 2010.
[31] Zhao G, Song E. Application Research of Neural Network Control on Diesel[C]. Helsinki: CIMAC Congress, 2016.
[32] Mohammed N F, Song E, Ma X, et al. D6114 Diesel Engine Speed Control: A Case Between PID Controller and Fuzzy Logic Controller[C]. Tianjin: International Conference on Mechatronics and Automation, 2014.
[33] 杨 森, 杨 杰, 张均东, 等. 基于变论域模糊PID的船舶柴油发电机调速系统[J]. 中国航海, 2016, 39(1): 17-21.
[34] Di X, Huang Y, Ge Y, et al. Fuzzy-PID Speed Control of Diesel Engine Based on Load Estimation[J]. SAE International Journal of Engines, 2015, 8(4).
[35] Ashok B, Ashok S D, Kumar C R. Trends and Future Perspectives of Electronic Throttle Control System in a Spark Ignition Engine[J]. Annual Reviews in Control, 2017, 44: 97-115.
[36] Eguchi M, Mengxing Q, Ohmori H, et al. Diesel Engine Combustion Control Using Feedback Error Learning with Artificial Intelligence Feedforward Controller[J]. Transactions of the Society of Automotive Engineers of Japan, 2018, 49(2).
[37] Choi I, Jeung Y, Lee D. Variable Speed Control of Diesel Engine-Generator Using Sliding Mode Control[C]. Harbin: IEEE Transportation Electrification Conference and Expo Asia Pacific, 2017.
[38] Li X, Ahmed Q, Rizzoni G. Nonlinear Robust Control of Marine Diesel Engine[J]. Journal of Marine Engineering and Technology, 2017, 16(1): 1-10.
[39] Yuan Y, He Y, Cai L, et al. Discrete Sliding Mode Variable Structure Control over the Rotating Speed of Marine Diesel Engines[J]. Proceedings of the Institution of Mechanical Engineers, Part I: Journal of Systems and Control Engineering, 2016, 231(5): 367-379.
[40] Yuan Yupeng, Zhang Meng, Chen Yongzhi, et al. Multi-Sliding Surface Control for the Speed Regulation System of Ship Diesel Engines[J]. Transactions of the Institute of Measurement & Control, 2018, 40(1).
[41] Bidarvatan M, Thakkar V, Shahbakhti M, et al. Grey-Box Modeling of HCCI Engines[J]. Applied Thermal Engineering, 2014, 70(1): 397-409.
[42] Abotabik M, Meyer R, Proctor C. Exergy Based Optimal Controller Design of a Spark-Ignition Internal Combustion Engine[C]. Detroit: SAE Word Congress, 2020.
[43] Wang P, Zhu D, Lu X. Active Queue Management Algorithm Based on Data-Driven Predictive Control[J]. Telecommunication Systems, 2017, 64(1): 103-111.
[44] Kai F, Lu J, Chen J, et al. Nonlinear Model Predictive Control Based on Support Vector Machine and Genetic Algorithm[J]. Chinese Journal of Chemical Engineering, 2015, 23(12): 2048-2052.
[45] Nazoktabar M, Jazayeri S A, Parsa M, et al. Controlling the Optimal Combustion Phasing in an HCCI Engine Based on Load Demand and Minimum Emissions[J]. Energy, 2019, 182: 82-92.
[46] Brahma I, Chi J N. Development of a Model-Based Transient Calibration Process for Diesel Engine Electronic Control Module Tables, Part 2: Modelling and Optimization[J]. International Journal of Engine Research, 2012, 13(2): 147-168.
[47] Niu X, Wang H, Hu S, et al. Multi-Objective Online Optimization of a Marine Diesel Engine Using NSGA-II Coupled with Enhancing Trained Support Vector Machine[J]. Applied Thermal Engineering, 2018, 137: 218-227.
[48] Lamamra K, Batat F, Mokhtari F. A New Technique with Improved Control Quality of Nonlinear Systems Using an Optimized Fuzzy Logic Controller[J]. Expert Systems with Applications, 2020, 145(11).
[49] Zhang Jun-hong, Liu Yu. Application of Complete Ensemble Intrinsic Time-Scale Decomposition and Least-Square SVM Optimized Using Hybrid DE and PSO to Fault Diagnosis of Diesel Engines[J]. Journal of Zhejiang University-Science C(Computers and Electronics), 2017, 18(2): 272-286.