Cascade sliding mode maximum power point tracking controller for photovoltaic systems

被引:2
|
作者
Hessad, Mohammed Amine [1 ]
Bouchama, Ziyad [2 ,3 ]
Benaggoune, Said [1 ]
Behih, Khalissa [4 ]
机构
[1] Mostefa Ben Boulaid Univ Batna 2, Dept Elect Engn, LSTEB Lab, Batna, Algeria
[2] Mohamed Bachir Ibrahimi Univ Bordj Bou Arreridj, Dept Electromech Engn, El Anceur, Algeria
[3] Ferhat Abbas Univ Setif 1, Dept Elect Engn, QUERE Lab, Setif, Algeria
[4] Ferhat Abbas Univ Setif 1, Dept Elect Engn, LSI Lab, Setif, Algeria
关键词
renewable energy; photovoltaic system; maximum power point tracking; DC-DC boost converter; sliding mode control; INCREMENTAL CONDUCTANCE ALGORITHM; IMPROVEMENT; CONVERTER; QUALITY; DESIGN;
D O I
10.20998/2074-272X.2023.1.07
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Introduction. Constant increases in power consumption by both industrial and individual users may cause depletion of fossil fuels and environmental pollution, and hence there is a growing interest in clean and renewable energy resources. Photovoltaic power generation systems are playing an important role as a clean power electricity source in meeting future electricity demands. Problem. All photovoltaic systems have two problems; the first one being the very low electric-power generation efficiency, especially under low-irradiation states; the second resides in the interdependence of the amount of the electric power generated by solar arrays and the ever changing weather conditions. Load mismatch can occur under these weather varying conditions such that maximum power is not extracted and delivered to the load. This issue constitutes the so-called maximum power point tracking problem. Aim. Many methods have been developed to determine the maximum power point under all conditions. There are various methods, in most of them based on the well-known principle of perturb and observe. In this method, the operating point oscillates at a certain amplitude, no matter whether the maximum power point is reached or not. That is, this oscillation remains even in the steady state after reaching the maximum power point, which leads to power loss. This is an essential drawback of the previous method. In this paper, a cascade sliding mode maximum power point tracking control for a photovoltaic system is proposed to overcome above mentioned problems. Methodology. The photovoltaic system is mainly composed of a solar array, DC/DC boost converter, cascade sliding mode controller, and an output load. Two sliding mode control design strategies are joined to construct the proposed controller. The primary sliding mode algorithm is designed for maximum power point searching, i.e., to track the output reference voltage of the solar array. This voltage is used to manipulate the setpoint of the secondary sliding mode controller, which is used via the DC-DC boost converter to achieve maximum power output. Results. This novel approach provides a good transient response, a low tracking error and a very fast reaction against the solar radiation and photovoltaic cell temperature variations. The simulation results demonstrate the effectiveness of the proposed approach in the presence of environmental disturbances. References 23, table 1, figures 11.
引用
收藏
页码:51 / 56
页数:6
相关论文
共 50 条
  • [41] Cascade Sliding Mode Control Applied to A Photovoltaic Water Pumping System with Maximum Power Point Tracker
    Marouani, Rym
    Sellami, Mohamed Adel
    Mami, Abdelkader
    [J]. 2014 1ST INTERNATIONAL CONFERENCE ON ADVANCED TECHNOLOGIES FOR SIGNAL AND IMAGE PROCESSING (ATSIP 2014), 2014, : 328 - 333
  • [42] Simulation of Maximum Power Point Tracking for Photovoltaic Systems
    Al-Bahadili, Hussein
    Al-Saadi, Hadi
    Al-Sayed, Riyad
    Hasan, M. Al-Sheikh
    [J]. 2013 1ST INTERNATIONAL CONFERENCE & EXHIBITION ON THE APPLICATIONS OF INFORMATION TECHNOLOGY TO RENEWABLE ENERGY PROCESSES AND SYSTEMS (IT-DREPS 2013), 2013, : 79 - 84
  • [43] Application of third-order sliding mode controller to improve the maximum power point for the photovoltaic system
    Walid, Kantas
    Sofiane, Mendaci
    Benbouhenni, Habib
    Hamza, Gasmi
    Es-saadi, Tarfia
    [J]. ENERGY REPORTS, 2023, 9 : 5372 - 5383
  • [44] Maximum Power Point Tracking Based on Sliding Mode Control
    Boulaam, K.
    Boukhelifa, A.
    [J]. INTERNATIONAL AEGEAN CONFERENCE ON ELECTRICAL MACHINES AND POWER ELECTRONICS & ELECTROMOTION JOINT CONFERENCE, 2011, : 59 - 63
  • [45] Maximum Power Point Tracking Based on Sliding Mode Control
    Vazquez, Nimrod
    Azaf, Yuz
    Cervantes, Ilse
    Vazquez, Esli
    Hernandez, Claudia
    [J]. INTERNATIONAL JOURNAL OF PHOTOENERGY, 2015, 2015
  • [46] Maximum Power Point Tracking Employing Sliding Mode Control
    Levron, Yoash
    Shmilovitz, Doron
    [J]. IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS I-REGULAR PAPERS, 2013, 60 (03) : 724 - 732
  • [47] Sliding mode control of an active power filter with photovoltaic maximum power tracking
    Antonio Cortajarena, Jose
    Barambones, Oscar
    Alkorta, Patxi
    Cortajarena, Jon
    [J]. INTERNATIONAL JOURNAL OF ELECTRICAL POWER & ENERGY SYSTEMS, 2019, 110 : 747 - 758
  • [48] Dual surface sliding mode controller for photovoltaic systems enhanced by a ripple domain search maximum power point tracking algorithm for fast changing environmental conditions
    Ghaffarzadeh, Navid
    Bijani, Sepehr
    [J]. IET RENEWABLE POWER GENERATION, 2016, 10 (05) : 611 - 622
  • [49] Modeling of photovoltaic module using Maximum Power Point Tracking controller
    Bouksaim, Maroua
    Acci, Yassin
    Hadjouja, Abdelkader
    Krami, Nissrine
    Srifi, Mohamed Nabil
    [J]. 2018 INTERNATIONAL SYMPOSIUM ON ADVANCED ELECTRICAL AND COMMUNICATION TECHNOLOGIES (ISAECT), 2018,
  • [50] Design of optimal controller for photovoltaic maximum power point tracking applications
    Ma, Suliang
    Li, Jianlin
    Li, Guanghui
    Chen, Mingxuan
    Tan, Yuliang
    Wu, Yiwen
    [J]. ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2022,