Title :
Control of receiver temperature and shaft speed in dish-Stirling solar power plants to meet grid integration requirements
Author :
Howard, Dustin F. ; Jiaqi Liang ; Harley, R.G.
Author_Institution :
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
Abstract :
Dish-Stirling concentrating solar power systems are an efficient and reliable source of renewable energy, indicating a potential for large-scale grid integration in upcoming years. Various technical and policy considerations must be accounted for in the grid integration of dish-Stirling solar power plants, particularly related to potential grid integration requirements set by the Federal Energy Regulatory Commission regarding power factor correction and low voltage ride-through capability. This paper discusses potential grid integration requirements for dish-Stirling concentrating solar power systems, along with the technical challenges in meeting such requirements. A summary of the dynamic model of a dish-Stirling system and its control unit for power grid integration studies is provided. An additional over-speed control loop is proposed in this paper to enhance the system´s grid fault ride-through capability. A linear model of the system is derived for controller parameter design. Simulation studies are carried out to verify the effectiveness of the proposed over-speed control algorithm. The system´s steady-steady performance and dynamic response during a grid fault are simulated to identify potential problems and solutions for successful grid integration.
Keywords :
control system synthesis; power factor correction; power generation faults; power grids; power station control; shafts; solar power stations; temperature control; velocity control; Federal Energy Regulatory Commission; additional over-speed control loop; controller parameter design; dish-Stirling concentrating solar power systems; dynamic response; grid fault; large-scale grid integration; power factor correction; receiver temperature control; renewable energy; shaft speed control; system grid fault ride-through capability; Reactive power; Receivers; Shafts; Stirling engines; Temperature control; Valves; Heat engines; Induction generators; Modeling; Power system control; Power system transient stability; Reactive power; Solar energy; Solar power generation;
Conference_Titel :
Energy Conversion Congress and Exposition (ECCE), 2010 IEEE
Conference_Location :
Atlanta, GA
Print_ISBN :
978-1-4244-5286-6
DOI :
10.1109/ECCE.2010.5618003