• DocumentCode
    759086
  • Title

    Comparison between closed-loop and partial open-loop feedback control policies in long term hydrothermal scheduling

  • Author

    Martinez, L. ; Soares, S.

  • Author_Institution
    Depaqment of Eng. Syst., State Univ. of Campinas, Sao Paulo, Brazil
  • Volume
    17
  • Issue
    2
  • fYear
    2002
  • fDate
    5/1/2002 12:00:00 AM
  • Firstpage
    330
  • Lastpage
    336
  • Abstract
    Stochastic dynamic programming has been. extensively used in the optimization of long term hydrothermal scheduling problems due to its ability to cope with the nonlinear and stochastic characteristics of such problems, and the fact that it provides a closed-loop feedback control policy. Its computational requirements, however, tend to be heavy even for systems with a small number of hydroplants, requiring some sort of modeling manipulation in order to be able to handle real systems. An alternative to closed-loop optimization is an approach that combines a deterministic optimization model with an inflow forecasting model in a partial open-loop feedback control framework. At each stage in this control policy, a forecast of the inflows during the period of planning is made, and an operational decision for the following stage is obtained by a deterministic optimization model. The present paper compares such closed-loop and partial open-loop feedback control policies in long term hydrothermal scheduling, using a single hydroplant system as a case study to focus the comparison on the feedback control performance. The comparison is made by simulation using data from historical and synthetical inflow sequences in the consideration of three different Brazilian hydroplants located in different river basins. Results have demonstrated that the performance of the partial open-loop feedback control policy is similar to that of the closed-loop control policy, and is even superior in dry streamflow periods
  • Keywords
    closed loop systems; feedback; hydroelectric power; hydroelectric power stations; hydrothermal power systems; nonlinear programming; optimal control; power generation control; power generation scheduling; stochastic programming; thermal power stations; Brazilian hydroplants; closed-loop feedback control; closed-loop feedback control policies; computational requirements; control policy; deterministic optimization model; dry stream flow periods; feedback control performance; hydroplant system; inflow forecasting model; long term hydrothermal scheduling; nonlinear characteristics; operational decision; partial open-loop feedback control; partial open-loop feedback control policies; planning; river basins; stochastic characteristics; stochastic dynamic programming; stochastic optimal control; synthetic inflow sequences; Dynamic programming; Dynamic scheduling; Feedback control; Hydroelectric power generation; Open loop systems; Optimal control; Predictive models; Processor scheduling; Reservoirs; Stochastic processes;
  • fLanguage
    English
  • Journal_Title
    Power Systems, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-8950
  • Type

    jour

  • DOI
    10.1109/TPWRS.2002.1007900
  • Filename
    1007900