Abstract
A key issue in the control of double fed induction generator (DFIG) wind turbine systems is to achieve an expected performance in the presence of stochastic wind speeds. To address this issue, this paper establishes a stochastic model predictive control (SMPC) scheme for the DFIG wind turbine system. The salient feature of this scheme is that it explicitly takes into account the uncertainties in wind speed forecasts. Using wind speed predictive distributions, the forecasted wind speeds are modeled as Gaussian disturbances. Using probabilistic constraints, the uncertainties in these disturbances are incorporated into the SMPC problem formulation. By converting the probabilistic constraints into deterministic constraints, the formulated stochastic programming problem is recast as a convex quadratic optimization problem, which can be solved very efficiently. In this way, the computed control actions handle the uncertainties associated with the wind speed forecasts, thus ensuring the optimal operation of DFIG. Simulation results validate the effectiveness of the proposed scheme.
| Original language | English |
|---|---|
| Title of host publication | 2016 IEEE Power and Energy Society General Meeting, PESGM 2016 |
| Publisher | IEEE Computer Society |
| ISBN (Electronic) | 9781509041688 |
| DOIs | |
| State | Published - 10 Nov 2016 |
| Event | 2016 IEEE Power and Energy Society General Meeting, PESGM 2016 - Boston, United States Duration: 17 Jul 2016 → 21 Jul 2016 |
Publication series
| Name | IEEE Power and Energy Society General Meeting |
|---|---|
| Volume | 2016-November |
| ISSN (Print) | 1944-9925 |
| ISSN (Electronic) | 1944-9933 |
Conference
| Conference | 2016 IEEE Power and Energy Society General Meeting, PESGM 2016 |
|---|---|
| Country/Territory | United States |
| City | Boston |
| Period | 17/07/16 → 21/07/16 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 7 Affordable and Clean Energy
Keywords
- Double fed induction generator
- Probabilistic constraints
- Stochastic model predictive control
- Stochastic programming
- Wind energy
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