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PID-/FOPID-based frequency control of zero-carbon multisources-based interconnected power systems underderegulated scenarios

机译:基于PID / FOPID的零碳多电源基于互连电力系统的频率控制,低估了方案

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摘要

Zero-carbon multienergy sources (ZCESs) integration into a power system becomes mandatory to reduce energy production costs and fuel-burning emissions. Although, the energy mix of ZCESs with high penetration levels arises at moderated frequency as well as voltage response deterioration of the interconnected power systems. These response deteriorations stem from the fluctuation nature of ZCESs. Therefore, the necessity for overcoming these performance degradations is not an option for power system planners and operators. Thanks to fractional order (FO) mathematics in conjunction with metaheuristic optimization algorithms (MOAs) as they can be employed to enhance the damping of ZCESs oscillations under energy mix uncertainties. Three-area solar thermal-wind-hydro (STWH) power system, including system's uncertainties such as data telemetry delays and governor dead bandsand generation rate constraints, is considered to accomplish this study. The performance of STWH system equipped with FOPID-based load frequency controllers tuned by various modern MOAs (FOPID-based LFCs) has been compared to the classical PID-LFC controllers governed by the same MOAs, to demonstrate the superior efficiency of the FOPID-based LFCs. The efficacy of FOPID-based LFCs and their effectiveness compared to the predecessors are verified during simulation results.
机译:零碳多输入源(ZCESS)集成到电力系统中成为强制性,以降低能源生产成本和燃料燃烧排放。尽管,具有高穿透水平的Zcess的能量混合在适度的频率下产生以及互联电力系统的电压响应劣化。这些反应劣化源于脓血病的波动性质。因此,克服这些性能下降的必要性不是电力系统规划者和运营商的选择。由于分数顺序(FO)数学与成型优化算法(MOAS)相结合,因为它们可以采用它们在能量混合不确定性下提高静血振荡的阻尼。三个区域太阳能热风 - 水电(STWH)电力系统,包括系统遥测延误和州长死区的生成率限制等系统的不确定性,以实现这一研究。配备了由各种现代MOAS(基于FOPID的LFC)调整的基于FOPID的负载频率控制器的STWH系统的性能已经与由同一MOAS管理的经典PID-LFC控制器进行比较,以证明基于FOPID的卓越效率LFCS。在模拟结果期间验证了基于FOPID的LFC的疗效及其效果。

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