scholarly journals Solving the Real Power Limitations in the Dynamic Economic Dispatch of Large-Scale Thermal Power Units under the Effects of Valve-Point Loading and Ramp-Rate Limitations

2021 ◽  
Vol 13 (3) ◽  
pp. 1274
Author(s):  
Loau Al-Bahrani ◽  
Mehdi Seyedmahmoudian ◽  
Ben Horan ◽  
Alex Stojcevski

Few non-traditional optimization techniques are applied to the dynamic economic dispatch (DED) of large-scale thermal power units (TPUs), e.g., 1000 TPUs, that consider the effects of valve-point loading with ramp-rate limitations. This is a complicated multiple mode problem. In this investigation, a novel optimization technique, namely, a multi-gradient particle swarm optimization (MG-PSO) algorithm with two stages for exploring and exploiting the search space area, is employed as an optimization tool. The M particles (explorers) in the first stage are used to explore new neighborhoods, whereas the M particles (exploiters) in the second stage are used to exploit the best neighborhood. The M particles’ negative gradient variation in both stages causes the equilibrium between the global and local search space capabilities. This algorithm’s authentication is demonstrated on five medium-scale to very large-scale power systems. The MG-PSO algorithm effectively reduces the difficulty of handling the large-scale DED problem, and simulation results confirm this algorithm’s suitability for such a complicated multi-objective problem at varying fitness performance measures and consistency. This algorithm is also applied to estimate the required generation in 24 h to meet load demand changes. This investigation provides useful technical references for economic dispatch operators to update their power system programs in order to achieve economic benefits.

Energy ◽  
2015 ◽  
Vol 93 ◽  
pp. 2175-2190 ◽  
Author(s):  
Anbo Meng ◽  
Hanwu Hu ◽  
Hao Yin ◽  
Xiangang Peng ◽  
Zhuangzhi Guo

Author(s):  
Thukaram Dhadbanjan ◽  
Seshadri Sravan Kumar Vanjari

State estimation plays an important role in real time security monitoring and control of power systems. There are many problems in the implementation of state estimator for large scale networks due to measurement errors, weights given and the numerical ill-conditioning associated with the solution techniques. In this paper a new formulation using linear programming approach is presented. The formulation is devoid of weights and errors associated with the measurements are taken care of in constraints. The non linear problem is linearized at previous operating state and constraints are set up using flow mismatches. The implementation of the formulation exploits sparse features of the network matrices and avoids matrix inversions. Upper bound optimization technique is employed to solve the linear programming problem. Illustration of the proposed approach on sample 3-bus and 6-bus systems and a practical Indian Southern grid 72 bus equivalent system are presented.


2020 ◽  
Author(s):  
Layon M. Oliveira ◽  
Ezequiel S. Oliveira ◽  
Ivo C. Silva Junior

The thermal Economic Dispatch (ED) consist of a complex optimization problem of power systems planning and operation that aims to minimize the overall generation cost. The realistic representation of the thermoelectric power units is modeled by practical constraints comprising valve-point eect, multiple fuels and Prohibited Operating Zones (POZ), which makes the ED a nonconvex and discontinuous mathematical programming problem. This paperis proposes an Enhanced Bat Algorithm (EBA) to solve the ED problem with its practical constraints. The EBA is developed to improve the exploration of the search space through some modications in the original Bat algorithm (BA), with the purpose of increasing the eciency in nding good solutions for large scale ED problems. Case studies with statistical analysis are performed to assess the proposed approach, involving a system with all practical constraintsrelated to the ED problem, which is a contribution of the present paper.


2016 ◽  
Vol 98 (2) ◽  
pp. 221-229 ◽  
Author(s):  
Manjaree Pandit ◽  
Kalpana Jain ◽  
Hari Mohan Dubey ◽  
Rameshwar Singh

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