Title of article :
Solution quality improvement in chiller loading optimization
Author/Authors :
Zong Woo Geem، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2011
Pages :
4
From page :
1848
To page :
1851
Abstract :
In order to reduce greenhouse gas emission, we can energy-efficiently operate a multiple chiller system using optimization techniques. So far, various optimization techniques have been proposed to the optimal chiller loading problem. Most of those techniques are meta-heuristic algorithms such as genetic algorithm, simulated annealing, and particle swarm optimization. However, this study applied a gradient-based method, named generalized reduced gradient, and then obtains better results when compared with other approaches. When two additional approaches (hybridization between meta-heuristic algorithm and gradient-based algorithm; and reformulation of optimization structure by adding a binary variable which denotes chiller’s operating status) were introduced, generalized reduced gradient found even better solutions.
Keywords :
Chiller loading optimization , Hybrid method , Generalized reduced gradient method
Journal title :
Applied Thermal Engineering
Serial Year :
2011
Journal title :
Applied Thermal Engineering
Record number :
1045581
Link To Document :
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