A Non-Dominated Sorting Genetic Algorithm Ii-Based 3 Degree of Freedom Controller for Shell and Tube Heat Exchanger
Abstract
This research presents a three Degree of Freedom (3DoF) based outlet fluid temperature controller for Shell and Tube Heat Exchanger (STHX). Shell and Tube Heat Exchangers are classes of heat exchangers which are utilized for heat transfer between fluids in industries. The ultimate goal of any controller design is to track the set point by the STHX, especially, in the presence of noise and disturbance. Great results have been achieved by the use of a 2 degree of freedom controller; however, tracking of the set point is hampered by a tradeoff that exists between noise suppression and disturbance rejection. In order to address this challenge, an existing STHX experimental data was employed to develop a three degree of freedom Proportional Integral Derivative (PID) controller. A Multi-Objective Optimization Problem (MOP) of set point tracking, disturbance rejection, and noise suppression was formulated using Integral Absolute Error (IAE), Integral of Squared Error (ISE), and Integral of Time-weighted Absolute Error (ITAE) as cost functions. The Non-Dominated Sorting Genetic Algorithm II (NSGA) was deployed for the optimization of the parameters of the PID while subjecting the system to noise. The simulations results were obtained and compared to those obtained with 2DoF controller. The settling times, rise times and overshoots obtained from the simulations reveal the superior performance of the developed 3DoF controller. Hence, great rejection of noise is achieved with a 3DoF controller for STHX.
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