Multiobjective optimization of the cooling system of a marine diesel engine

Abstract An intelligent cooling system directly influences the thermal load of high‐temperature components, heat distribution, and fuel economy of a diesel engine. An optimal coolant pump rotational speed map is a key factor in intelligent cooling control strategies. In this study, we designed an ex...

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Main Authors: Bo Zhang, Ping Zhang, Fanming Zeng
Format: Article
Language:English
Published: Wiley 2021-10-01
Series:Energy Science & Engineering
Subjects:
Online Access:https://doi.org/10.1002/ese3.960
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spelling doaj-a6ba0e4aa1814bf39bc9c92e38dfb0362021-10-03T06:34:55ZengWileyEnergy Science & Engineering2050-05052021-10-019101887190710.1002/ese3.960Multiobjective optimization of the cooling system of a marine diesel engineBo Zhang0Ping Zhang1Fanming Zeng2College of Power Engineering Naval University of Engineering Wuhan ChinaCollege of Power Engineering Naval University of Engineering Wuhan ChinaCollege of Power Engineering Naval University of Engineering Wuhan ChinaAbstract An intelligent cooling system directly influences the thermal load of high‐temperature components, heat distribution, and fuel economy of a diesel engine. An optimal coolant pump rotational speed map is a key factor in intelligent cooling control strategies. In this study, we designed an experimental variable coolant flow system for a maritime diesel engine. Experiment design and D‐optimal designs were used to optimize the parameters of the diesel engine cooling system. The diesel engine speed, load, and freshwater rotational pump speed were selected as variables. The temperature of the high‐thermal‐load zone of the combustion chamber components, fuel consumption rate, effective power, and peak cylinder pressure were selected as response variables, and the D‐optimal method was used to sample the experimental points. Polynomial response surface models were obtained using a stepwise algorithm. A multiobjective optimization problem was converted into a simple‐objective optimization problem using the ideal point method. A genetic algorithm was used to optimize the single‐objective function globally to obtain the optimal freshwater pump speed map for a diesel engine under all conditions. On average, the optimized cooling system decreased the fuel consumption by 1.901%. Six typical propulsive conditions were selected to confirm the validity of the optimization results. The experimental results indicate that the fuel consumption decreased by 2.35%, the effective power increased by 2.26%, and the power consumption of the water pump decreased by 17.83%. The combination of experiment design and D‐optimal designs offers the advantages of low cost, high efficiency, and high precision in solving multiobjective optimization problems involving strong coupling and nonlinear systems. The results of this research provide data support and a theoretical basis for intelligent cooling control strategies.https://doi.org/10.1002/ese3.960design of experimentsdiesel engine cooling systemD‐optimal designsfuel consumption ratemultiobjective optimization
collection DOAJ
language English
format Article
sources DOAJ
author Bo Zhang
Ping Zhang
Fanming Zeng
spellingShingle Bo Zhang
Ping Zhang
Fanming Zeng
Multiobjective optimization of the cooling system of a marine diesel engine
Energy Science & Engineering
design of experiments
diesel engine cooling system
D‐optimal designs
fuel consumption rate
multiobjective optimization
author_facet Bo Zhang
Ping Zhang
Fanming Zeng
author_sort Bo Zhang
title Multiobjective optimization of the cooling system of a marine diesel engine
title_short Multiobjective optimization of the cooling system of a marine diesel engine
title_full Multiobjective optimization of the cooling system of a marine diesel engine
title_fullStr Multiobjective optimization of the cooling system of a marine diesel engine
title_full_unstemmed Multiobjective optimization of the cooling system of a marine diesel engine
title_sort multiobjective optimization of the cooling system of a marine diesel engine
publisher Wiley
series Energy Science & Engineering
issn 2050-0505
publishDate 2021-10-01
description Abstract An intelligent cooling system directly influences the thermal load of high‐temperature components, heat distribution, and fuel economy of a diesel engine. An optimal coolant pump rotational speed map is a key factor in intelligent cooling control strategies. In this study, we designed an experimental variable coolant flow system for a maritime diesel engine. Experiment design and D‐optimal designs were used to optimize the parameters of the diesel engine cooling system. The diesel engine speed, load, and freshwater rotational pump speed were selected as variables. The temperature of the high‐thermal‐load zone of the combustion chamber components, fuel consumption rate, effective power, and peak cylinder pressure were selected as response variables, and the D‐optimal method was used to sample the experimental points. Polynomial response surface models were obtained using a stepwise algorithm. A multiobjective optimization problem was converted into a simple‐objective optimization problem using the ideal point method. A genetic algorithm was used to optimize the single‐objective function globally to obtain the optimal freshwater pump speed map for a diesel engine under all conditions. On average, the optimized cooling system decreased the fuel consumption by 1.901%. Six typical propulsive conditions were selected to confirm the validity of the optimization results. The experimental results indicate that the fuel consumption decreased by 2.35%, the effective power increased by 2.26%, and the power consumption of the water pump decreased by 17.83%. The combination of experiment design and D‐optimal designs offers the advantages of low cost, high efficiency, and high precision in solving multiobjective optimization problems involving strong coupling and nonlinear systems. The results of this research provide data support and a theoretical basis for intelligent cooling control strategies.
topic design of experiments
diesel engine cooling system
D‐optimal designs
fuel consumption rate
multiobjective optimization
url https://doi.org/10.1002/ese3.960
work_keys_str_mv AT bozhang multiobjectiveoptimizationofthecoolingsystemofamarinedieselengine
AT pingzhang multiobjectiveoptimizationofthecoolingsystemofamarinedieselengine
AT fanmingzeng multiobjectiveoptimizationofthecoolingsystemofamarinedieselengine
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