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Model-based optimization strategy for a liquid desiccant cooling and dehumidification system

机译:基于模型的液体干燥剂冷却和除湿系统的优化策略

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摘要

In this paper, a model-based optimization strategy for a liquid desiccant cooling and dehumidification (LDCD) system is proposed to improve system energy efficiency. The energy models of the LDCD system are established to predict system energy consumption under different operating conditions. To minimize the system energy consumption while maintaining the system thermal performance, the system energy consumption and thermal performance indicators are normalized by introducing a weight factor in cost function, then an optimization problem considering the interactions between components and system constraints is formulated. An improved self-adaptive firefly algorithm with fast convergence rate is proposed to solve the optimization problem and obtain the optimal set-points for control settings. Tests on an experimental apparatus are carried out to verify the energy saving potential of optimal control strategy under different weight factors and operating conditions. The results indicate that the energy consumption of LDCD system in the proposed optimization strategy is reduced by 12.49% over the conventional strategy. Meanwhile, the energy saving potential of the optimal control strategy is more remarkable for high cooling and dehumidification load. The proposed optimal control strategy can work well for applications in control and energy efficiency improvement of the existing dehumidification systems. (C) 2019 Elsevier B.V. All rights reserved.
机译:本文提出了一种基于模型的优化策略,用于液体干燥剂冷却和除湿(LDCD)系统以提高系统能效。建立了LDCD系统的能量模型,以预测不同操作条件下的系统能量消耗。为了使系统能量消耗最小化在保持系统的热性能的同时,通过在成本函数中引入重量因子来标准化系统能量消耗和热性能指标,然后在考虑组件与系统约束之间的相互作用的优化问题。提出了一种具有快速收敛速率的改进的自适应萤火虫算法来解决优化问题,并获得控制设置的最佳设定点。对实验装置进行测试,以验证在不同权重因子和操作条件下最佳控制策略的节能电位。结果表明,通过常规策略减少了12.49%的LDCD系统的能耗。同时,对于高冷却和除湿负荷,最佳控制策略的节能潜力更为显着。所提出的最优控制策略可以很好地适用于现有除湿系统的控制和能效改进的应用。 (c)2019 Elsevier B.v.保留所有权利。

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