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COMPUTATIONAL ENGINEERING DESIGN FOR MICRO-SCALE COMBUSTION DEVICES: A THERMALLY IMPROVED CONFIGURATION

机译:微垢燃烧装置的计算工程设计:热改进的配置

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A multi-objective design optimisation study has been carried out with the objectives to improve the overall efficiency of the device and to reduce the fuel consumption for the proposed micro-scale combustor design configuration. In a previous study we identified the topology of the combustion chamber that produced improved behaviour of the device in terms of the above design criteria. We now extend our design approach, and we propose a new configuration by the addition of a micro-cooling channel that will improve the thermal behaviour of the design as previously suggested in literature. Our initial numerical results revealed an improvement of 2.6% in the combustion efficiency when we applied the micro-cooling channel to an optimum design configuration we identified from our earlier multi-objective optimisation study, and under the same operating conditions. The computational modelling of the combustion process is implemented in the commercial computational fluid dynamics package ANSYS-CFX using Finite Rate Chemistry and a single step hydrogen-air reaction. With this model we try to balance good accuracy of the combustion solution and at the same time practicality within the context of an optimisation process. The whole design system comprises also the ANSYS-ICEM CFD package for the automatic geometry and mesh generation and the Multi-Objective Tabu Search algorithm for the design space exploration. We model the design problem with 5 geometrical parameters and 3 operational parameters subject to 5 design constraints that secure practicality and feasibility of the new optimum design configurations. The final results demonstrate the reliability and efficiency of the developed computational design system and most importantly we assess the practicality and manufacturability of the revealed optimum design configurations of micro-combustor devices.
机译:已经进行了多目标设计优化研究,以提高设备的整体效率,并降低所提出的微级燃烧器设计配置的燃料消耗。在先前的研究中,我们鉴定了产生改进的该装置的行为在上述设计标准术语燃烧室的拓扑结构。我们现在扩展了我们的设计方法,我们通过添加微冷却通道提出了一种新的配置,这将提高设计的设计的热行为,如先前在文献中所提出的。我们的初始数值结果显示,当我们将微冷却通道应用于从我们早期的多目标优化研究中识别的最佳设计配置,以及在相同的操作条件下,我们的初始数值结果显示了燃烧效率的提高2.6%。燃烧过程的计算建模在商业计算流体动力学封装ANSYS-CFX中实现了使用有限速率化学和单步氢气反应。使用此模型,我们试图在优化过程的背景下平衡燃烧解决方案的良好准确性,并同时实用性。整个设计系统还包括用于自动几何和网格生成的ANSYS-ICEM CFD封装,以及用于设计空间探索的多目标禁忌搜索算法。我们使用5个几何参数和3个操作参数模拟设计问题,该参数约为5个设计约束,以确保新的最佳设计配置的实用性和可行性。最终结果表明了开发的计算设计系统的可靠性和效率,最重要的是,我们评估了微燃烧器装置的显露优化设计配置的实用性和可制造性。

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