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Two-phase reservoir: development of a transient thermo-hydraulic model based on bond graph approach with experimental validation

机译:两相油藏:基于键合图方法并经过实验验证的瞬态热工水力模型的开发

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The main purpose of the project FUI THERMOFLUID is to study the feasibility of a new electronic cooling system embedded on flying objects (missile, satellite, and airplane). The technology chosen consists of a pumped two-phase flow cooling loop (PTPFL). It is an innovative technology with a transport capacity of the thermal power up to 10 MW.m, exceeding in this way the performance of all other technologies. A PTPFL is a cooling loop based on the exploitation of the latent heat properties of the fluid trapped inside the loop, and moved by a pump. The components constituting a PTPFL are: a two-phase reservoir (TP-R), a mini-channels evaporator, a brazed plate condenser, a pump, and pipes. The global research work is devoted to propose a dynamic model and experimental validation of the PTPFL. The present article is exclusively dedicated to the TP-R. Indeed, this element plays a key role in the functioning of PTPFL. Historically, the TP-R did not equip the first cooling loop. However, due to its advantages, its introduction was essential. The developed dynamic model will be used in another work to predict the thermal hydraulic efficiency of the PTPFL from its mechanical and fluidic parameters, to conduct the study of transitional regimes and instability problems, and provides an original tool dedicated to design the TP-R in function of the thermal power levels to be evacuated and the selected refrigerant. The bond graph methodology is adopted for modelling works because of its energetic approach and multi-physics character of the studied system. The new model proposed in this article has many originalities: First, it is based on bond graph approach. Nowadays, the open literature shows that no bond graph model has been developed for such thermo-fluid system. Second, the dynamic model of TP-R pays great attention to phenomena that have never been taken into account in works cited in the present article, such as evaporation and condensation. Third, different conducto-convective heat exchanges are modelled without any experimental recalibration of the thermal exchange coefficients, unlike models proposed in the literature. In fact, all coefficients are systematically calculated using adequate correlations.
机译:FUI THERMOFLUID项目的主要目的是研究嵌入在飞行物体(导弹,卫星和飞机)上的新型电子冷却系统的可行性。选择的技术包括一个抽水两相流冷却回路(PTPFL)。这是一项创新技术,其火力输送能力高达10 MW.m,以这种方式超越了所有其他技术的性能。 PTPFL是一种冷却回路,它基于对滞留在回路内部并由泵移动的流体的潜热特性的利用。构成PTPFL的组件包括:两相容器(TP-R),小通道蒸发器,铜板冷凝器,泵和管道。全球研究工作致力于提出PTPFL的动态模型和实验验证。本文专门针对TP-R。实际上,该元素在PTPFL的功能中起关键作用。从历史上看,TP-R没有配备第一个冷却回路。但是,由于其优点,引入它是必不可少的。所开发的动力学模型将用于另一项工作,以根据其机械和流体参数预测PTPFL的热水力效率,进行过渡状态和不稳定性问题的研究,并提供专用于设计TP-R的原始工具。排空的火力水平和所选制冷剂的功能。键合图方法由于其能量充沛的方法和所研究系统的多物理特性而被用于建模工作。本文提出的新模型具有许多独创性:首先,它是基于键图方法的。如今,公开文献表明尚未为这种热流体系统开发键合图模型。其次,TP-R的动力学模型非常关注本文所引用的工作中从未考虑的现象,例如蒸发和冷凝。第三,不像文献中提出的模型那样,在不对热交换系数进行任何实验重新校准的情况下,对不同的对流-热交换进行了建模。实际上,所有系数都是使用足够的相关性系统地计算的。

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