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Multi-Scale CFD Modeling of Plate Heat Exchangers Including Offset-Strip Fins and Dimple-Type Turbulators for Automotive Applications

机译:板式换热器的多尺度CFD建模,包括用于汽车应用的偏移 - 带翅片和凹型湍流器

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摘要

Plate heat exchangers including offset-strip fins or dimple-type turbulators have a wide application in the automotive field as oil coolers for internal combustion engines and transmissions. Their optimization is a complex task since it requires targeting different objectives: High compactness, low pressure drop and high heat-transfer efficiency. In this context, the availability of accurate Computational Fluid Dynamics (CFD) simulation models plays an important role during the design phase. In this work, the development of a computational framework for the CFD simulation of compact oil-to-liquid heat exchangers, including offset-strip fins and dimples, is presented. The paper addresses the modeling problem at different scales, ranging from the characteristic size of the turbulator geometry (typically µm−mm) to the full scale of the overall device (typically cm−dm). The simulation framework is based on multi-scale concept, which applies: (a) Detailed simulations for the characterization of the micro-scale properties of the turbulator, (b) an upscaling approach to derive suitable macro-scale models for the turbulators and (c) full-scale simulations of the entire cooler, including the porous models derived for the smaller scales. The model is validated comparing with experimental data under different operating conditions. Then, it is adopted to investigate the details of the fluid dynamics and heat-transfer process, providing guidelines for the optimization of the device.
机译:包括偏移 - 带翅片或凹坑型湍流器的板式热交换器在汽车领域具有广泛的应用,作为用于内燃机和传动发动机的油冷却器。它们的优化是一个复杂的任务,因为它需要针对不同的目标:高紧凑,低压降,高温降低效率。在这种情况下,准确计算流体动力学(CFD)仿真模型的可用性在设计阶段期间起着重要作用。在这项工作中,呈现了对紧凑型油 - 液体热交换器的CFD模拟的计算框架的发展,包括偏移 - 带翅片和凹坑。该纸张在不同的尺度上解决了模型问题,从湍流器几何(通常为μm-mm)的特征尺寸到整个设备的全尺度(通常是CM-DM)。仿真框架基于多尺度概念,其适用:(a)用于表征湍流器的微尺度特性的详细仿真,(b)推导出湍流器的合适宏观尺度模型的umorcing方法( c)整个冷却器的全尺寸模拟,包括导出为较小尺度的多孔模型。该模型与在不同操作条件下的实验数据进行了验证。然后,采用它来研究流体动力学和传热过程的细节,提供了用于优化装置的指导。

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