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CFD-DEM and PR-DNS studies of low-temperature densely packed beds

机译:CFD-DEM和低温密集包装床的PR-DNS研究

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Over the past few decades, granular media is gaining attention as a viable option for heat transfer fluids (HTFs). Several research efforts are studying the use of particle-based heat transfer fluids in a wide variety of applications. With this motivation, the current work focusses on analyzing the different heat transfer mechanisms in low-temperature mono-sized densely packed granular media. To study the heat transfer behavior of granular media at different scales, the current work employs a two-way coupled computational strategy. The motion of particles is solved using the Discrete Element Method (DEM) and the interstitial air is solved using a Finite-Volume (CFD) approach. The Open-Source library CFDEM Coupling® is used in the current study to join the Finite Volume PISO solver of OpenFOAM® and the DEM solver of LIGGGHTS®. Typically, particle-particle contact conduction and particle-air convection are the most popular closure models. But recent research identified a different heat transfer phenomenon in packed beds that cannot be identified by conduction or convection models. Though closure models were developed to implement this on a CFD-DEM framework, they did not capture the effect of intra-particulate thermal gradients on this phenomenon. Hence the current work also employs Particle-Resolved Direct Numerical Simulations (PR-DNS) to gain valuable insights allowing for the modification of existing models. A new closure model is then proposed here and is implemented in the CFD-DEM framework. This model provides key insights into the different heat transfer mechanism of packed beds.
机译:在过去的几十年里,粒状介质正在作为传热液(HTF)的可行选择。几项研究努力正在研究在各种应用中使用颗粒式传热流体。通过这种动机,目前的工作侧重于分析低温单尺寸密集包装粒状介质中的不同传热机制。为了研究不同尺度的粒状介质的传热行为,目前的工作采用双向耦合计算策略。使用离散元素法(DEM)求解颗粒的运动,并且使用有限体积(CFD)方法解决了间质空气。开源库CFDEM耦合®在当前的研究中使用,加入OpenFoam®和Liggghts®的DEM求解器的有限卷PISO求解器。通常,粒子粒子接触传导和粒子空气对流是最流行的封闭模型。但最近的研究发现了一种不同的传热现象在填充床中,不能通过传导或对流模型来识别。虽然开发了封闭模型以在CFD-DEM框架上实现这一点,但它们没有捕获颗粒状热梯度对这种现象的影响。因此,目前的工作还采用了粒子分辨的直接数值模拟(PR-DNS),以获得有价值的见解,允许修改现有模型。然后提出了一种新的闭合模型,并在CFD-DEM框架中实现。该模型为填充床的不同传热机制提供了关键洞察。

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