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STUDY ON CHARACTERISTICS OF THERMOACOUSTIC STREAMING BY MICROGRAVITY EXPERIMENT AND NUMERICAL SIMULATION

机译:微观重力实验和数值模拟研究热声流的特征

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Thermcracoustic streaming is a new thermal convection. It was discovered in our past work in which a droplet was burnt in standing sound waves in microgravity experiments. When the droplet is placed between a node and an anti-node, the flame is blown in one direction and is placed at a node and an anti-node, the flame is not blown.In the previous report, to investigate the flow field of the streaming, the authors made numerical simulations by direct numerical simulation (DNS). The DNS, however, is too inefficient to simulate the streaming, because it takes a lot of time steps to solve. We developed a time-averaged model named as 'Acoustic Radiation Force model (ARF model)'. The authors, however, have not investigated whether the simulations give flow field consistent with the experimentally generated streaming. To certify the simulation models, the authors visualized the flow filed of the experiments by schlieren method. Microgravity is used in the experiments to remove the effects of buoyancy. As a result, the simulation models are validated to give flow field consistent with the streaming in reality.
机译:热流是一种新的热对流。在我们过去的工作中发现了这种现象,在微重力实验中,液滴在驻波中燃烧。当将液滴放置在节点和波腹之间时,火焰朝一个方向吹,并放置在节点和波腹处,火焰不被吹。在流式传输中,作者通过直接数值模拟(DNS)进行了数值模拟。但是,DNS效率太低,无法模拟流式传输,因为它需要花费很多时间来解决。我们开发了一个时间平均模型,称为“声辐射力模型(ARF模型)”。然而,作者们没有研究模拟是否给出与实验产生的流一致的流场。为了验证仿真模型,作者使用schlieren方法可视化了实验流程。实验中使用微重力来消除浮力的影响。结果,对仿真模型进行了验证,以使流场与现实中的流一致。

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