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Diffusion-Welded Microchannel Heat Exchanger for Industrial Processes

机译:用于工业过程的扩散焊接微通道热交换器

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The goal of next generation reactors is to increase energy efficiency in the production of electricity and provide high-temperature heat for industrial processes. The efficient transfer of energy for industrial applications depends on the ability to incorporate effective heat exchangers between the nuclear heat transport system and the industrial process. The need for efficiency, compactness, and safety challenge the boundaries of existing heat exchanger technology. Various studies have been performed in attempts to update the secondary heat exchanger that is downstream of the primary heat exchanger, mostly because its performance is strongly tied to the ability to employ more efficient industrial processes. Modern compact heat exchangers can provide high compactness, a measure of the ratio of surface area-to-volume of a heat exchange. The microchannel heat exchanger studied here is a plate-type, robust heat exchanger that combines compactness, low pressure drop, high effectiveness, and the ability to operate with a very large pressure differential between hot and cold sides. The plates are etched and thereafter joined by diffusion welding, resulting in extremely strong all-metal heat exchanger cores. After bonding, any number of core blocks can be welded together to provide the required flow capacity. This study explores the microchannel heat exchanger and draws conclusions about diffusion welding/bonding for joining heat exchanger plates, with both experimental and computational modeling, along with existing challenges and gaps. Also, presented is a thermal design method for determining overall design specifications for a microchannel printed circuit heat exchanger for both supercritical (24 MPa) and subcritical (17 MPa) Rankine power cycles.
机译:下一代反应堆的目标是提高电力生产中的能源效率,并为工业过程提供高温热量。用于工业应用的能量的有效传递取决于在核热传输系统和工业过程之间结合有效热交换器的能力。对效率,紧凑性和安全性的需求挑战了现有热交换器技术的边界。为了更新位于一级热交换器下游的二级热交换器,已经进行了各种研究,这主要是因为其性能与采用更有效的工业过程的能力紧密相关。现代紧凑型热交换器可以提供高的紧凑性,这是热交换的表面积与体积之比的度量。本文研究的微通道换热器是一种板式坚固的换热器,具有紧凑,低压降,高效率以及在热侧和冷侧之间的压差非常大的情况下运行的能力。蚀刻板,然后通过扩散焊接将其连接起来,从而形成非常坚固的全金属热交换器芯。粘接后,可以将任意数量的铁心块焊接在一起以提供所需的流量。这项研究探索了微通道换热器,并通过实验和计算模型以及现有的挑战和差距,得出了用于连接换热器板的扩散焊接/粘接的结论。此外,提出了一种热设计方法,用于确定超通道(24 MPa)和亚临界(17 MPa)兰金功率循环的微通道印刷电路换热器的总体设计规格。

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