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Performance improvement of a double pipe heat exchanger proposed in a small-scale CAES system: An innovative design

机译:小型CAES系统中提出的双管热交换器的性能改进:创新设计

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Compressed air energy storage (CAES) is a hopeful technology to overcome the intermittency of renewable energy systems and meet the high peak load demand. The objective of this study is to propose a double pipe heat exchanger (DPHX) working with CuO/water nanofluid in order to cool the compressed air before cavern in a small-scale CAES system. A new design of DPHX by considering different internal tube geometry (nine configurations) is proposed. To achieve these targets, a transient model for simulating the technical demeanor of the CAES system is developed. After simulating the behavior of the CAES system, DPHX is modeled by computational fluid dynamics (CFD) to evaluate the outcome of nanofluid as well as geometry design on the DPHX performance. The pressure drop is unchanged for all finned tube at higher Reynolds numbers. The numerical analysis through mathematical modeling of the charging process of the cavern denotes the effect of length and mass flow rate of the secondary fluid in the DPHX. The results illustrate that by enhancing the mass flow of the secondary fluid, the cavern temperature declines. The pressure inside the cavern has a small dependence on its temperature. The cavern pressure is invariant by increasing the secondary fluid flow. For proposed DPHX, the convective heat transfer coefficient increased up to 22% for cold fluid considering tube with four fins (air/nanofluid + finned tube (w = 3.5 mm and H = 1.0 mm)) and compared to the smooth tube. In addition, around 17% enhancement in convective heat transfer coefficient was achieved using tube with eight fins and with air/nanofluid as the working fluid (case with w = 3.5 mm and H = 1.0 mm), compared to tube with four fins. This shows the capability of the proposed finned tube along with the utilization of the nanofluid to increase the heat exchanger performance.
机译:压缩空气储能(CAES)是一种克服可再生能源系统间歇性并满足高峰负荷需求的充用技术。本研究的目的是提出使用CuO /水纳米流体的双管热交换器(DPHX),以便在小型CAES系统中冷却在洞穴之前的压缩空气。提出了通过考虑不同的内管几何形状(九种配置)的新设计。为了实现这些目标,开发了一种用于模拟CAES系统的技术举措的瞬态模型。在模拟CAES系统的行为之后,DPHX通过计算流体动力学(CFD)进行建模,以评估纳米流体的结果以及对DPHX性能的几何设计。对于较高雷诺数的所有翅片管,压降不变。通过洞穴的充电过程的数学建模的数值分析表示DPHx中的二次流体的长度和质量流速的影响。结果说明,通过增强二次流体的质量流量,腔温度下降。洞穴内的压力对其温度具有很小的依赖性。通过增加二次流体流动,洞穴压力是不变的。对于所提出的DPHx,考虑用四个翅片的管(空气/纳米流体+翅片管(W = 3.5mm和H = 1.0mm))并与光滑管相比,对流传热系数增加高达22%的冷液增加到22%。此外,使用带有八个翅片的管和空气/纳米流体作为工作流体(具有W = 3.5mm和H = 1.0mm)的管,实现了约17%的增强,与带有四个翅片的管相比。这显示了所提出的翅片管的能力以及利用纳米流体以增加热交换器性能。

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