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Impact of wind speed on ventilation performance within a container installed with photovoltaic inverter

机译:风速对装有光伏逆变器的集装箱内通风性能的影响

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摘要

PV inverter needs proper ventilation for reducing the heat dissipation of the electronic components. In this work, a container installed with PV inverter is considered with different configurations of cooling channels within the container for ventilation analysis. Typically, high capacity PV inverters are installed inside the container and therefore inverters, are not experiencing external wind effects and it depends on the configuration of cooling channels. In this work, the main cooling channel is located at the top of the inverter; inlet and outlet ventilation holes are located on the side of cross ventilation. They help in analyzing the cooling design, dependent on site specific wind flow direction of a container. Wind speeds and their directions can raise back pressures, which may be high enough to block the cooling air flow inside the channels. Reduction of cooling air flow reduces the fan capacity for dissipating the heat losses. In this study, cooling performance of outdoor container installed with PV inverter has been evaluated by using the Computational Fluid Dynamics (CFD) with two separate commercial packages, ANSYS CFX and Mentor Graphics FloEFD. Full scale size PV inverter prototype model has been used for experimental testing using the facility of the Wind Driven Rain equipment testing of the Toptester Limited (Finland). CFD numerical simulation results have been validated by comparing with the measured/experimental results. Wind flow volume rate results investigations have shown the cooling flow drop consequently with the head wind strength and also it has displayed the axial fan saddle region effect on the volume flow. Both the measurements and CFD results have shown significant turbulence in the inlet vent region of the main cooling channel. (C) 2017 Elsevier Ltd. All rights reserved.
机译:光伏逆变器需要适当的通风以减少电子组件的散热。在这项工作中,考虑将装有PV逆变器的容器在容器内配置不同的冷却通道,以进行通风分析。通常,大容量PV逆变器安装在容器内,因此,逆变器不会受到外部风的影响,这取决于冷却通道的配置。在这项工作中,主冷却通道位于逆变器的顶部。入口和出口通风孔位于交叉通风的一侧。它们有助于分析冷却设计,具体取决于容器的特定位置风向。风速及其方向会增加背压,背压可能会高到足以阻塞通道内的冷却空气流。减少冷却气流会降低风扇的散热能力。在这项研究中,通过使用带有两个单独的商业软件包ANSYS CFX和Mentor Graphics FloEFD的计算流体动力学(CFD)评估了装有PV逆变器的室外集装箱的冷却性能。已使用Toptester Limited(芬兰)的风雨设备测试设施将全尺寸PV逆变器原型模型用于实验测试。通过与测量/实验结果进行比较,已验证了CFD数值模拟结果。风量率结果研究表明,冷却风量随压头风强度而下降,并且还显示了轴流风扇鞍形区域对风量的影响。测量结果和CFD结果均显示出主冷却通道的进气孔区域中存在明显的湍流。 (C)2017 Elsevier Ltd.保留所有权利。

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