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Power factor correction capacitors; essentials and cautions

机译:功率因数校正电容器;要点和注意事项

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In electrical installations with a low power factor, significant cost savings can be made through the application of power factor correction. These savings are achieved largely due to the way electrical utilities bill their customers. Improvement of power factor can reduce power costs, release electrical capacity of the distribution system, raise the voltage level, and reduce the system losses. Using shunt capacitor banks for power factor correction (PFC) is a very well established approach. However, there are cautions and difficulties associated with using capacitors. When sizing and locating capacitors for PFC, many designers tend to base their calculations on maximizing the revenue from such installation by minimizing insulation cost and maximizing the energy savings. Fewer emphases are usually given to the potential adverse affects caused by interaction phenomena between PFC and some power system elements. Among the most common and potentially harmful phenomenon is the harmonic amplification that can result the presence of a resonance in the power system close to the frequency of a nearby harmonic source. This paper focuses on those phenomena "other side of PFC" that can cause significant damage and disruption to a given power system. The scope of the paper includes an outline on some available mathematical tools to analyze these phenomena and apply them on a study of an industrial power system.
机译:在低功率因数的电气安装中,通过应用功率因数校正可以节省大量成本。这些节省的实现很大程度上归功于电力公司向客户收费的方式。功率因数的提高可以降低电费,释放配电系统的电容量,提高电压水平并减少系统损耗。使用并联电容器组进行功率因数校正(PFC)是一种非常完善的方法。但是,使用电容器存在一些注意事项和困难。在为PFC电容器确定尺寸和位置时,许多设计人员往往将其计算的基础是通过最大限度地减少绝缘成本和最大限度地节省能源,从而从这种安装中获得最大收益。通常较少考虑由PFC与某些电力系统元件之间的相互作用现象引起的潜在不利影响。谐波放大是最常见且潜在有害的现象之一,它可能导致电力系统中附近附近谐波源的频率出现谐振。本文着重于“ PFC的另一面”可能对给定电源系统造成重大损害和破坏的现象。本文的范围包括概述了一些可用的数学工具来分析这些现象并将其应用于工业电力系统的研究中。

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