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FPGA Based Active Power Filter for Harmonics Mitigation

机译:基于FPGA的谐波抑制有源功率滤波器

摘要

The application of power electronics devices such as arc furnaces, adjustable speed drives, computer power supplies etc. are some typical non-linear characteristic loads used in most of the industrial applications and are increasing rapidly due to technical improvements of semiconductor devices, digital controller and flexibility in controlling the power usage. The use of the above power electronic devices in power distribution system gives rise toudharmonics and reactive power disturbances. The harmonics and reactive power cause a number of undesirable effects like heating, equipment damage and ElectromagneticudInterference effects in the power system. The conventional method to mitigate the harmonics and reactive power compensation is by using passive LC filters but this method has drawbacks like large size, resonance problem and fixed compensation behaviour etc., so this solution becomes ineffective [7]. Subsequently, the active power filter (APF) comes in to the picture, which gives promising solution to compensate for the above adverse effects ofudharmonics and reactive power simultaneously by using suitable control algorithms. Different APF topology has proposed by many authors, such as series, shunt and hybrid type and these may be based on current source or voltage source. Series APF is used to compensate theudvoltage harmonics and shunt type for current harmonics. As non-linear loads are injecting current harmonics to the power system, the suitable choice to eliminate current harmonics and reactive power is voltage source shunt APF. To extract the fundamental component of source current synchronous reference frame (SRF) theory [12] is suitable because of its easy mathematical calculation compared to p-q (Instantaneous theory) control algorithm. Further,udswitching signals to drive the VSI of the APF two popular control strategies namely hysteresis current controller (HCC) and adaptive hysteresis current controller (Adaptive-udHCC) are used. Also fuzzy logic controller is used generate the reference current and maintain the DC side capacitor voltage almost constant. A comparative study of theudperformances of two current control strategies HCC and Adaptive-HCC is carried out in this thesis and it has been observed from simulation results that AHCC exhibits superiorudperformance compared to the HCC. These current controllers have some disadvantages such as high cost, slow response, and large size etc., during real-time implementation. But byudusing digital controller one can avail the advantages like reconfigurable hardware designs, low cost developments, selection of bit width according to applications etc. In this thesis, a PI current control algorithm together with a hysteresis current controller is written in VHDL code and then is implemented using FPGA platform.
机译:电力电子设备(例如电弧炉,可调速驱动器,计算机电源等)的应用是大多数工业应用中使用的一些典型的非线性特性负载,并且由于半导体设备,数字控制器和驱动器的技术改进而迅速增加。灵活控制电源使用情况。在配电系统中使用上述电力电子设备会引起谐波和无功干扰。谐波和无功功率会在电源系统中引起许多不良影响,例如发热,设备损坏和电磁干扰。减轻谐波和无功补偿的常规方法是使用无源LC滤波器,但这种方法具有体积大,谐振问题和固定补偿行为等缺点,因此该解决方案变得无效[7]。随后,有源功率滤波器(APF)出现在图中,这提供了一种有前途的解决方案,可以通过使用合适的控制算法来同时补偿谐波和无功功率的上述不利影响。许多作者提出了不同的APF拓扑,例如串联,并联和混合类型,这些拓扑可能基于电流源或电压源。 APF系列用于补偿 udvoltage谐波和分流类型的电流谐波。由于非线性负载正在向电源系统注入电流谐波,因此消除电流谐波和无功功率的合适选择是电压源并联APF。提取源电流同步参考框架(SRF)理论的基本成分[12]是合适的,因为与p-q(瞬时理论)控制算法相比,它的数学计算简单。此外,使用 udswitching信号来驱动APF的VSI,这是两种流行的控制策略,即磁滞电流控制器(HCC)和自适应磁滞电流控制器(Adaptive- udHCC)。此外,还使用模糊逻辑控制器生成参考电流并保持DC侧电容器的电压几乎恒定。本文对两种当前控制策略HCC和Adaptive-HCC的性能进行了比较研究,从仿真结果可以看出,AHCC的性能优于HCC。这些电流控制器在实时实现期间具有诸如高成本,响应慢和尺寸大等缺点。但是通过数字控制器的使用,人们可以利用诸如可重配置硬件设计,低成本开发,根据应用选择位宽等优点。在本文中,用VHDL代码编写了PI电流控制算法和迟滞电流控制器,然后使用FPGA平台实现。

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    Prusty Smruti;

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  • 年度 2011
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