Harmonic Voltage Measurement Based on Capacitive Equipment Dielectric Equivalent Model and Responding Current

IF 2.7 3区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY Measurement Science and Technology Pub Date : 2024-07-12 DOI:10.1088/1361-6501/ad627f
Lin Du, Feng Hui Feng, Xin Li, Xianjun Shao, Zhi Yang
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Abstract

With the increasing proportion of new energy and the power electronic equipment in the power grid, accurate measurement of harmonic voltage has become increasingly important for power quality monitoring. In order to solve the problem of high-precision measurement of harmonic voltage in the power grid, this manuscript proposes a high-precision harmonic voltage measurement method based on the dielectric equivalent model (DEM) of capacitive equipment and its responding current. Based on DEM, a voltage-current transfer function of the capacitive device is established, and harmonic voltage is reconstructed with the responding current. Considering the dielectric relaxation characteristics of capacitive device other than a pure capacitor model, this manuscript analyzes the fitting performance of different equivalent capacitance models and improves the traditional pure capacitance model to a more suitable DEM for harmonic voltage reconstruction. The DEM parameters of capacitive devices are obtained through the frequency domain spectroscopy (FDS) and intelligent parameter identification algorithms, which improved the measurement accuracy of harmonic voltage and reduced computational complexity. The harmonic voltage testing platform is established to test the simulated high-voltage harmonics and the harmonic voltage of the actual grid voltage. The results show that the proposed harmonic voltage measurement method can meet the high-precision reconstruction of harmonic voltage in the frequency range of 50~2500Hz, and the system testing error with sensors is less than 2%. The testing accuracy is higher than traditional voltage transformers and testing systems based on pure capacitance models.
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基于电容设备介电等效模型和响应电流的谐波电压测量技术
随着新能源和电力电子设备在电网中所占比例的不断增加,谐波电压的精确测量对于电能质量监测变得越来越重要。为了解决电网中谐波电压的高精度测量问题,本手稿提出了一种基于电容式设备的介质等效模型(DEM)及其响应电流的高精度谐波电压测量方法。基于 DEM,建立了电容式设备的电压-电流传递函数,并利用响应电流重建谐波电压。考虑到纯电容器模型以外的电容设备介电弛豫特性,本稿件分析了不同等效电容模型的拟合性能,并将传统的纯电容模型改进为更适合谐波电压重建的 DEM。通过频域光谱(FDS)和智能参数识别算法获得电容器件的 DEM 参数,提高了谐波电压的测量精度,降低了计算复杂度。建立谐波电压测试平台,测试模拟高压谐波和实际电网电压的谐波电压。结果表明,所提出的谐波电压测量方法可满足 50~2500Hz 频率范围内谐波电压的高精度重建,且系统测试与传感器的误差小于 2%。测试精度高于传统的电压互感器和基于纯电容模型的测试系统。
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来源期刊
Measurement Science and Technology
Measurement Science and Technology 工程技术-工程:综合
CiteScore
4.30
自引率
16.70%
发文量
656
审稿时长
4.9 months
期刊介绍: Measurement Science and Technology publishes articles on new measurement techniques and associated instrumentation. Papers that describe experiments must represent an advance in measurement science or measurement technique rather than the application of established experimental technique. Bearing in mind the multidisciplinary nature of the journal, authors must provide an introduction to their work that makes clear the novelty, significance, broader relevance of their work in a measurement context and relevance to the readership of Measurement Science and Technology. All submitted articles should contain consideration of the uncertainty, precision and/or accuracy of the measurements presented. Subject coverage includes the theory, practice and application of measurement in physics, chemistry, engineering and the environmental and life sciences from inception to commercial exploitation. Publications in the journal should emphasize the novelty of reported methods, characterize them and demonstrate their performance using examples or applications.
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