An Advanced MPPT Scheme for PV Systems Application with Less Output Ripple Magnitude of the Boost Converter

IF 2.1 4区 工程技术 Q3 CHEMISTRY, PHYSICAL International Journal of Photoenergy Pub Date : 2022-09-24 DOI:10.1155/2022/2133294
Abdelkhalek Chellakhi, S. El Beid, Y. Abouelmahjoub
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引用次数: 2

Abstract

The purpose of this paper is to enhance the performance and tracking efficiency of solar photovoltaic systems. This aim can be achieved by operating the photovoltaic array at its optimum power and reducing the output ripple problem of DC-DC converters that affect and stress sensible electronic loads. In view of that, an advanced maximum power point (MPP) tracking (MPPT) scheme, which can guarantee zero oscillation tracking of the accessible MPP and less ripple magnitude on the output side of the DC-DC boost converter, is used. Various simulations are carried out under three conditions of solar irradiance variation, namely, standard test conditions (STC), rapid, and Sin scenarios, using the MATLAB/Simulink® environment, to assess and benchmark the robustness of the tracking of the new MPPT scheme over the celebrated Increment of Conductance (INC) MPPT scheme. Based on the simulation results, the proposed scheme can significantly improve tracking accuracy and reduce the magnitude of ripples on both sides of the boost converter compared to the INC scheme. Certainly, the proposed scheme can provide a shorter time response (0.011 seconds) to locate and track the expected MPP, which is 2.55 times less than that of the INC scheme; a zero power magnitude oscillation instead of 15.9 watts of the INC scheme; and six-time minimization of the magnitude of output voltage ripples compared to the INC scheme. Furthermore, the suggested MPPT scheme has the better tracking efficiency in all scenarios; 99.86%, 99.60%, and 99.62% in the STC, rapid, and Sin scenarios, respectively, with an average value of 99.69% compared to the INC MPPT scheme, which has 94.23%, 95.28%, and 97.87% in the STC, rapid, and Sin scenarios, respectively, with a moderate average tracking efficiency of 95.79%. Finally, the accuracy and tracking performance of the proposed MPPT scheme are verified by real-time examination using the RT-LAB simulator. According to the results obtained, the proposed scheme provides the highest tracking efficiency of 99.80% and 97.77% under the STC and sudden insolation change scenarios, respectively, compared to the INC scheme, which shows, respectively, 97.8% and 96.5% under both scenarios.
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升压变换器输出纹波幅度较小的光伏系统MPPT改进方案
本文的目的是提高太阳能光伏系统的性能和跟踪效率。这一目标可以通过以最佳功率操作光伏阵列并减少DC-DC转换器的输出纹波问题来实现,该问题会影响和应力敏感的电子负载。有鉴于此,使用了先进的最大功率点(MPP)跟踪(MPPT)方案,该方案可以保证可访问的MPP的零振荡跟踪和DC-DC升压转换器的输出侧上的较小纹波幅度。在太阳辐照度变化的三种条件下,即标准测试条件(STC)、快速和正弦场景下,使用MATLAB/Simulink®环境进行了各种模拟,以评估和基准新MPPT方案相对于著名的电导增量(INC)MPPT方案的跟踪稳健性。基于仿真结果,与INC方案相比,该方案可以显著提高跟踪精度,降低升压转换器两侧的纹波大小。当然,所提出的方案可以提供更短的时间响应(0.011秒)来定位和跟踪预期的MPP,这比INC方案的时间响应少2.55倍;零功率幅度振荡,而不是INC方案的15.9瓦;以及与INC方案相比输出电压纹波幅度的六倍最小化。此外,所提出的MPPT方案在所有场景中都具有更好的跟踪效率;STC、快速和Sin场景中分别为99.86%、99.60%和99.62%,平均值为99.69%,而INC MPPT方案在STC、迅速和Sin情景中分别为94.23%、95.28%和97.87%,中等平均跟踪效率为95.79%。最后,通过使用RT-LAB模拟器的实时检查,验证了所提出的MPPT方案的准确性和跟踪性能。根据获得的结果,与INC方案相比,所提出的方案在STC和暴晒变化场景下分别提供了99.80%和97.77%的最高跟踪效率,INC方案在这两种场景下分别显示了97.8%和96.5%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.00
自引率
3.10%
发文量
128
审稿时长
3.6 months
期刊介绍: International Journal of Photoenergy is a peer-reviewed, open access journal that publishes original research articles as well as review articles in all areas of photoenergy. The journal consolidates research activities in photochemistry and solar energy utilization into a single and unique forum for discussing and sharing knowledge. The journal covers the following topics and applications: - Photocatalysis - Photostability and Toxicity of Drugs and UV-Photoprotection - Solar Energy - Artificial Light Harvesting Systems - Photomedicine - Photo Nanosystems - Nano Tools for Solar Energy and Photochemistry - Solar Chemistry - Photochromism - Organic Light-Emitting Diodes - PV Systems - Nano Structured Solar Cells
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