Centre for Electromagnetic and Lightning Protection Research (CELP), Advanced Lightning, Power and Energy Research Centre, Faculty of Engineering, Universiti Putra Malaysia, UPM, Serdang, Selangor, Malaysia.
Faculty of Engineering, Universiti Pertahanan Nasional Malaysia, UPNM, Kem Sungai Besi, Kuala Lumpur, Malaysia.
PLoS One. 2019 Jul 11;14(7):e0219326. doi: 10.1371/journal.pone.0219326. eCollection 2019.
The Sustainable Energy Development Authority of Malaysia (SEDA) regularly receives complaints about damaged components and distribution boards of PV systems due to lightning strikes. Permanent and momentary interruptions of distribution circuits may also occur from the disturbance. In this paper, a solar PV Rooftop system (3.91 kWp) provided by SEDA was modelled in the PSCAD/EMTDC. The Heidler function was used as a lightning current waveform model to analyse the transient current and voltage at two different points susceptible to the influence of lightning events such as different lightning current wave shape, standard lightning current and non-standard lightning current. This study examines the effect on the system components when lightning directly strikes at two different points of the installation. The two points lie between the inverter and the solar PV array and between inverter and grid. Exceptionally high current and voltage due to the direct lightning strike on a certain point of a PV Rooftop system was also studied. The result of this case study is observed with and without the inclusion of surge protective devices (SPDs). The parameters used were 31 kA of peak current, 10 metres cable length and lightning impulse current wave shape of 8/20μs. The high current and voltage at P1 striking point were 31 kA and 2397 kV, respectively. As for the AC part, the current and voltage values were found to be 5.97 kA and 5392 kV, respectively.Therefore, SPDs with suitable rating provided by SEDA were deployed. Results showed that high transient current voltage is expected to clamp sharply at the values of 1.915 kV and 0 A at the P1 striking point. As for the AC part, the current and voltage values were found to be 0 kA and 0.751 V, respectively. Varying lightning impulse current wave shapes at striking point P2 showed that the highest voltage was obtained at waveshape 10/350 μs at 11277 kV followed by wave shapes of 2/70 μs, 8/20 μs and 0.7/6 μs. The high value of transient voltage was clamped at a lower level of 2.029 kV. Different lightning amplitudes were also applied, ranging from 2-200 kA selected based on the CIGRE distribution. It showed that the current and voltage at P1 and P2 were directly proportional. Therefore, the SPD will be designed at an acceptable rating and proper position of SPD installation at solar PV Rooftop will be proposed. The results obtained in this study can then be utilised to appropriately assign a SPD to protect the PV systems that are connected to the grid. Installing SPDs without considering the needs of lightning protection zones would expose the expensive equipment to potential damage even though the proper energy coordination of SPDs is in place. As such, the simulation results provide a basis for controlling the impacts of direct lightning strikes on electrical equipment and power grids and thus justify SPD coordination to ensure the reliability of the system.
马来西亚可持续能源发展局(SEDA)经常收到关于光伏系统组件和配电盘因雷击而损坏的投诉。配电电路也可能因干扰而出现永久和瞬时中断。本文使用 PSCAD/EMTDC 对 SEDA 提供的太阳能光伏屋顶系统(3.91kWp)进行建模。Heidler 函数用作雷击电流波形模型,以分析两个易受雷击事件影响的不同点的瞬态电流和电压,例如不同的雷击电流波形、标准雷击电流和非标准雷击电流。本研究研究了当雷击直接发生在安装的两个不同点时对系统组件的影响。这两点位于逆变器和太阳能光伏阵列之间,以及逆变器和电网之间。还研究了由于光伏屋顶系统某一特定点的直接雷击而产生的异常高电流和电压。这项案例研究的结果是在包括和不包括浪涌保护装置(SPD)的情况下观察到的。使用的参数为 31kA 的峰值电流、10 米的电缆长度和 8/20μs 的雷击冲击电流波形。P1 击中点的高电流和电压分别为 31kA 和 2397kV。对于交流部分,电流和电压值分别为 5.97kA 和 5392kV。因此,部署了 SEDA 提供的具有适当额定值的 SPD。结果表明,高瞬态电流电压预计将在 P1 击中点急剧钳位在 1.915kV 和 0A 的值。对于交流部分,电流和电压值分别为 0kA 和 0.751V。在 P2 击中点的不同雷击冲击电流波形表明,在 11277kV 时获得了最高电压,波形为 10/350μs,其次是 2/70μs、8/20μs 和 0.7/6μs。瞬态电压的高值被钳位在较低的 2.029kV 水平。还应用了不同的雷击幅度,范围从 2-200kA,基于 CIGRE 分布选择。结果表明,P1 和 P2 点的电流和电压成正比。因此,将根据可接受的额定值设计 SPD,并提出在太阳能光伏屋顶上安装 SPD 的适当位置。本研究获得的结果可用于为连接到电网的光伏系统适当分配 SPD。如果不考虑雷电保护区的需求而安装 SPD,则即使适当协调了 SPD 的能量,昂贵的设备也可能会受到潜在损坏。因此,模拟结果为控制直接雷击对电气设备和电网的影响提供了依据,从而证明 SPD 协调可确保系统的可靠性。