Development of a boost-inverter converter under electromagnetic compatibility stress equipping a photovoltaic generator

S. Bechekir, A. Zeghoudi, D. Ould-Abdeslam, M. Brahami, H. Slimani, A. Bendaoud
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Abstract

Introduction. Static converters are among the most widely used equipment in several applications, for example, electric power transmission, motor speed variation, photovoltaic panels, which constitute the electronic components. The design of a power electronics device is done without any real means of predicting electromagnetic disturbances during the product development phase. This case-by-case development process is repeated until a solution is found that best respects all the electromagnetic compatibility constraints. The purpose is the development of a boost-inverter converter under electromagnetic compatibility constraints. The improvements made to the inverter are mainly in the control, the choice of power switches and the electromagnetic compatibility solutions brought to the device. The quality of the wave is improved by acting on the type of control and the choice of switches. Methods. In the first time, we have highlighted a comparison between two most frequently used power components (MOSFET and IGBT) in the inverter and the boost by simulation using ISIS and LT-spice softwares. The sinusoidal voltage with modulation circuit is greatly simplified by the use of the PIC16F876A microcontroller. In a second step, we validate the obtained results with experimental measurements. We start with the boost, then the inverter. In addition, the circuits made are housed in boxes to avoid accidental contact for people. The equipment is designed to isolate the load from the power supply in case of: over voltages, under voltages, high and low battery level and short circuits. Results. All the simulations were performed using the ISIS and LT-spice softwares. The obtained results are validated by experimental measurements performed in the ICEPS Laboratory at the University of Sidi Bel-Abbes in Algeria. The realization of a single-phase inverter with a pulse width modulation control, associated with a boost chopper and the waveforms of the current and voltage across each static converter its opening are presented. The sources of disturbances in power devices are at the origin of the temporal and frequency characteristics of the signals coming from the hot spots of the power switches and the resonances created during the switching of these elements.
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搭载光伏发电机组的电磁兼容应力升压逆变器的研制
介绍。静态变流器是在若干应用中应用最广泛的设备之一,例如,电力传输,电机变速,光伏板,它们构成了电子元件。电力电子器件的设计在产品开发阶段没有任何实际的电磁干扰预测手段。这种逐个案例的开发过程不断重复,直到找到最符合所有电磁兼容性约束的解决方案。目的是开发一种电磁兼容约束下的升压逆变变换器。对逆变器的改进主要体现在控制、电源开关的选择以及为设备带来的电磁兼容性解决方案上。通过控制类型和开关的选择,提高了波的质量。方法。在第一次,我们强调了逆变器中两个最常用的功率元件(MOSFET和IGBT)和升压之间的比较,通过使用ISIS和LT-spice软件进行仿真。采用PIC16F876A单片机,大大简化了正弦电压调制电路。在第二步,我们用实验测量验证得到的结果。我们从升压器开始,然后是逆变器。此外,制造的电路被装在盒子里,以避免人们意外接触。该设备设计用于在以下情况下将负载与电源隔离:过压、欠压、高、低电池电量和短路。结果。所有模拟均使用ISIS和LT-spice软件进行。在阿尔及利亚Sidi Bel-Abbes大学的ICEPS实验室进行的实验测量验证了所获得的结果。介绍了一种脉冲宽度调制控制的单相逆变器的实现,并结合升压斩波器和每个静态变换器的电流和电压波形。功率器件中干扰的来源是来自功率开关热点的信号的时间和频率特性的起源,以及这些元件在开关过程中产生的共振。
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