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Design of a flywheel energy storage system for high current pulsating loads

机译:大电流脉动负载的飞轮储能系统设计

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In today's industrial production (e.g. cars), resistance spot welding with dynamic current control is essential. Besides the ability to control the welding current, the peak power demand at the point of common coupling of these welding systems should be as low and steady as possible, making an energy storage mandatory. Previous investigations showed, that a flywheel energy storage offers significant advantages in terms of cycle stability, volume and efficiency compared to capacitor-based solutions. This contribution describes the topology of a complete welding system including a flywheel storage and its design process. Unlike state-of-the-art systems, the proposed topology incorporates a storage and the ability of dynamic current control. This paper addresses the specific challenges of this application. On the one hand, system dynamics have to be superior to typical flywheel energy storages; on the other hand, the topology has to be compact and efficient. Finally, robustness and simplicity of the system are of great importance to be industry-tailored. Because of the systems complexity, computer based modeling is used to simulate system performance and to optimize relevant parameters such as flywheel size and speed, motor parameters, transformers leakage-inductance, capacity of DC-link capacitors, etc. with respect to the goals stated before. Using different computer-based modeling tools, a simulation of the overall system shows that the proposed topology is practical and meets the specifications regarding size, efficiency and system dynamics. Based on these results, suitable components are selected. A prototype of the last converter stage is built which confirms expectations regarding leg current symmetry, dynamics and switching performance.
机译:在当今的工业生产中(例如汽车),具有动态电流控制的电阻点焊至关重要。除了能够控制焊接电流之外,这些焊接系统的公共耦合点处的峰值功率需求也应尽可能低且稳定,从而必须进行能量存储。先前的研究表明,与基于电容器的解决方案相比,飞轮储能在循环稳定性,体积和效率方面都具有明显的优势。该文稿描述了包括飞轮储存装置的完整焊接系统的拓扑及其设计过程。与最新的系统不同,拟议的拓扑结构具有存储功能和动态电流控制功能。本文解决了此应用程序的特定挑战。一方面,系统动力学必须优于典型的飞轮储能系统。另一方面,拓扑必须紧凑且高效。最后,系统的鲁棒性和简单性对于行业定制至关重要。由于系统的复杂性,基于上述目标,使用基于计算机的建模来模拟系统性能并优化相关参数,例如飞轮尺寸和速度,电机参数,变压器漏感,直流母线电容器的容量等。前。使用不同的基于计算机的建模工具,对整个系统的仿真表明,提出的拓扑是可行的,并且符合有关大小,效率和系统动力学的规范。根据这些结果,选择合适的组件。最后一个转换器阶段的原型得以构建,该原型确认了有关支路电流对称性,动态特性和开关性能​​的期望。

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