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Analysis and design of inductive wireless power transfer link for feedback-less power delivery to enclosed compartment

机译:封闭式盒的反馈较少电源输送的电感无线电力传输链路分析与设计

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The paper presents analytical investigation and hands-on design of inductive wireless power transfer link for a through-glass AC power delivery system into enclosed compartment such as industrial glove box or vehicle cabin. The system is fed from AC grid and creates a standard AC outlet within the enclosed compartment, capable of supplying loads of up to 1 kW. The system consists of three (namely, AC/DC, DC/DC and DC/AC) conversion stages, with the former and the latter realized by standard off-the-shelf units. The intermediate DC-DC power conversion stage, which is the paper focus, is realized by a from-scratch-built inductive wireless power transfer link, operating in load-independent voltage output regime without any feedback. It was recently shown that the output voltage of such a system, even when operating at load-independent frequency, remains influenced by the load due to practical issues. As a result, the output voltage resides within a certain range rather than remains constant, obtaining minimum/maximum values under rated loado-load conditions, respectively. Since coils separating glass width typically possesses some finite uncertainty, values of both coupling coefficient and coils self-inductances may be different than nominal (design) ones and hence the output voltage would drift from its nominal range. Hence, due to the fact that upper and lower bounds of an inductive wireless power transfer link output voltage range are limited by DC link capacitor and DC/AC power stage constraints, tolerated glass width uncertainty is obtained in the paper. Moreover, compensating capacitors pair symmetrizing uncertainty tolerance of the inductive wireless power transfer link is also revealed. Simulations and experiments based on 400 V, 1 kW-rated inductive wireless power transfer link are presented to validate the analysis.
机译:本文介绍了一个分析调查和实践电感无线电力传输链路的辅助无线电力传递系统,进入封闭隔室,如工业手套箱或车厢。该系统由AC网格馈送,并在封闭的隔间内产生标准的AC出口,能够提供高达1 kW的负载。该系统由三(即,AC / DC,DC / DC和DC / AC)转换阶段组成,前者和后者通过标准离心单位实现。作为纸张焦点的中间DC-DC电力转换级通过从划伤构建的电感无线电力传输链路实现,在没有任何反馈的加载无关的电压输出状态下操作。最近表明,这种系统的输出电压,即使在独立于负载无关的频率下操作,由于实际问题,仍然受到负荷的影响。结果,输出电压在一定范围内而不是保持恒定,分别获得额定负载/无负载条件下的最小/最大值。由于线圈分离玻璃宽度通常具有一些有限的不确定度,因此耦合系数和线圈的值自电感可以与标称(设计)不同,因此输出电压将从其标称范围漂移。因此,由于感应无线电力传输链路输出电压范围的上限和下限由DC链路电容和DC / AC功率级约束受到限制,纸张中获得了容忍的玻璃宽度不确定性。此外,还揭示了补偿电容对对称的感应无线电力传输链路的不确定性公差。提出了基于400 V,1 kW级电感无线电力传输链接的仿真和实验,以验证分析。

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