用于胶囊内窥镜的紧凑平面充电器调节三维磁通密度以实现稳定的无线电力传输。

Heng Zhang, Zheng Li, Chi-Kwan Lee
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引用次数: 0

摘要

小型电子设备的无线充电仍然是一个重大挑战,特别是对于需要高性能操作的应用,如可穿戴电子设备和医疗设备。许多紧凑型设备,包括智能手表和胶囊内窥镜,经常受到电池寿命有限和频繁充电的困扰。为了解决这些问题,本文提出了一种在多层印刷电路板上实现的紧凑、平面、全向无线电力发射机。所提出的设计实现了在不同位置和方向上的稳定无线充电,同时保持了便携的外形因素,可以方便地在各种设置中使用。为了减轻平面结构中发射机线圈重叠带来的控制挑战,电流源逆变器与LCCL补偿网络集成在一起。建立了全面的数学模型以提供设计见解,并通过计算机仿真进一步验证了系统的性能。此外,我们提出了一种鲁棒的无线充电算法,在任意空间位置和方向下保持稳定的性能,实验测试表明,平均接收电流波动仅为2.16 mA。此外,在胶囊内窥镜场景中,该系统实现了有效的充电性能,最大传输功率为1904.4 mW,突出了其与当前最先进设计的竞争力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Regulating 3D Magnetic Flux Density for Stable Wireless Power Transfer in a Compact Planar Charger for Capsule Endoscopy.

Wireless charging for small electronic devices remains a significant challenge, especially for applications that demand high-performance operation, such as wearable electronics and medical devices. Many compact devices, including smart-watches and capsule endoscopes, often suffer from limited battery life and frequent recharging requirements. To address these issues, this paper proposes a compact, planar, omnidirectional wireless power transmitter implemented on a multilayer printed circuit board. The proposed design achieves stable wireless charging across varying positions and orientations while maintaining a portable form factor that enables convenient use in diverse settings. To mitigate control challenges arising from overlapping transmitter coils in the planar configuration, a current source inverter is integrated with an LCCL compensation network. Comprehensive mathematical modeling is developed to provide design insights, and the system performance is further validated through computer simulations. In addition, we propose a robust wireless charging algorithm that maintains stable performance under arbitrary spatial positions and orientations, as evidenced by experimental tests demonstrating a mean receiving current fluctuation of only 2.16 mA. Moreover, in capsule endoscopy scenarios, the system achieved an effective charging performance with a maximum transmission power of 1904.4 mW, underscoring its competitiveness with current state-of-the-art designs.

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