Fu Yang, Hu Liang, Ruan Xiaodong, Fu Xin
The State Key Laboratory of Fluid Power Transmission and Control, Zhejiang University, Hangzhou, China.
Artif Organs. 2015 Apr;39(4):378-87. doi: 10.1111/aor.12384. Epub 2014 Oct 28.
This article presents a coil-coupling-based transcutaneous energy transmission system (TETS) for wirelessly powering an implanted artificial heart. Keeping high efficiency is especially important for TETS, which is usually difficult due to transmission impedance changes in practice, which are commonly caused by power requirement variation for different body movements and coil-couple malposition accompanying skin peristalsis. The TETS introduced in this article is designed based on a class-E power amplifier (E-PA), of which efficiency is over 95% when its load is kept in a certain range. A resonance matching and impedance compressing functions coupled network based on parallel-series capacitors is proposed in the design, to enhance the energy transmission efficiency and capacity of the coil-couple through resonating, and meanwhile compress the changing range of the transmission impedance to meet the load requirements of the E-PA and thus keep the high efficiency of TETS. An analytical model of the designed TETS is built to analyze the effect of the network and also provide bases for following parameters determination. Then, according algorithms are provided to determine the optimal parameters required in the TETS for good performance both in resonance matching and impedance compressing. The design is tested by a series of experiments, which validate that the TETS can transmit a wide range of power with a total efficiency of at least 70% and commonly beyond 80%, even when the coil-couple is seriously malpositioned. The design methodology proposed in this article can be applied to any existing TETS based on E-PA to improve their performance in actual applications.
本文介绍了一种基于线圈耦合的经皮能量传输系统(TETS),用于为植入式人工心脏无线供电。对于TETS而言,保持高效率尤为重要,而在实际中这通常很困难,因为传输阻抗会发生变化,这通常是由不同身体动作的功率需求变化以及伴随皮肤蠕动的线圈耦合位置不当所导致的。本文介绍的TETS是基于E类功率放大器(E-PA)设计的,当负载保持在一定范围内时,其效率超过95%。在设计中提出了一种基于并联 - 串联电容器的谐振匹配和阻抗压缩功能耦合网络,以通过谐振提高线圈耦合的能量传输效率和容量,同时压缩传输阻抗的变化范围,以满足E-PA的负载要求,从而保持TETS的高效率。建立了所设计TETS的分析模型,以分析该网络的效果,并为后续参数确定提供依据。然后,提供了相应算法来确定TETS中实现良好谐振匹配和阻抗压缩性能所需的最佳参数。通过一系列实验对该设计进行了测试,实验验证了即使线圈耦合严重错位,TETS仍能在至少70%且通常超过80%的总效率下传输宽范围的功率。本文提出的设计方法可应用于任何现有的基于E-PA的TETS,以提高其在实际应用中的性能。