无线电力传输采用LC对消

Y. Kawamura, M. Shoyama
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引用次数: 5

摘要

近年来,自2007年MIT引入磁共振技术后,无线电力传输技术的研究备受关注。无线电力传输技术能够灵活舒适地为电力设备供电。然而,采用磁场共振方式的无线电力传输技术存在各种问题。这种方法已经从不同的方向进行了一致的研究。因此,很难理解这种新技术现象的原理。许多研究通常集中在谐振器之间的效率上。此外,内阻与效率之间的关系尚不清楚。此外,在高输出功率下的效率还不是很清楚。实际上,增加一个内阻作为整流器和逆变器损耗的等价物对于效率计算是很重要的。即使无线电力传输效率很高,如果输出额定功率很小,也不适合实际使用。在本研究中,首先详细描述了电磁感应方式在无线电力传输中的缺点。然后,我们指出,即使在很小的耦合系数下,我们也可以利用谐振现象根据LC抵消原理增加传输功率。然后,可以清楚地区分整个系统考虑的总效率与谐振器之间传输效率的差异。在此基础上,推导出了用特性阻抗表示总效率和输出功率的理论公式。最后,将理论结果与实验结果进行了比较,并进行了详细的讨论。
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Wireless power transmission using LC cancellation
In recent years, research on wireless power transmission technologies has been attracting more attention after MIT introduced the magnetic resonance technology in 2007. Wireless power transmission technology enables flexible comfortable supplying energy needs to electric devices. However, the wireless power transmission technologies that use the magnetic field resonance method have various problems. This method has been uniformly investigated from different directions. Therefore, it is difficult to understand the principle for such new technology phenomenon. Much of the research is often focused on the efficiency between resonators. Moreover, the relationship between the internal resistance and efficiency is not clear. Furthermore, the efficiency at high output power is not well understood. Practically, adding an internal resistance as an equivalent of both of rectifier and inverter losses is important for efficiency calculations. Even if the wireless power transmission has high efficiency, it is not suitable for practical use if the output power rating is very small. In this study, at first, the drawbacks of using the electromagnetic induction method for wireless power transmission are described in detail. Then, we indicate that we can increase the transmission power in accordance to the principles of the LC cancellation by using the resonance phenomenon even at a small coupling coefficient. After that, the difference between the overall efficiency considered of entire system and the transmission efficiency between the resonators is clearly distinguished. Then a theoretical formula has been developed for the overall efficiency and the output power in terms of the characteristic impedance. Finally, the theoretical results are compared with the experimental results and discusses in detail.
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