首页> 外文期刊>Sadhana >Coil geometry models for power loss analysis and hybrid inductive link for wireless power transfer applications
【24h】

Coil geometry models for power loss analysis and hybrid inductive link for wireless power transfer applications

机译:用于功率损耗分析的线圈几何模型和用于无线功率传输应用的混合感应链路

获取原文

摘要

This paper presents a hybrid inductive link for Wireless Power Transfer (WPT) applications. Achieving better power transfer efficiency over a relatively wider distance across coils is the prime objective in most of the WPT systems, but often suffers from power loss in the near field area of inductively coupled coils.One of the reasons for this power loss is the pattern of the magnetic field produced by the source coil used in the WPT system. Mostly the nature of magnetic field produced by the source coil is distributed radially over the coil, in which the produced magnetic field is not fully utilized. Achieving better efficiency and load current by reducing power loss is the main driving force of this work. One of the viable methods to reduce the power loss is by increasing the field intensity thereby redirecting the flux lines flow to be directional. With this aim, three coilssuch as solenoid, spiral and conical are designed and simulated to determine the magnetic field strength using Finite Element Method. The conical coil produces the highest self-inductance of 8.63 μH and a field strength of 1.542 Wb with the coil thickness of 3.20 mm. Then, WPT system is demonstrated with the inclusion ofMaximum Power Point Tracking algorithm for improving efficiency. The schematic of flux generation of both in the transmitter and receiver sections are demonstrated and analyzed graphically. The efficiency of both simulation and experimental measurements are matched well with similar progression. The effect of parameters(angle, distance, and load resistance) on the efficiency is explored. The outcomes conclude that the inductive coupling has achieved 73% (average case) power transfer wirelessly over a distance of 5 cm with an input voltage of 5 V and 5 MHz frequency.
机译:本文提出了一种用于无线电力传输(WPT)应用的混合感应链路。大多数WPT系统的主要目标是在相对较宽的线圈间距上实现更好的功率传输效率,但通常会在电感耦合线圈的近场区域遭受功率损耗的困扰。 WPT系统中使用的源线圈产生的磁场强度。通常,由源线圈产生的磁场的性质沿径向分布在线圈上方,其中产生的磁场没有得到充分利用。通过降低功率损耗来获得更好的效率和负载电流是这项工作的主要动力。降低功率损耗的一种可行方法是增加磁场强度,从而使磁通线流重新定向。为此目的,设计并模拟了三个线圈(例如电磁线圈,螺旋线圈和锥形线圈),以使用有限元方法确定磁场强度。锥形线圈产生的自感最大为8.63μH,场强为1.542 Wb,线圈厚度为3.20 mm。然后,结合最大功率点跟踪算法演示了WPT系统,以提高效率。发射器和接收器部分的通量产生示意图均以图形方式演示和分析。模拟和实验测量的效率都以相似的进度很好地匹配。探索了参数(角度,距离和负载电阻)对效率的影响。结果表明,在5 V的输入电压和5 MHz的频率下,感应耦合已在5 cm的距离上实现了73%(平均情况)的无线功率传输。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号