scholarly journals Large-Scale Multiantenna Multisine Wireless Power Transfer

2017 ◽  
Vol 65 (21) ◽  
pp. 5812-5827 ◽  
Author(s):  
Yang Huang ◽  
Bruno Clerckx
Materials ◽  
2021 ◽  
Vol 14 (18) ◽  
pp. 5455
Author(s):  
Jérôme Leveneur ◽  
William J. Trompetter ◽  
Shen V. Chong ◽  
Ben Rumsey ◽  
Vedran Jovic ◽  
...  

Ironsand is an abundant and inexpensive magnetic mineral resource. However, the magnetic properties of unprocessed ironsand are often inadequate for any practical applications. In this work, the applicability of ironsand for use as a component in a soft magnetic composite for large-scale inductive power transfer applications was investigated. After magnetic separation, the chemical, structural and magnetic properties of ironsand sourced from different locations were compared. Differences observed in the DC magnetic properties were consistent with changes in the chemical compositions obtained from X-ray Absorption Near-Edge Spectroscopy (XANES), which suggests varying the titanohematite to titanomagnetite content. Increased content in titanomagnetite and magnetic permeability correlated well with the total Fe content in the materials. The best-performing ironsand with the highest permeability and lowest core losses was used alongside Mn,Zn-Ferrite particles (ranging from ∼100 μm to 2 mm) to fabricate toroid cores with varying magnetic material loading. It was shown that ironsand can be used to replace up to 15 wt.% of the magnetic materials with minimal impact on the composite magnetic performance, thus reducing the cost. Ironsand was also used as a supporting material in a single-rail wireless power transfer system, effectively increasing the power transfer, demonstrating potential applications to reduce flux leakage.


2016 ◽  
Vol 64 (1) ◽  
pp. 329-342 ◽  
Author(s):  
Yuanwei Liu ◽  
Lifeng Wang ◽  
Syed Ali Raza Zaidi ◽  
Maged Elkashlan ◽  
Trung Q. Duong

2016 ◽  
Vol 9 (5) ◽  
pp. 977-983 ◽  
Author(s):  
Zhanyu Kang ◽  
Xianqi Lin ◽  
Cong Tang ◽  
Peng Mei ◽  
Wangmao Liu ◽  
...  

In this paper, a 2.45-GHz wideband harmonic rejection rectenna for wireless power transfer is proposed. The rectenna comprises a microstrip-fed circular ring slot antenna (CRSA) and a series-parallel rectifier (SPR). A compact micro strip resonant cell is inserted into the CRSA so that the harmonic suppression over a wide bandwidth (3–8 GHz) can be obtained. The radio-frequency (RF)–DC conversion efficiency of the SPR is improved effectively by loading a proper compensating inductance, especially under the low input power levels. Furthermore, the proposed rectenna can easily achieve large-scale rectenna arrays using its simple structure. The adopted rectenna fabricated on a low cost Taconic RF-35 substrate has been measured. By up to 3rd-order harmonic rejection, the efficiency of the rectenna can achieve 70.2% with the optimum load resistance 1 kΩ. Good agreement among the calculated, simulated, and measured rectenna is observed.


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