High Efficiency Class-F Rectifier Based on Harmonic-Controlled Voltage Doubler With Extended Input Power and Frequency Range

IF 4.9 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE journal of microwaves Pub Date : 2024-11-18 DOI:10.1109/JMW.2024.3491812
Jaemin Shin;Juntaek Oh
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Abstract

This paper presents a highly efficient class-F rectifier based on a harmonic-controlled voltage doubler (HCVD) structure. Previous studies on voltage doubler-based class-F rectifiers, have primarily configured the harmonic termination network only at the RF input port and the DC output port. In this design, the proposed HCVD comprises a voltage doubler and T-shaped harmonic control network (HCN) connected to each diode of the voltage doubler. The T-shaped HCN can independently manipulate the 2nd and 3rd harmonics of the voltage and current across each diode, thus achieving high efficiency even at low input power compared to the input power with maximum efficiency. Since it can also move the input impedance of the HCVD to the load impedance by adjusting the widths of the three transmission lines without additional matching network, the proposed rectifier can achieve high efficiency across a wide input power and frequency range. The proposed rectifier was implemented with a size of 34.7 mm × 29.7 mm. The measurement results also show that it achieves a peak power conversion efficiency (PCE) of 79 % at 27.2 dBm of input power at 2.45 GHz. The measured PCE was maintained over 50% within an input power range of 6.9–30.0 dBm at 2.45 GHz and a frequency range of 1.55–2.75 GHz at 27 dBm of input power.
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基于宽输入功率和宽频率范围的谐波倍压高效率f类整流器
提出了一种基于谐波控制倍压器(HCVD)结构的高效f类整流器。以往对基于倍压器的f类整流器的研究,主要只在射频输入端口和直流输出端口配置谐波终端网络。在本设计中,提出的HCVD包括一个倍压器和连接到倍压器的每个二极管的t形谐波控制网络(HCN)。t形HCN可以独立控制电压和电流的第2次和第3次谐波通过每个二极管,从而实现高效率,即使在低输入功率相比,输入功率最高效率。由于它还可以通过调整三根传输线的宽度将HCVD的输入阻抗移动到负载阻抗上,而无需额外的匹配网络,因此该整流器可以在较宽的输入功率和频率范围内实现高效率。该整流器的尺寸为34.7 mm × 29.7 mm。测量结果还表明,在2.45 GHz频率下,当输入功率为27.2 dBm时,其峰值功率转换效率(PCE)达到79%。在2.45 GHz时,在6.9 ~ 30.0 dBm的输入功率范围内,在27 dBm的输入功率范围内,测量的PCE保持在50%以上。
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CiteScore
10.70
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审稿时长
8 weeks
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Front Cover Table of Contents Front Cover Table of Contents Experimental Validation of Thermoregulatory Modeling for Human Back Exposure at 28 GHz
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