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文章摘要
基于谐振逆变电路的纳米晶材料高频测量系统研究
High-frequency Measurement Method of Nanocrystalline Material Based on Resonant Inverter Circuit
Received:August 03, 2020  Revised:August 03, 2020
DOI:10.19753/j.issn1001-1390.2022.12.021
中文关键词: 高频磁环测量  磁滞回线  推挽谐振电路
英文关键词: high-frequency  magnetic ring  measurement, hysteresis  loop, push-pull  resonance circuit
基金项目:国家自然科学(51677064);国家重点研发计划(2017YFB0903902)
Author NameAffiliationE-mail
Pang Jian* State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources,North China Electric Power University 794094284@qq.com 
Li Lin State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources,North China Electric Power University lilin@ncepu.edu.cn 
Zhang Xiwei State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources,North China Electric Power University 15200892878@163.com 
Ding Jie State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources,North China Electric Power University 2811963939@qq.com 
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中文摘要:
      针对纳米晶材料高频磁滞回线和损耗测量受到仪器带宽和额定功率限制的问题,设计了一种新型高频测量系统。该系统采用直流电源搭配推挽谐振逆变电路代替传统的函数信号发生器加功率放大器,通过调节电路元件以调整谐振频率从而实现1 kHz-10 kHz频段的频率调节,具有传输功率高、效率高、谐振频率连续可调等特点。利用PSCAD仿真软件研究了逆变电路的各项功能。研制了测量系统并实测了10 kHz时纳米晶磁环的磁滞回线和损耗曲线。通过将该测量系统与传统的测量平台进行小容量的模型实测对比,测量系统误差为3.3%,证明了所研制的测量系统具有较高精确度。
英文摘要:
      Aiming at the problem that the high-frequency hysteresis loop and loss measurement of nanocrystalline materials are limited by the bandwidth and rated power of the instrument, a new high-frequency measurement system is designed. The system uses a DC power supply with a push-pull resonant inverter circuit to replace the traditional function signal generator and power amplifier, and adjusts the resonant frequency by adjusting the circuit components to achieve frequency adjustment in the 1 kHz-10 kHz band. Features such as continuously adjustable frequency. Using PSCAD simulation software to study the various functions of the inverter circuit. A measurement system was developed and the hysteresis loop and loss curve of the nanocrystalline magnetic ring at 10 kHz were measured. By comparing the measurement system with the traditional measurement platform for small-capacity model measurement, it is found that the measurement error of the system is 3.3%, which proves that the measurement system developed has high accuracy.
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