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Research on frequency-temperature compensated sapphire-SrTiO_3 loaded cavity for hydrogen maser

Research on frequency-temperature compensated sapphire-SrTiO_3 loaded cavity for hydrogen maser
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摘要 To obtain frequency-temperature compensation in a sapphire loaded cavity for hydrogen maser, a dielectric named SrTiO3 is employed whose temperature coefficient of permittivity is opposite to that of sapphire. Based on theoretical analysis and computer simulation, a TE011 mode of a sapphire loaded cavity associated with two small rings of SrTiO3 with different thickness is solved, and the useful parameters that influence the temperature coefficient of cavity are calculated. Finally an experiment is brought forward and its results are very close to the computing results. When the thickness of SiTiO3 dielectric is 7 mm and the diameter is 17 mm in configuration b, the temperature coefficient of cavity is decreased from -58.8 kHz/K to -8.2 kHz/K and the quality factor is 40248. To obtain frequency-temperature compensation in a sapphire loaded cavity for hydrogen maser, a dielectric named SrTiO3 is employed whose temperature coefficient of permittivity is opposite to that of sapphire. Based on theoretical analysis and computer simulation, a TE011 mode of a sapphire loaded cavity associated with two small rings of SrTiO3 with different thickness is solved, and the useful parameters that influence the temperature coefficient of cavity are calculated. Finally an experiment is brought forward and its results are very close to the computing results. When the thickness of SiTiO3 dielectric is 7 mm and the diameter is 17 mm in configuration b, the temperature coefficient of cavity is decreased from -58.8 kHz/K to -8.2 kHz/K and the quality factor is 40248.
出处 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2009年第4期711-717,共7页 系统工程与电子技术(英文版)
关键词 atomic hydrogen maser frequency-temperature compensation sapphire loaded cavity temperature coefficient. atomic hydrogen maser, frequency-temperature compensation, sapphire loaded cavity, temperature coefficient.
作者简介 Wang Nuanrang was born in 1980. Now he is a master and engineer of National Key Laboratory of Metrology and Calibration Technology in the Sec- ond Academy of China Aerospace Science & Industry Corp. His research interests include theory of electromagnetic field and hydrogen maser. E-mail: lorious@163.com
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