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首页> 外文期刊>Ultrasonics, Ferroelectrics and Frequency Control, IEEE Transactions on >A new method to reduce frequency-temperature coefficient of sapphire-loaded cavities for compact hydrogen masers
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A new method to reduce frequency-temperature coefficient of sapphire-loaded cavities for compact hydrogen masers

机译:降低紧凑型氢脉石蓝宝石腔体频率温度系数的新方法

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摘要

To reduce the size and weight of the hydrogen maser atomic clocks, some useful attempts and related research results about sapphire-loaded cylindrical cavities for hydrogen masers were reported by the Beijing Institute of Radio Metrology and Measurement. The fractional frequency stability of the order of 10¿15 over 10 000 seconds can be realized. However, because of a large frequency-temperature coefficient in a single sapphire bulb in the cavity, further improvement of the stability in the compact hydrogen clock was restricted. In this work, we chose several small single-crystal chips of SrTiO3 with a large negative frequency-temperature coefficient to compensate the sapphire microwave cavity. Based on the theoretical calculation, the frequency-temperature coefficient in the TE011 mode of a sapphire cavity associated with several small chips of SrTiO3 can be greatly reduced. A sapphire-loaded cavity and 8 compensated chips of SrTiO3 were prepared, and a combined cavity was simulated by finite element method and measured by experiments. When quality factor was kept above 40 000, the frequency-temperature coefficient can be reduced to about 1/5 of its starting value. The experimental results agree very well with the calculation and simulation. Furthermore, this new method was applied in the compact hydrogen maser. Because of the decrease of temperature frequency shift, the hydrogen maser stability at medium- and long- term averaging time from 1 s to 105 s has an obvious improvement compared with the our previous results.
机译:为了减小氢微波激射原子钟的尺寸和重量,北京无线电计量与测量研究所报道了一些有关蓝宝石负载的氢微波激射腔的有用尝试和相关研究结果。可以实现在10 000秒内10×15量级的分数频率稳定性。然而,由于在腔中的单个蓝宝石灯泡中频率-温度系数较大,因此紧凑型氢钟的稳定性的进一步提高受到限制。在这项工作中,我们选择了几个具有大的负频率温度系数的SrTiO3小单晶芯片来补偿蓝宝石微波腔。根据理论计算,可以大大降低蓝宝石腔中与几个SrTiO3小碎片相关联的TE011模式下的频率温度系数。制备了蓝宝石腔和8片SrTiO3补偿片,并通过有限元法模拟了复合腔,并进行了实验测量。当品质因数保持在40 000以上时,频率温度系数可以降低到其起始值的1/5左右。实验结果与计算和仿真非常吻合。此外,这种新方法还被应用于紧凑型氢气激射器中。由于温度频移的减小,与我们以前的结果相比,中长期平均时间从1 s到105 s的氢maser稳定性有了明显的提高。

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