期刊文献+

一种宽频率调节的精密OCXO

Wide frequency-regulated precision OCXO
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摘要 在精密标准频率控制仪器中,常常需要既能在宽频率范围调节又能够保持高频率稳定度和低相位噪声的可控晶体振荡器.为了实现宽频率范围调节,不得不采用拉动性好但是稳定度和老化率较差的基频晶体振荡器.虽然基于SC切泛音晶体的高精度恒温控制晶体振荡器(OCXO)显现出非常高的频率稳定度和低老化率,但是它的电压控制频率调节范围很窄,无法在锁相受控的情况下使用.针对更宽的频率调节范围,笔者提出一种新的方法,即通过对温度控制来调节OCXO的频率.所有精密OCXO的良好性能都可以保持下来,同时,原来的10-7量级电压可控频率范围提高到5×10-6量级或者更宽.这样就能够在需要长期稳定锁定的频率源,如星载的原子钟中得到应用,保证了系统稳定优良的指标. When precision standard frequency control devices are used,we always need controllable crystal oscillators that not only can be regulated in a wide frequency range,but also can maintain high frequency stability and low phase noise.In order to realize the wide frequency range,we have to use the crystal oscillator which shows good pull ups,but at the same time poor frequency stabilities and aging.High precision Oven-Controlled Crystal Oscillator(OCXO) based on SC cut overtone crystals can show very high frequency stability and low aging.However,its frequency regulation range by voltage control is not wide. When it is phase locked and controllable,it can not be used.In connection with a wider frequency regulation range,a new method is proposed through the regulation of the control temperature of the OCXO.In this way,all the good performances of the precision OCXO can be kept,and the original 10-7 order voltage-controllable frequency range is improved to 5×10-6 or even wider at the same time.Then it can be used in the frequency source which needs to be stably locked for a long time such as an on-board atomic clock,to ensure the stable and excellent indexes of the system.
出处 《西安电子科技大学学报》 EI CAS CSCD 北大核心 2014年第5期203-206,共4页 Journal of Xidian University
基金 国家自然科学基金资助项目(61201288 10978017) 西安市科技计划资助项目(CXY1351(6)) 中国科学院精密导航定位与定时技术重点实验室基金资助项目(2012PNTT05) 宇航动力学国家重点实验室开放基金资助项目(2013ADL-DW0402)
关键词 恒温控制晶体振荡器 频率稳定度 温度控制 宽频率范围可调 oven-controlled crystal oscillator frequency stability temperature control wide frequency range
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  • 1周渭.相检宽带测频技术[J].仪器仪表学报,1993,14(4):358-362. 被引量:10
  • 2张莹,周渭,梁志荣.基于GPS锁定高稳晶体振荡器技术的研究[J].宇航计测技术,2005,25(1):54-58. 被引量:18
  • 3Zhou W and Li Z Q 2009 China Time and Frequency Symposium Chengdu, China Oct. 21-24, 2009, p310. 被引量:1
  • 4Zhou W, Xuan Z Q and Yu J G 1995 Proc. 1995 IEEE Int. Frequency Control Symposium San lrancisco, USA, May 31-June 2, 1995, p354. 被引量:1
  • 5Wang Z H, Wei Z Y, Teng H, Wang P and Zhang J 2003 Acta Phys. Sin. 52 362 (in Chinese). 被引量:1
  • 6Howe D A and Allan D W 1981 Proc. 35th Annual Frequency Control Symposium Philadelphia, USA, May 27- 29, 1981, p470. 被引量:1
  • 7Zhou W, Zhou H, Fan W J, Wang H, Qian S X and Jiang W N 2008 Proc. 2008 IEEE Int. Frequency Control Symposium Honolulu, USA, May 19-21, 2008, p468. 被引量:1
  • 8Du B Q, Zhou W, Dong S F and Zhou H N 2009 Chin. Phys. Lett. 26 070602. 被引量:1
  • 9Allan D W 1987 IEEE Trans. on Ultrasonics, Ferroelectries and Frequency Control 34 647. 被引量:1
  • 10Zhou W, Zheng S F, Li Z Q, Zhou H and Wang C X 2007 Proc. 2007 IEEE Int. Frequency Control Symposium Geneva, Switzerland, May 29-June 1, p811. 被引量:1

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