This paper introduces the structure and principle of a surface-mount high-precision temperature compensation crystal oscillator,and specifically describes the reliability design of a quartz-crystal resonator used insi...This paper introduces the structure and principle of a surface-mount high-precision temperature compensation crystal oscillator,and specifically describes the reliability design of a quartz-crystal resonator used inside the surface-mount temperature compensation crystal oscillator,the reliability design of surface-mount ceramic base and the reliability design of hybrid micro-assembly.Finally,the thermal and mechanical simulation results and the experimental verification of this surface-mount temperature compensation crystal oscillator are provided,which prove that this crystal oscillator has high reliability.展开更多
Combining oven controlled technique,digital compensation,high-resolution frequency difference measurement and self-calibration technique,a new design method of precise oven controlled crystal oscillator(OCXO) is pro...Combining oven controlled technique,digital compensation,high-resolution frequency difference measurement and self-calibration technique,a new design method of precise oven controlled crystal oscillator(OCXO) is proposed.Fine compensation is made in the vicinity of the crystal temperature inflection point by using the non-real-time temperature compensation strategy,and self-calibration system is integrated in the crystal.The method improves the digital compensated phase noise,simplifies the traditional OCXO development system,reduces the cost and shortens the developing cycle.Experiment results show that with a standard reference signal and self-calibration updated data,the oscillator can work stable and achieve its best performence.The performance index of crystal oscillator had an improvement with one to two orders of magnitude on the basis of original technical index.The method is widely used in the improvement of high-end crystal oscillator and atomic clock.展开更多
介绍了一款基于0.4μm Bi CMOS工艺应用于温度补偿晶体振荡器的高性能温度传感器的设计。该温度传感器利用基极-发射极电压(VBE)减去与绝对温度成正比(PTAT)电流在电阻上的压降的原理,产生了与温度成线性的输出电压。采用包含两个串联...介绍了一款基于0.4μm Bi CMOS工艺应用于温度补偿晶体振荡器的高性能温度传感器的设计。该温度传感器利用基极-发射极电压(VBE)减去与绝对温度成正比(PTAT)电流在电阻上的压降的原理,产生了与温度成线性的输出电压。采用包含两个串联发射结电压和低失调运算放大器的PTAT电流产生器,实现了高精度的PTAT电流;采用具有负温度系数的电阻,补偿了VBE的高阶温度特性;采用共源共栅结构,提高了输出电压的电源抑制。后仿真结果表明,当电源电压为3.3 V,温度范围为-40~85℃时,温度传感器的输出电压范围为0.964~1.490V,输出电压的斜率范围为-4.245×10-3^-4.160×10-3,斜率变化范围为8.5×10-5,表明该温度传感器具有非常高的线性度。展开更多
文摘This paper introduces the structure and principle of a surface-mount high-precision temperature compensation crystal oscillator,and specifically describes the reliability design of a quartz-crystal resonator used inside the surface-mount temperature compensation crystal oscillator,the reliability design of surface-mount ceramic base and the reliability design of hybrid micro-assembly.Finally,the thermal and mechanical simulation results and the experimental verification of this surface-mount temperature compensation crystal oscillator are provided,which prove that this crystal oscillator has high reliability.
基金Supported by the National Natural Science Foundation of China (10978017)the Open Fund of Key Laboratory of Time and Frequency Primary Standards (CAS)+2 种基金the Postdoctoral Grant of China (94469)the Basic and Advanced Technology Research Foundation of Hennan Province (122300410169)the Fundamental Research Funds for the Central Universities
文摘Combining oven controlled technique,digital compensation,high-resolution frequency difference measurement and self-calibration technique,a new design method of precise oven controlled crystal oscillator(OCXO) is proposed.Fine compensation is made in the vicinity of the crystal temperature inflection point by using the non-real-time temperature compensation strategy,and self-calibration system is integrated in the crystal.The method improves the digital compensated phase noise,simplifies the traditional OCXO development system,reduces the cost and shortens the developing cycle.Experiment results show that with a standard reference signal and self-calibration updated data,the oscillator can work stable and achieve its best performence.The performance index of crystal oscillator had an improvement with one to two orders of magnitude on the basis of original technical index.The method is widely used in the improvement of high-end crystal oscillator and atomic clock.
文摘介绍了一款基于0.4μm Bi CMOS工艺应用于温度补偿晶体振荡器的高性能温度传感器的设计。该温度传感器利用基极-发射极电压(VBE)减去与绝对温度成正比(PTAT)电流在电阻上的压降的原理,产生了与温度成线性的输出电压。采用包含两个串联发射结电压和低失调运算放大器的PTAT电流产生器,实现了高精度的PTAT电流;采用具有负温度系数的电阻,补偿了VBE的高阶温度特性;采用共源共栅结构,提高了输出电压的电源抑制。后仿真结果表明,当电源电压为3.3 V,温度范围为-40~85℃时,温度传感器的输出电压范围为0.964~1.490V,输出电压的斜率范围为-4.245×10-3^-4.160×10-3,斜率变化范围为8.5×10-5,表明该温度传感器具有非常高的线性度。