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Phase error analysis and optimization for chirp transform spectrometer
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作者 RU Penglei LIU Mengwei +1 位作者 hu baifan WANG Wen 《Journal of Systems Engineering and Electronics》 2025年第3期597-608,共12页
In the field of deep space exploration,the rapid development of terahertz spectrometer has put forward higher requirements to the back-end chirp transform spectrometer(CTS)system.In order to simultaneously meet the me... In the field of deep space exploration,the rapid development of terahertz spectrometer has put forward higher requirements to the back-end chirp transform spectrometer(CTS)system.In order to simultaneously meet the measurement requirements of wide bandwidth and high accuracy spectral lines,we built a CTS system with an analysis bandwidth of 1 GHz and a frequency resolution of 100 kHz around the surface acoustic wave(SAW)chirp filter with a bandwidth of 1 GHz.In this paper,the relationship between the CTS nonlinear phase error shift model and the basic measurement parameters is studied,and the effect of CTS phase mismatch on the pulse compression waveform is analyzed by simulation.And the expander error optimization method is proposed for the problem that the large nonlinear error of the expander leads to the unbalanced response of the CTS system and the serious distortion of the compressed pulse waveform under large bandwidth.It is verified through simulation and experiment that the method is effective for reducing the root mean square error(RMSE)of the phase of the expander from 18.75°to 6.65°,reducing the in-band standard deviation of the CTS frequency resolution index from 8.43 kHz to 4.72 kHz,solving the problem of serious distortion of the compressed pulse waveform,and improving the uneven CTS response under large bandwidth. 展开更多
关键词 chirp transform spectrometer(CTS) microwave heterodyne spectroscopy phase error compensation surface acoustic wave(SAW) wide bandwidth
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深空探测Chirp变换频谱仪高精度脉冲积累设计与实现
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作者 胡白帆 刘梦伟 +1 位作者 茹鹏磊 王文 《深空探测学报(中英文)》 CSCD 北大核心 2024年第6期578-586,共9页
针对1 GHz带宽Chirp变换频谱仪时间分辨率高、脉冲宽度窄的特点以及对微弱信号的检测需求,提出一种实时、高精度的CTS(Chirp Transform Spectrometer)系统后端时序同步与脉冲积累方案,其同时具有积分时间可调的优点。通过系统时钟设计... 针对1 GHz带宽Chirp变换频谱仪时间分辨率高、脉冲宽度窄的特点以及对微弱信号的检测需求,提出一种实时、高精度的CTS(Chirp Transform Spectrometer)系统后端时序同步与脉冲积累方案,其同时具有积分时间可调的优点。通过系统时钟设计与现场可编程门阵列(Field-Programmable Gate Array,FPGA)算法设计,实现了1 GHz带宽CTS系统不同模块间的时钟同步及后端窄脉冲的精准积累,以确保系统达到较高的频率分辨率。通过该同步方案,积累后系统带内平均脉冲宽度达到了1.0136 ns,对应的频率分辨率101.36 kHz,与欧洲航天局(European Space Agency,ESA)木星冰月探测器(JUpiter ICy moons Explorer,JUICE)搭载的CTS分辨率相当,为中国深空探测任务高精度频谱分析提供了有效的解决途径。 展开更多
关键词 深空探测 Chirp变换频谱仪 脉冲积累 时序控制 高频率分辨率
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