论文标题

多频点支持CIAD宽带宽度的LLRF前端应用程序

Multi-frequency Point Supported LLRF Front-end for CiADS Wide-bandwidth Application

论文作者

Chen, Qi, Gao, Zheng, Zhu, Zheng-Long, Xue, Zong-Heng, He, Yuan, Wang, Xian-Wu

论文摘要

中国倡议加速器驱动的系统,CIADS,物理设计采用$ 162.5 \,\ Mathrm {MHz} $,$ 325 \,\ Mathrm {MHz} $,$ 650 \,\,\ Mathrm {Mhz} $ cavities,该cavities wired Forrand Forranding forderfies firlist Forranding forsionf forders fordersf profention fordersf profention fordersf wordy频率(rf)。对于该应用,已经开发了通用设计前端原型,以评估支持点支持的设计可行性。达到通用设计要求的困难零件是合理的设备选择和平衡的设计。凭借精心选择的低噪声宽带RF混合器和放大器,以平衡多频支持下转换的性能,专门设计的本地振荡器(LO)分配网络以增加相邻频道之间的隔离,并实现外部频道滤波器,以实现预期的预期的上限频率,高维护频率,高维护和高度维护和模块化的前端式通用设计。标准参数的结果显示$ r^2 $值至少为$ 99.991 \%$ $ -60 \ sim 10 \,\ sim 10 \,\ mathrm {dbm} $ for LineArity for Linearity for Linearity for Linearity for Linearity for Linearity for Linearity for LineArity for Linearity for Linearity for Linateartity for P1db in to p1db ins to Knove $ to $ 189频道。相位噪声频谱低于$ 80 \,\ MATHRM {DBC} $,范围为$ 0 \ sim 1 \,\ Mathrm {MHz} $,累计相位噪声为$ 0.006^\ Circ $;振幅和相位稳定性分别为$ 0.022 \%$和$ 0.034^\ CIRC $。

The China initiative Accelerator Driven System, CiADS, physics design adopts $162.5 \,\mathrm{MHz}$, $325 \,\mathrm{MHz}$, and $650 \,\mathrm{MHz}$ cavities, which are driven by the corresponding radio frequency (RF) power system, requiring frequency translation front-end for the RF station. For that application, a general-purpose design front-end prototype has been developed to evaluate the multi-frequency point supported design feasibility. The difficult parts to achieve the requirements of the general-purpose design are reasonable device selection and balanced design. With a carefully selected low-noise wide-band RF mixer and amplifier to balance the performance of multi-frequency supported down-conversion, specially designed local oscillator (LO) distribution net to increase isolation between adjacent channels, and external band-pass filter to realize expected up-conversion frequencies, high maintenance and modular front-end general-purpose design has been implemented. Results of standard parameters show an $R^2$ value of at least $99.991\%$ in the range of $-60 \sim 10\,\mathrm{dBm}$ for linearity, up to $18\,\mathrm{dBm}$ for P1dB, and up to $89\,\mathrm{dBc}$ for crosstalk between adjacent channels. The phase noise spectrum is lower than $80\,\mathrm{dBc}$ in the range of $0 \sim 1\,\mathrm{MHz}$, and cumulative phase noise is $0.006^\circ$; amplitude and phase stability are $0.022\%$ and $0.034^\circ$, respectively.

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