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天琴电荷管理系统研制与测试

洪葳 李泓钢 白彦峥 周泽兵

洪葳, 李泓钢, 白彦峥, 周泽兵. 天琴电荷管理系统研制与测试[J]. 中国光学(中英文). doi: 10.37188/CO.2026-0087
引用本文: 洪葳, 李泓钢, 白彦峥, 周泽兵. 天琴电荷管理系统研制与测试[J]. 中国光学(中英文). doi: 10.37188/CO.2026-0087
HONG Wei, LI Hong-gang, BAI Yan-zheng, ZHOU Ze-bing. Development and testing of the charge management system for tianqin[J]. Chinese Optics. doi: 10.37188/CO.2026-0087
Citation: HONG Wei, LI Hong-gang, BAI Yan-zheng, ZHOU Ze-bing. Development and testing of the charge management system for tianqin[J]. Chinese Optics. doi: 10.37188/CO.2026-0087

天琴电荷管理系统研制与测试

cstr: 32171.14.CO.2026-0087
基金项目: 国家重点研发计划(No. 2021YFC2202504,No. 2022YFC2204102);国家自然科学基金面上项目(No. 1257051822)
详细信息
    作者简介:

    洪 葳(1986—),男,广西桂林人,研究员,主要从事空间惯性传感器电荷管理与智能诊断研究。分别于2010年和2016年在北京航空航天大学获得机电工程专业的工学学士和博士学位。2016年至2018年,在新加坡南洋理工大学电气与电子工程学院担任研究员。自2018年起,入职华中科技大学物理学院。E-mail: hongwei@hust.edu.cn

    李泓钢(1996—),男,河南驻马店人,博士后,主要从事空间惯性传感器电荷测量与调控研究。于2018年在河南大学获得测控技术与仪器专业的工学学士学位,于2024年在华中科技大学获得无线电物理专业的博士学位。自2024年起,在华中科技大学国家精密重力测量科学中心担任博士后。E-mail: hglee1327@hust.edu.cn

    白彦峥(1982—),男,河南新乡人,教授,主要从事空间惯性传感器集成与测试研究。于2004年获得华中科技大学测控技术与仪器专业学士学位,2010年获得华中科技大学无线电物理专业博士学位。自2013年起,入职华中科技大学物理学院。E-mail:abai@hust.edu.cn

    周泽兵(1973—),男,湖北洪湖人,教授,主要从事空间惯性传感器、卫星重力测量以及引力波探测等研究。于1995年在江汉石油学院获得电子仪器专业的工学学士学位,1998年在华中理工大学(现华中科技大学)获得理学硕士学位,2001在华中科技大学获得结构工程专业的工学博士学位。现为华中科技大学物理学院教授,国家精密重力测量科学中心主任,引力波探测团队负责人E-mail:zhouzb@mail.hust.edu.cn

  • 中图分类号: TP394.1;TH691.9

Development and testing of the charge management system for tianqin

Funds: Supported by the National Key Research and Development Program of China (Grant Nos. 2021YFC2202504, 2022YFC2204102) and the General Program of the National Natural Science Foundation of China (Grant No. 1257051822)
More Information
    Corresponding author: abai@hust.edu.cn; zhouzb@mail.hust.edu.cn
  • 摘要:

    检验质量(TM)在轨存在高能粒子充电效应,从而干扰引力波探测。本论文针对天琴计划的电荷管理需求,首先建立静电力模型,确定检验质量的电荷阈值上限为 2×10−13 C;然后设计基于紫外LED光源的电荷管理系统,并研制工程样机;最后构建基于精密扭摆的地面测试系统,用于评估电荷管理样机性能。实验结果表明:在2V、1 mHz的调制作用下,电荷测量的分辨率优于 2×10−14 C,电荷控制的分辨率约为 6×10−14 C,满足空间引力波探测需求。上述研究成果为天琴计划的实施提供了关键技术。

     

  • 图 1  天琴计划探测轨道示意图

    Figure 1.  Diagram of the detection orbit for the Tianqin Project

    图 2  检验质量在轨充电速率

    Figure 2.  Test Mass on-orbit charging rate

    图 3  检验质量二自由度模型

    Figure 3.  Test Mass 2-DOF model

    图 4  检验质量在轨噪声分析

    Figure 4.  Test Mass On-orbit noise analysis

    图 5  电荷管理系统结构示意图

    Figure 5.  Structural diagram of the charge management system

    图 6  电荷管理电路结构示意图

    Figure 6.  Schematic diagram of charge management circuit

    图 7  光路设计示意图

    Figure 7.  Schematic diagram of optical path

    图 8  电荷管理样机

    Figure 8.  Charge management device

    图 9  电荷管理样机的紫外光性能

    Figure 9.  Performance of charge management prototype

    图 10  电荷管理地面测试系统示意图

    Figure 10.  Schematic diagram of charge management ground test system

    图 11  基于精密扭摆的地面测试装置

    Figure 11.  Ground testing device based on precision torsion pendulum

    图 12  扭摆的力矩分辨率

    Figure 12.  Torque resolution of torsion pendulum

    图 13  电荷测量分辨率结果.

    Figure 13.  Charge measurement resolution results. (a) different modulation frequencies (b) different modulation amplitudes

    图 14  检验质量充放电曲线标定结果.

    Figure 14.  Calibration results of Test Mass's charge-discharge curve. (a) discharge curve (b) charge curve

    图 15  检验质量电荷控制结果.

    Figure 15.  The charge control result of Test Mass. (a) target potential: −50 mV (b) target potential: −100 mV

    表  1  光路传导系数

    Table  1.   Optical path transmission coefficient

    模型参数理论值实测值
    K1发光转化系数(μW/mA)15.0013.13±4.49
    K2光纤耦合系数40%36.07%±3.55%
    K3光纤传输系数80%
    K4馈通耦合系数100%74.66%±4.05%
    K5光子能量系数(/J)1.28×1018N.A.
    K6表面吸收系数66.48%N.A.
    K7量子产率系数(e/Photon)N.A.(1.13±0.37)×10−5
    K8电场调控系数100%50%±10%
    下载: 导出CSV

    表  2  不同电荷管理策略的光功率与电流需求

    Table  2.   Optical power and current demand for different discharge strategies

    放电方式放电速率紫外光功率驱动电流
    快速放电1×105 e/s20 nW5.9 μA
    连续放电10~100 e/s2~20 pW0.59~5.9 nA
    下载: 导出CSV
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  • 收稿日期:  2026-04-30
  • 录用日期:  2026-07-06
  • 网络出版日期:  2026-08-01

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