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窄带高功率微波效应测试中功率密度测量不确定度评估

钟龙权 苗宇 赵刚 林江川 孙健 吴皓 秦风 严志洋 刘忠 戈弋 张莹

钟龙权, 苗宇, 赵刚, 等. 窄带高功率微波效应测试中功率密度测量不确定度评估[J]. 强激光与粒子束, 2021, 33: 123023. doi: 10.11884/HPLPB202133.210224
引用本文: 钟龙权, 苗宇, 赵刚, 等. 窄带高功率微波效应测试中功率密度测量不确定度评估[J]. 强激光与粒子束, 2021, 33: 123023. doi: 10.11884/HPLPB202133.210224
Zhong Longquan, Miao Yu, Zhao Gang, et al. Evaluation of measurement uncertainty about power density for high power microwave effects test[J]. High Power Laser and Particle Beams, 2021, 33: 123023. doi: 10.11884/HPLPB202133.210224
Citation: Zhong Longquan, Miao Yu, Zhao Gang, et al. Evaluation of measurement uncertainty about power density for high power microwave effects test[J]. High Power Laser and Particle Beams, 2021, 33: 123023. doi: 10.11884/HPLPB202133.210224

窄带高功率微波效应测试中功率密度测量不确定度评估

doi: 10.11884/HPLPB202133.210224
基金项目: 中物院复杂电磁环境重点实验室重点课题(2020E01-2)
详细信息
    作者简介:

    钟龙权,lorne216@163.com

    通讯作者:

    苗 宇,beise_cool@163.com

  • 中图分类号: TN015;TM933.3

Evaluation of measurement uncertainty about power density for high power microwave effects test

  • 摘要: 针对窄带高功率微波(HPM)效应试验的辐射场准确测试需求,分析补充了功率密度参数的测量不确定度主要分量,提出了一个参数更为全面的乘式测量不确定度评估模型。采用B类评估方法,根据相关标准和信息对各分量进行了一组赋值,计算得到了相对形式的分量标准不确定度。给出了评估测试环境影响、位置偏差等分量不确定度半宽度的实验方法,为HPM效应功率密度参数测量不确定度的合理评定提供了参考,为实现其全部分量基于实测数据客观评估测量不确定度提供了操作方法。
  • 图  1  功率密度测量系统组成框图

    Figure  1.  Setup diagram of measurement system for power density

    图  2  功率密度测量不确定度输入分量关系鱼骨图

    Figure  2.  Fish bone diagram of input quantities for power density measurement uncertainty

    图  3  环境影响分量测试评估布设示意图

    Figure  3.  Measurement evaluation layout for quantity of influence of test environment

    图  4  位置偏差测试评估布设示意图

    Figure  4.  Measurement evaluation layout for quantity of location deviation

    表  1  HPM效应测试中功率密度参数测量不确定度B类评定参数

    Table  1.   Type B evaluation parameters of measurement uncertainty about power density for high power microwave effects test

    uncertainty quantitydistributionk-valuesensitivity coefficientrelative standard uncertainty/dBrelative standard uncertainty/%
    detection power ${P_{ {\text{det} } } }$ triangular $ \sqrt{6} $ 1 0.46 10.58
    link attenuation $ {A'} $ normal 2 1 1.20 27.60
    receiving gain $ {G_{\text{r}}} $ rectangular $ \sqrt{3} $ −1 0.87 19.92
    location deviation $ {A_{\text{l}}} $ rectangular $ \sqrt{3} $ 1 0.14 3.31
    frequency drift $ f $ rectangular $ \sqrt{3} $ 2 0.06 1.41
    aiming deflection $ {A_{\text{d}}} $ rectangular $ \sqrt{3} $ 1 0.14 3.31
    polarization mismatch ${A_{\text{P}}}$ rectangular $ \sqrt{3} $ 1 0.15 3.54
    connection mismatch $ {A_{\text{c}}} $ arc sine $ \sqrt{2} $ 1 0.21 4.83
    influence of test environment $ {A_{{\text{te}}}} $ rectangular $ \sqrt{3} $ 1 1.22 28.06
    repeatability $ {C_{\text{r}}} $ normal 2 1 0.13 2.89
    下载: 导出CSV

    表  2  场地VSWR测试推荐的最大步进值和最小总长度[12]

    Table  2.   Recommended values of maximal step and minimal total length for field VSWR test

    frequency range/GHzΔL/cmL/cm
    <25.00±30.0
    2~42.50±15.0
    4~81.25±7.5
    >81.00±6.0
    下载: 导出CSV
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出版历程
  • 收稿日期:  2021-06-07
  • 修回日期:  2021-11-04
  • 网络出版日期:  2021-11-16
  • 刊出日期:  2021-12-15

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