留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

大型结冰风洞中伪颗粒图像对CIP-GS云雾测量的影响

郭向东 郭奇灵 赵荣 陈海 魏龙涛 王梓旭

郭向东, 郭奇灵, 赵荣, 等. 大型结冰风洞中伪颗粒图像对CIP-GS云雾测量的影响[J]. 航空动力学报, 2026, 41(1):20240388 doi: 10.13224/j.cnki.jasp.20240388
引用本文: 郭向东, 郭奇灵, 赵荣, 等. 大型结冰风洞中伪颗粒图像对CIP-GS云雾测量的影响[J]. 航空动力学报, 2026, 41(1):20240388 doi: 10.13224/j.cnki.jasp.20240388
GUO Xiangdong, GUO Qiling, ZHAO Rong, et al. Effects of spurious particle images on CIP-GS cloud measurements in large-scale icing wind tunnel[J]. Journal of Aerospace Power, 2026, 41(1):20240388 doi: 10.13224/j.cnki.jasp.20240388
Citation: GUO Xiangdong, GUO Qiling, ZHAO Rong, et al. Effects of spurious particle images on CIP-GS cloud measurements in large-scale icing wind tunnel[J]. Journal of Aerospace Power, 2026, 41(1):20240388 doi: 10.13224/j.cnki.jasp.20240388

大型结冰风洞中伪颗粒图像对CIP-GS云雾测量的影响

doi: 10.13224/j.cnki.jasp.20240388
基金项目: 国家自然科学基金(12102452)
详细信息
    作者简介:

    郭向东(1989-),男,副研究员,硕士,主要从事结冰空气动力学研究。E-mail:easterkuo@163.com

  • 中图分类号: V221.3

Effects of spurious particle images on CIP-GS cloud measurements in large-scale icing wind tunnel

  • 摘要:

    为明晰大型结冰风洞中伪颗粒图像对灰度云成像探头(cloud imaging probe-grayscale,CIP-GS)云雾测量的影响,首先发展了伪颗粒图像识别方法,然后在3 m×2 m结冰风洞中开展了结冰云雾测量试验,进而研究了典型结冰条件下伪颗粒图像特征,最后考察了伪颗粒图像对云雾颗粒尺寸分布(particle size distribution,PSD)、中值体积直径(medium volume diameter,MVD)和液态水含量(liquid water content,LWC)测量结果的影响,揭示了影响原因。研究结果表明:伪颗粒图像可以分为景深外图像(out of depth of field image,ODI)、端部遮挡图像(end shaded image,ESI)、破碎图像(shattered image,SI)和非圆形图像(non-roundness image,NRI)4类;典型结冰条件下CIP-GS测量结果中存在大量伪颗粒图像,数量占比超过60%,其中ODI最多、NRI最少;SI和NRI会显著影响基于颗粒图像最大宽度的PSD形态,其中重合颗粒图像会导致PSD形成一条长尾,进而导致对应的MVD和LWC在连续最大结冰条件(continuous maximum icing condition,CM)、间断最大结冰条件(intermittent maximum icing condition,IM)和冻细雨结冰条件(freezing drizzle icing condition,FZDZ)下极端偏大,此时数量占比不到8%的SI能导致测量的MVD和LWC分别出现1252%和883%的最大异常增幅,但冻雨结冰条件(freezing rain icing condition,FZRA)下伪颗粒图像的影响并不显著;针对基于离焦修正颗粒直径的PSD,伪颗粒图像仅会增大小尺寸颗粒仓内颗粒数浓度,进而减小MVD、增大LWC,最大相对偏差分别为15%和20%。发展的识别方法可以较好地识别测量结果中的伪颗粒图像,适用于大型结冰风洞中CIP-GS结冰云雾测量。

     

  • 图 1  3 m×2 m结冰风洞示意图

    Figure 1.  Schematic of 3 m×2 m icing wind tunnel

    图 2  云组合探头示意图

    Figure 2.  Schematic of cloud combination probe

    图 3  CIP-GS的光学原理示意图

    Figure 3.  Optical schematic of CIP-GS

    图 4  颗粒图像特征参数定义

    Figure 4.  Definition of particle image characteristic parameters

    图 5  伪颗粒图像示意图

    Figure 5.  Schematics of spurious particle images

    图 6  典型颗粒图像CIP-GS测量结果

    Figure 6.  Typical measurement results of particle image for the CIP-GS

    图 7  主试验段内CCP安装位置示意图(单位:mm)

    Figure 7.  Schematic of CCP installation position in main test section (unit: mm)

    图 8  典型工况下颗粒图像测量结果

    Figure 8.  Measurement results of particle images under typical conditions

    图 9  典型工况下颗粒尺寸分布测量结果

    Figure 9.  Measurement results of particle size distribution under typical conditions

    图 10  典型工况下云雾特征参数测量结果

    Figure 10.  Measurement results of cloud characteristic parameters under typical conditions

    图 11  典型工况下破碎图像(SI)和非圆形图像(NRI)两种伪颗粒图像识别结果

    Figure 11.  Identification results of two types of spurious particle images including shattered image (SI) and non-roundness image (NRI) under typical conditions

    表  1  3 m×2 m结冰风洞试验段尺寸参数

    Table  1.   Size parameters of test sections for 3 m×2 m icing wind tunnel

    试验段 尺寸参数
    高度/m 宽度/m 长度/m 收缩比
    主试验段 2 3 6.5 14.67
    次试验段 3.2 4.8 9 5.73
    高速试验段 1.5 2 4.5 29.33
    下载: 导出CSV

    表  2  颗粒尺寸分布计算方法

    Table  2.   Calculation methods of particle size distribution

    方法 伪颗粒图像剔除范围 颗粒直径
    Method 1 ODI, ESI dw
    Method 2 全部 dw
    Method 3 ODI, ESI dofc
    Method 4 全部 dofc
    下载: 导出CSV

    表  3  结冰云雾测量试验工况

    Table  3.   Test conditions for the icing cloud measurements in the CARDC icing wind tunnel

    工况 H/m Tt/℃ VTS/(m/s) MVD/μm LWC/(g/m3 RA pw,A/MPa pa,A/MPa RB pw,B/MPa pa,B/MPa t/s
    A-01 480 1 80 20 0.16 0.25 0.05 0.08 180
    A-02 480 1 80 40 0.35 0.5 0.05 0.05 180
    A-03 480 1 80 92 1 0.5 0.04 0.08 1 0.04 0.06 180
    A-04 480 1 80 510 3.9 1 0.5 0.05 180
    下载: 导出CSV
  • [1] CEBECI T, KAFYEKE F. Aircraft icing[J]. Annual Review of Fluid Mechanics, 2003, 35: 11-21. doi: 10.1146/annurev.fluid.35.101101.161217
    [2] Federal Aviation Administration. Advisory circular 20-73A: aircraft ice protection[R]. Washington, US: Federal Aviation Administration, 2006.
    [3] AC-9C Aircraft Icing Technology Committee. Calibration and acceptance of icing wind tunnels: SAE ARP-5905 [S]. Warrendale, US: Society of Automotive Engineers, 2015.
    [4] Federal Aviation Administration. Code of federal regulations (CFR) title 14 aeronautics and space chapter I federal aviation administration, department of transportation subchapter C aircraft part 25 airworthiness standards: transport category airplanes[S]. Washington, US: Federal Aviation Administration, 2017.
    [5] European Union Aviation Safety Agency. Certification specifications and acceptable means of compliance for large aeroplanes: CS-25[S]. Cologne, Germany: European Union Aviation Safety Agency, 2021.
    [6] KNOLLENBERG R G. The optical array: an alternative to scattering or extinction for airborne particle size determination[J]. Journal of Applied Meteorology, 1970, 9(1): 86-103. doi: 10.1175/1520-0450(1970)009<0086:TOAAAT>2.0.CO;2
    [7] Droplet Measurement Technologies. Cloud imaging probe-grayscale (CIP-GS) operator manual[R]. Longmont, US: Droplet Measurement Technologies, 2017.
    [8] LAWSON R P, O’CONNOR D, ZMARZLY P, et al. The 2D-S (stereo) probe: design and preliminary tests of a new airborne, high-speed, high-resolution particle imaging probe[J]. Journal of Atmospheric and Oceanic Technology, 2006, 23(11): 1462-1477. doi: 10.1175/JTECH1927.1
    [9] LILIE L, BOULEY D, SIVO C, et al. A new 1D2D optical array particle imaging probe for airborne and ground simulation cloud measurements[J]. SAE Technical Paper Series, 2023: 2023-1-1415.
    [10] BAUMGARDNER D, ABEL S J, AXISA D, et al. Cloud ice properties: in situ measurement challenges[J]. Meteorological Monographs, 2017, 58: 9.1-9.23. doi: 10.1175/AMSMONOGRAPHS-D-16-0011.1
    [11] AC-9C Aircraft Icing Technology Committee. Droplet sizing instrumentation used in icing facilities[R]. Warrendale, US: AC-9C Aircraft Icing Technology Committee, 2013.
    [12] STEEN L E, IDE R F, VAN ZANTE J F, et al. NASA Glenn icing research tunnel: 2014 and 2015 cloud calibration procedures and results[R]. NASA/TM-2015-218758, 2015.
    [13] LUCKE J, JURKAT-WITSCHAS T, HELLER R, et al. Icing wind tunnel measurements of supercooled large droplets using the 12 mm total water content cone of the Nevzorov probe[J]. Atmospheric Measurement Techniques, 2022, 15(24): 7375-7394. doi: 10.5194/amt-15-7375-2022
    [14] Instrumentation for measuring supercooled large droplet cloud distributions in icing wind tunnels[R]. AIAA-2023-2286, 2023.
    [15] GUO Xiangdong, WANG Zixu, ZHAO Rong, et al. Particle size distribution measurements under supercooled large drop conditions with Cloud Combination Probe in CARDC icing wind tunnel[J]. Powder Technology, 2024, 434: 119378. doi: 10.1016/j.powtec.2024.119378
    [16] SLD instrumentation in icing wind tunnels-investigation overview[R]. AIAA-2021-2647, 2021.
    [17] SCHWARZ C W, OHME P, DEILER C. The SENS4ICE EU Project: SENSors and certifiable hybrid architectures for safer aviation in icing environment[R]. Minneapolis, US: International Conference on Icing of Aircraft, Engines, and Structures, 2019.
    [18] NEUBAUER T, PUFFING R. Introduction of an online ice accretion database[R]. Vienna, Austria: International Conference on Icing of Aircraft, Engines, and Structures, 2023.
    [19] MCFARQUHAR G M, BAUMGARDNER D, BANSEMER A, et al. Processing of ice cloud in situ data collected by bulk water, scattering, and imaging probes: fundamentals, uncertainties, and efforts toward consistency[J]. Meteorological Monographs, 2017, 58: 11.1-11.33. doi: 10.1175/AMSMONOGRAPHS-D-16-0007.1
    [20] O’SHEA S J, CROSIER J, DORSEY J, et al. Revisiting particle sizing using greyscale optical array probes: evaluation using laboratory experiments and synthetic data[J]. Atmospheric Measurement Techniques, 2019, 12(6): 3067-3079. doi: 10.5194/amt-12-3067-2019
    [21] KOROLEV A, ISAAC G A. Shattering during sampling by OAPs and HVPS: Part Ⅰ snow particles[J]. Journal of Atmospheric and Oceanic Technology, 2005, 22(5): 528-542. doi: 10.1175/JTECH1720.1
    [22] KOROLEV A, FIELD P R. Assessment of the performance of the inter-arrival time algorithm to identify ice shattering artifacts in cloud particle probe measurements[J]. Atmospheric Measurement Techniques, 2015, 8(2): 761-777. doi: 10.5194/amt-8-761-2015
    [23] LAWSON R P. Effects of ice particles shattering on the 2D-S probe[J]. Atmospheric Measurement Techniques, 2011, 4(7): 1361-1381. doi: 10.5194/amt-4-1361-2011
    [24] KOROLEV A, SUSSMAN B. A technique for habit classification of cloud particles[J]. Journal of Atmospheric and Oceanic Technology, 2000, 17(8): 1048-1057. doi: 10.1175/1520-0426(2000)017<1048:ATFHCO>2.0.CO;2
    [25] BAUMGARDNER D, JONSSON H, DAWSON W, et al. The cloud, aerosol and precipitation spectrometer: a new instrument for cloud investigations[J]. Atmospheric Research, 2001, 59/60: 251-264.
    [26] STRAPP J W, SCHWARZENBOECK A, BEDKA K, et al. An assessment of cloud total water content and particle size from flight test campaign measurements in high ice water content, mixed phase/ice crystal icing conditions: primary in-situ measurements[R]. DOT/FAA/TC-18/1, 2020.
    [27] O’SHEA S, CROSIER J, DORSEY J, et al. Characterising optical array particle imaging probes: implications for small-ice-crystal observations[J]. Atmospheric Measurement Techniques, 2021, 14(3): 1917-1939. doi: 10.5194/amt-14-1917-2021
    [28] TIMKO E N, STEEN L E, VAN ZANTE J F, et al. NASA Glenn icing research tunnel: 2019 cloud calibration procedure and results[R]. NASA/TM-2020-5009045, 2020.
    [29] 郭向东, 张平涛, 赵照, 等. 大型结冰风洞云雾场适航应用符合性验证[J]. 航空学报, 2020, 41(10): 123879. GUO Xiangdong, ZHANG Pingtao, ZHAO Zhao, et al. Airworthiness application compliance verification of cloud flowfield in large icing wind tunnel[J]. Acta Aeronautica et Astronautica Sinica, 2020, 41(10): 123879. (in Chinese

    GUO Xiangdong, ZHANG Pingtao, ZHAO Zhao, et al. Airworthiness application compliance verification of cloud flowfield in large icing wind tunnel[J]. Acta Aeronautica et Astronautica Sinica, 2020, 41(10): 123879. (in Chinese)
    [30] 陈舒越, 郭向东, 王梓旭, 等. 结冰风洞过冷大水滴粒径测量初步研究[J]. 实验流体力学, 2021, 35(3): 22-29. CHEN Shuyue, GUO Xiangdong, WANG Zixu, et al. Preliminary research on size measurement of supercooled large droplet in icing wind tunnel[J]. Journal of Experiments in Fluid Mechanics, 2021, 35(3): 22-29. (in Chinese

    CHEN Shuyue, GUO Xiangdong, WANG Zixu, et al. Preliminary research on size measurement of supercooled large droplet in icing wind tunnel[J]. Journal of Experiments in Fluid Mechanics, 2021, 35(3): 22-29. (in Chinese)
    [31] Droplet Measurement Technologies. Cloud combination probe (CCP) operator manual[R]. Longmont, US: Droplet Measurement Technologies, 2017.
    [32] KOROLEV A, EMERY E, CREELMAN K. Modification and tests of particle probe tips to mitigate effects of ice shattering[J]. Journal of Atmospheric and Oceanic Technology, 2013, 30(4): 690-708. doi: 10.1175/JTECH-D-12-00142.1
    [33] Droplet Measurement Technologies. Particle analysis and display system (PADS) 3.6.3 overview manual[R]. Longmont, US: Droplet Measurement Technologies, 2012.
    [34] Droplet Measurement Technologies. Data analysis user’s guide: chapter Ⅱ single particle imaging[R]. Longmont, US: Droplet Measurement Technologies, 2009.
    [35] KOROLEV A. Reconstruction of the sizes of spherical particles from their shadow images: Part Ⅰ theoretical considerations[J]. Journal of Atmospheric and Oceanic Technology, 2007, 24(3): 376-389. doi: 10.1175/JTECH1980.1
    [36] 郭向东, 柳庆林, 刘森云, 等. 结冰风洞中过冷大水滴云雾演化特性数值研究[J]. 航空学报, 2020, 41(8): 123655. GUO Xiangdong, LIU Qinglin, LIU Senyun, et al. Numerical study of supercooled large droplet cloud evolution characteristics in icing wind tunnel[J]. Acta Aeronautica et Astronautica Sinica, 2020, 41(8): 123655. (in Chinese

    GUO Xiangdong, LIU Qinglin, LIU Senyun, et al. Numerical study of supercooled large droplet cloud evolution characteristics in icing wind tunnel[J]. Acta Aeronautica et Astronautica Sinica, 2020, 41(8): 123655. (in Chinese)
    [37] LANCE S. Coincidence errors in a cloud droplet probe (CDP) and a cloud and aerosol spectrometer (CAS), and the improved performance of a modified CDP[J]. Journal of Atmospheric and Oceanic Technology, 2012, 29(10): 1532-1541. doi: 10.1175/JTECH-D-11-00208.1
    [38] KNOP I, BANSMER S E, HAHN V, et al. Comparison of different droplet measurement techniques in the Braunschweig Icing Wind Tunnel[J]. Atmospheric Measurement Techniques, 2021, 14(2): 1761-1781. doi: 10.5194/amt-14-1761-2021
  • 加载中
图(11) / 表(3)
计量
  • 文章访问数:  661
  • HTML浏览量:  435
  • PDF量:  41
  • 被引次数: 0
出版历程
  • 收稿日期:  2024-06-14
  • 网络出版日期:  2025-10-23

目录

    /

    返回文章
    返回