西安交通大学机械工程学院,西安,710049
: 2021-11-09。作者简介: 何普(1996—),男,硕士生
赵纪元(通信作者),男,研究员。基金项目: 国家自然科学基金资助项目(51975452)
网络首发:2022-06-10,
纸质出版:2022
移动端阅览
何普, 赵纪元. 采用太赫兹时域光谱技术的高精度热障涂层测厚方法[J]. 西安交通大学学报, 2022,56(6):112-119.
HE Pu, ZHAO Jiyuan. High-Precision Thermal Barrier Coating Thickness Measurement Method Using Terahertz Time-Domain Spectroscopy Technology[J]. 2022, 56(6): 112-119.
何普, 赵纪元. 采用太赫兹时域光谱技术的高精度热障涂层测厚方法[J]. 西安交通大学学报, 2022,56(6):112-119. DOI: 10.7652/xjtuxb202206014.
HE Pu, ZHAO Jiyuan. High-Precision Thermal Barrier Coating Thickness Measurement Method Using Terahertz Time-Domain Spectroscopy Technology[J]. 2022, 56(6): 112-119. DOI: 10.7652/xjtuxb202206014.
针对标准试块法测量热障涂层厚度需要制作标准试块导致成本高、测量工艺复杂、无法适应热障涂层服役后折射率变化等问题
提出了采用太赫兹时域光谱技术的高精度热障涂层测厚方法。首先
根据太赫兹波在热障涂层中的传播特性建立了热障涂层太赫兹波传播模型
通过模型可以得到太赫兹检测信号回波数量和回波相位对应的变化关系; 然后
根据菲涅尔定律和太赫兹检测信号前3次回波之间的作用关系建立了折射率计算模型; 最后
根据所得到的折射率和相邻两次回波时间差采用飞行时间法求解热障涂层厚度。对所提方法测量热障涂层厚度的可行性和准确性进行了多组实验研究
结果表明:与标准试块法相比
所提方法不需要制作标准试块
仅根据太赫兹检测信号即可同时计算得到热障涂层折射率与厚度
实现了对热障涂层高效、高精度测厚; 所提方法测量厚度的相对误差可以达到1.15%
比标准试块法测量厚度的相对误差降低了42.5%。
In terms of the problems of the standard test block method
such as the high cost of making the standard test block
the complicated measurement process
and the inability to adapt to the change of the refractive index of the thermal barrier coating after service
a thermal barrier coating thickness measurement method based on terahertz time-domain spectroscopy is proposed. Firstly
according to the propagation characteristics of terahertz waves in thermal barrier coatings
a terahertz wave propagation model of thermal barrier coatings is established
and the relationship between the number of echoes and the phase of echoes of terahertz detection signals can be obtained through the model. Then
a refractive index calculation model is established according to Fresnel's law and the interaction between the first three echoes of the terahertz detection signal. Finally
according to the obtained refractive index and the time interval between two adjacent echoes
the time-of-flight method is used to calculate the thickness of the thermal barrier coating. The feasibility and accuracy of the proposed method to measure the thickness of thermal barrier coatings are investigated by several groups of experiments. The results show that compared with the standard test block method
the proposed method does not need the making of a standard test block
and the refractive index and thickness of the thermal barrier coating can be calculated at the same time based on the terahertz detection signal
thus realizing the efficient and high-precision thickness measurement of the thermal barrier coating. The relative error of the proposed method can reach 1.15%
which is 42.5% lower than that of the standard test block method.
王博, 刘洋, 王福德, 等. 航空发动机及燃气轮机涡轮叶片热障涂层技术研究及应用 [J]. 航空发动机, 2021, 47(S1): 25-31.
WANG Bo, LIU Yang, WANG Fude, et al. Research and application of thermal barrier coatings for aeroengine and gas turbine blades [J]. Aeroengine, 2021, 47(S1): 25-31.
郭洪波, 宫声凯, 徐惠彬. 先进航空发动机热障涂层技术研究进展 [J]. 中国材料进展, 2009, 28(9): 18-26.
GUO Hongbo, GONG Shengkai, XU Huibin. Progress in thermal barrier coatings for advanced aeroengines [J]. Materials China, 2009, 28(9): 18-26.
赵荻, 安宇龙, 赵晓琴, 等. 不同厚度8YSZ热障涂层的结构及性能表征 [J]. 表面技术, 2020, 49(1): 276-284.
ZHAO Di, AN Yulong, ZHAO Xiaoqin, et al. Structure and properties of 8YSZ thermal barrier coatings with different thickness [J]. Surface Technology, 2020, 49(1): 276-284.
叶东东, 王卫泽. 热障涂层太赫兹无损检测技术研究进展 [J]. 表面技术, 2020, 49(10): 126-137, 197.
YE Dongdong, WANG Weize. Research progress in terahertz non-destructive testing of thermal barrier coatings [J]. Surface Technology, 2020, 49(10): 126-137, 197.
WATANABE M, KURODA S, YAMAWAKI H, et al. Terahertz dielectric properties of plasma-sprayed thermal-barrier coatings [J]. Surface and Coatings Technology, 2011, 205(19): 4620-4626.
WHITE J, FICHTER G, CHERNOVSKY A, et al. Time domain terahertz non-destructive evaluation of aeroturbine blade thermal barrier coatings [J]. AIP Conference Proceedings, 2009, 1096(1): 434-439.
FUKUCHI T, FUSE N, OKADA M, et al. Measurement of refractive index and thickness of topcoat of thermal barrier coating by reflection measurement of terahertz waves [J]. Electronics and Communications in Japan, 2013, 96(12): 37-45.
曹丙花, 郑德栋, 范孟豹, 等. 基于太赫兹时域光谱技术的多层涂层高效可靠测厚方法 [J/OL]. 光学学报 [2021-10-15]. http:∥kns.cnki.net/kcms/detail/31.1252.o4.20210709.1609.002.html.
CAO Binghua, ZHENG Dedong, FAN Mengbao, et al. Efficient and reliable thickness measurement method for multilayer coatings based on terahertz time-domain spectroscopy technology [J/OL]. Acta Optica Sinica [2021-10-15]. http:∥kns.cnki.net/kcms/detail/31.1252.o4.20210709.1609.002.html.
LOPATO P, CHADY T, SIKORA R, et al. Full wave numerical modelling of terahertz systems for nondestructive evaluation of dielectric structures [J]. COMPEL-the International Journal for Computation and Mathematics in Electrical and Electronic Engineering, 2013, 32(3): 736-749.
TU Wanli, ZHONG Shuncong, SHEN Yaochun, et al. Nondestructive testing of marine protective coatings using terahertz waves with stationary wavelet transform [J]. Ocean Engineering, 2016, 111: 582-592.
周桐宇, 李丽娟, 任姣姣, 等. 基于FDTD的玻璃纤维增强复合材料脉冲太赫兹无损检测 [J]. 光学学报, 2020, 40(12): 190-198.
ZHOU Tongyu, LI Lijuan, REN Jiaojiao, et al. Pulsed terahertz nondestructive testing of glass fiber reinforced plastics based on FDTD [J]. Acta Optica Sinica, 2020, 40(12): 190-198.
周桐宇, 李丽娟, 任姣姣, 等. 基于FDTD的橡胶粘接质量的脉冲太赫兹检测方法研究 [J]. 长春理工大学学报(自然科学版), 2021, 44(1): 36-41.
ZHOU Tongyu, LI Lijuan, REN Jiaojiao, et al. Simulation study on bonding defects of pulsed terahertz rubber based on finite difference time domain [J]. Journal of Changchun University of Science and Technology(Natural Science Edition), 2021, 44(1): 36-41.
程伟, 王迎新, 赵自然. 光电导太赫兹源新进展 [J]. 激光与红外, 2011, 41(6): 597-604.
CHENG Wei, WANG Yingxin, ZHAO Ziran. New research progress of photoconductive terahertz source [J]. Laser Infrared, 2011, 41(6): 597-604.
宋斌, 黄月文, 冯超, 等. 5YSZ陶瓷基体的成型及烧结收缩率调节 [J]. 佛山陶瓷, 2020, 30(5): 9-13.
SONG Bin, HUANG Yuewen, FENG Chao, et al. Forming and sinter shrinkage adjustment of 5YSZ ceramic matrix [J]. Foshan Ceramics, 2020, 30(5): 9-13.
姚建铨, 汪静丽, 钟凯, 等. THz辐射大气传输研究和展望 [J]. 光电子·激光, 2010, 21(10): 1582-1588.
YAO Jianquan, WANG Jingli, ZHONG Kai, et al. Study and outlook of THz radiation atmospheric propagation [J]. Journal of Optoelectronics·Laser, 2010, 21(10): 1582-1588.
MOHAN S, ODANI N, HOSSAIN M N, et al. Terahertz time of flight spectroscopy as a coating thickness reference method for partial least squares near infrared spectroscopy models [J]. Analytical Chemistry, 2020, 92(5): 3658-3665.
李迎, 张朝晖, 赵小燕, 等. 非金属涂层缺陷的太赫兹时域谱检测 [J]. 仪器仪表学报, 2020, 41(11): 129-136.
LI Ying, ZHANG Zhaohui, ZHAO Xiaoyan, et al. Terahertz time-domain spectrum detection of non-metallic coating defects [J]. Chinese Journal of Scientific Instrument, 2020, 41(11): 129-136.
艾夏. 复杂色散介质电磁散射的FDTD算法及其改进方法的研究 [D]. 西安: 西安电子科技大学, 2013.
TAFLOVE A, UMASHANKAR K R. The finite-difference time-domain(FD-TD)method for electromagnetic scattering and interaction problems [J]. Journal of Electromagnetic Waves and Applications, 1987, 1(3): 243-267.
ZHONG Shuncong. Progress in terahertz nondestruc-tive testing: a review [J]. Frontiers of Mechanical Engineering, 2019, 14(3): 273-281.
孟坤, 李泽仁, 刘乔. 太赫兹波在介质中传播的FDTD分析 [J]. 信息与电子工程, 2011, 9(3): 277-279.
MENG Kun, LI Zeren, LIU Qiao. FDTD analysis of terahertz pulse traveling in media [J]. Information and Electronic Engineering, 2011, 9(3): 277-279.
CLARKE D R, PHILLPOT S R. Thermal barrier coating materials [J]. Materials Today, 2005, 8(6): 22-29.
冯国英, 周寿桓. 波动光学 [M]. 北京: 科学出版社, 2013: 22-80.
WADDIE A J, SCHEMMEL P J, CHALK C, et al. Terahertz optical thickness and birefringence measurement for thermal barrier coating defect location [J]. Optics Express, 2020, 28(21): 31535-31552.
CHANG Tianying, ZHANG Xiansheng, YANG Chuanfa, et al. Measurement of complex terahertz dielectric properties of polymers using an improved free-space technique [J]. Measurement Science and Technology, 2017, 28(4): 045002.
刘志刚. 平面电磁波在两种介质表面上的反射与折射 [J]. 北京联合大学学报(自然科学版), 2004, 18(1): 32-35.
LIU Zhigang. Reflection and refraction of the planar electromagnetic wave on the interface between two media [J]. Journal of Beijing Union University(Natural Sciences), 2004, 18(1): 32-35.
莫英桂, 苏翼雄, 康慧雯, 等. 漆膜涂层厚度检测方法及其发展趋势 [J]. 现代制造技术与装备, 2020, 56(10): 123-126.
MO Yinggui, SU Yixiong, KANG Huiwen, et al. Testing methods and development trend of film coating thickness [J]. Modern Manufacturing Technology and Equipment, 2020, 56(10): 123-126.
0
浏览量
5
下载量
0
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621