ACTA AERONAUTICAET ASTRONAUTICA SINICA >
Binocular speckle-based 3D-PSP technique and its applications in compressor cascade
Received date: 2024-12-05
Revised date: 2024-12-24
Accepted date: 2025-02-10
Online published: 2025-02-18
Supported by
National Natural Science Foundation of China(92152301);National Science and Technology Major Project of China (J2019-Ⅱ-0016-0037)
Reconstruction of 3D pressure is crucial for Pressure-Sensitive Paint (PSP) measurements. We propose a method for three-dimensional pressure reconstruction combining binocular digital image correlation technology. The PSP measurement results are mapped to the reconstructed three-dimensional point cloud pixel by pixel to realize the three-dimensional pressure reconstruction without relying on the geometric parameters of the measured model. The method involves creating random speckle patterns on the PSP coating surface and using two cameras to synchronously capture PSP images. By integrating cross-correlation analysis and the principles of binocular stereo vision in PSP data processing, we achieve precise reconstruction of the 3D pressure on the measured surface. This method has been successfully applied to the 3D pressure measurement on the surface of a compressor cascade, and a comparative analysis with pressure tap data has shown that the relative deviation of the PSP data is within 1.2%. Furthermore, the accuracy of the measurement results has been verified by comparing the reconstructed 3D point cloud with a CAD model, with an average deviation of 0.17 mm.
Limin GAO , Jun ZHANG , Bo OUYANG , Lei WANG . Binocular speckle-based 3D-PSP technique and its applications in compressor cascade[J]. ACTA AERONAUTICAET ASTRONAUTICA SINICA, 2025 , 46(17) : 131617 -131617 . DOI: 10.7527/S1000-6893.2025.31617
| [1] | GREGORY J W, ASAI K, KAMEDA M, et al. A review of pressure-sensitive paint for high-speed and unsteady aerodynamics[J]. Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering, 2008, 222(2): 249-290. |
| [2] | PENG D, LIU Y Z. Fast pressure-sensitive paint for understanding complex flows: From regular to harsh environments[J]. Experiments in Fluids, 2019, 61(1): 8. |
| [3] | BELL J H, MCLACHLAN B G. Image registration for pressure-sensitive paint applications[J]. Experiments in Fluids, 1996, 22(1): 78-86. |
| [4] | BELL J, BURNER A. Data fusion in wind tunnel testing-combined pressure paint and model deformation measurements[C]∥ 20th AIAA Advanced Measurement and Ground Testing Technology Conference. Reston: AIAA, 1998. |
| [5] | LIU T S, RADEZTSKY R, GARG S, et al. A videogrammetric model deformation system and its integration with pressure paint[C]∥ 37th Aerospace Sciences Meeting and Exhibit. Reston: AIAA, 1999. |
| [6] | LIU T S, CATTAFESTA L N, RADEZTSKY R H, et al. Photogrammetry applied to wind-tunnel testing[J]. AIAA Journal, 2000, 38(6): 964-971. |
| [7] | LIU T S, BURNER A W, JONES T W, et al. Photogrammetric techniques for aerospace applications[J]. Progress in Aerospace Sciences, 2012, 54: 1-58. |
| [8] | 高丽敏, 高杰, 谢建, 等. 图像三维重构在叶片表面压力测量的应用[J]. 工程热物理学报, 2012, 33(9): 1523-1526. |
| GAO L M, GAO J, XIE J, et al. Application of image 3D reconstruction to pressure measurement on blade surface[J]. Journal of Engineering Thermophysics, 2012, 33(9): 1523-1526 (in Chinese). | |
| [9] | 高丽敏, 韦楠, 高杰, 等. 基于内流场PSP测量技术的图像后处理[J]. 实验流体力学, 2013, 27(1): 93-97. |
| GAO L M, WEI N, GAO J, et al. Image processing of PSP technique in the internal flow[J]. Journal of Experiments in Fluid Mechanics, 2013, 27(1): 93-97 (in Chinese). | |
| [10] | GAO L M, YANG G H, GAO T Y, et al. Experimental investigation of a linear cascade with large solidity using pressure sensitive paint and dual-camera system[J]. Journal of Thermal Science, 2021, 30(2): 682-695. |
| [11] | LEI X F, GAO L M, CHANG L R, et al. Application of pressure-sensitive paint measurement technology in pressure measurement of cascade blade surface[M]∥ Proceedings of the 9th Asian Joint Workshop on Thermophysics and Fluid Science. Singapore: Springer Nature Singapore, 2024: 119-133. |
| [12] | 高丽敏, 雷祥福, 杨冠华, 等. 压力敏感涂料测量技术在掠型叶栅表面测压中的应用[J]. 推进技术, 2024, 45(4): 215-226. |
| GAO L M, LEI X F, YANG G H, et al. Application of pressure-sensitive paint measurement technology in pressure measurement of swept blade surface[J]. Journal of Propulsion Technology, 2024, 45(4): 215-226 (in Chinese). | |
| [13] | ZHU Z C, DONG Z, TANG K, et al. A new 3D reconstruction method for pressure-sensitive paint measurements under limited optical access[J]. Measurement, 2025, 242: 115795. |
| [14] | AMOO L M. On the design and structural analysis of jet engine fan blade structures[J]. Progress in Aerospace Sciences, 2013, 60: 1-11. |
| [15] | SHI S X, XU S M, ZHAO Z, et al. 3D surface pressure measurement with single light-field camera and pressure-sensitive paint[J]. Experiments in Fluids, 2018, 59(5): 79. |
| [16] | DONG Z, LIANG L, ZHANG W G, et al. Simultaneous pressure and deformation field measurement on helicopter rotor blades using a grid-pattern pressure-sensitive paint system[J]. Measurement, 2020, 152: 107359. |
| [17] | QUINN M K, FISHER T B. Simultaneous measurement of surface shape and pressure using structured illumination[J]. Measurement Science and Technology, 2021, 32(2): 024011. |
| [18] | LI Y Z, DONG Z, LIANG L, et al. Simultaneous 3D surface profile and pressure measurement using phase-shift profilometry and pressure-sensitive paint[J]. Review of Scientific Instruments, 2021, 92(3): 035107. |
| [19] | PAN B. Digital image correlation for surface deformation measurement: Historical developments, recent advances and future goals[J]. Measurement Science and Technology, 2018, 29(8): 082001. |
| [20] | PARK S H, SUNG H J. Correlation-based image registration for applications using pressure-sensitive paint[J]. AIAA Journal, 2005, 43(3): 472-478. |
| [21] | SUNG H J, PARK S H, KIM M S. Accuracy of correlation-based image registration for pressure-sensitive paint[J]. Experiments in Fluids, 2006, 40(4): 664. |
| [22] | OGG D R, RICE B E, PELTIER S J, et al. Simultaneous stereo digital image correlation and pressure-sensitive paint measurements of a compliant panel in a Mach 2 wind tunnel[C]∥ 2018 Fluid Dynamics Conference. Reston: AIAA, 2018. |
| [23] | LYNCH K P, JONES E, WAGNER J L. Simultaneous PSP and surface deformation measurements for fluid-structure interactions in a shock tube[C]∥ 2018 Fluid Dynamics Conference. Reston: AIAA, 2018. |
| [24] | LYNCH K P, JONES E M, BRINK A R, et al. Response of jointed-structures in a shock tube: Simultaneous PSP and DIC with comparison to modeling[C]∥ AIAA Aviation 2019 Forum. Reston: AIAA, 2019. |
| [25] | MUSTA M N, VANSTONE L, AHN Y J, et al. Investigation of flow-structure coupling for a compliant panel under a shock/boundary-layer interaction using fast-response PSP[C]∥ AIAA Aviation 2021 Forum. Reston: AIAA, 2021. |
| [26] | IMAI M, NAKAKITA K, KAMEDA M. Random-dot pressure-sensitive paint for time-resolved measurement of deformation and surface pressure of transonic wing flutter[J]. Experiments in Fluids, 2022, 63(11): 174. |
| [27] | DONG Z, LI Y Z, JIAO L R, et al. Pressure-sensitive paint integrated with digital image correlation for instantaneous measurement on rotating blades[J]. Aerospace Science and Technology, 2022, 126: 107667. |
| [28] | LIU T, SULLIVAN J P, ASAI K, et al. Pressure and temperature sensitive paints[M]. Berlin: Springer, 2021: 1-7. |
| [29] | BLABER J, ADAIR B, ANTONIOU A. Ncorr: Open-source 2D digital image correlation Matlab software[J]. Experimental Mechanics, 2015, 55(6): 1105-1122. |
| [30] | GAO Z R, ZHANG Q C, SU Y, et al. Accuracy evaluation of optical distortion calibration by digital image correlation[J]. Optics and Lasers in Engineering, 2017, 98: 143-152. |
| [31] | ZHANG Z. A flexible new technique for camera calibration[J]. IEEE Transactions on Pattern Analysis and Machine Intelligence, 2000, 22(11): 1330-1334. |
| [32] | CRIMINISI A, PéREZ P, TOYAMA K. Region filling and object removal by exemplar-based image inpainting[J]. IEEE Transactions on Image Processing, 2004, 13(9): 1200-1212. |
| [33] | LE MEUR O, EBDELLI M, GUILLEMOT C. Hierarchical super-resolution-based inpainting[J]. IEEE Transactions on Image Processing, 2013, 22(10): 3779-3790. |
| [34] | LI R Y, GAO L M, LIN S Y, et al. Experimental investigations of dominant unsteady surface pressure in the corner separation region of a high-subsonic compressor cascade[J]. 2024, 36(1): 016151. |
| [35] | DONG Y L, PAN B. A review of speckle pattern fabrication and assessment for digital image correlation[J]. Experimental Mechanics, 2017, 57(8): 1161-1181. |
| [36] | REU P. All about speckles: Speckle size measurement[J]. Experimental Techniques, 2014, 38(6): 1-2. |
| [37] | SU Y, ZHANG Q C. Glare: A free and open-source software for generation and assessment of digital speckle pattern[J]. Optics and Lasers in Engineering, 2022, 148: 106766. |
| [38] | 蔡明, 高丽敏, 刘哲, 等. 不同条件下平面叶栅风洞流场品质的实验研究[J]. 推进技术, 2021, 42(5): 1162-1170. |
| CAI M, GAO L M, LIU Z, et al. Experimental study on flow field quality of linear cascade wind tunnel under different conditions[J]. Journal of Propulsion Technology, 2021, 42(5): 1162-1170 (in Chinese). |
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