TY - GEN
T1 - Research on 3D Temperature Field Reconstruction Method Based on Fusion of Structured Light Imaging and Infrared Thermography
AU - Hu, Huiqin
AU - Xu, Chao
AU - Wang, Dongze
AU - Hao, Rihua
N1 - Publisher Copyright:
© 2023 SPIE. All rights reserved.
PY - 2023
Y1 - 2023
N2 - Infrared thermography converts infrared radiation to infrared images and allows the object surface temperature to be measured through radiometric calibration. However, infrared images lack depth information and cannot accurately represent the surface temperature distribution of three-dimensional (3D) objects. At the same time, the temperature measurement results of an infrared thermal imager can be affected by changes in the directional emissivity of the object surface, making it difficult to guarantee the accuracy of temperature measurement. 3D imaging is commonly used to obtain the surface morphology of an object to provide reliable 3D data for subsequent research. The paper uses structured light 3D imaging and infrared thermography to reconstruct the 3D temperature field and investigates the influence of directional emissivity on temperature measurement results. Specifically, the point cloud is obtained using the structured light 3D imaging algorithm based on Gray-code encoding. The reconstructed 3D point cloud is then fused with an infrared image for 3D temperature field reconstruction. Based on the in-depth analysis of the influence of the object surface directional emissivity on the temperature measurement results, the temperature measurement error caused by the change in directional emissivity is corrected by using the geometric shape information of the object surface. The experimental results indicate that the proposed 3D temperature field reconstruction method, which is based on the fusion of structured light imaging and infrared thermography, improves the accuracy of temperature measurement results based on an effective reconstruction of the 3D temperature field. This method has important application value in various fields such as disease assessment, component processing, and instrument testing.
AB - Infrared thermography converts infrared radiation to infrared images and allows the object surface temperature to be measured through radiometric calibration. However, infrared images lack depth information and cannot accurately represent the surface temperature distribution of three-dimensional (3D) objects. At the same time, the temperature measurement results of an infrared thermal imager can be affected by changes in the directional emissivity of the object surface, making it difficult to guarantee the accuracy of temperature measurement. 3D imaging is commonly used to obtain the surface morphology of an object to provide reliable 3D data for subsequent research. The paper uses structured light 3D imaging and infrared thermography to reconstruct the 3D temperature field and investigates the influence of directional emissivity on temperature measurement results. Specifically, the point cloud is obtained using the structured light 3D imaging algorithm based on Gray-code encoding. The reconstructed 3D point cloud is then fused with an infrared image for 3D temperature field reconstruction. Based on the in-depth analysis of the influence of the object surface directional emissivity on the temperature measurement results, the temperature measurement error caused by the change in directional emissivity is corrected by using the geometric shape information of the object surface. The experimental results indicate that the proposed 3D temperature field reconstruction method, which is based on the fusion of structured light imaging and infrared thermography, improves the accuracy of temperature measurement results based on an effective reconstruction of the 3D temperature field. This method has important application value in various fields such as disease assessment, component processing, and instrument testing.
KW - 3D temperature field reconstruction
KW - data fusion
KW - infrared thermography
KW - structured light imaging
UR - http://www.scopus.com/inward/record.url?scp=85180123136&partnerID=8YFLogxK
U2 - 10.1117/12.2688991
DO - 10.1117/12.2688991
M3 - Conference contribution
AN - SCOPUS:85180123136
T3 - Proceedings of SPIE - The International Society for Optical Engineering
BT - Optoelectronic Imaging and Multimedia Technology X
A2 - Dai, Qionghai
A2 - Shimura, Tsutomu
A2 - Zheng, Zhenrong
PB - SPIE
T2 - Optoelectronic Imaging and Multimedia Technology X 2023
Y2 - 15 October 2023 through 16 October 2023
ER -