Three-dimensional temperature field measurement in high-temperature gas flows through phosphorescent spectral light field imaging

Accurate three-dimensional (3D) temperature measurement in high-temperature gas flows with restricted optical access is essential for understanding the coupled heat and mass transfer mechanism and optimizing high-performance thermal systems. This work develops a single-viewpoint instantaneous volumetric thermometry technique based on phosphorescent spectral light field imaging (SLFI). First, a geometric-optics-based SLFI forward model specifically tailored to sparsely distributed phosphorescent tracer particles is established. Subsequently, an enhanced dual-band reconstruction algorithm is proposed to reconstruct the volumetric emission intensity fields by enforcing inter-band physical consistency, enabling accurate 3D temperature reconstruction based on voxel-wise phosphorescence intensity ratios. Following a numerical evaluation of the proposed method, a SLFI-based 3D temperature measurement system is built and experimentally validated in the turbulent shear layer downstream of a turbine vane cascade. Numerical simulations demonstrate reconstruction quality factors exceeding 0.92 and maximum relative temperature errors below 1.52% over the temperature range of 300–800 K at particle concentrations ranging from 0.2 to 0.8 particles per micro-lens (ppm). Experimental results show that the developed SLFI-based 3D temperature measurement system achieves a mean relative error of 1.58% under operating conditions of 373–773 K compared to a thermocouple measurement at a reference point. These results confirm the accuracy and robustness of the proposed technique for volumetric thermometry in high-temperature gas flows.

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Publication Details

Journal
International Journal of Heat and Mass Transfer
Published
2026-09-29
DOI
https://doi.org/10.1016/j.ijheatmasstransfer.2026.129649
Primary Topic
Combustion and flame dynamics
Type
article
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Three-dimensional temperature field measurement in high-temperature gas flows through phosphorescent spectral light field imaging

Qi Qi, Chuanlong Xu, Biao Zhang, Guoyan Liu et al.
International Journal of Heat and Mass Transfer
Combustion and flame dynamics
article

Three-dimensional temperature field measurement in high-temperature gas flows through phosphorescent spectral light field imaging

Qi Qi, Chuanlong Xu, Biao Zhang, Guoyan Liu, Yi Zhou, Manfu Chen, Jian Li
article en

Abstract

Accurate three-dimensional (3D) temperature measurement in high-temperature gas flows with restricted optical access is essential for understanding the coupled heat and mass transfer mechanism and optimizing high-performance thermal systems. This work develops a single-viewpoint instantaneous volumetric thermometry technique based on phosphorescent spectral light field imaging (SLFI). First, a geometric-optics-based SLFI forward model specifically tailored to sparsely distributed phosphorescent tracer particles is established. Subsequently, an enhanced dual-band reconstruction algorithm is proposed to reconstruct the volumetric emission intensity fields by enforcing inter-band physical consistency, enabling accurate 3D temperature reconstruction based on voxel-wise phosphorescence intensity ratios. Following a numerical evaluation of the proposed method, a SLFI-based 3D temperature measurement system is built and experimentally validated in the turbulent shear layer downstream of a turbine vane cascade. Numerical simulations demonstrate reconstruction quality factors exceeding 0.92 and maximum relative temperature errors below 1.52% over the temperature range of 300–800 K at particle concentrations ranging from 0.2 to 0.8 particles per micro-lens (ppm). Experimental results show that the developed SLFI-based 3D temperature measurement system achieves a mean relative error of 1.58% under operating conditions of 373–773 K compared to a thermocouple measurement at a reference point. These results confirm the accuracy and robustness of the proposed technique for volumetric thermometry in high-temperature gas flows.

International Journal of Heat and Mass TransferVol. 273
University of Kent (GB), Southeast University (CN)
Affordable and clean energy
Openalex Percentile: Top 14%
Combustion and flame dynamics
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