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Simultaneous 2D temperature and velocity measurement using a one-color-camera PLIF method combined with a physically
Applied Optics
|October 18, 2022
Summary
This study introduces a new laser fluorescence method for accurate 2D temperature and velocity measurements in multi-phase flow. It significantly reduces errors caused by image misalignment and thermal effects, improving measurement precision.
Area of Science:
- Fluid dynamics
- Optical diagnostics
- Laser-induced fluorescence
Background:
- Accurate simultaneous temperature and velocity measurements are crucial for understanding complex multi-phase flows.
- Existing laser-induced fluorescence (LIF) methods face challenges with image misalignment and thermal effects, particularly at phase boundaries.
- High measurement deviations (30°C-50°C for temperature, 77.6% for velocity) limit the application of LIF in multi-phase flows.
Purpose of the Study:
- To develop a time-resolved two-color LIF method for simultaneous 2D temperature and velocity measurements in multi-phase flow.
- To enhance measurement accuracy by addressing temperature deviations from image misalignment and velocity calculation errors due to thermal processes.
- To improve the reliability of LIF-based diagnostics in complex, coupled thermal-flow environments.
Main Methods:
- A time-resolved two-color laser induced fluorescence (LIF) technique utilizing a temperature-sensitive dye molecule for simultaneous temperature and velocity tagging.
- Implementation of a one-color-camera system to minimize temperature deviation caused by image misalignment at phase boundaries.
- Introduction of a physically constrained temperature tagging method to mitigate velocity calculation errors influenced by thermal diffusion and convection.
Main Results:
- The one-color-camera system reduced temperature deviation from 30°C-50°C to below 10°C near the two-phase flow boundary, achieving a high contrast ratio (0.41-0.43).
- The physically constrained temperature tagging method decreased relative velocity deviation from 77.6% to below 10%.
- Demonstrated significant improvement in the accuracy of simultaneous temperature and velocity measurements in multi-phase flow.
Conclusions:
- The proposed LIF method offers a robust solution for accurate 2D temperature and velocity measurements in complex multi-phase flows.
- The developed techniques effectively address key error sources, enhancing the applicability of LIF diagnostics.
- This advancement is vital for detailed studies of phenomena involving strong coupling between temperature and velocity in multi-phase systems.
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