Inverse estimation of wall temperature measurement under dispersion medium shielding based on CMA-ES algorithm

Special equipment is often accompanied by the phenomenon of high temperature and high pressure in operation, and it needs to be measured. With the deepening of research engineering application, some new problems appear, such as how to accurately measure and control the combustion temperature field i...

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Main Authors: Qian Lin-Feng, Ji Yu-Kun, Zhu Ze-Yu, Wu Di, Xu Guang-Ming, Huang Yong
Format: Article
Language:English
Published: EDP Sciences 2022-01-01
Series:Science and Technology for Energy Transition
Subjects:
Online Access:https://www.stet-review.org/articles/stet/full_html/2022/01/stet210284/stet210284.html
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author Qian Lin-Feng
Ji Yu-Kun
Zhu Ze-Yu
Wu Di
Xu Guang-Ming
Huang Yong
author_facet Qian Lin-Feng
Ji Yu-Kun
Zhu Ze-Yu
Wu Di
Xu Guang-Ming
Huang Yong
author_sort Qian Lin-Feng
collection DOAJ
description Special equipment is often accompanied by the phenomenon of high temperature and high pressure in operation, and it needs to be measured. With the deepening of research engineering application, some new problems appear, such as how to accurately measure and control the combustion temperature field in the hydrocarbon energy system, carry out combustion diagnosis, control the combustion temperature, minimize the generation of pollutants, put forward higher requirements for measurement technology. High temperature has a core impact on equipment safety, which is a key index that must be considered in design and material selection. Near the surface of these high-temperature objects, there are usually high-temperature translucent media and particles produced by combustion, which have a great impact on radiation temperature measurement. At the same time, with the change of temperature and concentration, these translucent media often have gradient refractive index change, which has a certain impact on radiation temperature measurement. These shielding objects interfere with radiation and affect the accuracy of measurement. This topic mainly focuses on the theoretical and experimental research of this kind of problem. The inversion algorithm of wall temperature reconstruction under the shielding condition of dispersed medium is proposed. Under the condition of introducing different measurement errors, the algorithm is verified, and the corresponding numerical simulation is carried out to verify the feasibility of the algorithm model.
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spelling doaj.art-8464197fcfee4cc99988af26031823df2022-12-22T03:59:00ZengEDP SciencesScience and Technology for Energy Transition2804-76992022-01-01771610.2516/stet/2022013stet210284Inverse estimation of wall temperature measurement under dispersion medium shielding based on CMA-ES algorithmQian Lin-Feng0Ji Yu-Kun1Zhu Ze-Yu2Wu Di3Xu Guang-Ming4Huang Yong5China Special Equipment Inspection and Research InstituteSchool of Energy Science and Engineering, Harbin Institute of TechnologySchool of Energy Science and Engineering, Harbin Institute of TechnologyChina Special Equipment Inspection and Research InstituteChina Special Equipment Inspection and Research InstituteSchool of Aeronautical Science and Engineering, Beihang UniversitySpecial equipment is often accompanied by the phenomenon of high temperature and high pressure in operation, and it needs to be measured. With the deepening of research engineering application, some new problems appear, such as how to accurately measure and control the combustion temperature field in the hydrocarbon energy system, carry out combustion diagnosis, control the combustion temperature, minimize the generation of pollutants, put forward higher requirements for measurement technology. High temperature has a core impact on equipment safety, which is a key index that must be considered in design and material selection. Near the surface of these high-temperature objects, there are usually high-temperature translucent media and particles produced by combustion, which have a great impact on radiation temperature measurement. At the same time, with the change of temperature and concentration, these translucent media often have gradient refractive index change, which has a certain impact on radiation temperature measurement. These shielding objects interfere with radiation and affect the accuracy of measurement. This topic mainly focuses on the theoretical and experimental research of this kind of problem. The inversion algorithm of wall temperature reconstruction under the shielding condition of dispersed medium is proposed. Under the condition of introducing different measurement errors, the algorithm is verified, and the corresponding numerical simulation is carried out to verify the feasibility of the algorithm model.https://www.stet-review.org/articles/stet/full_html/2022/01/stet210284/stet210284.htmlinverse radiation problemgradient refractive indexhigh-temperature measurementspecial equipment
spellingShingle Qian Lin-Feng
Ji Yu-Kun
Zhu Ze-Yu
Wu Di
Xu Guang-Ming
Huang Yong
Inverse estimation of wall temperature measurement under dispersion medium shielding based on CMA-ES algorithm
Science and Technology for Energy Transition
inverse radiation problem
gradient refractive index
high-temperature measurement
special equipment
title Inverse estimation of wall temperature measurement under dispersion medium shielding based on CMA-ES algorithm
title_full Inverse estimation of wall temperature measurement under dispersion medium shielding based on CMA-ES algorithm
title_fullStr Inverse estimation of wall temperature measurement under dispersion medium shielding based on CMA-ES algorithm
title_full_unstemmed Inverse estimation of wall temperature measurement under dispersion medium shielding based on CMA-ES algorithm
title_short Inverse estimation of wall temperature measurement under dispersion medium shielding based on CMA-ES algorithm
title_sort inverse estimation of wall temperature measurement under dispersion medium shielding based on cma es algorithm
topic inverse radiation problem
gradient refractive index
high-temperature measurement
special equipment
url https://www.stet-review.org/articles/stet/full_html/2022/01/stet210284/stet210284.html
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