Optimization and Re-Design of Integrated Thermal Protection Systems Considering Thermo-Mechanical Performance

Integrated thermal protection system (ITPS) is regarded as one of the most promising thermal protection concepts with both thermal insulation and load-bearing capacities. However, the traditional layout of webs could inevitably lead to thermal short effects and high risk of buckling failure of the I...

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Main Authors: Qiuyi Xu, Shu Li, Yang Meng
Format: Article
Language:English
Published: MDPI AG 2021-07-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/11/15/6916
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spelling doaj-055653c39520426fb3d56eeefcf9cf822021-08-06T15:19:08ZengMDPI AGApplied Sciences2076-34172021-07-01116916691610.3390/app11156916Optimization and Re-Design of Integrated Thermal Protection Systems Considering Thermo-Mechanical PerformanceQiuyi Xu0Shu Li1Yang Meng2School of Aeronautic Science and Engineering, Beihang University, Xueyuan Road No. 37, Beijing 100191, ChinaSchool of Aeronautic Science and Engineering, Beihang University, Xueyuan Road No. 37, Beijing 100191, ChinaSchool of Aeronautic Science and Engineering, Beihang University, Xueyuan Road No. 37, Beijing 100191, ChinaIntegrated thermal protection system (ITPS) is regarded as one of the most promising thermal protection concepts with both thermal insulation and load-bearing capacities. However, the traditional layout of webs could inevitably lead to thermal short effects and high risk of buckling failure of the ITPS. A topological optimization method for the unit cell of the ITPS was established to minimize the equivalent thermal conductivity and elastic strain energy with the constraint of maintaining structural efficiency. The ITPS was re-designed consulting the optimized cell configuration. In order to control the buckling-mode shape and the associated buckling load of the ITPS, the new design was further optimized, subjected to the total weight of the initial design. Detailed finite element models were established to validate the structural responses. By contrast, the optimized design presents lower bottom surface temperature and better thermal buckling characteristics, performing a better balance between thermal insulation and load-bearing constraints.https://www.mdpi.com/2076-3417/11/15/6916integrated thermal protection systemsandwich structuretopology optimizationthermal-mechanical analysisthermal buckling
collection DOAJ
language English
format Article
sources DOAJ
author Qiuyi Xu
Shu Li
Yang Meng
spellingShingle Qiuyi Xu
Shu Li
Yang Meng
Optimization and Re-Design of Integrated Thermal Protection Systems Considering Thermo-Mechanical Performance
Applied Sciences
integrated thermal protection system
sandwich structure
topology optimization
thermal-mechanical analysis
thermal buckling
author_facet Qiuyi Xu
Shu Li
Yang Meng
author_sort Qiuyi Xu
title Optimization and Re-Design of Integrated Thermal Protection Systems Considering Thermo-Mechanical Performance
title_short Optimization and Re-Design of Integrated Thermal Protection Systems Considering Thermo-Mechanical Performance
title_full Optimization and Re-Design of Integrated Thermal Protection Systems Considering Thermo-Mechanical Performance
title_fullStr Optimization and Re-Design of Integrated Thermal Protection Systems Considering Thermo-Mechanical Performance
title_full_unstemmed Optimization and Re-Design of Integrated Thermal Protection Systems Considering Thermo-Mechanical Performance
title_sort optimization and re-design of integrated thermal protection systems considering thermo-mechanical performance
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2021-07-01
description Integrated thermal protection system (ITPS) is regarded as one of the most promising thermal protection concepts with both thermal insulation and load-bearing capacities. However, the traditional layout of webs could inevitably lead to thermal short effects and high risk of buckling failure of the ITPS. A topological optimization method for the unit cell of the ITPS was established to minimize the equivalent thermal conductivity and elastic strain energy with the constraint of maintaining structural efficiency. The ITPS was re-designed consulting the optimized cell configuration. In order to control the buckling-mode shape and the associated buckling load of the ITPS, the new design was further optimized, subjected to the total weight of the initial design. Detailed finite element models were established to validate the structural responses. By contrast, the optimized design presents lower bottom surface temperature and better thermal buckling characteristics, performing a better balance between thermal insulation and load-bearing constraints.
topic integrated thermal protection system
sandwich structure
topology optimization
thermal-mechanical analysis
thermal buckling
url https://www.mdpi.com/2076-3417/11/15/6916
work_keys_str_mv AT qiuyixu optimizationandredesignofintegratedthermalprotectionsystemsconsideringthermomechanicalperformance
AT shuli optimizationandredesignofintegratedthermalprotectionsystemsconsideringthermomechanicalperformance
AT yangmeng optimizationandredesignofintegratedthermalprotectionsystemsconsideringthermomechanicalperformance
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