Oxidation Response of Transpiration Cooled ZrB2 on a Hypersonic Stagnation Point - Dataset

This work presents the oxidation response of a transpiration cooled hypersonic stagnation point made of porous ZrB2. Low order models are used to calculate the surface temperature and oxygen concentration for a given flight condition. An analytical material oxidation model computes the surface reces...

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Main Authors: Ewenz Rocher, M, Hermann, T, McGilvray, M
Format: Dataset
Language:English
Published: University of Oxford 2022
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author Ewenz Rocher, M
Hermann, T
McGilvray, M
author_facet Ewenz Rocher, M
Hermann, T
McGilvray, M
author_sort Ewenz Rocher, M
collection OXFORD
description This work presents the oxidation response of a transpiration cooled hypersonic stagnation point made of porous ZrB2. Low order models are used to calculate the surface temperature and oxygen concentration for a given flight condition. An analytical material oxidation model computes the surface recession and oxide layer thickness. A 500 s steady state trajectory at 44 km altitude and 3.6 km/s velocity is found to lead to 2.2 mm recession of the 3 mm nose radius. A constant mass injection at a blowing parameter of 0.6 reduces the recession to just 0.21 mm. The displacement of freestream oxygen by transpiration cooling has a significant effect on oxidation. Not accounting for the displacement of oxygen at the surface would increase the recession by up to 197%. The recession along the transient trajectory of an envisioned hypersonic vehicle with a 3 mm nose radius is found to exceed 0.94 mm with no mass injection. It is shown that nitrogen and helium injection at a blowing parameter of 0.6 can reduce the recession to 0.13 mm and 0.075 mm, respectively.
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spelling oxford-uuid:501785f5-24a6-4db1-b8f9-d68420beb70c2022-11-29T16:51:25ZOxidation Response of Transpiration Cooled ZrB2 on a Hypersonic Stagnation Point - DatasetDatasethttp://purl.org/coar/resource_type/c_ddb1uuid:501785f5-24a6-4db1-b8f9-d68420beb70cEnglishHyrax DepositUniversity of Oxford2022Ewenz Rocher, MHermann, TMcGilvray, MThis work presents the oxidation response of a transpiration cooled hypersonic stagnation point made of porous ZrB2. Low order models are used to calculate the surface temperature and oxygen concentration for a given flight condition. An analytical material oxidation model computes the surface recession and oxide layer thickness. A 500 s steady state trajectory at 44 km altitude and 3.6 km/s velocity is found to lead to 2.2 mm recession of the 3 mm nose radius. A constant mass injection at a blowing parameter of 0.6 reduces the recession to just 0.21 mm. The displacement of freestream oxygen by transpiration cooling has a significant effect on oxidation. Not accounting for the displacement of oxygen at the surface would increase the recession by up to 197%. The recession along the transient trajectory of an envisioned hypersonic vehicle with a 3 mm nose radius is found to exceed 0.94 mm with no mass injection. It is shown that nitrogen and helium injection at a blowing parameter of 0.6 can reduce the recession to 0.13 mm and 0.075 mm, respectively.
spellingShingle Ewenz Rocher, M
Hermann, T
McGilvray, M
Oxidation Response of Transpiration Cooled ZrB2 on a Hypersonic Stagnation Point - Dataset
title Oxidation Response of Transpiration Cooled ZrB2 on a Hypersonic Stagnation Point - Dataset
title_full Oxidation Response of Transpiration Cooled ZrB2 on a Hypersonic Stagnation Point - Dataset
title_fullStr Oxidation Response of Transpiration Cooled ZrB2 on a Hypersonic Stagnation Point - Dataset
title_full_unstemmed Oxidation Response of Transpiration Cooled ZrB2 on a Hypersonic Stagnation Point - Dataset
title_short Oxidation Response of Transpiration Cooled ZrB2 on a Hypersonic Stagnation Point - Dataset
title_sort oxidation response of transpiration cooled zrb2 on a hypersonic stagnation point dataset
work_keys_str_mv AT ewenzrocherm oxidationresponseoftranspirationcooledzrb2onahypersonicstagnationpointdataset
AT hermannt oxidationresponseoftranspirationcooledzrb2onahypersonicstagnationpointdataset
AT mcgilvraym oxidationresponseoftranspirationcooledzrb2onahypersonicstagnationpointdataset