Reversal modeling and optimal design of hyper-elastic diaphragm in space fuel tanks

Abstract Diaphragm tanks are a common type of pressurized tanks in which the diaphragm is used to separate the fuel part from the high-pressure part, compress the fuel in the tank, and reduce free space to avoid liquid fuel sloshing. The main purpose of the application of the diaphragm tanks is to e...

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Main Authors: Hossein Sabaghzadeh, Mazyar Shafaee
Format: Article
Language:English
Published: Springer 2021-09-01
Series:SN Applied Sciences
Subjects:
Online Access:https://doi.org/10.1007/s42452-021-04785-0
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spelling doaj-1ac98fa27fe04175850d1e7536ad6e472021-09-12T11:15:46ZengSpringerSN Applied Sciences2523-39632523-39712021-09-0131012510.1007/s42452-021-04785-0Reversal modeling and optimal design of hyper-elastic diaphragm in space fuel tanksHossein Sabaghzadeh0Mazyar Shafaee1Faculty of New Sciences and Technologies, University of TehranFaculty of New Sciences and Technologies, University of TehranAbstract Diaphragm tanks are a common type of pressurized tanks in which the diaphragm is used to separate the fuel part from the high-pressure part, compress the fuel in the tank, and reduce free space to avoid liquid fuel sloshing. The main purpose of the application of the diaphragm tanks is to ensure the continuous flow of pure fuel without the gas bubble into the spacecraft engine. In space mission, diaphragm tanks will experience a wide range of acceleration at different levels of filling. These conditions change the state of equilibrium between the volume of the gas and the fluid and move the diaphragm toward the discharge portion of the tank. As a result of this movement, the diaphragm curvature is changed and the structure collapses at rest, which is called folding. When large nonlinear folding occurs, there is potential for diaphragm damage through wear, rubbing, and excessive stress. Predicting diaphragm behavior in order to calculate a diaphragm’s susceptibility to corrosion, rupture, and surface strain is one of the major design challenges. In this study, new method is provided to analyze deformation of diaphragm tanks by using numerical techniques. Also, the investigation method is verified by using experimental methods. In this process, first a 3D numerical model is developed to investigate the inverse behavior of a hyper-elastic diaphragm by using ANSYS software and the results of the simulations are compared with the results of experimental tests in the same situation. After validation, a second case study is performed to survey the effect of reducing diaphragm thickness according to the strain energy and natural frequency behavior of the diaphragm in different fill levels. The results of this study showed that numerical simulations are capable of reconstructing diaphragm inversion properties with good accuracy. In addition, the numerical model can detect the proper thickness for the diaphragm. In the last section, algorithm and software for optimal automatic modeling of diaphragm tanks are proposed.https://doi.org/10.1007/s42452-021-04785-0Finite elementInverting diaphragmHyper-elastic materialNumerical analysis
collection DOAJ
language English
format Article
sources DOAJ
author Hossein Sabaghzadeh
Mazyar Shafaee
spellingShingle Hossein Sabaghzadeh
Mazyar Shafaee
Reversal modeling and optimal design of hyper-elastic diaphragm in space fuel tanks
SN Applied Sciences
Finite element
Inverting diaphragm
Hyper-elastic material
Numerical analysis
author_facet Hossein Sabaghzadeh
Mazyar Shafaee
author_sort Hossein Sabaghzadeh
title Reversal modeling and optimal design of hyper-elastic diaphragm in space fuel tanks
title_short Reversal modeling and optimal design of hyper-elastic diaphragm in space fuel tanks
title_full Reversal modeling and optimal design of hyper-elastic diaphragm in space fuel tanks
title_fullStr Reversal modeling and optimal design of hyper-elastic diaphragm in space fuel tanks
title_full_unstemmed Reversal modeling and optimal design of hyper-elastic diaphragm in space fuel tanks
title_sort reversal modeling and optimal design of hyper-elastic diaphragm in space fuel tanks
publisher Springer
series SN Applied Sciences
issn 2523-3963
2523-3971
publishDate 2021-09-01
description Abstract Diaphragm tanks are a common type of pressurized tanks in which the diaphragm is used to separate the fuel part from the high-pressure part, compress the fuel in the tank, and reduce free space to avoid liquid fuel sloshing. The main purpose of the application of the diaphragm tanks is to ensure the continuous flow of pure fuel without the gas bubble into the spacecraft engine. In space mission, diaphragm tanks will experience a wide range of acceleration at different levels of filling. These conditions change the state of equilibrium between the volume of the gas and the fluid and move the diaphragm toward the discharge portion of the tank. As a result of this movement, the diaphragm curvature is changed and the structure collapses at rest, which is called folding. When large nonlinear folding occurs, there is potential for diaphragm damage through wear, rubbing, and excessive stress. Predicting diaphragm behavior in order to calculate a diaphragm’s susceptibility to corrosion, rupture, and surface strain is one of the major design challenges. In this study, new method is provided to analyze deformation of diaphragm tanks by using numerical techniques. Also, the investigation method is verified by using experimental methods. In this process, first a 3D numerical model is developed to investigate the inverse behavior of a hyper-elastic diaphragm by using ANSYS software and the results of the simulations are compared with the results of experimental tests in the same situation. After validation, a second case study is performed to survey the effect of reducing diaphragm thickness according to the strain energy and natural frequency behavior of the diaphragm in different fill levels. The results of this study showed that numerical simulations are capable of reconstructing diaphragm inversion properties with good accuracy. In addition, the numerical model can detect the proper thickness for the diaphragm. In the last section, algorithm and software for optimal automatic modeling of diaphragm tanks are proposed.
topic Finite element
Inverting diaphragm
Hyper-elastic material
Numerical analysis
url https://doi.org/10.1007/s42452-021-04785-0
work_keys_str_mv AT hosseinsabaghzadeh reversalmodelingandoptimaldesignofhyperelasticdiaphragminspacefueltanks
AT mazyarshafaee reversalmodelingandoptimaldesignofhyperelasticdiaphragminspacefueltanks
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