An approximation to the PTT viscoelastic model for Gas Assisted Injection Moulding simulation
Yes === An approximation to the Phan-Thien Tanner (PTT) constitutive model is developed with the aim of giving low-cost simulation of Gas Assisted Injection Moulding (GAIM) while incorporating important viscoelastic characteristics. It is shown that the developed model gives a response typical of...
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ndltd-BRADFORD-oai-bradscholars.brad.ac.uk-10454-176332021-02-09T05:01:19Z An approximation to the PTT viscoelastic model for Gas Assisted Injection Moulding simulation Olley, Peter Gas Assisted Injection Moulding (GAIM) PTT approximation Residual wall thickness Yes An approximation to the Phan-Thien Tanner (PTT) constitutive model is developed with the aim of giving low-cost simulation of Gas Assisted Injection Moulding (GAIM) while incorporating important viscoelastic characteristics. It is shown that the developed model gives a response typical of full viscoelastic models in transient and steady state uniaxial and constant shear rate deformations. The model is incorporated into a 3D finite element GAIM simulation which uses the ‘pseudo-concentration’ method to predict residual polymer, and applied to published experimental results for a Boger fluid and a shear-thinning polystyrene melt. It is shown that the simulation gives a very good match to published results for the Boger fluid which show increasing Residual Wall Thickness (RWT) with increasing Deborah number. Against the shear-thinning polymer, the quality of match depends upon which of two ‘plausible’ relaxation times is chosen; qualitatively different results arise from two different means of estimating a single relaxation time. A ‘multi-mode’ approach is developed to avoid this uncertainty. It is shown that the multi-mode approach gives decreasing RWT with increasing Deborah number in agreement with the published experimental results, and avoids the issues that arise from estimating a single relaxation time for a molten polymer. 2020-02-14T12:42:31Z 2020-02-14T12:42:31Z 2020-04 2020-01-30 2020-02-06 Article Accepted manuscript Olley P (2020) An approximation to the PTT viscoelastic model for Gas Assisted Injection Moulding simulation. Journal of the Non-Newtonian Fluid Mechanics. 278: 104246. http://hdl.handle.net/10454/17633 en https://doi.org/10.1016/j.jnnfm.2020.104246 © 2020 Elsevier B.V. All rights reserved. Reproduced in accordance with the publisher's self-archiving policy. This manuscript version is made available under the CC-BY-NC-ND 4.0 license. |
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language |
en |
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topic |
Gas Assisted Injection Moulding (GAIM) PTT approximation Residual wall thickness |
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Gas Assisted Injection Moulding (GAIM) PTT approximation Residual wall thickness Olley, Peter An approximation to the PTT viscoelastic model for Gas Assisted Injection Moulding simulation |
description |
Yes === An approximation to the Phan-Thien Tanner (PTT) constitutive model is
developed with the aim of giving low-cost simulation of Gas Assisted Injection Moulding
(GAIM) while incorporating important viscoelastic characteristics. It is shown that the
developed model gives a response typical of full viscoelastic models in transient and steady state
uniaxial and constant shear rate deformations. The model is incorporated into a 3D
finite element GAIM simulation which uses the ‘pseudo-concentration’ method to predict
residual polymer, and applied to published experimental results for a Boger fluid and a
shear-thinning polystyrene melt.
It is shown that the simulation gives a very good match to published results for the Boger
fluid which show increasing Residual Wall Thickness (RWT) with increasing Deborah
number. Against the shear-thinning polymer, the quality of match depends upon which of two
‘plausible’ relaxation times is chosen; qualitatively different results arise from two different
means of estimating a single relaxation time. A ‘multi-mode’ approach is developed to avoid
this uncertainty. It is shown that the multi-mode approach gives decreasing RWT with
increasing Deborah number in agreement with the published experimental results, and
avoids the issues that arise from estimating a single relaxation time for a molten polymer. |
author |
Olley, Peter |
author_facet |
Olley, Peter |
author_sort |
Olley, Peter |
title |
An approximation to the PTT viscoelastic model for Gas Assisted Injection Moulding simulation |
title_short |
An approximation to the PTT viscoelastic model for Gas Assisted Injection Moulding simulation |
title_full |
An approximation to the PTT viscoelastic model for Gas Assisted Injection Moulding simulation |
title_fullStr |
An approximation to the PTT viscoelastic model for Gas Assisted Injection Moulding simulation |
title_full_unstemmed |
An approximation to the PTT viscoelastic model for Gas Assisted Injection Moulding simulation |
title_sort |
approximation to the ptt viscoelastic model for gas assisted injection moulding simulation |
publishDate |
2020 |
url |
http://hdl.handle.net/10454/17633 |
work_keys_str_mv |
AT olleypeter anapproximationtothepttviscoelasticmodelforgasassistedinjectionmouldingsimulation AT olleypeter approximationtothepttviscoelasticmodelforgasassistedinjectionmouldingsimulation |
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1719375823176204288 |