Gas assisted injection moulding: Experiment and simulation. Industrial machine experimental studies of the effect of process variables on gas bubble formation, and with simulation based upon a pseudo-concentration method.

The gas assisted injection moulding process is an important extension to conventional injection moulding. Gas assist can be applied in a number of ways, but here the penetration of a gas bubble through the polymer melt is of interest. A 3D fi nite element implementation of a pseudo concentration...

Full description

Bibliographic Details
Main Author: Mulvaney-Johnson, Leigh
Other Authors: Olley, Peter
Language:en
Published: University of Bradford 2011
Subjects:
Online Access:http://hdl.handle.net/10454/4983
id ndltd-BRADFORD-oai-bradscholars.brad.ac.uk-10454-4983
record_format oai_dc
spelling ndltd-BRADFORD-oai-bradscholars.brad.ac.uk-10454-49832019-09-24T03:02:06Z Gas assisted injection moulding: Experiment and simulation. Industrial machine experimental studies of the effect of process variables on gas bubble formation, and with simulation based upon a pseudo-concentration method. Mulvaney-Johnson, Leigh Olley, Peter Coates, Philip D. Gas assisted injection moulding Simulation Gas bubble formation Wall thickness prediction The gas assisted injection moulding process is an important extension to conventional injection moulding. Gas assist can be applied in a number of ways, but here the penetration of a gas bubble through the polymer melt is of interest. A 3D fi nite element implementation of a pseudo concentration method is employed to simulate the primary penetration of the gas bubble. The wall thickness prediction is an important result since the extent of bubble penetration is sensitive to the remaining melt fraction. A number of methods for experimental measurement are developed to measure characteristics of the gas assisted injection moulding process dynamics and product. Key process variables, on an industrial gas-assist machine, were measured and analysed, leading to an empirical model for wall thickness prediction. Gas delay time and injection velocity are shown to be most influential in controlling residual wall thickness. Simulation results are evaluated against the empirical model. The trends observed, for simulation and experiment, in wall thickness after changes in process variable settings are found to agree qualitatively. The wall thickness prediction is found to be within 10% of the experimentally obtained measurements. EPSRC 2011-08-01T16:53:46Z 2011-08-01T16:53:46Z 2011-08-01 2001 Thesis doctoral PhD http://hdl.handle.net/10454/4983 en <a rel="license" href="http://creativecommons.org/licenses/by-nc-nd/3.0/"><img alt="Creative Commons License" style="border-width:0" src="http://i.creativecommons.org/l/by-nc-nd/3.0/88x31.png" /></a><br />The University of Bradford theses are licenced under a <a rel="license" href="http://creativecommons.org/licenses/by-nc-nd/3.0/">Creative Commons Licence</a>. University of Bradford Department of Mechanical and Medical Engineering
collection NDLTD
language en
sources NDLTD
topic Gas assisted injection moulding
Simulation
Gas bubble formation
Wall thickness prediction
spellingShingle Gas assisted injection moulding
Simulation
Gas bubble formation
Wall thickness prediction
Mulvaney-Johnson, Leigh
Gas assisted injection moulding: Experiment and simulation. Industrial machine experimental studies of the effect of process variables on gas bubble formation, and with simulation based upon a pseudo-concentration method.
description The gas assisted injection moulding process is an important extension to conventional injection moulding. Gas assist can be applied in a number of ways, but here the penetration of a gas bubble through the polymer melt is of interest. A 3D fi nite element implementation of a pseudo concentration method is employed to simulate the primary penetration of the gas bubble. The wall thickness prediction is an important result since the extent of bubble penetration is sensitive to the remaining melt fraction. A number of methods for experimental measurement are developed to measure characteristics of the gas assisted injection moulding process dynamics and product. Key process variables, on an industrial gas-assist machine, were measured and analysed, leading to an empirical model for wall thickness prediction. Gas delay time and injection velocity are shown to be most influential in controlling residual wall thickness. Simulation results are evaluated against the empirical model. The trends observed, for simulation and experiment, in wall thickness after changes in process variable settings are found to agree qualitatively. The wall thickness prediction is found to be within 10% of the experimentally obtained measurements. === EPSRC
author2 Olley, Peter
author_facet Olley, Peter
Mulvaney-Johnson, Leigh
author Mulvaney-Johnson, Leigh
author_sort Mulvaney-Johnson, Leigh
title Gas assisted injection moulding: Experiment and simulation. Industrial machine experimental studies of the effect of process variables on gas bubble formation, and with simulation based upon a pseudo-concentration method.
title_short Gas assisted injection moulding: Experiment and simulation. Industrial machine experimental studies of the effect of process variables on gas bubble formation, and with simulation based upon a pseudo-concentration method.
title_full Gas assisted injection moulding: Experiment and simulation. Industrial machine experimental studies of the effect of process variables on gas bubble formation, and with simulation based upon a pseudo-concentration method.
title_fullStr Gas assisted injection moulding: Experiment and simulation. Industrial machine experimental studies of the effect of process variables on gas bubble formation, and with simulation based upon a pseudo-concentration method.
title_full_unstemmed Gas assisted injection moulding: Experiment and simulation. Industrial machine experimental studies of the effect of process variables on gas bubble formation, and with simulation based upon a pseudo-concentration method.
title_sort gas assisted injection moulding: experiment and simulation. industrial machine experimental studies of the effect of process variables on gas bubble formation, and with simulation based upon a pseudo-concentration method.
publisher University of Bradford
publishDate 2011
url http://hdl.handle.net/10454/4983
work_keys_str_mv AT mulvaneyjohnsonleigh gasassistedinjectionmouldingexperimentandsimulationindustrialmachineexperimentalstudiesoftheeffectofprocessvariablesongasbubbleformationandwithsimulationbaseduponapseudoconcentrationmethod
_version_ 1719255457655160832