Prediction of forming limit diagram for AA5754 using artificial neural network modelling
Mohamed, Mohamed and Elatriby, Sherif and Shi, Zhusheng and Lin, Jianguo (2016) Prediction of forming limit diagram for AA5754 using artificial neural network modelling. Key Engineering Materials, 716. pp. 770-778. ISSN 1013-9826 (https://doi.org/10.4028/www.scientific.net/KEM.716...)
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Abstract
Warm stamping techniques have been employed to solve the formability problem in forming aluminium alloy panels. The formability of sheet metal is a crucial measure of its ability for forming complex-shaped panel components and is often evaluated by forming limit diagram (FLD). Although the forming limit is a simple tool to predict the formability of material, determining FLD experimentally at warm/hot forming condition is quite difficult. This paper presents the artificial neural network (ANN) modelling of the process based on experimental results (different temperature, 20°C-300°C and different forming rates, 5-300 mm.s-1) is introduced to predict FLDs. It is shown that the ANN can predict the FLDs at extreme conditions, which are out of the defined boundaries for training the ANN. According to comparisons, there is a good agreement between experimental and neural network results
ORCID iDs
Mohamed, Mohamed ORCID: https://orcid.org/0000-0002-1955-1318, Elatriby, Sherif, Shi, Zhusheng and Lin, Jianguo;-
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Item type: Article ID code: 58218 Dates: DateEvent17 October 2016Published17 October 2016Published Online12 July 2016Accepted31 December 2015SubmittedSubjects: Technology > Manufactures
Science > Mathematics > Electronic computers. Computer scienceDepartment: Faculty of Engineering > Design, Manufacture and Engineering Management Depositing user: Pure Administrator Date deposited: 24 Oct 2016 11:08 Last modified: 11 Nov 2024 11:32 Related URLs: URI: https://strathprints.strath.ac.uk/id/eprint/58218