Materials Map

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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Publications (52/52 displayed)

  • 2024Study on the effect of carbon-fiber-reinforced composites on tribological propertiescitations
  • 2024Machine learning model of acoustic signatures: Towards digitalised thermal spray manufacturing2citations
  • 2024Composite structure failure analysis post Lithium-Ion battery fire3citations
  • 2024Design and evaluation of a novel variable-length stepped scarf repair technique using a cohesive damage model1citations
  • 2024Deep learning and image data-based surface cracks recognition of laser nitrided Titanium alloy15citations
  • 2023Towards a virtual test framework to predict residual compressive strength after lightning strikes8citations
  • 2023Steps towards a connected digital factory cost model2citations
  • 2023The influence of carbon fiber composite specimen design parameters on artificial lightning strike current dissipation and material thermal damage6citations
  • 2023Numerical shape, thickness and stacking sequence optimisation and experimental study of hybrid composite plates under in-plane shear loading11citations
  • 2023Machine learning model of acoustic signatures: towards digitalised thermal spray manufacturing.2citations
  • 2023An experimental investigation of the impact response and post-impact shear buckling behaviour of hybrid composite laminates16citations
  • 2023Enhanced lightning strike protection using vertically oriented carbon fiber melded with conventional carbon fiber-reinforced composite and its validation through damage analysiscitations
  • 2022Design, novel quality check and experimental test of an original variable length stepped scarf repair scheme26citations
  • 2022Quantifying the Sensitivity of Plate Aspect Ratio and Edge Boundary Conditions on CFRP Plate Impact and Post Impact Residual Strength3citations
  • 2022Experimental and numerical study of hybrid (CFRP-GFRP) composite laminates containing circular cut-outs under shear loading19citations
  • 2022Experimental and numerical study of hybrid (CFRP-GFRP) composite laminates containing circular cut-outs under shear loading19citations
  • 2022Correlating tool wear to intact carbon fibre contacts during drilling of continuous fibre Reinforced Polymers (CFRP)5citations
  • 2021Design, novel quality check and experimental test of an original variable length stepped scarf repair scheme26citations
  • 2021A scalable cost modelling architecture for evaluating the production cost-effectiveness of novel joining techniques for aircraft structures3citations
  • 2020Experimental Investigation of Strain Sensitivity for Surface Bonded Fibre Optic Sensors20citations
  • 2019Experimental evaluation of residual tensile strength of hybrid composite aerospace materials after low velocity impact54citations
  • 2019Understanding the influence of laminate stacking sequence on strain/stress concentrations in thin laminates at repair holes with large scarf angles8citations
  • 2019A progressive damage model for simulating lightning strike on composite materialcitations
  • 2019Measurement and Analysis of Tool Wear When Drilling CFRPcitations
  • 2019A Lightning Plasma and Composite Specimen Damage Simulation Framework for SAE Test Waveform Bcitations
  • 2019Specimen representation on the prediction of artificial test lightning plasma, resulting specimen loading and subsequent composite material damage18citations
  • 2019An Experimental Investigation of Tool Wear When Conventionally Drilling CFRPcitations
  • 2018Quantifying the Influence of Plasma - Solid Mechanics Coupling on the Prediction of Lightning Strike Composite Specimen Damagecitations
  • 2018Modelling of mechanical failure due to constrained thermal expansion at the lightning arc attachment point in carbon fibre epoxy composite material23citations
  • 2018Numerical modelling of plasma current density & pressure impact on composite damage during lightning strike testingcitations
  • 2018Numerical Simulation of Direct Effects of Lightning Strike on Aircraft Skin Composite Laminatecitations
  • 2017A Multiphysics Simulation Approach for Efficient Modeling of Lightning Strike Tests on Aircraft Structures35citations
  • 2017The Influence of Static and Dynamic Platform Characteristics on Hole Quality, Cycle Time and Tool Wear When Drilling Aerospace Metal Alloy Stackscitations
  • 2016Wing Panel Design with Novel Skin-Buckling Containment Features11citations
  • 2016Tool Wear Mechanisms And Tool Wear Modelling For CFRP Drillingcitations
  • 2016Tool Wear Mechanisms And Tool Wear Modelling For CFRP Drillingcitations
  • 2015Understanding aerospace composite components' supply chain carbon emissionscitations
  • 2014Investigation of Aircraft Panel Deformations during Riveting Processcitations
  • 2014Influence of Boundary Conditions on the Low Velocity Impact Damage Carbon Fibre Reinforced Plastic Plates (ICTWS2014-0501)citations
  • 2013NONLINEAR NUMERICAL MODELLING OF LIGHTENING STRIKE EFFECT ON COMPOSITE PANELS WITH TEMPERATURE DEPENDANT MATERIAL PROPERTIEScitations
  • 2013Integrating allowable design strains in composites with whole life value2citations
  • 2013Experimental investigation of thermoforming carbon fibre-reinforced polyphenylene sulphide composites17citations
  • 2012Thermoforming carbon fibre-reinforced thermoplastic composites36citations
  • 2012Mechanical and Thermal Properties of Polyphenylene Sulfide/Multiwalled Carbon Nanotube Composites40citations
  • 2012Digital Methods for Process Development in Manufacturing and Their Relevance to Value Driven Design3citations
  • 2011Preparation and properties of polyphenylene sulfide/multi-walled carbon nanotube composites1citations
  • 2011The theoretical prediction of thermoformed carbon fibre reinforced thermoplastic materials in support of optimal process design1citations
  • 2011Fatigue performance of aircraft panels with novel skin buckling containment features8citations
  • 2011Part form prediction methods for carbon fibre reinforced thermoplastic composite materialscitations
  • 2010Development of a digital methodology for composite process & manufacture in aerospace assemblies2citations
  • 2006Modified stiffened panel analysis methods for laser beam and friction stir welded aircraft panels26citations
  • 2006The Characterization of Friction Stir Welding Process Effects on Stiffened Panel Buckling Performancecitations

Places of action

Chart of shared publication
Mohanty, Shalini
1 / 1 shared
Tyagi, Rashi
1 / 1 shared
Faisal, Nadimul Haque
2 / 24 shared
Mccloskey, Alex
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Agrawal, Anupam
2 / 9 shared
Goel, Saurav
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Llavori, Iñigo
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Tiwari, Ashutosh
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Viswanathan, V.
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Damghani, Mahdi
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Egerton, George
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Mcclory, Caroline
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Chan, Chi-Wai
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Awan, Muhammad Rizwan
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Kumar, Dileep
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Xu, X.
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Wisnom, M. R.
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Lee, J.
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Tierney, Christopher
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Quinn, Damian
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Collins, Rory
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Kumar, Vipin
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Matthews, Jason
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Hmeidat, Nadim
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Knouff, Brian
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Yeole, Pritesh
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Hassen, Ahmed Arabi
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Chahar, Amandeep
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Edwards, Timothy
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Bolanos, Stephan
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Nolan, Declan
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Robinson, Trevor T.
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Harley, Cara
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Jin, Yan
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Persson, Johan
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Allen, Chris
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Motwani, Prashant
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Sonebi, Mohammed
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Taylor, Susan
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Laskar, Arghadeep
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Ersoy, Nuri
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Piorkowski, Michal
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Bakunowicz, Jerzy
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Catalanotti, Giuseppe
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Millen, S. L. J.
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Foster, P.
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Abuelfoutouh, Nader
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Khalil, Muhammad
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Chua, Mang Hann
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Co-Authors (by relevance)

  • Mohanty, Shalini
  • Tyagi, Rashi
  • Faisal, Nadimul Haque
  • Mccloskey, Alex
  • Agrawal, Anupam
  • Goel, Saurav
  • Llavori, Iñigo
  • Tiwari, Ashutosh
  • Viswanathan, V.
  • Matthews, Allan
  • Nguyen, Dinh T.
  • Mathur, Ruchir
  • Prathuru, Anil
  • Tattersall, L.
  • Bamber, N.
  • Sterling, J.
  • Millen, Scott
  • Cola, F. De
  • Atkinson, Gary A.
  • Damghani, Mahdi
  • Ward, Carwyn
  • Egerton, George
  • Mcclory, Caroline
  • Chan, Chi-Wai
  • Awan, Muhammad Rizwan
  • Kumar, Dileep
  • Xu, X.
  • Wisnom, M. R.
  • Lee, J.
  • Mukhopadhyay, S.
  • Higgins, Peter
  • Higgins, Colm
  • Tierney, Christopher
  • Quinn, Damian
  • Collins, Rory
  • Kumar, Vipin
  • Matthews, Jason
  • Featherston, Carol
  • Sammon, Ethan
  • Saddler, John
  • Vaidya, Uday
  • Kunc, Vlastimil
  • Hmeidat, Nadim
  • Theodore, Merlin
  • Park, Chanyeop
  • Knouff, Brian
  • Saha, Subhabrata
  • Yeole, Pritesh
  • Hassen, Ahmed Arabi
  • Chahar, Amandeep
  • Edwards, Timothy
  • Bolanos, Stephan
  • Nolan, Declan
  • Robinson, Trevor T.
  • Harley, Cara
  • Pir, Rakib Ali
  • Fotouhi, Mohammad
  • Ali, Rakib
  • Mcclelland, John
  • Jin, Yan
  • Ortnas, Anna
  • Backer, Jeroen De
  • Persson, Johan
  • Allen, Chris
  • Motwani, Prashant
  • Sonebi, Mohammed
  • Perogamvros, Nikolaos
  • Taylor, Susan
  • Laskar, Arghadeep
  • Ersoy, Nuri
  • Piorkowski, Michal
  • Bakunowicz, Jerzy
  • Abdelal, Gasser
  • Catalanotti, Giuseppe
  • Millen, S. L. J.
  • Foster, P.
  • Abuelfoutouh, Nader
  • Khalil, Muhammad
  • Abdelal, Gasser F.
  • Morgan, Michael
  • Houston, G.
  • Bron, F.
  • Quinn, D.
  • Smyth, Beatrice M.
  • Butterfield, Joseph
  • Chua, Mang Hann
  • Lunt, Peter
  • Cooper, Jonathan
  • Robotham, Antony
  • Georgiou, Georgia
  • Price, Mark
  • Falzon, Brian George
  • Butterfield, Joe
  • Han, Peidong
  • Buchanan, Saul
  • Jiang, Z.
  • Hornsby, P.
  • Wilson, R.
  • Butterfield, J.
  • Mccool, R.
  • Mccool, Rauri
  • Jiang, Zhenyu
  • Hornsby, Peter
  • Han, P.
  • Soban, Danielle
  • Mcewan, W.
  • Cervi, L.
  • Mullan, M.
  • Lynch, F.
  • Gibson, A.
  • Mccune, M.
  • Curran, Richard
  • Wilson, Ryan
OrganizationsLocationPeople

document

Steps towards a connected digital factory cost model

  • Higgins, Peter
  • Higgins, Colm
  • Tierney, Christopher
  • Quinn, Damian
  • Murphy, Adrian
  • Collins, Rory
Abstract

Digital transformation is at the forefront of manufacturing considerations, but often excludes discrete event simulation and cost modelling capabilities, meaning digital twin capabilities are in their infancy. As cost and time are critical metrics for manufacturing companies it is vital the associated tools become a connected digital capability. The aim is to digitize cost modelling functionality and its associated data requirements in order to couple cost analysis with digital factory simulation. The vast amount of data existing in today’s industry alongside the standardization of manufacturing processes has paved the way for a ‘data first’ cost and discrete event simulation environment that is required to facilitate the automated model building capabilities required to seamlessly integrate the digital twin within existing manufacturing environments.<br/>An ISA-95 based architecture is introduced where phases within a cost modelling and simulation workflow are treated as a series of interconnected modules: process mapping (including production layout definition); data collection and retrieval (resource costs, equipment costs, labour costs, learning rates, process/activity times etc.); network and critical path analysis; cost evaluation; cost optimisation (bottleneck identification, production configuration); simulation model build; cost reporting (dashboard visualisation, KPIs, trade-offs). Different phases are linked to one another to enable automated cost and capacity analysis. Leveraging data in this manner enables the updating of standard operating procedures and learning rates in order to better understand manufacturing cost implications, such as actual cost versus forecasted, and to incorporate cost implications into scheduling and planning decisions.<br/>Two different case studies are presented to highlight different applications of the proposed architecture. The first shows it can be used within a feasibility study to benchmark novel robotic joining techniques against traditional riveting of stiffened aero structures.<br/>In the second case study discrete event digital factory simulations are used to supply important production metrics (process times, wait times, resource utilisation) to the cost model to provide ‘real-time’ cost modelling. This enables both time and cost to be used for more informed decision making within an ever demanding manufacturing landscape. In addition, this approach will add value to simulation processes by enabling simulation engineers to focus on value adding activities instead of time consuming model builds, data gathering and model iterations.

Topics
  • impedance spectroscopy
  • phase
  • simulation
  • joining