Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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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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Materials Map under construction

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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Hooper, P. A.

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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (5/5 displayed)

  • 2019An experimental methodology to characterise post-necking behaviour and quantify ductile damage accumulation in isotropic materials37citations
  • 2019Uniaxial compression of single crystal and polycrystalline tantalum27citations
  • 2018Blast resilience of composite sandwich panels with hybrid glass-fibre and carbon-fibre skins23citations
  • 2018Printability and microstructure of the CoCrFeMnNi high-entropy alloy fabricated by laser powder bed fusion176citations
  • 2016Experimental techniques for ductile damage characterisation11citations

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Davies, C. M.
2 / 17 shared
Sancho, Alexander
4 / 8 shared
Dear, J. P.
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Cartwright, T.
2 / 2 shared
Cox, M. J.
3 / 3 shared
Avraam, P.
1 / 4 shared
Millett, J. C. F.
1 / 25 shared
Whiteman, G.
1 / 14 shared
Case, S.
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Kaboglu, C.
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Johnson, A.
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Rolfe, E.
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Liu, H.
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Arora, H.
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Quinn, R.
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Piglione, A.
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Liu, C.
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Gourlay, C. M.
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Pham, M. S.
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Dovgyy, Bogdan
1 / 7 shared
Aldrich-Smith, G. D.
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2019
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Co-Authors (by relevance)

  • Davies, C. M.
  • Sancho, Alexander
  • Dear, J. P.
  • Cartwright, T.
  • Cox, M. J.
  • Avraam, P.
  • Millett, J. C. F.
  • Whiteman, G.
  • Case, S.
  • Kaboglu, C.
  • Johnson, A.
  • Rolfe, E.
  • Liu, H.
  • Arora, H.
  • Quinn, R.
  • Piglione, A.
  • Liu, C.
  • Gourlay, C. M.
  • Pham, M. S.
  • Dovgyy, Bogdan
  • Aldrich-Smith, G. D.
OrganizationsLocationPeople

article

Uniaxial compression of single crystal and polycrystalline tantalum

  • Avraam, P.
  • Millett, J. C. F.
  • Sancho, Alexander
  • Hooper, P. A.
  • Dear, J. P.
  • Whiteman, G.
  • Cox, M. J.
  • Case, S.
Abstract

A series of compression experiments characterising the elastic-plastic response of single crystal and polycrystalline tantalum from quasi-static to intermediate strain-rates (10^−3 – 10^3 s−1) over a range of temperatures (233–438 K) are reported in this paper. The single crystal experiments show significant differences in the response of the three principle crystal orientations of tantalum in terms of yield, work hardening and ultimate deformed shapes. Modelling is undertaken using a dislocation mechanics based crystal plasticity finite element model giving insight into the underlying microscopic processes that govern the macroscopic response. The simulations show the importance of the dislocation mobility relations and laws governing the evolution of the mobile dislocation density for capturing the correct behaviours. The inclusion of the twinning/anti-twinning asymmetry is found to influence [100] orientation most strongly, and is shown to be critical for matching the relative yield strengths. In general the simulations are able to adequately match experimental trends although some specific details such as exact strain hardening evolution are not reproduced suggesting a more complex hardening model is required. 3D finite element simulations approximating the tests are also undertaken and are able to predict the final deformed sample shapes well once the twinning/anti-twinning asymmetry is included (particularly for the [100] orientation). The polycrystalline data in both as-received and cold rolled conditions shows the initial yield strength is highest and work hardening rate is lowest for the cold-rolled material due to the increase in mobile dislocation density caused by the prior work. The general behavioural trends with temperature and strain-rate of the polycrystalline materials are reproduced in the single crystal data however the specific form of stress versus strain curves are significantly different. This is discussed in terms of the similar active slip systems in polycrystalline material to high symmetry single crystals but with the significant added effect of grain boundary interactions.

Topics
  • density
  • impedance spectroscopy
  • polymer
  • single crystal
  • grain
  • inclusion
  • mobility
  • grain boundary
  • experiment
  • simulation
  • strength
  • dislocation
  • plasticity
  • yield strength
  • crystal plasticity
  • tantalum