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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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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University of Manchester

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (29/29 displayed)

  • 2022Scaled cohesive zone models for fatigue crack propagation11citations
  • 2022A Two-Experiment Approach to Scaling in Biomechanics6citations
  • 2020Exact and inexact scaled models for hot forging17citations
  • 2018A computationally efficient cohesive zone model for fatigue18citations
  • 2018Experimental investigation into finite similitude for metal forming processes35citations
  • 2017Frequency-Dependent Cohesive Zone Models for Fatigue6citations
  • 2011Analytical solutions for vibrating fractal composite rods and beams17citations
  • 2009Vertical twin roll casting process of Mg alloy with high aluminium contentscitations
  • 2007A solution methodology for contacting domains in pressure die casting2citations
  • 2007Mechanical properties and metallugical qualities of magnesium alloy sheets manufactured by twin-roll casting20citations
  • 2006Boundary element stress analysis for bi-metallic dies in pressure diecasting1citations
  • 2006Boundary element stress analysis for copper-based dies in pressure die casting5citations
  • 2006Bi-metallic dies for rapid die casting3citations
  • 2006Experimental investigation into the thermal behavior of copper-alloyed dies in pressure die casting10citations
  • 2005Effects of rolling condition on warm deep drawability of magnesium alloy sheets produced by twin-roll strip casting3citations
  • 2004An Experimental Study Of the Pressure Die Casting Processcitations
  • 2004Forming Characteristics of cast magnesium alloy sheets manufactured by roll strip casting process5citations
  • 2004Semi-solid manufacturing process of magnesium alloys by twin-roll casting89citations
  • 2004An experimental study of the pressure die casting processcitations
  • 2003Mechanical properties of magnesium alloy sheets produced by semi-solid roll strip castingcitations
  • 2002The practicalities of ring rolling simulation for profiled rings29citations
  • 2002The effect of vibration on surface finish for semisolid and cast components4citations
  • 2002A practical method for finite element ring rolling simulation using the ALE flow formulation86citations
  • 2002Optimization for boiling heat transfer determination and enhancement in pressure die casting1citations
  • 2001Novel cooling channel shapes in pressure die casting11citations
  • 2001Efficient strategies for the simulation of railway wheel forming14citations
  • 2000An experimental and numerical investigation into the thermal behavior of the pressure die casting process11citations
  • 2000Determination of heat transfer coefficients using a 1-d flow model applied to irregular shaped cooling channels in pressure diecasting11citations
  • 2000Predicting heat extraction due to boiling in the cooling channels during the pressure die casting process7citations

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Sadeghi, Hamed
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Alonso-Rasgado, Teresa
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Ochoa-Cabrero, Raul
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Krishnamurthy, Bhaskaran
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Bylya, Olga
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Salih, Sarmed
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Zou, Zhenmin
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Al-Tamimi, Anees
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Salih, S.
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Haga, T.
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Watari, H.
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Koga, N.
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Paisern, R.
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Hinduja, Srichand
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Clark, L. D.
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Rasgado, Teresa Alonso
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Rasgado, M. T. A.
1 / 1 shared
Paisarn, R.
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Rasgado, M. T.
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Izawa, S.
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Alonso-Rasgado, Teresa A.
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Ona, H.
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Iwashita, T.
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Nakayama, M.
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Hamano, H.
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Ward, M. J.
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Miller, B. C.
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Bounds, S.
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Co-Authors (by relevance)

  • Sadeghi, Hamed
  • Darvizeh, Rooholamin
  • Akhigbe-Midu, Osagie
  • Alonso-Rasgado, Teresa
  • Ochoa-Cabrero, Raul
  • Krishnamurthy, Bhaskaran
  • Bylya, Olga
  • Salih, Sarmed
  • Zou, Zhenmin
  • Al-Tamimi, Anees
  • Salih, S.
  • Rasgado, M. T. Alonso
  • Haga, T.
  • Nishio, M.
  • Watari, H.
  • Koga, N.
  • Paisern, R.
  • Hinduja, Srichand
  • Clark, L. D.
  • Rasgado, Teresa Alonso
  • Rasgado, M. T. A.
  • Paisarn, R.
  • Rasgado, M. T.
  • Izawa, S.
  • Alonso-Rasgado, Teresa A.
  • Ona, H.
  • Iwashita, T.
  • Nakayama, M.
  • Hamano, H.
  • Ward, M. J.
  • Miller, B. C.
  • Bounds, S.
  • Rosindale, I.
  • Dooling, P. J.
OrganizationsLocationPeople

article

A Two-Experiment Approach to Scaling in Biomechanics

  • Alonso-Rasgado, Teresa
  • Ochoa-Cabrero, Raul
  • Davey, Keith
Abstract

A new approach to scaled experimentation has recently appeared in the open literature where hitherto unknown similitude rules have been discovered. The impact of this discovery on biomechanics is the focus of this paper, where rules for one and two scaled experiments are assessed. Biomechanical experimentation is beset by problems that can hinder its successful implementation. Availability of resources, repeatability and variability of specimens, ethical compliance and cost are the most prominent. Physical modeling involving synthetic composite materials can be used to advantage and circumvent ethical concerns but is presently impeded by cost and the limited scope of standardized geometries. The increased flexibility of the new approach, combined with the application of substantially cheaper three-dimensional printed materials, is investigated here for bone biomechanical experiments consisting of mechanical tests for the validation of finite element models by means of digital image correlation. The microstructure of the scaled materials is analyzed using a laser confocal microscope followed by the construction and validation of numerical models by means of a Bland-Altman statistical analysis. Good agreement is obtained demonstrated with means under 18 microstrains (μ) and limits of agreement below 83 μ. Consequently, numerical results for the new similitude approach shows an average percentage error of 3.1% and 4.8% for the optimized results across all values. The two-scaled experiment approach results in a sevenfold improvement for the average difference values of strain when compared to the single-scaled experiment, so demonstrating the potential of the new approach.

Topics
  • impedance spectroscopy
  • microstructure
  • experiment
  • composite