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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Vrije Universiteit Brussel

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (22/22 displayed)

  • 2023Experimental evaluation of the metal powder particle flow on the melt pool during directed energy deposition3citations
  • 2023Measuring and Predicting the Effects of Residual Stresses from Full-Field Data in Laser-Directed Energy Deposition4citations
  • 2023Comparison and Analysis of Hyperspectral Temperature Data in Directed Energy Deposition3citations
  • 2022Experimental identification of process dynamics for real-time control of directed energy deposition7citations
  • 2022Powder-Gas Jet Velocity Characterization during Coaxial Directed Energy Deposition Process1citations
  • 2021Structural health monitoring through surface acoustic wave inspection deployed on capillaries embedded in additively manufactured componentscitations
  • 2021Process parameter study for enhancement of directed energy deposition powder efficiency based on single-track geometry evaluation10citations
  • 2021Production Assessment of Hybrid Directed Energy Deposition Manufactured Sample with Integrated Effective Structural Health Monitoring channel (eSHM)4citations
  • 2020Offline powder-gas nozzle jet characterization for coaxial laser-based Directed Energy Deposition21citations
  • 2019Hyperspectral and Thermal Temperature Estimation During Laser Cladding18citations
  • 2019Analytical Modeling of Embedded Load Sensing Using Liquid-Filled Capillaries Integrated by Metal Additive Manufacturing5citations
  • 2019On the Influence of Capillary-Based Structural Health Monitoring on Fatigue Crack Initiation and Propagation in Straight Lugs3citations
  • 2018Fatigue performance of powder bed fused Ti-6Al-4V component with integrated chemically etched capillary for structural health monitoring application.8citations
  • 2018Effective Structural Health Monitoring through the Monitoring of Pressurized Capillaries in Additive Manufactured Materialscitations
  • 2017Effect of Surface Roughness on Fatigue Crack Initiation in Additive Manufactured components with Integrated Capillary for SHM Applicationcitations
  • 2017Proof of Concept of Integrated Load Measurement in 3D Printed Structures7citations
  • 2017Model-based temperature feedback control of laser cladding using high-resolution hyperspectral imaging17citations
  • 2017Fatigue Performance of Ti-6Al-4V Additively Manufactured Specimens with Integrated Capillaries of an Embedded Structural Health Monitoring System19citations
  • 2016Hardware-in-the-loop control of additive manufacturing processes using temperature feedback42citations
  • 2016Evaluation of the Diffuse Reflectivity Behaviour of the Melt Pool During the Laser Metal Deposition Processcitations
  • 2016Temperature Feedback Control of Laser Cladding Using High Resolution Hyperspectral Imagingcitations
  • 2015Hardware-in-the-loop control of additive manufacturing processes using temperature feedbackcitations

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Chart of shared publication
Helsen, Jan
1 / 9 shared
Powell, John
1 / 7 shared
Jardon, Zoé
10 / 12 shared
Sanchez Medina, Jorge
3 / 6 shared
Baere, Dieter De
15 / 26 shared
Polyzos, Efstratios
1 / 10 shared
Ertveldt, Julien
10 / 16 shared
Pyl, Lincy
1 / 60 shared
Mäckel, Peter
1 / 1 shared
Van Hemelrijck, Danny
1 / 126 shared
Pulju, Hendrik
1 / 1 shared
Guillaume, Patrick
20 / 40 shared
Snyers, Charles
1 / 2 shared
Arroud, Galid
2 / 5 shared
Lison, Margot
2 / 2 shared
Devesse, Wim
8 / 14 shared
Moonens, Marc
3 / 3 shared
Wyart, Eric
1 / 3 shared
Vafadari, Reza
1 / 3 shared
Strantza, Maria
2 / 13 shared
Graeve, Iris De
1 / 57 shared
Terryn, Herman
1 / 124 shared
Pauw, Ben De
1 / 4 shared
Chart of publication period
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Co-Authors (by relevance)

  • Helsen, Jan
  • Powell, John
  • Jardon, Zoé
  • Sanchez Medina, Jorge
  • Baere, Dieter De
  • Polyzos, Efstratios
  • Ertveldt, Julien
  • Pyl, Lincy
  • Mäckel, Peter
  • Van Hemelrijck, Danny
  • Pulju, Hendrik
  • Guillaume, Patrick
  • Snyers, Charles
  • Arroud, Galid
  • Lison, Margot
  • Devesse, Wim
  • Moonens, Marc
  • Wyart, Eric
  • Vafadari, Reza
  • Strantza, Maria
  • Graeve, Iris De
  • Terryn, Herman
  • Pauw, Ben De
OrganizationsLocationPeople

article

Proof of Concept of Integrated Load Measurement in 3D Printed Structures

  • Lison, Margot
  • Jardon, Zoé
  • Guillaume, Patrick
  • Strantza, Maria
  • Devesse, Wim
  • Hinderdael, Michaël
  • Baere, Dieter De
Abstract

Currently, research on structural health monitoring systems is focused on direct integration of the system into a component or structure. The latter results in a so-called smart structure. One example of a smart structure is a component with integrated strain sensing for continuous load monitoring. Additive manufacturing, or 3D printing, now also enables such integration of functions inside components. As a proof-of-concept, the Fused Deposition Modeling (FDM) technique was used to integrate a strain sensing element inside polymer (ABS) tensile test samples. The strain sensing element consisted of a closed capillary filled with a fluid and connected to an externally mounted pressure sensor. The volumetric deformation of the integrated capillary resulted in pressure changes in the fluid. The obtained pressure measurements during tensile testing are reported in this paper and compared to state-of-the-art extensometer measurements. The sensitivity of the 3D printed pressure-based strain sensor is primarily a function of the compressibility of the capillary fluid. Air- and watertightness are of critical importance for the proper functioning of the 3D printed pressure-based strain sensor. Therefore, the best after-treatment procedure was selected on basis of a comparative analysis. The obtained pressure measurements are linear with respect to the extensometer readings, and the uncertainty on the strain measurement of a capillary filled with water (incompressible fluid) is ±3.1 µstrain, which is approximately three times less sensitive than conventional strain gauges (±1 µstrain), but 32 times more sensitive than the same sensor based on air (compressible fluid) (±101 µstrain).

Topics
  • Deposition
  • impedance spectroscopy
  • polymer
  • laser emission spectroscopy
  • additive manufacturing