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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1.080 Topics available

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977 Locations available

693.932 PEOPLE
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Gupta, Ranjeetkumar

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University of Bristol

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (21/21 displayed)

  • 2023Role of interface in optimisation of polyamide-6/Fe3O4 nanocomposite properties suitable for induction heating.4citations
  • 2023Role of interface in optimisation of polyamide-6/Fe3O4 nanocomposite properties suitable for induction heating4citations
  • 2022Tuneable magnetic nanocomposites for remote self-healingcitations
  • 2022Tuneable magnetic nanocomposites for remote self-healing.15citations
  • 2022Quantification of wear in glass reinforced epoxy resin composites using surface profilometry and assessing effect of surfacing film involvement2citations
  • 2022Optimising Crystallisation during Rapid Prototyping of Fe3O4-PA6 Polymer Nanocomposite Component1citations
  • 2022Optimising crystallisation during rapid prototyping of Fe3O4-PA6 polymer nanocomposite component.1citations
  • 2022Comparative strength and stability analysis of conventional and lighter composite flexible risers in ultra-deep water subsea environment.3citations
  • 2021Magnetic polyamide 6 nanocomposites for increasing damage tolerance through self-healing of composite structures.citations
  • 2021A Review of Sensing Technologies for Non-Destructive Evaluation of Structural Composite Materials82citations
  • 2020Insulating MgO–Al2O3–LDPE nanocomposites for offshore medium-voltage DC cables.19citations
  • 2020Insulating MgO–Al2O3–LDPE Nanocomposites for Offshore Medium-Voltage DC Cables19citations
  • 2019Novel method of healing the fibre reinforced thermoplastic composite27citations
  • 2019Rapid multifunctional composite part manufacturing using controlled in-situ polymerization of PA6 nanocomposite.4citations
  • 2019Novel method of healing the fibre reinforced thermoplastic composite: a potential model for offshore applications.27citations
  • 2019Effect of oleic acid coating of iron oxide nanoparticles on properties of magnetic polyamide-6 nanocomposite.45citations
  • 2019Effect of Oleic Acid Coating of Iron Oxide Nanoparticles on Properties of Magnetic Polyamide-6 Nanocomposite45citations
  • 2017Integrated self-healing of the composite offshore structures.9citations
  • 2017Integrated self-healing of the composite offshore structures9citations
  • 2017Self-healing polymer nanocomposites for composite structure applications.citations
  • 2017Insulating polymer nanocomposites for high thermal conduction and fire retarding applications.citations

Places of action

Chart of shared publication
Pancholi, Pinakin V.
2 / 2 shared
Bucknall, David
4 / 4 shared
Gupta, Lakhan
2 / 2 shared
Stenning, Gavin B. G.
5 / 9 shared
Yu, Xiangyan
2 / 2 shared
Flynn, David
4 / 25 shared
Pancholi, Ketan
19 / 30 shared
Darr, Jawwad A.
2 / 9 shared
Footer, Charles
2 / 2 shared
Gupta, Priya
2 / 2 shared
Stenning, Gavin Bg
1 / 1 shared
Baines, Lee
2 / 2 shared
Mallikarjuna, Deepak
1 / 1 shared
Njuguna, James
7 / 64 shared
Nammi, Sathish K.
1 / 2 shared
Mitchell, Daniel
1 / 24 shared
Blanche, Jamie
1 / 3 shared
Harper, Sam
1 / 1 shared
Tang, Wenshuo
1 / 1 shared
Deighton, Alan
2 / 2 shared
Smith, Lindsay
2 / 2 shared
White, Maggie
4 / 4 shared
Huo, Dehong
8 / 13 shared
Jha, Vineet
5 / 5 shared
Staknevicius, Rokas
1 / 1 shared
Murray, Duncan
2 / 2 shared
De Sa, Rulston
1 / 1 shared
Droubi, Ghazi
2 / 2 shared
Sa, Rulston De
1 / 1 shared
Latto, James
3 / 3 shared
Prabhu, Radhkrishna
2 / 2 shared
Pancholi, Mehul
4 / 4 shared
Chart of publication period
2023
2022
2021
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2017

Co-Authors (by relevance)

  • Pancholi, Pinakin V.
  • Bucknall, David
  • Gupta, Lakhan
  • Stenning, Gavin B. G.
  • Yu, Xiangyan
  • Flynn, David
  • Pancholi, Ketan
  • Darr, Jawwad A.
  • Footer, Charles
  • Gupta, Priya
  • Stenning, Gavin Bg
  • Baines, Lee
  • Mallikarjuna, Deepak
  • Njuguna, James
  • Nammi, Sathish K.
  • Mitchell, Daniel
  • Blanche, Jamie
  • Harper, Sam
  • Tang, Wenshuo
  • Deighton, Alan
  • Smith, Lindsay
  • White, Maggie
  • Huo, Dehong
  • Jha, Vineet
  • Staknevicius, Rokas
  • Murray, Duncan
  • De Sa, Rulston
  • Droubi, Ghazi
  • Sa, Rulston De
  • Latto, James
  • Prabhu, Radhkrishna
  • Pancholi, Mehul
OrganizationsLocationPeople

article

Novel method of healing the fibre reinforced thermoplastic composite

  • White, Maggie
  • Stenning, Gavin B. G.
  • Huo, Dehong
  • Jha, Vineet
  • Gupta, Ranjeetkumar
  • Pancholi, Ketan
Abstract

<p>Continuous fibre reinforced thermoplastic composites are increasingly finding their use as engineering materials in many industries due to the excellent fire, smoke and toxicity performance. However, the composite component produced using automated continuous fibre reinforced thermoplastic tapes laying machine are susceptible to sudden failure emanating from microscale cracks. This study demonstrates the healing potential of a layered Glass Fibre Reinforced Polymer (GFRP) composite consisting of alternative layers of GFRP and a magnetic polyamide-6 (PA-6) nanocomposite (PNC) film. The self-healing process is presented in three steps, viz. (i) polymer nanocomposite synthesis, (ii) preparation of the layered GFRP layered composite sample and (iii) self-healing and testing of GFRP layered composite sample. Firstly, the multilayer dog bone sample consisting of a magnetic polymer nanocomposite (PNC) film sandwiched between thermoplastic unidirectional GFRP tapes are prepared. Healing is triggered by exposing the damaged multilayer sample to microwave causing selective heating of nanocomposite film and its subsequent melting. The healing process completes when liquid polymer fills the micro-crack in the multilayer tape through capillary action and solidifies upon cooling. The healing yields 84% of the undamaged tensile strength recovery. Results demonstrate the potential application of an autonomous self-healing method for thermoplastic composite used in the offshore environment.</p>

Topics
  • nanocomposite
  • impedance spectroscopy
  • glass
  • glass
  • crack
  • strength
  • layered
  • tensile strength
  • thermoplastic
  • toxicity