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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Kiil, Søren

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Technical University of Denmark

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (47/47 displayed)

  • 2024Protective Mechanisms of Siloxane-Modified Epoxy Novolac Coatings at High-Pressure, High-Temperature Conditionscitations
  • 2024Wettability of Water- and Solvent-borne Epoxy Coatings on Contaminated Steel Substratescitations
  • 2024Wettability of waterborne and solvent-based epoxy coatings on contaminated steel panelscitations
  • 2023Incorporation of unmodified technical Kraft lignin particles in anticorrosive epoxy novolac coatingscitations
  • 2023Incorporation of unmodified technical Kraft lignin particles in anticorrosive epoxy novolac coatingscitations
  • 2023Chemically-resistant epoxy novolac coatings: Effects of size-fractionated technical Kraft lignin particles as a structure-reinforcing component8citations
  • 2023Chemically-resistant epoxy novolac coatings: Effects of size-fractionated technical Kraft lignin particles as a structure-reinforcing component8citations
  • 2023Chemically-resistant epoxy novolac coatings : Effects of size-fractionated technical Kraft lignin particles as a structure-reinforcing component8citations
  • 2022Detection and quantification of premature crack formation in curing epoxy coatings5citations
  • 2022Detection and quantification of premature crack formation in curing epoxy coatings5citations
  • 2022Parallel measurements and engineering simulations of conversion, shear modulus, and internal stress during ambient curing of a two-component epoxy coating6citations
  • 2022Parallel measurements and engineering simulations of conversion, shear modulus, and internal stress during ambient curing of a two-component epoxy coating6citations
  • 2021Methanol degradation mechanisms and permeability phenomena in novolac epoxy and polyurethane coatings18citations
  • 2021Methanol degradation mechanisms and permeability phenomena in novolac epoxy and polyurethane coatings18citations
  • 2021The influence of CO2 at HPHT conditions on properties and failures of an amine-cured epoxy novolac coating7citations
  • 2021Simultaneous tracking of hardness, reactant conversion, solids concentration, and glass transition temperature in thermoset polyurethane coatings10citations
  • 2021Degradation pathways of amine-cured epoxy novolac and bisphenol F resins under conditions of high pressures and high temperaturescitations
  • 2021Degradation pathways of amine-cured epoxy novolac and bisphenol F resins under conditions of high pressures and high temperaturescitations
  • 2021Simultaneous tracking of hardness, reactant conversion, solids concentration, and glass transition temperature in thermoset polyurethane coatings10citations
  • 2021The influence of CO 2 at HPHT conditions on properties and failures of an amine-cured epoxy novolac coating7citations
  • 2021The evolution of coating properties and internal stress during ambient curing of a two-component epoxy coatingcitations
  • 2021The evolution of coating properties and internal stress during ambient curing of a two-component epoxy coatingcitations
  • 2020Experimental Investigation and Mathematical Modeling of the Reaction between SO2(g) and CaCO3(s)-containing Micelles in Lube Oil for Large Two-Stroke Marine Diesel Engines11citations
  • 2019Mixed Flow Reactor Experiments and Modeling of Sulfuric Acid Neutralization in Lube Oil for Large Two-Stroke Diesel Engines9citations
  • 2019Mixed Flow Reactor Experiments and Modeling of Sulfuric Acid Neutralization in Lube Oil for Large Two-Stroke Diesel Engines9citations
  • 2019Exposure of hydrocarbon intumescent coatings to the UL1709 heating curve and furnace rheology: Effects of zinc borate on char properties39citations
  • 2019Measurements of methanol permeation rates across thermoset organic coatingscitations
  • 2017Reaction of Sulfuric Acid in Lube Oil: Implications for Large Two-Stroke Diesel Engines5citations
  • 2017Acid-resistant organic coatings for the chemical industry: a review53citations
  • 2017Industrial Coatings at Extreme Conditionscitations
  • 2016Long-Term Stability of PEG-Based Antifouling Surfaces in a Marine Environmentcitations
  • 2016Amphiphilic copolymers for fouling-release coatingscitations
  • 2015Quantitative analysis of silica aerogel-based thermal insulation coatings26citations
  • 2015Use of Fillers, Pigments and Additives in Fouling-Release Coatings: a Literature Reviewcitations
  • 2013Mathematical modeling of photoinitiated coating degradation: Effects of coating glass transition temperature and light stabilizers8citations
  • 2013Mathematical modeling of photoinitiated coating degradation: Effects of coating glass transition temperature and light stabilizers8citations
  • 2012Microcapsule-based self-healing anticorrosive coatings: Capsule size, coating formulation, and exposure testing143citations
  • 2011Teaching chemical product design to engineering students: course contents and challengescitations
  • 2011Cinnamic Acid Derivatised Poly(Ethylene Glycol) as a Bioinspired UV-Adaptable Materialcitations
  • 2011Synthesis of durable microcapsules for self-healing anticorrosive coatings: A comparison of selected methods137citations
  • 2011UV-initierede ”smart materials”citations
  • 2011Fremstilling af UV-aktive polymerercitations
  • 2007Characterization of pigment-leached antifouling coatings using BET surface area measurements and mercury porosimetry11citations
  • 2007Adhesion between coating layers based on epoxy and silicone31citations
  • 2006Dissolution rate measurements of sea water soluble pigments for antifouling paints91citations
  • 2005Reaction rate estimation of controlled-release antifouling paint binders: Rosin-based systems102citations
  • 2005Reaction rate estimation of controlled-release antifouling paint binders: Rosin-based systems102citations

Places of action

Chart of shared publication
Rajagopalan, Narayanan
10 / 13 shared
Erik Weinell, Claus
17 / 33 shared
Fjælberg, Tine Jensen
1 / 2 shared
Larsen, Toke Skaarup
1 / 2 shared
Olsen, Mads
1 / 2 shared
Nielsen, Stefan Urth
1 / 1 shared
Li, Qiong
8 / 9 shared
Nielsen, Stefan
1 / 1 shared
Truncali, Alessio
5 / 5 shared
Laxminarayan, Tejasvi
5 / 5 shared
Johansson, Mats
5 / 25 shared
Weinell, Claus Erik
9 / 14 shared
Graversen, Erik
4 / 4 shared
Dam-Johansen, Kim
16 / 56 shared
Luo, Shicong
3 / 3 shared
Segura, Juan José
3 / 3 shared
Wang, Jing
2 / 19 shared
Wang, Chenyu
2 / 2 shared
Wang, Ting
5 / 10 shared
José Segura, Juan
1 / 1 shared
Dam Johansen, Kim
1 / 1 shared
Christensen, Henrik
4 / 5 shared
Glarborg, Peter
4 / 28 shared
Mayer, Stefan
4 / 6 shared
Lyng Lejre, Kasper Hartvig
3 / 4 shared
Lejre, Kasper H.
1 / 1 shared
Ring, Louise
1 / 1 shared
Zeng, Ying
1 / 3 shared
Møller, Victor Buhl
1 / 1 shared
Frankær, Sarah Maria Grundahl
4 / 4 shared
Pedersen, Lars Thorslund
2 / 3 shared
Subramanian, Srinath
1 / 1 shared
Hornero, Clara Pérez
1 / 1 shared
Noguer, Albert Camós
3 / 3 shared
Hvilsted, Søren
2 / 82 shared
Olsen, Stefan Møller
2 / 9 shared
Tamaev, Nail
1 / 1 shared
With, R. A. T. M. Van Benthem G. De
1 / 1 shared
G. De With, R. A. T. M. Van Benthem
1 / 1 shared
Nesterova, Tatyana
2 / 2 shared
Skov, Anne Ladegaard
4 / 298 shared
Daugaard, Anders Egede
2 / 80 shared
Vaia, Ayelén Luna Helling Di
1 / 1 shared
Helling, Ayelén
1 / 1 shared
Kontogeorgis, Georgios M.
1 / 18 shared
Grønlund, Martin
1 / 1 shared
Svendsen, Jacob R.
1 / 1 shared
Yebra, Diego Meseguer
2 / 2 shared
Meseguer Yebra, Diego
1 / 1 shared
Chart of publication period
2024
2023
2022
2021
2020
2019
2017
2016
2015
2013
2012
2011
2007
2006
2005

Co-Authors (by relevance)

  • Rajagopalan, Narayanan
  • Erik Weinell, Claus
  • Fjælberg, Tine Jensen
  • Larsen, Toke Skaarup
  • Olsen, Mads
  • Nielsen, Stefan Urth
  • Li, Qiong
  • Nielsen, Stefan
  • Truncali, Alessio
  • Laxminarayan, Tejasvi
  • Johansson, Mats
  • Weinell, Claus Erik
  • Graversen, Erik
  • Dam-Johansen, Kim
  • Luo, Shicong
  • Segura, Juan José
  • Wang, Jing
  • Wang, Chenyu
  • Wang, Ting
  • José Segura, Juan
  • Dam Johansen, Kim
  • Christensen, Henrik
  • Glarborg, Peter
  • Mayer, Stefan
  • Lyng Lejre, Kasper Hartvig
  • Lejre, Kasper H.
  • Ring, Louise
  • Zeng, Ying
  • Møller, Victor Buhl
  • Frankær, Sarah Maria Grundahl
  • Pedersen, Lars Thorslund
  • Subramanian, Srinath
  • Hornero, Clara Pérez
  • Noguer, Albert Camós
  • Hvilsted, Søren
  • Olsen, Stefan Møller
  • Tamaev, Nail
  • With, R. A. T. M. Van Benthem G. De
  • G. De With, R. A. T. M. Van Benthem
  • Nesterova, Tatyana
  • Skov, Anne Ladegaard
  • Daugaard, Anders Egede
  • Vaia, Ayelén Luna Helling Di
  • Helling, Ayelén
  • Kontogeorgis, Georgios M.
  • Grønlund, Martin
  • Svendsen, Jacob R.
  • Yebra, Diego Meseguer
  • Meseguer Yebra, Diego
OrganizationsLocationPeople

article

Microcapsule-based self-healing anticorrosive coatings: Capsule size, coating formulation, and exposure testing

  • Kiil, Søren
  • Pedersen, Lars Thorslund
  • Dam-Johansen, Kim
  • Nesterova, Tatyana
Abstract

Self-healing coatings is a rapidly growing research area, where focus has mainly been on development of new approaches to the mechanism of self-healing. However, there is a growing need for investigation of practical issues related to formulation, application, and testing of true self-healing coatings. In this work, ways of reducing the size of poly(urea–formaldehyde) microcapsules, filled with linseed oil and intended for a microcapsule-based self-healing anticorrosive coating (above water exposure), are explored. The influence of microcapsules on epoxy coating performance is also studied. The actual self-healing effect was not part of this work. The synthesis parameters investigated are stirrer geometry, agitation rate, temperature, and stabilizer concentration. It was found that an increase in stirring rate, correct choice of temperature, and a high stabilizer concentration all caused a decrease in microcapsule size but were accompanied by excessive formation of nanoparticles. Thus, isolation of too large microcapsules has been performed by filtration utilizing a novel low-energy fluoropolymer-coated steel sieve. An estimation of the critical pigment (microcapsule) volume concentration (CPVC) was conducted using gloss measurements and a PVC ladder and found to be about 30 vol%. Due to the rather large capsules used (relative to the coating thickness), the low CPVC value can probably be ascribed to a fairly low packing efficiency in the coating, but this needs to be confirmed. Coating performance was evaluated using salt spray exposure and impact testing. Results of the impact testing showed that addition of microcapsules to a binder matrix did not compromise resistance of the coating to mechanical damage and led to formation of fewer and shorter cracks compared to a filler-containing coating. Flaking of the coating was also reduced. Results of the salt spray testing (3 weeks exposure) showed that with an increase of microcapsule content, in the interval 30–50 vol%, the extent of corrosion and potential coating delamination decreased and was identical to that of a full commercial anticorrosive coating.

Topics
  • nanoparticle
  • impedance spectroscopy
  • corrosion
  • crack
  • steel