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Advances in the science and technology of paints, inks and related coatings: 2006

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Surface Coatings International Part B: Coatings Transactions

Summary

This review summarises the many developments reported inSurface Coatings International Part B: Coatings Transactions,89, 2006. Thus the advances in polymer synthesis and characterisation and synthetic latexes for use in coatings are reviewed Developments in RAFT agents, hyperbranched polymers, and coupling agents for adhesion are discussed. Novel hybrid, smart anticorrosive, optical thin-film and powder coatings are surveyed, and developments in the oxidative and UV curing of paints and coatings described. Adaptive speckle imaging interferometry, a new technique for characterising the curing of coatings, and an ultrathin film high-shear disperser used to produce nanoparticles are discussed. Studies on plasma treatments, weatherability, and scratch and mar resistance of coatings are reviewed. Developments in printing inks, printability and deinking technology are surveyed. The colour and constitution relationships in azonaphtharylamide pigments are discussed. The latest developments in digital image capture and filmless camera technology and techniques are summarised.

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References

  1. Holme I, ‘Advances in the science and technology of paints, inks and related coatings’,Surface Coatings International Part B: Coatings Transactions,87, (B4), 289–98, 2004

    Article  CAS  Google Scholar 

  2. Holme I, ‘Advances in the science and technology of paints, inks and related coatings: 2005’,Surface Coatings International Part B: Coatings Transactions,88, (B4), 285–99, 2005

    Article  CAS  Google Scholar 

  3. Fagelman K E and J T Guthrie, ‘Polymer blend formulations and processing, with reference to the nature and behaviour of pigmented polycarbonate-poly(butylenes terephthalate)(PC-PBT) blends’,Surface Coatings International Part B: Coatings Transactions,89, (B1) 1–14, 2006

    Article  CAS  Google Scholar 

  4. Mulholland B M, ‘Coloured engineering resins for high strain/thin walled applications’, Proceedings from the 56th Annual Technical Conference of the Society of Plastics Engineers,3, 2579–82, 1998

    Google Scholar 

  5. Garcia M, J I Equiazábal and J Nazábal, ‘Effects of mixing time on phase structure and mechanical properties of poly(ethylene terephthalate)/polycarbonate blends’,Journal of Applied Polymer Science,81, 121–7, 2001

    Article  CAS  Google Scholar 

  6. Wouters M, J van Zanten, T Vereijken, D Bakker and J Klijnstra, ‘Fluorinated polyurethane coatings with adaptable surface properties’,Surface Coatings International Part B: Coatings Transactions,89, (B1), 23–30, 2006

    Article  CAS  Google Scholar 

  7. Schmidt D L, C E Coburn, B M DeKoven, G E Potter, G F Meyers and D A Fisher,Nature,368, 39, 1994

    Article  CAS  Google Scholar 

  8. Kobayashi H and M J Owen,Trends Polymer Sci,3, 10, 1995

    Google Scholar 

  9. Tingey K G, J D Andrade, R J Zdrahala, K K Chittur and R M Gendreau,Surface Characterisation of Biomaterials, (ed) B D Ratner, 255, Elsevier Science Publishers BV, Amsterdam, 1988, ISBN 0444430164

    Google Scholar 

  10. Lee S H and E Ruckenstein,J Colloid Interface Sci,120, 529, 1987

    Article  Google Scholar 

  11. Deng Z and H P Schreiber,J Adhesion,36, 71, 1991

    Article  CAS  Google Scholar 

  12. Tezuka Y and K Imai,Chemically Modified Surfaces Vol 2: Chemically Modified Surfaces in Science and Industry, (eds) D E Layden and W T Collins, 643, Gordon and Breach Science Publishers SA, London, 1988. ISBN 2881242219

    Google Scholar 

  13. Kaziyama T and A Takahara,J Biomater Appl,6, 42, 1991

    Google Scholar 

  14. Owen M J,Frontiers of Polymers and Advanced Materials, 677–88, Plenum Press, New York, ISBN 0 306 44716

  15. Zieba J, H Shah and C Kenmore, ‘Protective layers for optical coatings,’Surface Coatings International Part B: Coatings Transactions,89, (B4), 315–19, 2006

    CAS  Google Scholar 

  16. Lubnin A, V Woodward and P L Izquierdo, ‘Nanostructured and hollow polyurethane dispersions’,Surface Coatings International Part B: Coatings Transactions,89, (B3), 201–8, 2006

    Article  CAS  Google Scholar 

  17. Lubnin A V and V Stanislawczyk, US Patent No 6 479 147, 2002

  18. Duan Y, Y Wei, Y Zhu, S E Stammler, B L Marty, G J Haider, R R Davies and M J Maksymkiw, US Patent No 6 017 998, 2000

  19. Lo H, Y Jan, H Wen, W Chen and N Chang, US Patent No 5 959 003, 1999

  20. Knauss D M, US Patent No 6 252 014, 2001

  21. Knauss D M and S L Clark, ‘Core-shell polyméric nanoparticles by self-assembly and step-growth polymerisation,’Polymer Reprints,43, (1), 324–5, 2002

    CAS  Google Scholar 

  22. Stoye F,Resins for Coatings, 60–80, Hanser Publishers, New York, 1996, ISBN 1 56990 209 7

    Google Scholar 

  23. Ortel G (ed),Polyurethane Handbook, Hanser Publishers, Munich, Vienna, New York, 1993, ISBN 3 446 17198 3

    Google Scholar 

  24. Gite V V, P P Mahulikar, D G Hundiwale and U R Kapadi, ‘Polyurethane coatings using trimer of isophorone disocyanate’,J Sci and Ind Res,63, 348–54, 2003

    Google Scholar 

  25. Kordomenos P I and J F Kresta, ‘Thermal stability of isocyanate based polymer. 1: Kinetics of the thermal dissociation of urethane, oxazolidone and isocyanate groups’,Macromolecules,14, 1434–7, 1981

    Article  CAS  Google Scholar 

  26. K Holmberg,Coatings Tech Handbook, (2nd edition), 435–45, Marcel Dekker Inc, USA, 2001, ISBN 0 8247 0439 8

    Google Scholar 

  27. Gite V V, R D Kulkarne, D G Hundiwale and U R Kapadi, ‘Synthesis and characterisation of polyurethane coatings based on trimer of isophorone diisocyanate (IPDI) and monoglycerides of oils’,Surface Coatings International Part B: Coatings Transactions,89, (B2), 117–122, 2006

    Article  CAS  Google Scholar 

  28. Van Ginkel M J, ‘New development in water-based polymers for industrial wood coatings’, Proceedings from ACT 2000, Paper no 8, Katowice, Poland, 7th to 10th November 2000

  29. Kozakiewicz J, A Koncka-Foland, J Skarzynski, J W Sobczak and M Zielecka, ‘Studies on the effect of structural parameters on the properties of polysiloxaneurethane dispersions and coatings’, Surface Coatings International Part B: Coating Transactions,89, (B1) 31–9, 2006

    Article  CAS  Google Scholar 

  30. Kozekiewicz J, J Skarzynski and J Koncka-Foland, ‘Factors affecting the coating properties of polyurethaneurea-acrylic/styrene dispersions’, Proceedings from XXV Fatipec Congress,2, 151, Torino, Italy, 19th to 22nd September 2000

  31. Kozakiewicz J, A Koncka-Foland, J Skarzynski and I Legocka, ‘Synthesis and characterisation of aqueous hybrid polyurethane-ureaacrylic/styrene polymer dispersions’,Adv Ureth Sci Technol, 261, Rapra Technology Ltd, 2001

  32. Dusek K, M Duskova-Smrckova, L A Lewin, J Huybrechts and R J Barsotti ‘Branching theories and thermodynamics used to help designing precursor architecture and binder systems’,Surface Coatings International Part B: Coatings Transactions,89, (B2), 123–31, 2006

    Article  CAS  Google Scholar 

  33. Duskova-Smrckova M and K Dusek, ‘Processes and states during polymer film formation by simultaneous cross-linking and solvent evaporation’,J Mater Sci,37, 4733, 2002

    Article  CAS  Google Scholar 

  34. Cairncross R A and L F Francis, ‘Competing drying and reaction mechanisms in the formation of sol-to-gel films, fibres and spheres’,Drying Technol J,10, 893, 1992

    Article  CAS  Google Scholar 

  35. Dusek K and M Duskova-Smrckova, ‘Network structure formation during cross-linking of organic coating systems’,Progr Polym Sci,25, 1215, 2000

    Article  CAS  Google Scholar 

  36. Mehta P N, ‘Hyperbranched polymers: unique design tool for coatings’,Surface Coatings International Part B: Coatings Transactions,89, (B4), 333–42, 2006

    CAS  Google Scholar 

  37. Liu Z Y, J Y Wang, Q L Yan, K You and X G Jian, ‘Study on novel heat-resistant aqueous dispersion based on modified poly(phthalazinone ether nitrile ketone)s’,Surface Coatings International Part B: Coatings Transactions,89, (B3), 209–14, 2006

    Article  CAS  Google Scholar 

  38. Wang G Q, S H Zhang, D L Yang and X G Jian, ‘Preparation of a novel poly(phthalazinone ether nitrile ketone) ultrafiltration membrane: Effect of non-solvent additives’,Journal of Functional Polymers,18, (1), 105–9, June 2005

    Google Scholar 

  39. Yan Q L, J Y Wang, Z Y Liu, S Q Li and X G Jian, ‘The novel wire’,Wire Industry,72, (883), 177–80, July 2005

    Google Scholar 

  40. Wang G Q, X G Jian, S H Zhang, D L Yang and Y Su, ‘Preparation of poly(phthalazinone ether nitrile ketone) ultrafication membrane with low molecular weight cut-off’,Modern Chemical Industry,23, (7), 37–40, August 2003

    CAS  Google Scholar 

  41. Wang G Q, S H Zhang, D L Yang, C R Wu and X G Jian, ‘Study on the effect of evaporation on the performance of PPENK ultrafiltration membranes’,Membrane Science and Technology,25, (3), 18–21, February 2005

    Google Scholar 

  42. Lubnin A, S Lenhard and J Lai, ‘RAFT emulsions, micro-emulsions and dispersions’,Surface Coatings International Part B: Coatings Transactions,89, (B4), 293–304, 2006

    CAS  Google Scholar 

  43. Šňupárek J and O Quadrat, ‘Effect of copolymer composition on flow properties and film-forming of functionalised latex binders’,Surface Coatings International Part B: Coatings Transactions,89, (B1) 15–22, 2006

    Article  Google Scholar 

  44. van den Berg K J, R van Oorschot and L G J van der Ven, ‘Use of spiro-orthosilicates as blocked polyols/reactive diluents in high-solid PUR clear coats for car refinish applications’,Surface Coatings International Part B: Coatings Transactions,89, (B4), 285–91, 2006

    Google Scholar 

  45. For 2K PUR systems see for example (a) G L Linden, GB Patent 2176197, Ashland;

  46. Z W Wicks Jr, F N Jones and S P Pappas,Organic Coatings, Science and Technology, (2nd edition), 193–6, ISBN 0 471 24507 0

  47. For example blocked amines like ketimines: (a) A Noomen, P Vandevoorde and J Akkerman, EP Patent 0199087, Akzo Nobel;

  48. A Noomen and T Bartels, EP Patent 0203296, Akzo Nobel;

  49. K J van den Berg, L G G van der Ven and A Noomen, ‘Internally blocked polyamines: synthesis and use as cross-linkers in VOC compliant coatings’,Creative Advances in Coatings Technology, Proceedings from 4th Nürnberg Congress, Paper 43. 1997

  50. An example of blocked or latent reactive diluents for 2K PUR systems is the bicyclic orthoester moiety: (a) K J van den Berg, K Hobel, H Klinkenberg, A Noomen and J C van Oorschot, EP Patent 0882106, Akzo Nobel;

  51. A Noomen, ‘Bicyclic orthoesters as binders with latent hydroxyl functionality’, Proceedings from Athens Conference on Coatings: Science and Technology, 231, 2001

  52. van den Berg K J, K Hobel, J C van Oorschot, J C van Beelen and H Klinkenberg, Patent Application WO2004/031256

  53. Huybrechts J, A Vaes, K Dusek, M Duskova-Smrekova and R Barsotti, ‘Scratch- and mar-resistant refinish two-pack clear coats — linear versus branched acrylics’,Surface Coatings International Part B: Coatings Transactions,89, (B4), 275–83, 2006

    CAS  Google Scholar 

  54. Gregorovich B V and P J McGonigal, ‘Scratch and mar of automotive top-coats’, Proceedings from the Finishing ’93 SME, 395, Cincinnati, USA, 1993

  55. Huybrechts J, A Vaes, H Paulussen and A Delmotte, EP 1211267, 2001

  56. Huybrechts J, A Vaes, H Kerber, O Ley and H Paulussen, EP 1201690, 2001

  57. Lörinczová I and C Decker, ‘Scratch resistance of UV-cured acrylic clearcoats’,Surface Coatings International Part B. Coatings Transactions,89, (B2), 133–43, 2006

    Article  Google Scholar 

  58. Bertrand-Lambotte P, J L Loubert, C Verpy and S Pavan, ‘Understanding of automotive clearcoats scratch resistance’,Thin Solid films,420–1, 281–6, 2002

    Article  Google Scholar 

  59. Shenoy M A and D J D’Melo, ‘Effect of cross linkingdensity on coating properties of a polyurea coating system’,Surface Coatings International Part B: Coatings Transactions,89, (B3), 221–30, 2006

    Article  CAS  Google Scholar 

  60. Blank W J, ‘Polymer fundamentals for coatings’, Proceedings from ICE 2000, October 2000

  61. Urbaczewski-Espuche E, J Galy, J P Gerard, J P Pascault and H Sautereau, ‘Influence of chain flexibility and crosslink density on mechanical properties of epoxy/amine networks’,Polym Eng Sci,31, (22), 1572–80, 2004

    Article  Google Scholar 

  62. Ogata M, N Kinjo and T J Kawata, ‘Effects of cross-linking on physical properties of phenol-formaldehyde novolac cured epoxy resins’,J Appl Polym Sci,48, (4), 583–601, 1993

    Article  CAS  Google Scholar 

  63. Priola A, G Gozzelino, F Ferrero and G Malucelli, ‘Investigation on the structure-property relationships for films obtained from UV-curable coatings,’Prog Org Coat,22, (1–4), 301–14, 1993

    Article  CAS  Google Scholar 

  64. Priola A, G Gozzelino, F Ferrero and G Malucelli, ‘Properties of polymeric films obtained from UV cured poly(ethylene glycol) diacrylates’,Polymer,34, (17), 3653–7, 1993

    Article  CAS  Google Scholar 

  65. Hill L W, ‘Calculation of crosslink density in short chain networks’,Prog Org Coat,31, (3), 235–43, 1997

    Article  CAS  Google Scholar 

  66. Boncza-Tomaszewski Z, P Penczek and A Bankowska, ‘Photocationiccurable powder coatings’,Surface Coatings International Part B: Coatings Transactions,89, (B2), 157–61, 2006

    Article  CAS  Google Scholar 

  67. Pappas S P,Radiation Curing: Science and Technology, 109–15, Plenum Press, New York, ISBN 0 3064 3999 9, 1992

    Google Scholar 

  68. Reiser A,Photoreactive Polymers, 95–115, Wiley, New York, ISBN 0 4718 5550 2, 1989

    Google Scholar 

  69. Griese Ch and B Carlson, ‘Development in UV curable powder coatings’, Technical Conference Proceedings, Radtech 2000, 658–68, 9th to 12th April 2000

  70. Decker C, ‘UV curing chemistry: Past, present and future’,J Coat Tech,59, 97, 1997;

    Google Scholar 

  71. S F Thames and J W Rawlins, ‘A review of ultraviolet-curable powder coatings’,Powder Coating,10, 19, 1996

    Google Scholar 

  72. Lohse F and H Zweifel, ‘Photocrosslinking of epoxy resins’,Adv Polym Sci,78, 268, 1986

    Google Scholar 

  73. Fabien R, D Kirkwood, B Matthews, I Richsteig and A Bacon, ‘Corrosion studies on powder-coated, continuously galvanised steel’, Proceedings from Corrosion and Prevention 2002, Paper 26, 1–6, Adelaide, Australia, November 2002

  74. Buysens K, ‘Providing beauty and durability’,European Coatings Journal, June 2005

  75. Fabien R, D Nation, B Mathews, I Richsteig and J Abery, ‘The performance of powder-coated continuously galvanised steel in atmospheric outdoor exposure’,Surface Coatings International Part B. Coatings Transactions,89, (B1) 63–8, 2006

    Article  CAS  Google Scholar 

  76. Australian Standard, Metal Finishing — Thermoset Powder Coatings, AS 4506:2005

  77. Rose K, D Vangeneugden, S Paulussen and U Posset, ‘Radiation curing of hybrid polymer coatings’,Surface Coatings International Part B: Coatings Transactions,89, (B1), 41–8, 2006

    Article  CAS  Google Scholar 

  78. Schubert U, N Hüsing and A Lorenz,Chem Mater,7, 2010, 1995

    Article  CAS  Google Scholar 

  79. Brinker C J and G Scherer,Sol-Gel-Science, The Physics and Chemistry of Sol-Gel Processing, Academic Press, New York, 1990, ISBN 0121349705

    Google Scholar 

  80. Dworak D P and M D Soucek, ‘Mould release potential of polydimethylsiloxane coatings using photoinitiated polymerisation’,Surface Coatings International Part B: Coatings Transactions,89, (B2), 169–75, 2006

    Article  CAS  Google Scholar 

  81. Lindberg C D, ‘Mould release method for polyurethane integralskin foam’, General Tire and Rubber Co, English Patent 74-504202, 1976

  82. Collins S H,Plastics Compounding,62, (2), 38–42, 1983

    Google Scholar 

  83. Kulshreshtha A and S K Awasthi,Popular Plastics and Packaging,43, (6), 77–88, 1998

    CAS  Google Scholar 

  84. Dworak D and M Soucek, ‘Synthesis of cycloaliphatic substituted silane monomers and polysiloxanes for photo-curing’,Macromolecules,37, (25), 9402, 2004

    Article  CAS  Google Scholar 

  85. Wilks Z W, F N Jones and S P Pappas,Organic Coatings Science and Technology, John Wiley & Son, New York, ISBN 0471245070, 1999

    Google Scholar 

  86. Jonsson S, P E Sundell, J Hultgren, D Sheng and C E Hoyle,Prog Org Coat,27, 107, 1996

    Article  Google Scholar 

  87. Pereyra A M, C A Guidice, L K Herrera, F Echeverría and J G Castaño, ‘Tripigmented anticorrosive coatings based on lamellar zinc as inhibitor’,Surface Coatings International Part B: Coatings Transactions,89, (B3), 245–9, 2006

    Article  CAS  Google Scholar 

  88. Munger C G,Corrosion Prevention by Protective Coatings, (2nd edition), NACE, Houston, USA, 1999, ISBN 1 57590 088 2

    Google Scholar 

  89. Weldon D G and B M Carl, ‘Determination of metallic zinc content of inorganic and organic zinc-rich primer by differential scanning calorimetry’,Journal of Coatings Technology,69, (868), 45–9, 1997

    Article  CAS  Google Scholar 

  90. Leidheiser H,Corrosion Control by Organic Coatings, NACE, Houston, USA, 1981, ISBN 0 915567 93 8

    Google Scholar 

  91. Parashar G, D Srivastava and P Kumar, ‘Ethyl silicate binders for high performance coatings’,Progress in Organic Coatings,42, (1–2), 1–14, 2000

    Google Scholar 

  92. Hare C G, ‘Trouble with paint: Barrier coatings’,Journal of Protective Coatings & Linings,15, (4), 17–21, 1998

    Google Scholar 

  93. Feliú S, R Barajas, J M Bastidas and M Morcillo, ‘Mechanism of cathodic protection of zinc-rich paints by electrochemical impedence spectroscopy. I. Galvanic stage’,Journal of Coatings Technology,61, (775), 63–70, 1989

    Google Scholar 

  94. Feliú S, R Barajas, J M Bastidas and M Morcillo, ‘Mechanism of cathodic protection of zinc-rich paints by electrochemical impedance spectroscopy. II. Barrier stage’,Journal of Coatings Technology,61, (775), 71–6, 1989

    Google Scholar 

  95. Muller B and J Langenbaucher, ‘Complete corrosion inhibition of lamellar zinc pigment in aqueous alkaline media’,Corrosion Science,45, 395–401, 2003

    Article  Google Scholar 

  96. Vilche J, E Bucharsky and C Giudice, ‘Application of EIS and SEM to evaluate the influence of pigment shape and content in ZRP formulations on the corrosion prevention of naval steel’,Corrosion Science,44, 1287–309, 2002

    Article  CAS  Google Scholar 

  97. Giudice C A, J C Benitez and M Morcillo, ‘Zinc-rich epoxy primers based on lamellar zinc dust’,Surface Coatings International,80, (6), 279–84, 1997

    Article  CAS  Google Scholar 

  98. Fragata, E Almeida, D Snatos, D de la Fuente and M Morcillo, ‘Water-borne versus solvent-borne paints for protection of steel to atmospheric exposure’,Surface Coatings International Part B: Coatings Transactions,89, (B3), 237–244, 2006

    Article  CAS  Google Scholar 

  99. Martyak N M, ‘On the curing of fatty acids with singlet oxygen’,Surface Coatings Interational Part B: Coatings Transactions,89, (B2), 177–81, 2006

    Article  CAS  Google Scholar 

  100. Faulkner R N, ‘The autroxidation of methyl elaeostearate’, J Appl Chem,8, 488, July 1958

    Google Scholar 

  101. Muizebelt W J, J C Hubert and R A M Venderbosch, ‘Mechanistic study of drying of alkyd resins using ethyl linoleate as a model substance’, Prog Org Coat,24, 263, 1994

    Article  CAS  Google Scholar 

  102. Hartshorn J H, ‘Time-lapse spectroscopic investigation of alkyd and linseed oil cure’,J Coat Tech,54, (687), 53, 1982

    CAS  Google Scholar 

  103. Falla N A R, ‘Linoleic-based coatings: A study of the dry film structure’,J Coat Tech,64, (815), 55, 1992

    CAS  Google Scholar 

  104. Wexler H, ‘Polymerisation of drying oils’,Chemical Reviews,64, (6), 591, 1964

    Article  CAS  Google Scholar 

  105. Fritsch C W and F E Deatherage, ‘A study of the volatile compounds produced by the autoxidation of methyl oleate, oleic acid and cis-9-octadecene’,J Am Oil Chem Soc,33, 109, 1956

    Article  Google Scholar 

  106. Hasenhuettl G L, Kirk-OthmerEncyclopedia of Chemical Technology, J Wiley & Sons, ISBN 0 471 52678 9, 1993

  107. Svane P, ‘Determination of changes in mass and volume of linseed oil during drying’,Surface Coatings International Part B: Coatings Transactions,89, (B4), 327–31, 2006

    CAS  Google Scholar 

  108. Ans D J and K H Ulbrich, ‘Versuche ber die Lein Itrocknung unter festgelegten klimatischen Bedin gungen’, Farbe und Lack,66, (5), 254–76, 1960

    Google Scholar 

  109. Nylen and Sunderland, Modern Surface Coatings, London, 1965

  110. Doulia D, S Rokotas and K Georgopoulou, ‘Production of alkyd resins and their paints: Effect of catalyst on their properties’,Surface Coatings International Part B: Coatings Transactions,89, (B3), 215–9, 2006

    Article  CAS  Google Scholar 

  111. Weiss K D, ‘Paint and coatings: A mature industry in transition’,Prog Polym Sci,22, 203–45, 1997

    Article  CAS  Google Scholar 

  112. Spyros A, ‘Quantitative determination of the distribution of free hydroxylic and carboxylic groups in unsaturated polyester and alkyd resin by 31P-NMR spectroscopy’,Journal of Applied Polymer Science,83, 1634–42, 22nd February 2002

    Article  Google Scholar 

  113. Ratliff L S and L J Prendny, ‘Catalysts for use in the acidolysis, alcoholysis and esterification reactions of polyesters for coating resins’, Proceedings from Advances in Coating Technology, ACT ’98, International Conference, 3rd Katowice, Poland, 20th to 23rd October 1998

  114. Oyman Z O, W Ming, F Micciché, E Oostveen, J van Haveren and R van der Linde, ‘A promising environmentally-friendly manganese-based catalyst for alkyd emulsion coatings’,Polymer,45, 7431–6, 2004

    Article  CAS  Google Scholar 

  115. Brun A, L Brunel and P Snabre, ‘Adaptive speckle imaging interferometry (ASII): New technology for advanced drying analysis of coatings’,Surface Coatings International Part B: Coatings Transactions,89, (B3), 251–4, 2006

    Article  CAS  Google Scholar 

  116. Scheffold F, S Romer, F Cardinaux, H Bissig, A Stradner, LF Rojas-Ochoa, V Trappe, C Urban, SE Skipetrov, L Cipelletti and P Schurtenberger, ‘New trends in optical micro-rheology of complex fluids and gels’,Prog Colloid Polym Sci,123, 141–6, 2004 (and references cited therein)

    CAS  Google Scholar 

  117. Amalvy J I, C A Lasquibar, R Arizaga, H Rabal and M Trivi, ‘Application of dynamic speckle interferometry to the drying of coatings’,Prog Org Coat,42, 89–99, 2001

    Article  CAS  Google Scholar 

  118. Wong A P Y and P Wiltzius, ‘Dynamic light scattering with a CCD camera’,Review of Scientific Instruments,64, (9), 2547–9, 1993

    Article  CAS  Google Scholar 

  119. Pine D J, D A Weitz, P M Chaikin and E Herbolzheimer, ‘Diffusing-wave spectroscopy’,Phys Rev Lett,60, 1134–7, 1988

    Article  CAS  Google Scholar 

  120. Snabre P, J Dufaux and L Brunel, ‘Diffuse laser Doppler velocimetry from multiple scattering media and flowing suspensions’, (ed) P Sebbah,Waves and Imaging through Complex Media, Chapter 3, 369–92, Kluwer Academic Publishers, 2001, ISBN 0792368142

  121. Itami Y, P Hupfield, D Kleyer, Y Nakai and T Masutani, ‘The influence of perfluoropolyether silane structural modification on performance when used as surface treatment agents’,Surface Coatings International Part B: Coatings Transactions,89, (B3), 255–8, 2006

    Article  CAS  Google Scholar 

  122. Zumelzu E, F Rull, P Schmidt and AA Boettcher ‘Structural analysis of polymer-metal laminates by electron microscopy and infrared spectroscopy’,Surface Coatings International Part B: Coatings Transactions,89, (B1), 57–62, 2006

    Article  CAS  Google Scholar 

  123. Zumelzu E and F Rull, ‘Continuity characterisation: An evaluation of rolled polyester coatings on electrolytic plates’,Science and Engineering of Composite Materials,10, (1), 71–7, 2002

    CAS  Google Scholar 

  124. Zumelzu E, C Cabezas and A Vera, ‘Scanning electron microscopy analysis of corrosion degradation on tinplate substrates’,Scanning,15, 34–6, 2003

    Google Scholar 

  125. O’Leary P W, ‘Effect of a coupling agent on the adhesion of paint to timber’,Surface Coatings International Part B: Coatings Transactions,89, (B4), 321–6, 2006

    CAS  Google Scholar 

  126. Swaraj P, ‘Physico-chemical interpretation of paint film adhesion’,Journal of Coatings Technology,54, (692), 59–65, 1982

    Google Scholar 

  127. Bardage S T, ‘Adhesion between paint and wood: Preliminary results’, Proceedings from Nordic Conference Wood-Paint-Moisture, Rapport I 96110081, 81-5, Stockholm, Tratek, 1996

  128. Bullet T R and J L Prosser, ‘The measurement of adhesion’,Progress in Organic Coatings,1, 45–71, 1972

    Article  Google Scholar 

  129. Underhaug A, T J Lund and K Kleive, ‘Wood protection — The interaction between substrate and the influence on durability’,JOCCA,66, (11), 345–50, 1983

    CAS  Google Scholar 

  130. Richter K, W C Feist and M T Knaebe, ‘The effect of surface roughness on the performance of finishes’, Research Report 115/31, 55, Swiss Federal Laboratories for Materials and Testing Research, Dübendorf, Switzerland, 1994

    Google Scholar 

  131. Bardage S T and J Bjurman, ‘Adhesion of water-borne paints to wood’,Journal of Coatings Technology,70, (878), 39–47, 1998

    Article  CAS  Google Scholar 

  132. EN 927-1, ‘Paints and varnishes — Coating materials and coating systems for exterior wood — Part 1: Classification and selection’, September 1996

  133. Grüll G, R Fitl and A Teischinger, ‘Computer modelling of steady-state moisture diffusion through wood/aluminium windows with different coatings’,Surface Coatings International Part B: Coatings Transactions,89, (B2), 99–107, 2006

    Article  Google Scholar 

  134. Tretter A, ‘Holzlackschäden — Beschichtungsmängel an Fenstern: Erkennen, Vermeiden, Sanieren’, DRW-Verlag, Leinfeld-Echterdingen 2004, ISBN 3 87181 139 4

  135. Verning H and K P Schober, ‘Fenstersysteme — Marktübersicht, Konstructionen und Einbau in vorgefertigte Außenwände aus Holz’,Holzforschung Austria, Vienna 2004, ISBN 3 950 1664 6 7

  136. Janotta O, G Grüll and F Tscherne, ‘Neue zukunftsorientierte Holzfenstersysteme — Oberfläche’, Report on research project ZL. 1/1044, Holzforschung Austria, Vienna, 1998

    Google Scholar 

  137. Grüll G, T Anderl and A Teischinger, ‘Wood moisture content of coated wood/aluminium windows, Part 1: Reactions to exterior humidity stress’,Surface Coatings International Part B: Coatings Transactions,87, (B2), 111–9, 2004

    Article  Google Scholar 

  138. Grüll G and T Anderl, ‘Wood moisture content of coated wood/aluminium windows, Part 2: Reactions to interior humidity stress’,Surface Coatings International Part B: Coatings Transactions,87, (B3), 203–10, 2004

    Article  Google Scholar 

  139. WinFeuchte V3.08, Sommer Informatik GmbH, Rosenheim

  140. Enomura M, JP Patent 207533, ‘A new dispersion — emulsification device and a new dispersion emulsification method’, 2002

  141. Enomura M, K Araki, M Yokosuka, K Takebayashi, M Yuasa and M Abe, ‘Development and applicability of a new beadless disperser’,Journal of Japan Society of Colour Material,75, (12), 586–91, December 2002

    CAS  Google Scholar 

  142. Enomura M, X F Zhang, K Araki, M Yokosuka, K Takebayashi, M Yuasa and M Abe, ‘Performance improvement of the new beadless disperser’,Journal of Japan Society of Colour Material,77, (3), 116–20, March 2004

    Google Scholar 

  143. Taylor GI, ‘The viscosity of a fluid containing small drops of another fluid’,Proceedings of the Royal Society (London) Part A,138, 41–8, 1932.

    Article  CAS  Google Scholar 

  144. Zhang XF, M Enomura, M Tsutahara, K Takebayashi and M Abe, ‘Numerical simulation of fine droplets formation process in beadless disperser’,Surface Coatings International Part B: Coatings Transactions,89, (B4), 269–74, 2006

    CAS  Google Scholar 

  145. Inamuro T, ‘Lattice Boltzman method — New simulation method of computational fluid dynamics’,Bussei Kenkyu,77, 193–232, 2001

    Google Scholar 

  146. Bellmann C, N Petong, A Caspari, W Jenschke, F Simon and K Grundke, ‘Surface analysis of particles’,Surface Coatings International Part B: Coatings Transactions,89, (B1) 69–75, 2006

    Article  CAS  Google Scholar 

  147. Derjaguin B V and L Landau, ‘Theory of the stability of strongly charged lyophobic sols and of the adhesion of strongly charged particles in solution of electrolytes’,Acta Physicochim,14, 633, URSS. 1941

    Google Scholar 

  148. Verwey E J W and J Th G van Overbeek,Theory of the Stability of Lyophobic Colloids, 135–82, Elsevier, Amsterdam, 1948, ISBN 0 48 640929 5

    Google Scholar 

  149. Israelachvili N J,Intermolecular and Surface Forces, 139–337, Academic Press, New York, 1991, ISBN 0 12 375181 0

    Google Scholar 

  150. Napper D H,Polymeric Stabilisation of Colloidal Dispersions, 18–30 and 181–412, Academic Press, London, 1983, ISBN 0 12 513980 2

    Google Scholar 

  151. Labib M E and R Williams, ‘Colloid science — an experimental comparison between the aqueous pH scale and the electron donicity scale’,Colloid and Polymer Sci,264, (6), 533–41, 1986

    Article  CAS  Google Scholar 

  152. Grundke K, ‘Wetting, spreading and penetration’,Handbook of Applied Surface and Colloid Chemistry, (ed) K Holmburg, 2, 119–42, Wiley & Sons, 2002, ISBN 0 471 49083 0

  153. Grundke K, T Bogumil, T Gietzelt, H-J Jacobasch, D Y Kwok and A W Neuman, ‘Wetting measurements on smooth, rough and porous solid surfaces’,Prog Colloid Polymer Sci,101, 58–68, 1996

    Article  CAS  Google Scholar 

  154. Shaw D J,Introduction to Colloid and Surface Chemistry, 148–82, Butterworth/Heinemann, London, 1980, ISBN 0 75 061182 0

    Google Scholar 

  155. Bellmann C, Ch Klinger, A Opfermann, F Böhme and H-J P Adler, ‘Evaluation of surface modification by electrokinetic measurements’,Prog Org Coat,44, (2), 93–8, 2002

    Article  CAS  Google Scholar 

  156. Washburn E W, ‘The dynamics of capillary flow’,Phys Rev,17, (3), 273–83, 1921

    Article  Google Scholar 

  157. Li D, M Xie and A W Neumann, ‘Vapour adsorption and contact angles on hydrophobic solid surfaces’,J Colloid Interface Sci,271, (6), 573–80, 1993

    CAS  Google Scholar 

  158. Fagelman K E and J T Guthrie, ‘A study of pigment solubility in model compounds that represent a polycarbonate — Poly(butylenes terephthalate) blend’,Surface Coatings International Part B: Coatings Transactions,89, (B2), 109–116, 2006

    Article  CAS  Google Scholar 

  159. Christie R M, C-H Chang, H-Y Huang and M Vincent, ‘Colour and constitution relationships in organic pigments: Part 6 Azonaphtharylamide Pigments’,Surface Coatings International Part B: Coatings Transactions,89, (B1) 77–85, 2006

    Article  CAS  Google Scholar 

  160. Christie R M, P N Standring and J Griffiths, ‘Colour and constitution relationships in organic pigments. Part 1 — Monoazoaceto-acetanilides’,Dyes & Pigments,9, 37–56, 1988

    Article  CAS  Google Scholar 

  161. Christie R M and B G Freer, ‘Colour and constitution relationships in organic pigments. Part 3 — Phthalocyanines’,Dyes & Pigments,24, 113–24, 1994

    Article  CAS  Google Scholar 

  162. Wood K A and S R Gaboury, ‘Service life prediction of colour retention for PVDF architectural coatings with organic pigments’,Surface Coatings International Part B: Coatings Transactions,89, (B3), 231–5, 2006

    Article  CAS  Google Scholar 

  163. Leonard C, J L Halary and L Monnerie, ‘Hydrogen bonding in pMMA-fluorinated polymer blends; FTIR investigations using ester model molecules’,Polymer,26, 1507–13, 1985

    Article  CAS  Google Scholar 

  164. Humphrey J S and X Drujon,Polymeric Materials Encyclopedia, 11, 8591-6, CRC Press Inc, 1996, ISBN 0 8493 2470 X

  165. Wood K, L Hedhli and K Hanrahan, ‘Fluoropolymer-based latex paints,Paint and Coatings Industry,21, (7), 64–71, July 2005

    Google Scholar 

  166. Akahori M, ‘A new test method for weatherability prediction by using a remote plasma reactor’,Surface Coatings International Part B: Coatings Transactions,89, (B2), 163–8, 2006

    Article  CAS  Google Scholar 

  167. Japanese Patnet H01-28897

  168. Mori K, K Okamoto and K Tachi, ‘Degradation of coatings films containing titanium oxide by UV irradiation in aqueous oxidation agent solutions’,J Colour Mater, Japan,75, 209, 2002

    CAS  Google Scholar 

  169. Morsy F A, S Y Elsayed, A Bakry and M A Eid, ‘Surface properties and printability of polypropylene film treated by an air dielectric barrier discharge plasma’,Surface Coatings International Part B: Coatings Transactions,89, (B1), 49–55, 2006

    Article  CAS  Google Scholar 

  170. Rease D E, ‘The challenges of printing plastic packaging films’,Felxo,18, (3), 14, 16, 19, 27, 1993

    Google Scholar 

  171. Millward J, ‘A trick to treat?’,Package Print,48, (1), 40, 42, 44–5, 2001

    Google Scholar 

  172. Johnson A, ‘Correlating proofs to production paint’, Pira study, 1980

  173. Dabrowa T and M Gajadhur, ‘Colour gamut of a press print and dependence of the basic attributes of overprint colours on the process ink film thickness’,Surface Coatings International Part B: Coatings Transactions,89, (B4), 305–14, 2006

    CAS  Google Scholar 

  174. ISO 12647-1, ‘Graphic technology — Process control for the manufacture of halftone colour separations, proof and production prints — Part 1: Parameters and measurement methods’, 1996

  175. ISO 5-3, ‘Photography — Density measurements — Part 3: Spectral conditions’, 1995

  176. Field G G, Color and its Reproduction, 107-9, GATF, Pittsburgh, 1998, ISBN 0 88362 088 X

  177. Fricker A, A Manning and R Thompson, ‘Deinking of Indigo prints using high-intensity ultrasound’,Surface Coatings International Part B: Coatings Transactions,89, (B2), 145–55, 2006

    Article  CAS  Google Scholar 

  178. Thompson R C, A Manning and J Lane, ‘An investigation of the effect of temperature and exposure to ultrasound on the de-inking of mixed recoverable office waste’,Surface Coatings International,83, (7), 322–8, 2000

    Article  CAS  Google Scholar 

  179. Manning A and R C Thompson, ‘De-inking of thick film UV-cured coatings using high intensity ultrasound’,Surface Coatings International Part B: Coatings Transactions,87, (B1), 22–6, 2004

    Google Scholar 

  180. Schmitz U and A Fischer, ‘Recycling killer in digital clothing: digital inks cause recycling problems’,Druck Medien, 34–5, September 2004

  181. Carre B and L Magnin, ‘Digital printing: A threat to the deinking industry?’, Proceedings from the PTS-CTP Deinking Symposium, 7.2–7.15, Bordeaux, France

  182. Kazlauciunas A, ‘Digital image capture — Filmless camera technology and techniques’,Surface Coatings International Part B: Coatings Transactions,89, (B3), 193–99, 2006

    Article  CAS  Google Scholar 

  183. Kazlauciunas A, ‘Digital imaging versus silver halide — schism or the perfect marriage?’,Advances in Colour Science and Technology,4, (3), 68–75, 2001

    CAS  Google Scholar 

  184. MacDonald L W, Colour Imaging:Vision and Technology, (eds) LW MacDonald, MR Luo, 195–6, John Wiley & Sons, 1999, ISBN 0 471 98531 7

  185. Tarrant J,Digital Camera Techniques, 6, Focal Press, 2003, ISBN 0 240 51687 7

  186. Kazlauciunas A, ‘Digital imaging — Theory and application, Part 1: Theory’,Surface Coatings International Part B: Coatings Transactions,84, (B1), 1–9, January 2001

    Article  CAS  Google Scholar 

  187. Merrill R B, ‘Colour separation in an active pixel cell imaging array using a triple-well structure’ US Patent 5,965,875, 12th October 1999

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Holme, I. Advances in the science and technology of paints, inks and related coatings: 2006. Surface Coatings International Part B: Coatings Transactions 89, 343–363 (2006). https://doi.org/10.1007/BF02765587

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