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WO2014032166A1 - Décapant de peinture antisalissure - Google Patents

Décapant de peinture antisalissure Download PDF

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Publication number
WO2014032166A1
WO2014032166A1 PCT/CA2013/000746 CA2013000746W WO2014032166A1 WO 2014032166 A1 WO2014032166 A1 WO 2014032166A1 CA 2013000746 W CA2013000746 W CA 2013000746W WO 2014032166 A1 WO2014032166 A1 WO 2014032166A1
Authority
WO
WIPO (PCT)
Prior art keywords
antifouling paint
composition
paint remover
component
gel
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/CA2013/000746
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English (en)
Other versions
WO2014032166A4 (fr
Inventor
Sergio Vitomir
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Protocol Environmental Solutions Inc
Original Assignee
Protocol Environmental Solutions Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Protocol Environmental Solutions Inc filed Critical Protocol Environmental Solutions Inc
Publication of WO2014032166A1 publication Critical patent/WO2014032166A1/fr
Publication of WO2014032166A4 publication Critical patent/WO2014032166A4/fr
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09DCOATING COMPOSITIONS, e.g. PAINTS, VARNISHES OR LACQUERS; FILLING PASTES; CHEMICAL PAINT OR INK REMOVERS; INKS; CORRECTING FLUIDS; WOODSTAINS; PASTES OR SOLIDS FOR COLOURING OR PRINTING; USE OF MATERIALS THEREFOR
    • C09D9/00Chemical paint or ink removers
    • C09D9/005Chemical paint or ink removers containing organic solvents
    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09DCOATING COMPOSITIONS, e.g. PAINTS, VARNISHES OR LACQUERS; FILLING PASTES; CHEMICAL PAINT OR INK REMOVERS; INKS; CORRECTING FLUIDS; WOODSTAINS; PASTES OR SOLIDS FOR COLOURING OR PRINTING; USE OF MATERIALS THEREFOR
    • C09D5/00Coating compositions, e.g. paints, varnishes or lacquers, characterised by their physical nature or the effects produced; Filling pastes
    • C09D5/16Antifouling paints; Underwater paints

Definitions

  • the field of the invention is compositions and methods of removing antifouling paint from various substrates, and especially marine antifouling paint from marine vessels.
  • marine antifouling coatings are formulated using synthetic resins as well as natural rosins to which an active ingredients package is added.
  • the active agent is based on copper and includes metallic copper, inorganic copper (provided as oxides) and organic copper, which may be present in various levels and combinations.
  • the slow release of the copper is controlled by the nature of the resin-rosin part of the formulation.
  • silicone resins were formulated in a large variety of antifouling paints to provide for increased efficacy, reduction of friction with water and self cleaning properties.
  • Antifouling coatings are generally only effective as long as the copper content released from the surface of the paint is sufficiently high to deter growth of fouling organisms. The life expectancy of such coatings is in most cases between two and five years, after which the coating needs to be replaced. Due to environmental considerations, sanding is prohibited to a large extent. Moreover, sanding or blasting removal will in at least some circumstances be detrimental to the substrate (e.g., fiberglass, gelcoat, aluminum, etc.).
  • the present invention is directed to various compositions and methods for an antifouling paint remover, and especially for a marine antifouling paint remover, that is able to cling with very little or no sagging to a large variety of antifouling marine paints (which may be based on silicone, epoxy, alkyd, thermoplastic polyamide etc.) to thereby lift or remove the paint without causing damage to its substrate.
  • an antifouling paint remover and especially for a marine antifouling paint remover, that is able to cling with very little or no sagging to a large variety of antifouling marine paints (which may be based on silicone, epoxy, alkyd, thermoplastic polyamide etc.) to thereby lift or remove the paint without causing damage to its substrate.
  • contemplated antifouling paint removers will include two functionally distinct components, a paint solvent and a gelling component, wherein the antifouling paint remover is formulated to allow both brush and/or spray application.
  • the antifouling paint remover can also include at least one of a filler, an emulsifier, an evaporation retarder, a stabilizer, and a chelating agent to impart one or more desirable characteristics for commercial use (e.g., minimized moisture loss, extended storage life, reduced separation of ingredients).
  • the inventors contemplate an antifouling paint remover composition comprising a solvent component and an in situ gelling component.
  • the solvent component will most preferably comprise a solvent that is suitable to penetrate, and at least partially solubilize, a polymer of antifouling paint (e.g., marine antifouling paint).
  • the gelling component will most preferably be an in-situ gelling component formulated to undergo a sol-gel reaction that is catalyzed by residual copper in antifouling paint (e.g., on a marine hull, yacht, or boat) to form a mesoporous film that clings thereto.
  • contemplated antifouling paint removers can advantageously be applied to, cling to, react with and lift antifouling paint on a top, side, bottom or any other portion of a substrate with very little or no sagging or dripping, and without causing damage to the substrate.
  • no sag means that at least 90% of a composition, when applied to a 10 cm 2 vertical substrate (coated with antifouling paint) at a thickness of 1mm and at room temperature, will be retained on that surface without dripping off for at least 10 minutes.
  • Substrates compatible with compositions and methods of the inventive subject matter can include, among other things, a gel coat, a fiberglass, aluminum, steel, concrete, or any other substrate to which antifouling paint may be applied to prevent the growth of organisms.
  • the antifouling paint remover composition includes a solvent or solvent blend component that includes at least one of a benzyl alcohol and a tert-butyl acetate (TBAc). While not limiting to the inventive subject matter, it is further preferred that the solvent component is present in the composition in an amount between 5-75% (w/w), more preferably between 10-60 % (w/w), and most preferably between 25-50% (w/w).
  • Especially preferred in situ gelling components can comprise at least one of an inorganic and an organic silicate, and be present in the composition in an amount of between 1-50% (w/w), and more preferably between 5-25% (w/w).
  • Such gelling components could advantageously form a mesoporous gel on the copper containing antifouling paint to thereby prevent or substantially prevent sagging or dripping of the composition when applied to the antifouling paint.
  • the residual copper in the antifouling paint to be removed could catalyze formation of the mesoporous gel, which will cause the antifouling paint remover to cling to the antifouling paint from its substrate, thereby allowing the solvent component to lift the antifouling paint from its substrate.
  • a preferred composition could include a solvent component and an in situ gelling component, wherein the solvent component comprises a solvent blend of benzyl alcohol and tert-butyl acetate, and is present in the composition in an amount between 25-50% (w/w), and wherein the gelling component comprises a silicate, is present in the composition in an amount between 5-20% (w/w), and forms a mesoporous gel when applied on antifouling paint including copper.
  • the remaining volume of the composition can comprise fillers, emulsifiers, evaporation retardants, stabilizers, chelating agents, water, or any other suitable components.
  • an antifouling paint remover composition that includes the step of including into an antifouling paint remover composition an in situ gelling component.
  • the antifouling paint remover composition will comprise a solvent that is suitable to penetrate and at least partially solubilize a polymer of an antifouling paint.
  • the in situ gelling component will be formulated such as to form a gel upon application of the antifouling paint remover composition on the antifouling paint on a substrate.
  • the antifouling paint remover composition will comprise benzyl alcohol and optionally tert-butyl acetate in an amount of between 5-75% (w/w), more preferably between 10- 60 % (w/w), and most preferably between 25-50% (w/w) in the composition.
  • preferred in situ gelling components will comprise at least one of an inorganic and an organic silicate in an amount of between 1-50% (w/w), and more preferably between 5-25% (w/w) in the composition.
  • composition prepared in accordance with a method of the inventive subject matter can advantageously be used to remove antifouling paint from a substrate by clinging to and reacting with the antifouling paint.
  • the inventor contemplates a method of removing antifouling paint from a substrate that includes a step of applying an antifouling paint remover onto an antifouling paint, and a step of removing the gelled antifouling paint remover and at least part of the antifouling paint.
  • the step of applying the antifouling paint remover can comprise spraying or brushing the antifouling paint remover onto the antifouling paint.
  • a user can apply the remover using an airless sprayer or high volume, low pressure (HVLP) sprayer having a suitable nozzle tip size (e.g., .01 1-.021, .021 -.031, .031 -.041) and chemical resistant fittings.
  • HVLP high volume, low pressure
  • the antifouling paint to be removed will comprise a silicon base, and include a component that catalyzes the step of in situ forming a gel.
  • the step of in situ forming a gel is catalyzed by a copper component of the antifouling paint that reacts with a gelling component of the antifouling paint remover.
  • inventive subject matter provides many example embodiments of the inventive subject matter. Although each embodiment represents a single combination of inventive elements, the inventive subject matter is considered to include all possible combinations of the disclosed elements. Thus if one embodiment comprises elements A, B, and C, and a second embodiment comprises elements B and D, then the inventive subject matter is also considered to include other remaining combinations of A, B, C, or D, even if not explicitly disclosed.
  • antifouling paint remover compositions can be prepared that will provide not only superior paint removal ability, but also allow the remover to form a film that avidly clings to various types of antifouling paint, and lifts the antifouling paint from various substrates, and especially those including gel coats, fiberglass, aluminum, steel, and concrete, etc.
  • the resulting film can have a viscosity sufficient to allow the antifouling paint remover to cling to antifouling paint on substrates that are upward facing, side facing, downward facing, or anywhere in between, and for a sufficient amount of time to react with and lift the antifouling paint from the substrate.
  • the film will be formed in situ and be mesoporous having a typical pore diameter between 2 and 50 nanometers, inclusive. It is generally preferred that the process that generates the mesoporous film is accelerated by residual copper in the antifouling paint to which it is applied such that the gel rate of the composition exceeds its drip rate, even on vertical or overhead surfaces. While it is in most instances preferred that the resulting film be mesoporous, it should also be appreciated that the resulting film can have any suitable porosity or porosities. Thus, the film can comprise pores having diameters between 0.1 and 1,000 nanometers, more typically between 1 and 250 nanometers. Viewed from a different perspective, the resulting film can be microporous, mesoporous or macroporous.
  • the antifouling paint remover is a liquid formulated from (I) a solvent or solvent blend that is effective to penetrate, solubilize, and swell the various polymers in the resin/rosin or silicone film of the paint, and (II) a (preferably water miscible) silicate gelling component in an amount effective to undergo an in situ gelling (i.e., sol-gel process) that is catalyzed by residual copper in the antifouling paint to thereby form a mesoporous film (typically with a pore size of between 2 and 50nm inclusive).
  • a solvent or solvent blend that is effective to penetrate, solubilize, and swell the various polymers in the resin/rosin or silicone film of the paint
  • a (preferably water miscible) silicate gelling component in an amount effective to undergo an in situ gelling (i.e., sol-gel process) that is catalyzed by residual copper in the antifouling paint to thereby form a mesoporous film (typical
  • a sol-gel process can occur between monomers of the composition to generate a film that provides with an excellent clinging ability to all antifouling coatings, especially to silicone containing coatings, surpassing all of the commercially available antifouling paint removers tested by the inventor.
  • the sol-gel process can be catalyzed by the residual copper in the antifouling paint.
  • suitable solvent components can include one or more of a polar protic solvent (e.g., formic acid, «-Butanol, isopropanol, «-Propanol, ethanol, methanol, acetic acid, nitromethane, water), a polar aprotic solvent (e.g., dichloromethane, tetrahydrofuran, ethyl acetate, acetone, dimenthylformamide, acetonitrile, dimethyl sulfoxide, propylene carbonate), or a non-polar solvent (e.g., pentane, cyclopentane, hexane, cyclohexane, benzene, toluene, 1,4-Dioxane, chloroform, diethyl
  • a polar protic solvent e.g., formic acid, «-Butanol, isopropanol, «-Propanol, ethanol, methanol,
  • the solvent component can comprise one or more paint solvents including for example, benzyl alcohol, tert-butyl acetate (TBAc), methylene chloride, amyl acetate, acetone, glycol ethers, MEK, or any combination thereof.
  • paint solvents including for example, benzyl alcohol, tert-butyl acetate (TBAc), methylene chloride, amyl acetate, acetone, glycol ethers, MEK, or any combination thereof.
  • the solvent or solvent blend will advantageously comprise benzyl alcohol or other versatile, slow-evaporating, non-flammable, non-combustible and readily biodegradable paint solvent treated favorably under certain VOC regulations.
  • the solvent component will comprise a blend of two or more co-solvents that are partially or completely miscible with one another.
  • preferred co-solvents will be a solvent suitable for use in thinners, enamels, lacquers, etc., and be non-toxic or environmentally safe.
  • the solvent component could comprise a polar solvent and a non-polar solvent, a polar aprotic solvent and a polar protic solvent, two or more polar aprotic solvents, two or more polar protic solvents, two or more non-polar solvents, or any combinations or variations thereof.
  • co-solvents can preferably include tert- butyl acetate, which is miscible with the benzyl alcohol, is suitable for use in thinners, enamels and lacquers, and has achieved EPA volatile organic compound (VOC) exempt status.
  • VOC volatile organic compound
  • the PHOSITA will be readily able to determine the best choice of solvent or solvent blend based on the particular antifouling paint.
  • solvents that may be miscible with benzyl alcohol and suitable co-solvents are methoxyethanol, acetic acid, methanol, pyridine, and propanol.
  • the solvent/solvent blend includes benzyl alcohol/benzyl alcohol and TBAc. While not limiting to the inventive subject matter, it is generally preferred that the ratio between benzyl alcohol and TBAc is between 1 : 10 and 10: 1, more preferably between 1 :4 and 4: 1, even more preferably between 1:2 and 4: 1, and most preferably between 1 : 1 and 3: 1. However, all suitable ratios of all suitable co- solvents are contemplated. Moreover, it should be appreciated that while the paint remover may not include a non-organic component, generally preferred paint removers will be water-based, and in most cases include the solvent or solvent mixture in an amount of 10-60% by weight.
  • the gelling component could comprise one or more suitable sol-gel precursors including for example, metal alkoxides (e.g., titanium ethoxide, zirconium ethoxide, niobium ethoxide, tantalum ethoxide, silicon ethoxide), nitrates, carboxylates, acetylacetonates, chlorides, sulfates (e.g., lithium sulfate, sodium sulfate, potassium sulfate), silicates (e.g., sodium silicate, methyl silicate, tetraethyl orthosilicate
  • metal alkoxides e.g., titanium ethoxide, zirconium ethoxide, niobium ethoxide, tantalum ethoxide, silicon ethoxide
  • nitrates e.g., carboxylates, acetylacetonates
  • chlorides e.g., lithium
  • the gelling component comprises at least one of an organic and inorganic silicate in an amount of between about 1 -50 % by weight or as suitable to form a gel in the formulation upon reaction with residual copper in the antifouling paint.
  • most preferred gelling components will be water miscible and capable of acting as a precursor for a sol-gel process resulting in the formation of a preferably mesoporous film that clings to antifouling coatings, especially to silicone containing coatings.
  • the antifouling coating could even form covalent bonds with the gelling component.
  • Sol-gel processes generally involve the hydrolysis and condensation of molecular precursors, possibly accelerated by an acid or base catalyst, wherein monomers are converted into a colloidal solution (sol) that acts as the precursor for an integrated network (gel) whose morphologies can range from discrete particles to continuous polymer networks in which polymer chains are interconnected to form a single macroscopic entity by many cross-links.
  • sol becomes a gel via gelation, its viscosity can approach infinity and can become immobile when the particle network extends across the entire volume of the liquid.
  • the sol-gel process occurring upon application of a antifouling paint remover composition can result in in situ gel formation that advantageously result in a change in viscosity of the antifouling paint remover composition from a pre-application viscosity of less than 20,000 Centipoise (cPs), typically less than 15,000 cPs, more typically less than 10,000 cPs, or even more typically less than 9,000 cPs, to a post- application viscosity of at least 30,000 cPs, more typically at least 50,000 cPs, even more typically at least 100,000 cPs, and most typically at least 250,000 cPs.
  • the resulting gels will comprise a mesoporous film that clings to antifouling paint to be lifted and removed from a substrate. In this manner, antifouling paint remover
  • compositions of the inventive subject matter can be provided in a convenient liquid form and be utilized without the need for external strips (e.g., laminated papers or other strips of material) to assist in adhering the remover to the antifouling paint.
  • external strips e.g., laminated papers or other strips of material
  • most preferred gelling components will comprise one or more silicates that act as a precursor for a sol-gel process catalyzed by the residual copper in antifouling paint to thereby increase the viscosity of the antifouling paint remover composition by at least 20,000 cPs, more preferably at least 50,000 cPs, even more preferably at least 100,000 cPs, and most preferably at least 250,000 cPs or more.
  • the increase in viscosity can be at least partially dependent on the type or amount of silicate or solvent component included in the antifouling paint remover composition.
  • the sol-gel process can be catalyzed by one or more components in a large variety of antifouling marine coatings (e.g., residual copper (copper oxide, Cu 2+ )) to advantageously increase the rate of gelling (e.g., hydrolysis and condensation reactions) such that a gel will form and cling to even overhead or vertical substrates before it can drip from the substrate.
  • the surface to be treated will contain at least 1 ppb, more preferably at least 10 ppb, even more preferably at least 100 ppb, and most preferably at least 1 ppm residual copper.
  • the surface to be treated can comprise any suitable concentration of residual copper (e.g., less than lppb, at least 10 ppm, at least 100 ppm).
  • antifouling paint remover compositions of the inventive subject matter can undergo sol-gel processes catalyzed by other components of antifouling marine coatings, including one or more components of silicon based coatings, epoxy coatings, ceramic-epoxy coatings, and silicone- rubber coatings.
  • one or more catalysts e.g., acid, base
  • Such catalyst(s) could be included in the antifouling paint remover composition, added to the composition at or near a time of use, or included in a pre-treatment composition applied to the antifouling paint prior to the antifouling paint remover composition.
  • contemplated paint remover formulations may include one or more thickening agents (e.g., carboxymethyl cellulose, ethyl cellulose, propyl cellulose, etc.) in suitable quantities to increase the viscosity of the solution prior to use. Therefore, in most applications, thickeners may be present in an amount of between 0.5 to 25% by weight, between 1 to 20% by weight, or even between 5 to 10%) by weight, and can be used to thicken the antifouling paint remover composition such that it is compatible for use with a specific airless sprayer tip size or range of sizes (e.g., .021-.031).
  • thickening agents e.g., carboxymethyl cellulose, ethyl cellulose, propyl cellulose, etc.
  • contemplated paint removers may also include one or more (typically inorganic) fillers, and especially suitable fillers include bentone, bentonite clay, fumed silica, etc.
  • suitable fillers include bentone, bentonite clay, fumed silica, etc.
  • fillers may be included in the paint remover to any desired proportion, which is typically within a range of between 1 to 30% by weight, more preferably between 3- 15% or 5-10%
  • suitable ingredients include emulsifiers, evaporation retarders or humectants and suitable compounds include various ethoxylates, sorbitans, and glycols, typically each or combined in an amount of between 0.2-5%, between 1-4%, or between 2-3% by weight of the remover formulation.
  • one or more chelating agents may be added, and especially suitable chelators include gluconates, citrates, and/or EDTA, generally in an amount of between 0.5 to 30% by weight, between 1 to 25% by weight, between 5 to 20% by weight, or even between 10 to 15% by weight of the formulation.
  • especially preferred antifouling paint remover compositions can comprise as the solvent component benzyl alcohol or a benzyl alcohol/TBAc mix, typically in an amount from 10-60% (w/w) and more preferably from 25-50% (w/w) in the total composition.
  • Such contemplated antifouling paint remover compositions will comprise as the silicate component inorganic and/or organic silicates, typically in an amount from 1-50% (w/w), and most preferably from 5-20% (w/w) in the total
  • Inorganic fillers may be included from 1-30% (w/w) and more preferably from 3- 15% (w/w) in the total composition, and emulsifiers and evaporation retarders may be present from 0.2-5% (w/w) and most preferably from 1-4% (w/w) in the total composition.
  • Chelating agents are typically present from 0.5-30% (w/w) and most preferably from 3-1 % (w/w) in the total composition.
  • the balance of the antifouling paint remover compositions is typically water.
  • compositions contemplated herein are formulated as a liquid formulation that can be sprayed directly onto horizontal, vertical and overhead substrates having antifouling paint.
  • the so formed composition is applied to a marine hull or other apparatus comprising antifouling paint (e.g., with an airless sprayer, brush or roller) to be removed.
  • antifouling paint e.g., with an airless sprayer, brush or roller
  • a sol-gel process is catalyzed by residual copper in the antifouling paint to form a polymeric film that is substantially or completely no-sag, and thus clings to the antifouling paint for hours or even days at a time while lifting or removing the antifouling paint from its substrate.
  • the polymeric film can comprise any suitable form, including for example, a solid material composed of a liquid phase entrapped in a three-dimensionally cross-linked network (e.g., a micro, meso or macroporous film).
  • the composition will be used in well ventilated areas using an airless sprayer with a tip having a suitable size for the viscosity of the liquid composition. It is also contemplated that the composition can be brushed or rolled on the surfaces, especially for smaller areas to be retouched, preferably in an amount such that the color of the antifouling paint is not visible through the remover composition.
  • the amount of composition necessary to remove antifouling paint from a substrate can be dependent upon various factors, including for example, the amount of residual copper and the number of layers of paint.
  • the composition can take 1, 3, 5, 10, or even 12 or more hours for the antifouling paint to be lifted from the substrate, at least partially dependent on the number of layers, temperature and type of paint used. While not limiting to the inventive subject matter, for example, it is contemplated that the required dwell time to lift a silicon based antifouling paint could be shorter than that required for an epoxy based antifouling paint.
  • a pressure washer can be used, preferably at a slight angle, which will generally create two waste streams: a liquid stream and a solid stream.
  • the liquid stream comprises the composition and wash water, which is preferably inert, fully biodegradable and can be washed down the drain
  • the solid stream comprises the paint material, which can be collected at the drainage point and disposed of according to applicable regulations.

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  • Chemical & Material Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • General Chemical & Material Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Materials Engineering (AREA)
  • Wood Science & Technology (AREA)
  • Organic Chemistry (AREA)
  • Paints Or Removers (AREA)
PCT/CA2013/000746 2012-08-29 2013-08-29 Décapant de peinture antisalissure Ceased WO2014032166A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US201261694432P 2012-08-29 2012-08-29
US61/694,432 2012-08-29

Publications (2)

Publication Number Publication Date
WO2014032166A1 true WO2014032166A1 (fr) 2014-03-06
WO2014032166A4 WO2014032166A4 (fr) 2014-04-24

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Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1996017024A1 (fr) * 1994-12-02 1996-06-06 Courtaulds Coatings (Holdings) Limited Traitement de surfaces peintes
WO2001005898A1 (fr) * 1999-07-19 2001-01-25 Napier Environmental Technologies Inc. Compositions de decapant pour peinture
US6534461B2 (en) * 2000-05-26 2003-03-18 Atofina Stripping composition which can be used in particular in the construction and yachting field
CA2601035A1 (fr) * 2005-04-15 2006-10-26 Ecolab Inc. Composition decapante pour enduit de sol, qui s'epaissit lorsqu'elle est melangee a de l'eau, et procede de decapage
WO2008142562A1 (fr) * 2007-04-30 2008-11-27 Michael Brailsford Decapant ecologique biodegradable pour peinture

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1996017024A1 (fr) * 1994-12-02 1996-06-06 Courtaulds Coatings (Holdings) Limited Traitement de surfaces peintes
WO2001005898A1 (fr) * 1999-07-19 2001-01-25 Napier Environmental Technologies Inc. Compositions de decapant pour peinture
US6534461B2 (en) * 2000-05-26 2003-03-18 Atofina Stripping composition which can be used in particular in the construction and yachting field
CA2601035A1 (fr) * 2005-04-15 2006-10-26 Ecolab Inc. Composition decapante pour enduit de sol, qui s'epaissit lorsqu'elle est melangee a de l'eau, et procede de decapage
WO2008142562A1 (fr) * 2007-04-30 2008-11-27 Michael Brailsford Decapant ecologique biodegradable pour peinture

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