Silane-based adhesion primer deposited by atmospheric pressure plasma deposition
Patent Information
- Application Number
- EP2024719097
- Authority / Receiving Office
- EP · EP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-04-07
- Filing Date
- 2024-04-03
- Publication Date
- 2026-02-11
AI Technical Summary
Current methods for achieving good adhesion between polyamide substrates and thermoplastic elastomers face challenges such as extended processing times, difficulty in achieving uniform coatings, sensitivity to environmental conditions, and regulatory issues with isocyanate-based coatings, which limit their effectiveness and safety in applications like automotive guide rails.
A plasma-based adhesion primer using silane deposited at atmospheric pressure, specifically comprising units (O)nIf where n is 1, 2, or 3, and at least one amine, is applied to the polyamide substrate before depositing the thermoplastic elastomer, providing a robust and efficient adhesion solution.
This method achieves adhesion performance equivalent to isocyanate-based primers while being less expensive, simpler to implement, and more environmentally friendly, with improved uniformity and resistance to environmental conditions, particularly suitable for automotive applications like guide rails.
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Abstract
Description
[0001] Silane-based adhesion primer deposited by atmospheric pressure plasma
[0002] The invention relates to a method of adhesion between a polyamide substrate and a layer of thermoplastic elastomer, by means of an adhesion primer based on amine silane deposited by atmospheric pressure plasma. It also relates to an article, such as a guide rail intended to guide the movement of a movable window of a vehicle, comprising a polyamide substrate, a layer of thermoplastic elastomer adhering to the substrate by means of an adhesion primer based on an amine silane, characterized in that the adhesion is obtained by such a method. Another subject of the invention is a glazing comprising such a guide rail, a movable window received in the guide rail, and optionally an element on which the guide rail is fixed.
[0003] Thermoplastic elastomers, also known as thermoplastic rubbers, are materials that combine the elastic properties of elastomers with thermoplastic properties. Due to their chemical resistance, flexibility, and ability to recover after application of a load, these materials are used in many applications, particularly in the automotive sector.
[0004] For some of these applications, the thermoplastic elastomer is deposited via an injection molding step onto a rigid substrate, such as a polyamide substrate. However, to achieve good adhesion properties between the flexible material and the rigid substrate, a simple cleaning, stripping, or etching step is not sufficient, and a more significant modification of the substrate surface is required.
[0005] There are several techniques to address this problem, and one of them consists of applying a coating to the surface of the substrate, in particular by depositing a liquid solution containing an adhesive, typically based on isocyanate.
[0006] While good adhesion performance can be achieved with this method, it faces several limitations:
[0007] - the deposition of the liquid solution requires a drying step which lengthens the implementation time of the process;
[0008] - obtaining a coating that is homogeneous in thickness and surface area is difficult to achieve; - the deposition of the thermoplastic elastomer after drying of the liquid solution must not be too late, due to the sensitivity of the isocyanate-based coating to external conditions, such as cold and humidity;
[0009] - legislation is becoming increasingly strict regarding the use of isocyanates, which are toxic.
[0010] There therefore remains a real need to provide a method that overcomes the above limitations, while maintaining good adhesion performance between the rigid substrate, typically polyamide, and the thermoplastic elastomer.
[0011] In this context, the inventors have developed a process in which a silane-based adhesion primer is deposited on a polyamide substrate by atmospheric pressure plasma, before the deposition of a layer of thermoplastic elastomer. Surprisingly, to obtain good adhesion performance, advantageously at least equivalent to that obtained with a liquid-deposited isocyanate-based primer, the silane must comprise at least one (O) unit nIf, where n is 1, 2, or 3, and at least one amine. Conversely, silanes lacking one and / or the other of these characteristics do not allow good adhesion between the polyamide and the thermoplastic elastomer. This is particularly the case for (3-glycidyloxypropyl)trimethoxysilane, which nevertheless contains an epoxy, a chemical function often found in commonly used adhesion primers.
[0012] Atmospheric pressure plasma also has the advantage of being less expensive and simpler to implement than low pressure (or “vacuum”) plasma.
[0013] This invention is particularly applicable in the automotive field. In particular, the guide rails, which guide the movement of a movable window of a vehicle when it is opened, are generally formed by the adhesion between a polyamide support and a strip of thermoplastic elastomer.
[0014] Thus, the present invention relates to a method of adhesion between a polyamide substrate and a layer of thermoplastic elastomer, comprising: a) the deposition of an adhesion primer on a surface of the polyamide substrate by a plasma at atmospheric pressure comprising a silane, and b) the deposition of a layer of thermoplastic elastomer on the adhesion primer, characterized in that said silane comprises at least one unit (O) n If, where n is 1, 2, or 3, and at least one amine.
[0015] In some embodiments, the silane is of formula (I):
[0016] [Chem 1]
[0017] (R n (R 2 )3-nSiR 3 (In which:
[0018] - n is 1, 2, or 3 (preferably 2 or 3, even better n is 3),
[0019] - each R 1, identical or different, represents a hydrocarbon group having 1 to 12 carbon atoms, optionally comprising one or more (for example, one or two) heteroatoms,
[0020] - each R 2 , identical or different, represents a hydrocarbon group having 1 to 12 carbon atoms, and
[0021] - R 3 represents a hydrocarbon group having 1 to 12 carbon atoms, comprising one or more (e.g., one, two or three) groups selected from -NH2 and -NH-, and optionally one or more (e.g., one, two or three) additional heteroatoms. In some embodiments, n is 3, each R 1 , identical or different, is a C1-C12 alkyl, and R 3 is of formula -R 4 -NH2 where R 4 is C1-C12 alkylene or C1-C12 heteroalkylene.
[0022] Preferably, the silane is (3-aminopropyl)triethoxysilane, (3-aminopropyl)trimethoxysilane or a mixture thereof.
[0023] In some embodiments, the thermoplastic elastomer is a blend of polypropylene and a polystyrene-b-poly(ethylene-butylene)-b-polystyrene copolymer, or a blend of polypropylene and ethylene-propylene-diene rubber.
[0024] In some embodiments, the substrate is polyamide 6 or polyamide 6-6, and optionally includes glass beads or fibers. In some embodiments, the plasma is a plasma of N2, O2, air, argon, helium, or a combination thereof, preferably an air or N2 plasma, more preferably an air plasma.
[0025] In some embodiments, the plasma power is between 600 W and 1500 W, preferably between 650 W and 1200 W.
[0026] In some embodiments, the plasma comprising said silane is ejected by a torch moving at a speed of 20 to 600 mm / sec, for example 20 to 100 mm / sec, in step a). In such an embodiment, 1 to 10 track passes, for example 3 to 7 track passes, may be implemented.
[0027] The projection distance between the torch and the surface of the substrate is advantageously between 1 cm and 10 cm, for example between 1.5 cm and 4 cm, in step a).
[0028] In some embodiments, the silane is introduced into the plasma at a flow rate of between 10 and 300 pL / min.
[0029] In some embodiments, the thermoplastic elastomer is deposited, in step b), by injection overmolding.
[0030] Another object of the present invention is an article, such as a guide rail for guiding the movement of a movable window of a vehicle, comprising:
[0031] - a polyamide substrate and
[0032] - a layer of thermoplastic elastomer adhering to the substrate by means of an adhesion primer based on a silane comprising at least one (O) unit n If, where n is 1, 2, or 3, and at least one amine, characterized in that the adhesion by means of said primer is obtained by the process as defined in the present application.
[0033] Another object of the present invention is a glazing comprising a guide rail as defined above, a movable pane received in the guide rail, and possibly an element on which the guide rail is fixed. FIGURES
[0034] [Fig 1]: Movement pattern of a plasma device during step a) of the adhesion process, in a particular embodiment of the invention.
[0035] [Fig 2]: Exploded view of a guide rail and a movable window, in a particular embodiment of the invention.
[0036] [Fig 3]: Schematic cross-sectional representation of a guide rail, in a particular embodiment of the invention.
[0037] [Fig 4]: Exploded view of a glazing unit, in a particular embodiment of the invention.
[0038] [Fig 5]: Schematic cross-sectional representation of a glazing unit, in a particular embodiment of the invention.
[0039] DETAILED DESCRIPTION
[0040] Definitions
[0041] The groups mentioned in this application with a C prefix x -C y , where x and y are integers, have from x to y carbon atoms. If, for example, the term Ci-Ce is used, this means that the corresponding group can contain from 1 to 6 carbon atoms, including 1, 2, 3, 4, 5 or 6 carbon atoms.
[0042] By "aliphatic" is meant a non-aromatic, saturated or unsaturated, linear or branched acyclic hydrocarbon group. In a particular embodiment, an aliphatic group is an alkyl or alkenyl group.
[0043] By "alkyl" is meant a saturated aliphatic group, preferably having from 1 to 12 carbon atoms. Examples of C1-C12 alkyl include, but are not limited to, methyl, ethyl, propyl, isopropyl, butyl, pentyl, hexyl, heptyl, octyl, nonyl, decyl, undecyl, dodecyl.
[0044] By "alkenyl" is meant an unsaturated aliphatic group, comprising at least one carbon-carbon double bond, preferably having from 2 to 12 carbon atoms. Examples of C2-C12 alkenyl include, in particular, ethenyl, propenyl, butenyl, pentenyl, hexenyl, heptenyl, octenyl, nonenyl, decenyl, undecenyl, dodecenyl. By "alicyclic" is meant a non-aromatic, saturated or unsaturated cyclic (mono- or polycyclic) hydrocarbon group. In a particular embodiment, an alicyclic group is a cycloalkyl group.
[0045] By "cycloalkyl" is meant a saturated alicyclic group, preferably having from 3 to 12 carbon atoms. Examples of C3-C12 cycloalkyl include, but are not limited to, cyclopropyl, cyclopentyl, cyclohexyl, cycloheptyl, cyclooctyl, or cyclododecyl.
[0046] By "aryl" is meant an aromatic hydrocarbon group (mono- or polycyclic), preferably having 6 to 12 carbon atoms. An example of C6-C12 aryl is phenyl.
[0047] By "alkylene" is meant a saturated, linear or branched, divalent hydrocarbon group, preferably having from 1 to 12 carbon atoms. Examples of alkylene include methylene (-CH2-), ethylene (-(O-12)2-), propylene (-(O-12)3-), butylene (-(O-12)4-), pentylene (-(O-12)5-), or hexylene (-(O-12)6-).
[0048] A "heteroalkylene" group is an alkylene group comprising one or more heteroatoms.
[0049] By "a group comprising at least one heteroatom" is meant a group interrupted by, or comprising at one and / or the other of its ends, at least one heteroatom.
[0050] In this application, the expression "at least one" may be used equivalently to "one or more".
[0051] In this application, a range defined with the expression "between (X) and (Y)" includes the lower (X) and upper (Y) limits, and is equivalent to "from (X) to (Y)".
[0052] The method according to the invention is a simple and effective method which makes it possible to obtain good adhesion between a polyamide substrate and a layer of thermoplastic elastomer. It is based on the deposition on the substrate of a silane-based adhesion primer by plasma at atmospheric pressure, which silane comprises at least one (O) unit n If, where n is 1, 2, or 3 and at least one amine.
[0053] In step a) of the method according to the invention, an adhesion primer is deposited on a surface of the polyamide substrate by a plasma at atmospheric pressure comprising a silane, said silane comprising at least one (O) unit nSi, where n is 1, 2, or 3 and at least one amine. This type of deposition may be called plasma-enhanced chemical vapor deposition (PE-CVD). By "silane" is meant an organic compound comprising one or more silicon atoms. The silane used in the method of the invention is such that at least one silicon atom forms an (O) unit n If, where n is 1, 2, or 3. The oxygen(s) of the (O) pattern n If are typically linked to a hydrocarbon group, in this case forming a (RO) motif nSi- where n is 1, 2, or 3 and each R, identical or different from each other, represents a hydrocarbon group. The silane further comprises at least one amine (for example one or two amines), said at least one amine being in particular chosen from an -NH2 group and an -NH- group. Preferably the silane comprises an -NH2 group, and optionally one or more (for example, one, two, three or four, preferably only one) -NH- groups.
[0054] Preferably, said silane comprises an (O) unit n Si, where n is 1, 2, or 3, an NH2 group and optionally one or more (e.g., one, two, three, or four, preferably only one) -NH- groups. More preferably, said silane comprises an (O^Si) unit and an NH2 group.
[0055] Said at least one pattern (O) n If, where n is 1, 2, or 3, and said at least one amine are typically linked together by a hydrocarbon group.
[0056] Said silane generally has between 3 and 70 carbon atoms. Said silane generally has a molar mass between 100 and 600 g / mol, for example between 150 and 500 g / mol.
[0057] Preferably, n is 2 or 3, even better n is 3.
[0058] In a particular embodiment, said silane is of formula (I):
[0059] [Chem 2]
[0060] (RWR^a-nSÎR 3 (I), in which:
[0061] - n is 1, 2, or 3 (preferably 2 or 3, even better n is 3),
[0062] - each R 1 , identical or different, represents a hydrocarbon group having 1 to 12 carbon atoms, optionally comprising one or more (for example, one or two) heteroatoms,
[0063] - each R 2 , identical or different, represents a hydrocarbon group having 1 to 12 carbon atoms, and - R 3represents a hydrocarbon group having 1 to 12 carbon atoms, comprising one or more (e.g., one, two or three) groups selected from -NH2 and -NH-, and optionally one or more additional heteroatoms.
[0064] When n is 1, 2 or 3, the compound of formula (I) can be represented respectively as follows:
[0065] [Chem 3]
[0066] A hydrocarbon group can be linear or branched, cyclic or acyclic, saturated or unsaturated, aliphatic or aromatic.
[0067] In a particular embodiment, each R 1 , identical or different, represents a C1-C12 aliphatic group, a C3-C12 alicyclic group or a C6-C12 aryl. In a more particular embodiment, each R 1 , identical or different, represents a C1-C12 alkyl, a C2-C12 alkenyl, a C3-C12 cycloalkyl or a C6-C12 aryl.
[0068] In a particular mode, R 1 is a C1-C12 alkyl, optionally comprising one or more oxygens.
[0069] Preferably, each R 1 , identical or different (preferably identical), represents a C1-C12 alkyl. More preferably, each R 1 , identical or different (preferably identical), represents a C1-C6 alkyl, for example a methyl or an ethyl.
[0070] When it(they) is(are) present (i.e. if n is 1 or 2), each R 2 , identical or different, may represent a C1-C12 aliphatic group, a C3-C12 alicyclic group or a C6-C12 aryl. More particularly, each R 2 , identical or different, may represent a C1-C12 alkyl, a C2-C12 alkenyl, a C3-C12 cycloalkyl or a C6-C12 aryl. Preferably, each R 2 , identical or different, represents a C1-C12 alkyl. More preferably, each R 2, identical or different, represents a C1-C6 alkyl, for example a methyl or an ethyl.
[0071] In a particular embodiment, R 3 represents an alkyl having 1 to 12 carbon atoms, comprising one or more (for example, one, two or three) groups selected from -NH2 and -NH-, and optionally one or more (for example, one, two or three) additional heteroatoms (selected in particular from oxygen and sulfur).
[0072] In a preferred embodiment, R 3 is a group of formula -R 4 -NH2, in which R 4 represents a divalent hydrocarbon group having 1 to 12 carbon atoms, optionally comprising one or more heteroatoms.
[0073] In a particular embodiment, R 4represents a divalent hydrocarbon group having 1 to 12 carbon atoms, optionally comprising one or more (e.g., one, two, three or four) heteroatoms selected from oxygen, nitrogen and sulfur.
[0074] Preferably, R 4 is a C1-C12 alkylene or a C1-C12 heteroalkylene. In this embodiment, the C1-C12 heteroalkylene may comprise, for example, one, two, three or four heterotoms, in particular one, two, three or four nitrogen atoms.
[0075] More preferably, R 4 is a C1-C6 alkylene, for example a propylene (ie -CH2- CH2-CH2-).
[0076] In a preferred mode, n is 3, each R 1 , identical or different, is a C1-C12 alkyl, and R 3 is of formula -R 4 -NH2 where R 4 is C1-C12 alkylene or C1-C12 heteroalkylene.
[0077] Preferably, said silane is (3-aminopropyl)triethoxysilane, (3-aminopropyl)trimethoxysilane or a mixture thereof.
[0078] The term "polyamide" means a condensation product of one or more amino acids, a condensation product of one or more lactams, or a condensation product of one or more polyacids (e.g. diacids) with one or more polyamines (e.g. diamines). Examples of amino acids include aminocaproic acid, 7-aminoheptanoic acid, 11-aminoundecanoic acid, 12-aminododecanoic acid or a salt thereof.
[0079] Examples of lactams include p,p-dimethylpropriolactam, a,a-dimethylpropriolactam, amylolactam, capryllactam, caprolactam or lauryllactam.
[0080] Examples of diacids include isophthalic acid, terephthalic acid, succinic acid, adipic acid, azelaic acid, suberic acid, sebacic acid, dodecanedicarboxylic acid, 1,4 cyclohexyldicarboxylic acid, or a salt thereof.
[0081] Examples of diamines include aliphatic diamines or aryl diamines. More specific examples include hexamethylenediamine, piperazine, tetramethylenediamine, octamethylenediamine, decamethylenediamine, 1,5 diaminohexane, 2,2,4-trimethyl-1,6-diaminohexane, diamine polyols, isophorone diamine, methyl pentamethylenediamine, bis(aminocyclohexyl)methane, bis(3-methyl-4 aminocyclohexyl)methane, dodecamethylenediamine, metaxylyenediamine, bis-p-aminocyclohexylmethane and trimethylhexamethylenediamine or a salt thereof.
[0082] The polyamide can be a homopolyamide or a copolyamide.
[0083] Examples of homopolyamides include polyamide 6 (also called polycaprolactam, noted PA 6) or polyamide 6-6 (i.e. polymer of adipic acid and hexamethylenediamine, noted PA 6-6).
[0084] Examples of copolyamides include copolymers of caprolactam and lauryllactam (PA 6 / 12), copolymers of caprolactam, adipic acid and hexamethylenediamine (PA 6 / 6-6), copolymers of caprolactam, lauryllactam, adipic acid and hexamethylenediamine (PA 6 / 12 / 6-6), copolymers of caprolactam, lauryllactam, amino-11-undecanoic acid, azelaic acid and hexamethylenediamine (PA 6 / 6-9 / 11 / 12), copolymers of caprolactam, lauryllactam, amino-11-undecanoic acid, adipic acid and hexamethylenediamine (PA 6 / 6-6 / 11 / 12), copolymers of lauryllactam, azelaic acid and hexamethylenediamine (PA 6-9 / 12). In a particular embodiment, the polyamide is a polyamide 6 or a polyamide 6-6.
[0085] Preferably, the polyamide is a polyamide 6.
[0086] The substrate may further comprise fillers such as reinforcing beads or fibers, including glass beads, glass fibers, carbon fibers, or poly(p-phenyleneterephthalamide) (Kevlar®) fibers. These fillers are typically dispersed homogeneously in the polyamide. For example, the substrate may comprise between 5% and 60% (e.g., between 20% and 50%, between 30% and 50%, between 35% and 45%, or between 38% and 42%) by mass of fillers (e.g., glass beads or fibers), relative to the total weight of the substrate.
[0087] In a preferred embodiment, the substrate is made of polyamide 6 or polyamide 6-6 (preferably polyamide 6), and comprises glass fibers, typically between 30% and 50% by weight relative to the total weight of the substrate.
[0088] The plasma used in the method of the invention is an atmospheric pressure plasma. Atmospheric pressure plasma, as opposed to low pressure plasma, refers to a plasma well known to those skilled in the art, which is implemented at a pressure of the order of atmospheric pressure. This pressure may typically be 1000 ± 400 mbar, preferably 1000 ± 200 mbar, or even 1000 ± 100 mbar.
[0089] Plasma is formed from a gas, subjected to an electrical discharge. Devices suitable for forming a plasma at atmospheric pressure are well known to those skilled in the art. Generally, such a device comprises a chamber comprising a pair of electrodes and opening onto a nozzle. In such a device, the gas passes through the pair of electrodes, which generate the electrical discharge, and the plasma initiated at these electrodes is ejected by the nozzle. The device is typically a plasma torch.
[0090] In a particular embodiment, the plasma is a plasma of a gas selected from N2, O2, air, argon, helium and a combination thereof. In certain embodiments, said gas is selected from the aforementioned gases and further comprises dihydrogen, in a content less than or equal to 5% by volume. Preferably, the plasma is an air or N2 plasma, more preferably an air plasma.
[0091] The power of the plasma is advantageously between 600 W and 1500 W, for example between 600 W and 1300 W, preferably between 650 W and 1200 W, or even between 700 W and 1200 W, for example between 800 W and 1200 W.
[0092] The flow rate of the gas used to form the plasma can, for example, be between 10 and 100 L / min, preferably between 30 and 50 L / min, or even between 35 and 45 L / min.
[0093] The silane is preferably introduced into the plasma by spraying. Advantageously, when the plasma is ejected by a nozzle, the silane is introduced into the plasma after its ejection by the nozzle. Said silane is generally introduced into the plasma, continuously, as the latter is applied to the surface of the substrate. The flow rate at which the silane is introduced into the plasma may, for example, be between 10 pL / min and 300 pL / min, preferably between 50 pL / min and 250 pL / min, or even between 150 pL and 250 pL / min. It is preferable to use an inert gas, such as N2 or argon, to introduce, by spraying, said silane into the plasma.
[0094] Preferably, the silane is introduced into the plasma in the form of an undiluted liquid. By "undiluted liquid" is meant a liquid consisting essentially of the silane (i.e., typically comprising at least 90%, or even at least 95%, or even at least 98%, by weight of said silane relative to the total weight of the liquid).
[0095] In some embodiments, the plasma comprising said silane is ejected by a device (typically a torch) moving at a speed of 20 to 600 mm / sec, for example 20 to 100 mm / sec (or even 20 to 50 mm / sec) or 50 to 400 mm / sec (or even 100 to 400 mm / sec). In such an embodiment, 1 to 10 track passes, for example 3 to 7 track passes, may be implemented. When several track passes are implemented, the movement of the device is advantageously carried out according to a pattern substantially identical to the previous one. The pattern determined by the movement of the device is not limiting.
[0096] The projection distance between the device (typically a torch) and the surface of the substrate is advantageously between 1 cm and 10 cm, for example between 1.5 cm and 4 cm. As explained above, the device (for example, a torch) generally comprises a nozzle (or any other type of equivalent orifice), and the projection distance then corresponds to the distance between the nozzle through which the plasma is ejected and the surface of the substrate subjected to the plasma.
[0097] The thickness of the adhesion primer layer is generally between 10 nm and 100 pm, more particularly between 1 pm and 50 pm. The thickness of the polyamide substrate is generally between 1 and 20 mm, for example between 1 and 10 mm, or even between 2 and 6 mm. The thickness of the thermoplastic elastomer layer is generally between 1 and 20 mm, for example between 1 and 10 mm, or even between 2 and 6 mm.
[0098] In a particular embodiment, the polyamide substrate has a width of between 5 and 20 mm (for example between 8 and 20 mm) and a length of between 200 and 600 mm. In a particular embodiment, the polyamide substrate has a total surface area of between 20 and 500 cm 2 .
[0099] In some embodiments, the substrate comprises two faces (preferably each having a surface area of between 10 and 150 cm 2 ). In such a mode, the adhesion primer is advantageously deposited on a single face, and preferably covers, after its deposition, at least 70%, or even at least 80%, or even at least 90%, or even at least 95% of said single face.
[0100] Alternatively, the adhesion primer may be deposited on both sides, and preferably covers, after its deposition, at least 70%, or even at least 80%, or even at least 90%, or even at least 95% of each side.
[0101] In the method according to the invention, step b) comprises the deposition of a layer of thermoplastic elastomer on the adhesion primer.
[0102] The term "thermoplastic elastomer" (or "TPE") means a copolymer (typically block) or polymer blend, which combines the elastic properties of an elastomer with a thermoplastic character. The thermoplastic elastomer is generally a copolymer (typically block), a polymer blend, or a combination thereof, typically based on one or more elastomers and one or more thermoplastic polymers. Thermoplastic elastomers are a class of materials well known to those skilled in the art.
[0103] In a particular embodiment, the thermoplastic elastomer is a block copolymer. In such an embodiment, the copolymer preferably comprises at least one thermoplastic block selected from a polyurethane block, a polystyrene block, a polyester block, a poly(methyl methacrylate) block and a polyamide block, and at least one elastomer block selected from a polyether block, a polybutadiene block, a polyisoprene block, a polyethylene block, a poly(ethylene-propylene) block, and a poly(ethylene-butylene) block.
[0104] In a more particular embodiment, the thermoplastic elastomer is a block copolymer of polyurethane and polybutadiene, polyurethane and polyether, polyester and polybutadiene, polyester and polyether, polyamide and polybutadiene, polyamide and polyether, polystyrene and polybutadiene, polystyrene and polyisoprene, polystyrene and poly(ethylene-butylene), polystyrene and poly(ethylene-propylene), polystyrene and poly(ethylene-ethylene / propylene), or a combination thereof.
[0105] Particular examples of TPEs include: polystyrene-b-polybutadiene-b-polystyrene (SBS), polystyrene-b-polyisoprene-b-polystyrene (SIS), polystyrene-b-poly(ethylene-butylene)-b-polystyrene (SEBS), polystyrene-b-poly(ethylene-propylene)-b-polystyrene (SEPS), polystyrene-b-poly(ethylene-ethylene / propylene)-b-polystyrene (SEEPS), poly(methyl methacrylate)-b-polybutadiene-b-polystyrene (MBS), or a mixture thereof.
[0106] In another particular embodiment, the thermoplastic elastomer is a blend of polymers. Examples of such TPEs include a blend based on polypropylene and a polystyrene-b-poly(ethylene-butylene)-b-polystyrene (SEBS) copolymer, or a blend based on polypropylene and rubber (such as ethylene-propylene-diene rubber (EPDM) where the diene may include ethylidene norbornene (ENB), styrene-butadiene rubber (SBR), or butadiene-acrylonitrile rubber (NBR), preferably rubber (EPDM). The rubber may be vulcanized or not. In a particular embodiment, the thermoplastic elastomer is a blend based on polypropylene and a polystyrene-b-poly(ethylene-butylene)-b-polystyrene copolymer, or a blend based on polypropylene and ethylene-propylene-diene rubber.
[0107] Preferably, the thermoplastic elastomer is deposited by injection overmolding. In such a method, the thermoplastic elastomer is typically inserted into a hot press, generally in the form of granules, beads or pellets, to be heated, prior to its deposition on the adhesion primer. The temperature to which the thermoplastic elastomer is heated is a temperature sufficient for the latter to melt. Preferably, the temperature to which the thermoplastic elastomer is heated prior to its deposition is between 180°C and 260°C, for example between 200 and 250°C, or even between 210°C and 230°C. Once heated, the thermoplastic elastomer is deposited on the adhesion primer. In injection overmolding, a mold is used to define the shape of the layer of thermoplastic elastomer deposited on the adhesion primer.
[0108] Preferably, the thermoplastic elastomer covers at least 90%, or even at least 95%, and more preferably at least 98% of the surface area of the adhesion primer. In some embodiments, the thermoplastic elastomer covers 100% of the surface area of the adhesion primer.
[0109] The method according to the invention makes it possible to obtain excellent adhesion between the polyamide substrate and the thermoplastic elastomer layer. Advantageously, the peel strength, obtained by a peel test with a peel angle of 90° and a speed of 100 mm / min, at 23°C and 50% relative humidity, is at least 30 N / cm, for example between 30 N / cm and 50 N / cm, with preferably a cohesion rate of at least 20%, or at least 30%, or even at least 50% and better still at least 70%.
[0110] The present invention also relates to an article comprising:
[0111] - a polyamide substrate and
[0112] - a layer of thermoplastic elastomer adhering to the substrate by means of an adhesion primer based on a silane comprising at least one (O) unit n If where n is 1, 2, or 3, and at least one amine, characterized in that the adhesion by means of the primer is obtained by the process as defined in the present application.
[0113] It is understood that the definitions and methods described above for the process (eg polyamide, silane, thermoplastic elastomer, plasma conditions, dimensions) also apply to the article according to the invention.
[0114] The article according to the invention may, for example, be an article used in the automotive field.
[0115] Such an article may in particular be a filling insert, a fixing insert (e.g. a filling insert or fixing for the bodywork), and / or a positioning insert (e.g. a pin). More particularly, the article may be a guide rail intended to guide the movement of a window of a vehicle.
[0116] Figure 2 shows an example (exploded view) of a guide rail 1 configured to guide the movement of a movable window 3 of a vehicle, in a direction indicated by a double arrow in Figure 2.
[0117] Figure 3 shows a cross-section of an example of a guide rail 1. The cross-section of the guide rail 1 has a general U-shape. The guide rail 1 comprises a polyamide substrate 4, which constitutes an external part of the guide rail 1, and a thermoplastic elastomer layer 6, which constitutes an internal part of the guide rail 1. The substrate 4 acts as a rigid support and surrounds the thermoplastic elastomer layer 6, which is flexible. The thermoplastic elastomer layer 6 adheres to the substrate 4 by means of a layer 5 (dotted in the figure) of silane-based adhesion primer comprising at least one (O) unit. nIf (where n is 1, 2, or 3) and at least one amine, and the adhesion by means of the primer is obtained by the method as defined in the present application. The inner surface 6i of the thermoplastic elastomer layer 6 delimits a housing configured to receive an edge of a movable window and guide its movement. The outer surface 4i of the substrate 4 is configured to be fixed to an element of a vehicle, such as a bodywork element or a fixed window (eg a quarter panel). The outer surface 4i of the substrate 4 may in particular define a housing configured to receive an edge of a fixed window.
[0118] Another subject of the present invention is a glazing comprising a guide rail as defined above, a movable window received in the guide rail, and optionally an element on which the guide rail is fixed. Said element may be a bodywork element of a vehicle, or a fixed window, such as a quarter window. Preferably, said element is a fixed window, such as a quarter window.
[0119] Figure 4 shows an example (exploded view) of glazing 10, which comprises a guide rail 1 and a movable pane 3 received in the guide rail 1, in which the guide rail 1 is fixed to an element 2 which is a fixed pane. The guide rail may in particular be as described above for Figure 3.
[0120] Figure 5 shows a cross-section of an example of glazing 10 comprising a guide rail 1 as described above for Figure 3, a movable pane 3 whose edge is received in the housing defined by the inner surface 6i of the thermoplastic elastomer layer 6 of the guide rail 1, and in which the guide rail 1 is fixed to an element 2 which is a fixed pane. More particularly, the outer surface 4i of the substrate 4 of the guide rail 1 defines a housing which receives the edge of the fixed pane.
[0121] EXAMPLES
[0122] General procedure
[0123] The substrate (denoted "PA" hereinafter) tested here is made of polyamide 6 and contains 40% glass fibers for reinforcement. The sample is cut according to the following dimensions: 15 cm * 4 cm and has a thickness of 4 mm.
[0124] The thermoplastic elastomer (hereinafter referred to as “TPE”) comes in the form of pellets approximately 3 mm in diameter. The PA substrate and the TPE are stored overnight at 80°C to remove any moisture.
[0125] Just before plasma functionalization, the PA substrates are cleaned with MEK solvent (methyl ethyl ketone = butanone CAS 78-93-3). The PA substrates are then fixed with an aluminum adhesive on a glass sheet under the plasma torch to be functionalized. The silane is nebulized by a carrier gas (here nitrogen) and is sprayed just under the torch nozzle from which the plasma is ejected (so-called PE-CVD technique).
[0126] The torch is moved in a pattern shown in Figure 1, to functionalize one face of the substrate. A complete movement in this pattern is called "a track", and can be performed one or more times.
[0127] The thickness of the adhesion primer layer is approximately 10-20 pm.
[0128] Several conditions were tested in the following range:
[0129] -plasma power: from 650 W to 1200 W,
[0130] -the distance between the torch and the PA substrate: between 1.9 cm and 3.9 cm,
[0131] -the number of tracks: from 1 to 10,
[0132] -speed: from 20 to 100 mm / s,
[0133] -the plasma gas: air or pure nitrogen,
[0134] -the flow rate of the silane in the range of 0 to 300 pL / min.
[0135] Silane is sprayed in liquid form (purity: 99%), and is stored in the refrigerator.
[0136] TPE pellets are incorporated into a manual hot press and heated to 220°C. A mold is prepared to mold the TPE strip onto the PA (TPE strip size: 15 cm * 4 cm and 3 mm thickness). The TPE is then injected into the mold. The typical time between functionalization and molding varies between 2 and 3 h. The samples are stored at 50% relative humidity (“RH”), 23°C and then subjected to the peel test (peel angle = 90°; speed = 100 mm / min; T = 23 °C and RH = 50%). The time between sample preparation and peel test is 7 days. The cohesion rate is assessed visually.
[0137] Peel Test Results
[0138] [Chem 4]
[0139] [Table 1] [Table 2]
[0140] Comparative examples:
[0141] [Table 3]
[0142] 1 - Application of an isocyanate primer (62% (m / m) of Kôratac GM 503 -Kommerling; 5% (m / m) of KôracurTH 240 - Kommerling; 33% (m / m) of MEK) on the PA, then drying at 80°C for 30 minutes, then deposition of the TPE.
[0143] 2 - PA-TPE adhesion without treatment (i.e. only washing of the PA with MEK before deposition of TPE).
[0144] 3 - The plasma jet is applied to the PA (activation at 900 W, 5 tracks, 100 mm / s, air plasma, distance=1.6 cm) but without silane, then deposition of the TPE.
[0145] 4 - a solution of 0.3 mL of silane (TEOS, HMDS, APTMS, APTES, or GPTMS) diluted in 1 mL of HCl (0.1M) and 9 mL of isopropanol is stirred at room temperature for 1 hour to allow hydrolysis of the silane, and wet-deposited on the PA, without plasma, then deposition of the TPE.
[0146] 5 - General procedure described above in which the silane used is TEOS (Plasma power: 700-1200 W, silane flow rate: 200pL / min, projection distance: 2.9 cm, number of tracks: 5, plasma gas: air, travel speed: 20-100 mm / sec).
[0147] 6 - General procedure described above in which the silane used is GPTMS (Plasma power: 700-1200 W, silane flow rate: 200pL / min, projection distance: 2.9 cm, number of tracks: 5, plasma gas: air, displacement speed: 20-100 mm / sec).
[0148] 7 - General procedure described above in which the silane used is HDMS (Plasma power: 650-1200 W, silane flow rate: 200 pL / min, projection distance: 2.9 cm, number of tracks: 5-10, plasma gas: air, displacement speed: 100 mm / sec).
[0149] The results in Tables 1-3 show that:
[0150] - the presence of a pattern (O) nSi (precisely here (O)sSi) and an amine in the silane is crucial to obtain good adhesion properties. It is noted in fact that a silane comprising only the (O) unit n If (TEOS, GPTMS) or a silane comprising only an amine (HMDS) does not provide good results;
[0151] - the peel strengths obtained with the plasma comprising a silane comprising at least one (O)nSi unit and at least one amine are equivalent, and sometimes better, than those obtained by application of the isocyanate primer (Table 1 vs. Table 3 “isocyanate primer”). Very satisfactory cohesion rates, often equivalent to those obtained by application of the isocyanate primer, have also been achieved.
[0152] - whatever the conditions (power, flow rate, nature of the gas, etc.) that were applied, good adhesion performances were achieved, which demonstrates the flexibility of the system (Table 1).
Claims
CLAIMS 1. Method of adhesion between a polyamide substrate and a layer of thermoplastic elastomer, comprising: a) the deposition of an adhesion primer on a surface of the polyamide substrate by a plasma at atmospheric pressure comprising a silane, and b) the deposition of a layer of thermoplastic elastomer on the adhesion primer, characterized in that said silane comprises at least one unit (O) n If, where n is 1, 2, or 3, and at least one amine.
2. Method according to claim 1, in which the silane is of formula (I): [Chem 5] (R ^ nSiR 3 (IL in which: - n is 1, 2, or 3, - each R 1 , identical or different, represents a hydrocarbon group having 1 to 12 carbon atoms, optionally comprising one or more heteroatoms, - each R 2 , identical or different, represents a hydrocarbon group having 1 to 12 carbon atoms, and - R 3 represents a hydrocarbon group having 1 to 12 carbon atoms, comprising one or more groups chosen from -NH2 and -NH-, and optionally one or more additional heteroatoms.
3. The method of claim 2, wherein n is 3, each R 1 , identical or different, is a C1-C12 alkyl, and R 3 is of formula -R 4 -NH2 where R 4 is C1-C12 alkylene or C1-C12 heteroalkylene.
4. The method of claim 2 or 3, wherein the silane is (3-aminopropyl)triethoxysilane, (3-aminopropyl)trimethoxysilane or a mixture thereof.
5. Method according to one of claims 1 to 4, in which the thermoplastic elastomer is a mixture based on polypropylene and a polystyrene-b-poly(ethylene-butylene)-b-polystyrene copolymer, or a mixture based on polypropylene and ethylene-propylene-diene rubber.
6. Method according to one of claims 1 to 5, in which the substrate is made of polyamide 6 or polyamide 6-6, and optionally comprises glass beads or fibers.
7. Method according to one of claims 1 to 6, wherein the plasma is a plasma of N2, O2, air, argon, helium, or a combination thereof, preferably an air or N2 plasma, more preferably an air plasma.
8. Method according to one of claims 1 to 7, in which the power of the plasma is between 600 W and 1500 W, preferably between 650 W and 1200 W.
9. Method according to one of claims 1 to 8, in which the plasma comprising said silane is ejected by a torch moving at a speed of 20 to 600 mm / sec, for example 20 to 100 mm / sec, in step a).
10. The method of claim 9, wherein 1 to 10 track passes, for example 3 to 7 track passes are implemented in step a).
11. Method according to claim 9 or 10, in which the projection distance between the torch and the surface of the substrate is between 1 cm and 10 cm, for example between 1.5 cm and 4 cm, in step a).
12. Method according to one of claims 1 to 11, in which the silane is introduced into the plasma at a flow rate of between 10 and 300 pL / min.
13. Method according to one of claims 1 to 12, in which the thermoplastic elastomer is deposited, in step b), by injection overmolding.
14. Article, such as a guide rail (1) intended to guide the movement of a movable window (3) of a vehicle, comprising: - a polyamide substrate (4) and - a layer of thermoplastic elastomer (6) adhering to the substrate by means of an adhesion primer (5) based on a silane comprising at least one unit (O) nIf, where n is 1, 2, or 3, and at least one amine, characterized in that the adhesion by means of said primer (5) is obtained by the method as defined in one of claims 1 to 13.
15. Glazing (10) comprising a guide rail (1) as defined in claim 14, a movable window (3) received in the guide rail (1), and optionally an element (2), such as a fixed window, on which the guide rail (1) is fixed.