Brick powder as a filler in multicomponent systems for chemical fastening.
Incorporating brick powder as a filler in the reactive resin component of a multi-component system addresses the load reduction issue in water-filled boreholes, enhancing the performance of chemical fasteners.
Patent Information
- Application Number
- JP2024524360
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-11-09
- Filing Date
- 2022-10-26
- Publication Date
- 2025-09-18
- Estimated Expiration
- 2042-10-26
AI Technical Summary
Water-filled boreholes reduce the load level of conventional chemical fasteners during installation, necessitating a multi-component system that maintains equivalent load values without adverse effects.
Incorporating brick powder as a filler in the reactive resin component of a multi-component system, which improves the bond strength of the hardened mortar mass, ensuring performance in water-filled boreholes.
The use of brick powder enhances the load-bearing capacity of chemical fasteners applied in water-filled boreholes, matching or exceeding the performance of conventional systems.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a multi-component system for chemical fastening of construction elements (adhesive anchors), which contains a reactive resin component (A) based on a radically curable compound for the multi-component system and brick powder as filler. The use of brick powder as filler in the reactive resin component (A) improves the performance of fastening devices comprising a mortar mass prepared from the multi-component system according to the invention and fastening means when applying the mortar mass in water-filled boreholes. [Background technology]
[0002] The use of reactive resin components based on radically polymerizable compounds for preparing chemical fastenings has long been known in a wide range of fields, including construction.
[0003] Chemical fastening is frequently used in both indoor and outdoor areas. Therefore, the installation of anchor points is carried out under a wide variety of conditions and influences. The conditions and influences under which the chemical fastening is introduced into the borehole should have as little negative effect as possible on the load level of the hardened chemical fastening.
[0004] A common situation on construction sites is the installation of anchor rods during rainfall. In these cases, the boreholes to be filled with mortar mass are filled with water. In the case of the usual two-component systems for preparing chemical fasteners available on the market, the water-filled boreholes often reduce the load level of the chemical fasteners during the installation process. Summary of the Invention [Problem to be solved by the invention]
[0005] Therefore, there is a need to provide a multi-component system for preparing chemical fasteners whose load levels are not adversely affected by water-filled boreholes during the installation process. The load values to be achieved should be at least equivalent to those of chemical fasteners prepared from conventional multi-component systems based on radically curable compounds. [Means for solving the problem]
[0006] Surprisingly, it has been found that when brick flour is used as filler in the reactive resin component (A) of a multi-component system based on a radically curable compound, it is possible to improve the bond strength of the hardened mortar mass compared to an equivalent mortar mass without the addition of brick flour.
[0007] A first aspect of the present invention is a reactive resin component (A) based on a radically curable compound for multi-component systems, which contains brick powder as filler.
[0008] A second aspect of the present invention is a multi-component system containing the reactive resin component (A) according to the invention as defined in claim 10.
[0009] A third aspect of the present invention is the use of brick powder in a multi-component system according to claim 14 for improving the performance of fastening devices, wherein a mortar mass prepared from the multi-component system is applied to a water-filled borehole.
[0010] In the present invention, "Brick powder" means a powder obtained by crushing bricks. Within the meaning of the present invention, the term "brick" is understood to mean all masonry bricks within the meaning of DIN EN 771-1. Masonry bricks are therefore masonry stones that are fired from clay or other clay-containing substances, with or without sand or other additives, at a temperature high enough to reach a ceramic compound. The term "masonry stone" is understood to mean a preform element for producing masonry. Alternatively, or in combination with masonry bricks, it is also possible to produce brick powder using roofing tiles. "Reactive resin mixture" means a mixture of a radically curable compound, one or more inhibitors, one or more reactive diluents, and optionally further additives; the reactive resin mixture is typically liquid or viscous and can be further processed to form a reactive resin component. "inhibitor" means a substance that suppresses unwanted radical polymerization during synthesis or storage of a resin or resin-containing composition (these substances are also referred to in the art as "stabilizers"), or a substance that, usually in combination with an accelerator, slows radical polymerization of a resin after addition of an initiator (these substances are also referred to in the art as "inhibitors"; the specific meaning of the term will be clear from the context). "initiator" means a substance that forms reaction-initiating radicals (usually in combination with an accelerator); "Accelerator" means a reagent that reacts with an initiator to produce large amounts of radicals by the initiator even at low temperatures, or a reagent that catalyzes the decomposition reaction of the initiator. "reactive diluents" means liquid or low-viscosity monomers and framework resins that dilute other framework resins or reactive resin masterbatches, thereby imparting the viscosity required for their application, and that contain functional groups that can react with the framework resin and that, for the most part, become constituents of the hardened mass (for example, of a mortar) during polymerization (hardening); reactive diluents are also called copolymerizable monomers; "Reactive resin component" means a liquid or viscous mixture of reactive resin, filler, reactive diluent, and optionally further components such as fillers, additives, typically the reactive resin component being one of the two components of a two-component reactive resin system for chemical fastening. "hardener component" means a composition containing an initiator for the polymerization of a radically curable compound, the hardener component may be solid or liquid and may contain, in addition to the initiator, a solvent and fillers and / or additives, typically the hardener component is, in addition to the reactive resin component, the other of the two components of a two-component reactive resin system for chemical fastening. "Two-component system" or "two-component reactive resin system" means a reactive resin system comprising two components, namely a reactive resin component (A) and a hardener component (B), stored separately, such that the backbone resin contained in the reactive resin component only cures after the two components are mixed. "Multi-component system" or "multi-component reactive resin system" means a reactive resin system that includes multiple separately stored components, including a reactive resin component (A) and a hardener component (B), such that the backbone resin included in the reactive resin component only cures after all of the components have been mixed. - "(meth)acrylic... / ...(meth)acrylic..." means both "methacrylic... / ...methacrylic..." and "acrylic... / ...acrylic..." compounds; in the present invention, "methacrylic... / ...methacrylic..." compounds are preferred. "Epoxy (meth)acrylate" means an epoxy resin having acrylate or methacrylate groups and substantially no epoxy groups. - "Alkyl" means a saturated hydrocarbon functional group which may be branched or unbranched; preferably C1-C7 alkyl, particularly preferably C1-C4 alkyl, i.e. alkyl selected from the group consisting of methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl and tert-butyl, with methyl, ethyl and tert-butyl being particularly preferred and methyl being very particularly preferred. "Hydroxyalkyl" means an alkyl bearing at least one hydroxyl group as a substituent. "Alkenyl" means an unsaturated hydrocarbon functional group having at least one double bond, which may be branched or unbranched, and is C2-C 20 Alkenyl is preferred, C2-C6 alkenyl is particularly preferred, ie alkenyl selected from the group consisting of ethenyl, propenyl, butenyl, pentenyl and hexenyl, ethenyl, propenyl and butenyl are particularly preferred, ethenyl is very particularly preferred. "Alkynyl" means an unsaturated hydrocarbon functional group having at least one triple bond, which may be branched or unbranched, and is C2-C 20 Alkynyl is preferred, C2-C6 alkynyl is particularly preferred, ie alkynyl selected from the group consisting of ethynyl, propynyl, butynyl, pentynyl and hexynyl, with ethynyl, propynyl and butynyl being particularly preferred and ethynyl being very particularly preferred. - "Low temperature cure" means that the reactive resin system can be fully cured at room temperature. - The article "a" or "an" before a class of compounds, such as before the word "epoxy methacrylate", refers to one or more chemical compounds within this class of chemical compounds, and may refer to, for example, various epoxy methacrylates. In a preferred embodiment, the article refers to only a single compound, - "at least one" means numerically "one or more"; in preferred embodiments, the term means numerically "one"; - "Containing", "including" and "comprises" mean that further elements may be present in addition to those mentioned. These terms are intended to be inclusive and therefore also include "consisting of". "Consisting of" is intended to be exclusive and means that no further elements may be present. In preferred embodiments, the terms "containing", "including" and "comprises" mean the term "consisting of"; - "approximately" or "approximately" before a numerical value means a range of ±5% of this value, preferably ±2% of this value, more preferably ±1% of this value, and particularly preferably ±0% of this value (i.e. exactly this value).
[0011] All standards (eg, DIN standards) cited in this text were used in the version that was current as of the filing date of this application.
[0012] Brick powder as a filler According to the present invention, the reactive resin component (A) according to the present invention comprises brick powder as filler.
[0013] The term "brick powder" within the meaning of the present invention denotes a powder or granules obtained by pulverizing or crushing masonry bricks. Hammer breakers are usually used to pulverize and / or crush masonry bricks.
[0014] Following the crushing process, the brick powder is usually subjected to a sieving process. By selecting a sieve with a specified mesh width in the sieving process, the particle size of the brick powder used is set to a specified particle size range. For example, if a sieve with a mesh size of 0.5 mm is used, the particle size of the brick powder is ≦0.5 mm (particle size range >0 mm to 0.5 mm). However, due to differences in the orientation of the particles of the brick powder during the sieving process, it is possible that a small portion of the particles will be larger than the mesh width of the sieve. This occurs especially in the case of particles with asymmetric shapes (e.g., rod-shaped). To take this situation into consideration, in the present invention, the so-called d 90 The value is used as the particle size standard. 90 The value d is a parameter indicating that 90% of the sample volume has a particle size smaller than the specified value. It is important for the present invention that the particle size of the remaining 10% of the sample volume is not arbitrarily large, since this would cause problems for the workability of the mortar mass. Preferably, the particles of the brick powder used have a maximum particle size of 2 mm, preferably 1.5 mm, even more preferably 1.0 mm. In the present invention, d90 The values are measured by static light scattering (device: Beckman Coulter LS13 320 / Dry Powder System).
[0015] The brick powder used as filler in the present invention preferably has a d of ≦0.90 mm, more preferably ≦0.85 mm, and even more preferably ≦0.80 mm. 90 In a particularly preferred embodiment, the brick powder has a d value in the range of 0.9 mm to 0.2 mm, preferably in the range of 0.85 mm to 0.25 mm, more preferably in the range of 0.80 mm to 0.25 mm. 90 It has a value.
[0016] The smallest particles of the brick powder used preferably have a particle size of ≧0.1 μm, more preferably ≧0.3 μm.
[0017] To produce the brick powder used in the present invention, a sieve having a mesh width in the range of 0.20 mm to 0.90 mm, preferably 0.20 mm to 0.85 mm, more preferably 0.25 mm to 0.80 mm is preferably used in the sieving process.
[0018] The brick powder used in the present invention is commercially available, for example from Pilosith GmbH, Peter Stadler GmbH or Kalkladen GmbH.
[0019] Preferably, the brick powder has a moisture content of less than 1.0% by weight, preferably less than 0.2% by weight. To reduce the moisture content, the brick powder is typically dried in an oven at 120°C for 48 hours.
[0020] Preferably, reactive resin component (A) comprises at least 10% by weight of brick powder, based on the total weight of the reactive resin component. The brick powder is preferably contained in reactive resin component (A) according to the invention in a weight percentage proportion of 10% to 70% by weight, in particular 20% to 60% by weight, even more preferably 20% to 50% by weight, based on the total weight of the reactive resin component.
[0021] In a further embodiment of the present invention, brick powder may be further contained in the hardener component (B), but it is preferred that the hardener component (B) does not contain brick powder.
[0022] reactive resin The reactive resin component (A) contains at least one radically curable compound as a reactive resin. As known to those skilled in the art, ethylenically unsaturated compounds, compounds having a carbon-carbon triple bond, and thiol-yne / ene resins are suitable as the radically curable compound.
[0023] Among these compounds, the group of ethylenically unsaturated compounds is preferred, which group includes styrene and its derivatives, (meth)acrylates, vinyl esters, unsaturated polyesters, vinyl ethers, allyl ethers, itaconates, dicyclopentadiene compounds and unsaturated fats, with unsaturated polyester resins and vinyl ester resins being particularly suitable and described, for example, in applications EP-A-1 935 860, DE-A-195 31 649 and WO 10 / 108939. In this case, vinyl ester resins are most preferred due to their resistance to hydrolysis and their excellent mechanical properties.
[0024] Examples of suitable unsaturated polyesters fall into the following categories: (1) Ortho resins: These are based on phthalic anhydride, maleic anhydride, or fumaric acid and glycols such as 1,2-propylene glycol, ethylene glycol, diethylene glycol, triethylene glycol, 1,3-propylene glycol, dipropylene glycol, tripropylene glycol, neopentyl glycol, or hydrogenated bisphenol A; (2) Iso-resins: These are prepared from isophthalic acid, maleic anhydride or fumaric acid and glycols. These resins may contain a higher proportion of reactive diluents than ortho-resins; (3) Bisphenol A fumarates: These are based on ethoxylated bisphenol A and fumaric acid; (4) HET acid resins (hexachloroendomethylenetetrahydrophthalic acid resins): These are resins obtained from chlorine / bromine-containing anhydrides or phenols during the preparation of unsaturated polyester resins.
[0025] In addition to these resin classes, those called dicyclopentadiene resins (DCPD resins) can also be distinguished as unsaturated polyester resins. The DCPD resin class is obtained by modifying one of the above resin types by Diels-Alder reaction with cyclopentadiene, or alternatively, this resin can be obtained by first reacting a diacid, such as maleic acid, with dicyclopentadiene, followed by a second reaction in the usual preparation of unsaturated polyester resins; the latter are called DCPD maleate resins.
[0026] The unsaturated polyester resin preferably has a molecular weight Mn in the range of 500 to 10,000 daltons, more preferably in the range of 500 to 5000, and even more preferably in the range of 750 to 4000 (according to ISO 13885-1). The acid value of the unsaturated polyester resin is in the range of 0 mg KOH / g to 80 mg KOH / g resin, preferably in the range of 5 mg KOH / g to 70 mg KOH / g resin (according to ISO 2114-2000). When DCPD resin is used as the unsaturated polyester resin, the acid value is preferably 0 mg KOH / g to 50 mg KOH / g resin.
[0027] Within the meaning of the present invention, vinyl ester resins are oligomers or polymers having at least one (meth)acrylate end group, also called (meth)acrylate-functionalized resins, which also include urethane (meth)acrylate resins and epoxy (meth)acrylates.
[0028] Vinyl ester resins with unsaturated groups only in the terminal positions can be obtained, for example, by reacting epoxy oligomers or epoxy polymers (e.g., bisphenol A diglycidyl ether, phenol novolac-type epoxy, or epoxy oligomers based on tetrabromobisphenol A) with, for example, (meth)acrylic acid or (meth)acrylamide. Preferred vinyl ester resins are those obtained by reacting (meth)acrylate-functionalized resins and epoxy oligomers or polymers with methacrylic acid or methacrylamide, preferably methacrylic acid. Examples of this type of compound are known from U.S. Patent Application Publication Nos. 3,297,745 A, 3,772,404 A, 4,618,658 A, GB Patent Application Publication No. 2,217,722, DE Patent Application Publication No. 3,744,390, and DE Patent Application Publication No. 4,131,457. In this regard, reference is made to U.S. Patent Application Publication No. 2011 / 071234.
[0029] The vinyl ester resin preferably has a molecular weight Mn in the range of 500 to 3,000 daltons, more preferably 500 to 1,500 daltons (according to ISO 13885-1). The vinyl ester resin has an acid number in the range of 0 to 50 mg KOH / g resin, preferably 0 to 30 mg KOH / g resin (according to ISO 2114-2000).
[0030] Ethoxylated bisphenol A di(meth)acrylate di-, tri- or higher-functional urethane (meth)acrylate oligomers with an ethoxylation degree of 2 to 10, preferably 2 to 4, or mixtures of these curable components are particularly suitable as vinyl ester resins.
[0031] Examples of this type of epoxy (meth)acrylate are those of formula (I): [ka] where n represents a number equal to or greater than 1 (although a non-integer average is possible when a mixture of different molecules with different values of n is present and represented by formula (I)).
[0032] Further examples of propoxylated or especially ethoxylated aromatic diols, such as bisphenol A, bisphenol F or novolak (especially di-)(meth)acrylates, are those of formula (II), [ka] In the formula, a and b each independently represent a number greater than or equal to 0, provided that preferably at least one of these values is greater than 0, and preferably both are greater than or equal to 1 (when a mixture of different molecules having different (a and b) values exists and is represented by formula (II), non-integer numbers are also possible as the average value).
[0033] For example, the known reaction products of di- or polyisocyanates and hydroxyalkylmethyl acrylates, as described in DE-A-2 312 559, are very particularly suitable, as are adducts of (di)isocyanates and 2,2-propanebis[3-(4-phenoxy)-1,2-hydroxypropane-1-methacrylate] according to U.S. Pat. No. 3,629,187, and adducts of isocyanates and methacryloyl alkyl ethers, alkoxybenzenes, or alkoxycycloalkanes, as described in EP-A-44352. In this regard, reference is made to DE-A-2 312 559, DE-A-19902685, EP-A-0 684 906, DE-A-4 111 828, and DE-A-19961342. Mixtures of suitable monomers can, of course, also be used.
[0034] All of these resins that can be preferably used according to the present invention can be modified by methods known to those skilled in the art, for example to achieve a lower acid value, hydroxyl value or anhydride value, or can be made more flexible by introducing flexible units into the backbone, etc.
[0035] Additionally, the reactive resins may contain other reactive groups that can be polymerized with radical initiators such as peroxides, for example, reactive groups derived from itaconic acid, citraconic acid, and allyl groups (itaconate esters), as described in WO 2010 / 108939.
[0036] The proportion of the reactive resin in the reactive resin component is preferably about 10% by weight to about 70% by weight, more preferably about 20% by weight to about 60% by weight, and even more preferably about 25% by weight to about 50% by weight, based on the reactive resin component.
[0037] Reactive Diluents The reactive resin component (A) may contain suitable reactive diluents, as described in the applications EP-A-1 935 860 and DE-A-195 31 649. Preferably, the reactive resin component (A) contains a (meth)acrylic acid ester as reactive diluent, particularly preferably an aliphatic or aromatic C5-C6 (meth)acrylic acid ester. 15-(meth)acrylate is selected. Suitable examples include 2-,3-hydroxypropyl (meth)acrylate (HP(M)A), 1,3-propanediol di(meth)acrylate, 1,3-butanediol di(meth)acrylate, 1,4-butanediol di(meth)acrylate, trimethylolpropane tri(meth)acrylate, phenethyl (meth)acrylate, tetrahydrofurfuryl (meth)acrylate, N,N-dimethylaminoethyl (meth)acrylate, N,N-dimethylaminomethyl (meth)acrylate, acetoacetoxyethyl (meth)acrylate. acrylate, isobornyl (meth)acrylate, 2-ethylhexyl (meth)acrylate, methoxypolyethylene glycol mono(meth)acrylate, trimethylcyclohexyl (meth)acrylate, 2-hydroxyethyl (meth)acrylate, dicyclopentenyloxyethyl (meth)acrylate and / or tricyclopentadienyl di(meth)acrylate, bisphenol A (meth)acrylate, novolac epoxy di(meth)acrylate, di-[(meth)acryloyl-maleoyl]-tricyclo-5.2.1.0. 2.6 -Decane, dicyclopentenyloxyethyl crotonate, 3-(meth)acryloyl-oxymethyl-tricyclo(oxymethyl-tricylo)-5.2.1.0. 2.6decane, 3-(meth)cyclopentadienyl (meth)acrylate, and decalyl-2-(meth)acrylate; solketal (meth)acrylate, cyclohexyl (meth)acrylate, phenoxyethyl di(meth)acrylate, methoxyethyl (meth)acrylate, tert-butyl (meth)acrylate, and norbornyl (meth)acrylate. Methacrylates are preferred over acrylates. Particularly preferred are 2- and 3-hydroxypropyl methacrylate (HPMA), 1,2-ethanediol dimethacrylate, 1,4-butanediol dimethacrylate (BDDMA), 1,3-butanediol dimethacrylate, trimethylolpropane trimethacrylate, acetoacetoxyethyl methacrylate, isobornyl methacrylate, bisphenol A methacrylate, trimethylcyclohexyl methacrylate, 2-hydroxyethyl methacrylate, PEG 200 dimethacrylate, and norbornyl methacrylate. Particularly preferred is a mixture of 1,4-butanediol dimethacrylate with 2- and 3-hydroxypropyl methacrylate (HPMA), or a mixture of these three methacrylates. A mixture of 2- and 3-hydroxypropyl methacrylate (HPMA) is most preferred. In principle, other conventional radically polymerizable compounds can also be used, alone or in mixtures with (meth)acrylic esters, as reactive diluents, such as styrene, α-methylstyrene, alkylated styrenes, e.g., tert-butylstyrene, divinylbenzene, and vinyl and allyl compounds; these representatives are preferably not subject to labeling requirements. Examples of vinyl or allyl compounds of this type are hydroxybutyl vinyl ether, ethylene glycol divinyl ether, 1,4-butanediol divinyl ether, trimethylolpropane divinyl ether, trimethylolpropane trivinyl ether, mono-, di-, tri-, tetra- and polyalkylene glycol vinyl ethers, mono-, di-, tri-, tetra- and polyalkylene glycol allyl ethers, adipic acid divinyl ester, trimethylolpropane diallyl ether, and trimethylolpropane triallyl ether.
[0038] The reactive diluent is preferably present in the reactive resin in an amount of approximately 80% by weight, particularly preferably from approximately 10% to approximately 60% by weight, and even more preferably from approximately 30% to approximately 60% by weight, based on the reactive resin component (A).
[0039] Inhibitor One or more inhibitors may be present in the reactive resin component (A) of the present invention to stabilize the reactive resin or reactive resin-containing reactive resin component (A) and to adjust the resin reactivity.
[0040] As known to those skilled in the art, inhibitors commonly used for radically polymerizable compounds are suitable for this purpose, preferably selected from phenolic and non-phenolic inhibitors, in particular phenothiazines.
[0041] 2-Methoxyphenol, 4-methoxyphenol, 2,6-di-tert-butyl-4-methylphenol, 2,4-di-tert-butylphenol, 2,6-di-tert-butylphenol, 2,4,6-trimethylphenol, 2,4,6-tris(dimethylaminomethyl)phenol, 4,4'-thio-bis(3-methyl-6-tert-butylphenol), 4,4'-isopropylidenediphenol, 6,6'-di-tert-butyl-4,4'-bis(2,6-di-tert-butylphenol), 1,3,5-trimethyl-2,4,6-tris(3,5-di-tert-butyl-4-hydroxybenzyl)benzene, 2,2'-methylene-di-p-cre Suitable phenolic inhibitors include phenols such as benzoquinone, catechols such as pyrocatechol, and catechol derivatives such as 4-tert-butylpyrocatechol and 4,6-di-tert-butylpyrocatechol, and hydroquinones such as hydroquinone, 2-methylhydroquinone, 2-tert-butylhydroquinone, 2,5-di-tert-butylhydroquinone, 2,6-di-tert-butylhydroquinone, 2,6-dimethylhydroquinone, 2,3,5-trimethylhydroquinone, benzoquinone, 2,3,5,6-tetrachloro-1,4-benzoquinone, methylbenzoquinone, 2,6-dimethylbenzoquinone, naphthoquinone, and mixtures of two or more thereof. These inhibitors are often components of commercially available radical-curing reactive resin components.
[0042] Phenothiazines, such as phenothiazine and / or their derivatives or combinations, or stable organic radicals, such as galvinoxyl and N-oxyl radicals, in particular piperidinyl-N-oxyl or tetrahydropyrrole-N-oxyl types, are preferably considered as non-phenolic inhibitors, such as oximes, such as aluminum-N-nitrosophenylhydroxylamine, diethylhydroxylamine, acetaldoxime, acetone oxime, methylethylketoxime, salicyloxime, benzooxime, glyoxime, dimethylglyoxime, acetone-O-(benzyloxycarbonyl)oxime, TEMPOL, TEMPO, etc.
[0043] Furthermore, pyrimidinol or pyridinol compounds substituted in the para position relative to the hydroxyl group, as described in DE 10 2011 077 248, can be used as inhibitors.
[0044] Examples of stable N-oxy radicals that can be used are those described in DE-A-199 56 509 and DE-A-195 31 649. Stable nitroxyl radicals of this type are of the piperidinyl-N-oxyl or tetrahydropyrrole-N-oxyl type or mixtures thereof.
[0045] Preferred stable nitroxyl radicals are selected from the group consisting of 1-oxyl-2,2,6,6-tetramethylpiperidine, 1-oxyl-2,2,6,6-tetramethylpiperidin-4-ol (also known as TEMPOL), 1-oxyl-2,2,6,6-tetramethylpiperidin-4-one (also known as TEMPON), 1-oxyl-2,2,6,6-tetramethyl-4-carboxyl-piperidine (also known as 4-carboxy-TEMPO), 1-oxyl-2,2,5,5-tetramethylpyrrolidine, 1-oxyl-2,2,5,5-tetramethyl-3-carboxylpyrrolidine (also known as 3-carboxy-PROXYL), and mixtures of two or more of these compounds, with 1-oxyl-2,2,6,6-tetramethylpiperidin-4-ol (TEMPOL) being particularly preferred.
[0046] The one or more inhibitors are preferably selected from the group consisting of N-oxyl radicals, catechol, catechol derivatives, and phenothiazine, and mixtures of two or more thereof. One or more inhibitors selected from the group consisting of Tempol, catechol, and phenothiazine are particularly preferred. The inhibitors used in the examples are very particularly preferred, preferably in amounts approximately as described in the examples.
[0047] The inhibitors may be used alone or in combination of two or more thereof depending on the desired properties of the reactive resin. A combination of a phenolic inhibitor and a non-phenolic inhibitor is preferred.
[0048] The inhibitor or inhibitor mixture is added in conventional amounts known in the art, preferably from about 0.0005% to about 2% by weight (based on the reactive resin with which it is ultimately prepared), more preferably from about 0.01% to about 1% by weight (based on the reactive resin), and even more preferably from about 0.05% to about 1% by weight (based on the reactive resin).
[0049] Hardener component (B) The curing agent is used to cure the radically curable compound.
[0050] Preferably, a curing agent system is used which comprises a curing agent and an accelerator.
[0051] At this point, an accelerator for the reactive resin component (A) can be added.
[0052] Curing of reactive resins can be initiated using peroxides as initiators. Thus, in one aspect, the curing system comprises: at least one accelerator typically used for peroxide curing, and - Contains peroxide as initiator.
[0053] Any peroxide known to those skilled in the art for use in curing epoxy (meth)acrylate resins can be used. Such peroxides include organic and inorganic peroxides, either liquid or solid. It is also possible to use hydrogen peroxide. Examples of suitable peroxides include peroxycarbonates (of the formula -OC(O)OO-), peroxyesters (of the formula -C(O)OO-), diacyl peroxides (of the formula -C(O)OOC(O)-), dialkyl peroxides (of the formula -OO-), and hydroperoxides (of the formula -OOH). These may exist as oligomers or polymers. A comprehensive list of examples of suitable peroxides is described, for example, in paragraph
[0018] of U.S. Patent Application Publication No. 2002 / 0091214A1.
[0054] The peroxide is preferably selected from the group of organic peroxides. Suitable organic peroxides include tertiary alkyl hydroperoxides such as tert-butyl hydroperoxide, as well as other hydroperoxides such as cumene hydroperoxide, peroxyesters or peracids such as tert-butyl peresters (e.g., tert-butyl peroxybenzoate), benzoyl peroxide, peracetates and perbenzoates, lauroyl peroxide including (di)peroxyesters, perethers such as peroxydiethyl ether, and perketones such as methyl ethyl ketone peroxide. Organic peroxides used as curing agents are often tertiary peresters or tertiary hydroperoxides, i.e., peroxide compounds having a tertiary carbon atom directly bonded to an -OO-acyl or -OOH group. However, mixtures of these peroxides with other peroxides can also be used according to the present invention. The peroxides can also be mixed peroxides, i.e., peroxides having two different peroxide-containing units in one molecule. In a preferred embodiment, benzoyl peroxide (BPO) or tert-butyl peroxybenzoate is used for curing.
[0055] The peroxide can be used in pure form or as a component of a mixture. It is typically used as a component of a mixture, particularly as a component of the curing agent component (B) of a reactive resin system, as described in more detail below. The curing agent components used in the examples or curing agent components having the same components are particularly preferred.
[0056] It is also possible to use organically substituted ammonium persulfates (for example N'N'N'N'-tetrabutylammonium or N'N'N'-tricapryl-N'-methylammonium persulfates).
[0057] In addition to the peroxide, the curing agent system may also contain a desensitizer to stabilize the peroxide. Corresponding desensitizers are known from DE-A-3226602, EP-A-0432087 and EP-A-1 371 671.
[0058] Such hardeners preferably contain water as a desensitizing agent. In addition to water, the hardener system may also contain further desensitizing agents, with water being preferred as the only desensitizing agent in order not to introduce any compounds with a softening effect.
[0059] The peroxide is preferably present as a suspension with water, and corresponding suspensions are commercially available in different concentrations, such as aqueous benzoyl peroxide suspensions from United Initiators (e.g., BP40SAQ), Perkadox 40L-W (Nouryon), Luperox® EZ-FLO (Arkema), Peroxan BP40W (Pergan).
[0060] The curing agent component may contain peroxide in an amount of 0.25% by weight to 35% by weight, preferably 1% by weight to 30% by weight, particularly preferably 5% by weight to 25% by weight, based on the curing agent component.
[0061] The described curing system uses an accelerator in addition to the peroxide to accelerate the curing reaction. The accelerator is added to the reactive resin component to store it spatially separated from the peroxide and to prevent premature decomposition.
[0062] Suitable accelerators are known to those skilled in the art. Conveniently, they are amines.
[0063] Suitable amines are the following compounds described in application US 2011 / 071234 A1, such as dimethylamine, trimethylamine, ethylamine, diethylamine, triethylamine, n-propylamine, di-n-propylamine, tri-n-propylamine, isopropylamine, di-isopropylamine, triisopropylamine, n-butylamine, iso-butylamine, tert-butylamine, di-n-butylamine, di-isobutylamine, triisobutylamine, pentylamine, isopentylamine, diisopentylamine, hexylamine, octylamine, dodecylamine, laurylamine, stearylamine, aminoethanol, diethanolamine, triethanolamine, aminohexanol, ethoxyaminoethane, dimethyl(2-chloroethyl)amine, 2-ethylhexylamine, bis(2-chloroethyl)amine, 2-ethylhexylamine, bis(2-chloroethyl)amine, bis(2-ethylhexylamine), ... , bis(2-ethylhexyl)amine, N-methylstearylamine, dialkylamines, ethylenediamine, N,N'-dimethylethylenediamine, tetramethylethylenediamine, diethylenetriamine, permethyldiethylenetriamine, triethylenetetramine, tetraethylenepentamine, 1,2-diaminopropane, dipropylenetriamine, tripropylenetetramine, 1,4-diaminobutane, 1,6-diaminohexane, 4-amino-1-diethylaminopentane, 2,5-diamino-2,5-dimethylhexane, trimethylhexamethylenediamine, N,N-dimethylaminoethanol, 2-(2-diethylaminoethoxy)ethanol, bis(2-hydroxyethyl)oleylamine, tris[2(2-hydroxyethoxy)ethyl]amine, 3-amino-1-propanol, methyl(3-aminopropyl)ether, ethyl-(3-aminopropyl)ether, 1,4-Butanediol-bis(3-aminopropyl ether), 3-dimethylamino-1-propanol, 1-amino-2-propanol, 1-diethylamino-2-propanol, di-iso-propanolamine, methyl-bis(2-hydroxypropyl)amine, tris(2-hydroxypropyl)amine, 4-amino-2-butanol, 2-amino-2-methylpropanol, 2-amino-2-methylpropanediol, 2-amino-2-hydroxymethylpropanediol, 5-diethylamino Amino-2-pentanone, 3-methylaminopropionitrile, 6-aminohexanoic acid, 11-aminoundecanoic acid, 6-aminohexanoic acid ethyl ester, 11-aminohexanoic acid isopropyl ester, cyclohexylamine, N-methylcyclohexylamine, N,N-dimethylcyclohexylamine, dicyclohexylamine, N-ethylcyclohexylamine, N-(2-hydroxyethyl)cyclohexylamine, N,N-bis(2-hydroxyethyl)cyclohexylamine, N-( 3-aminopropyl)cyclohexylamine, aminomethylcyclohexane, hexahydrotoluidine, hexahydrobenzylamine, aniline, N-methylaniline, N,N-dimethylaniline, N,N-diethylaniline, N,N-dipropylaniline, isobutylaniline, toluidine, diphenylamine, hydroxyethylaniline, bis(hydroxyethyl)aniline, chloroaniline, aminophenol, aminobenzoic acid and their esters, benzylamine, dibenzylamine , tribenzylamine, methyldibenzylamine, α-phenylethylamine, xylidine, di-iso-propylaniline, dodecylaniline, aminonaphthalene, N-methylaminonaphthalene, N,N-dimethylaminonaphthalene, N,N-dibenzylnaphthalene, diaminocyclohexane, 4,4'-diamino-dicyclohexylmethane, diamino-dimethyl-dicyclohexylmethane, phenylenediamine, xylylenediamine, diaminobiphenyl, naphthalenediamine, benzidine, 2,The alkyl group is selected from 2-bis(aminophenyl)propane, aminoanisole, aminothiophenol, aminodiphenyl ether, aminocresol, morpholine, N-methylmorpholine, N-phenylmorpholine, hydroxyethylmorpholine, N-methylpyrrolidine, pyrrolidine, piperidine, hydroxyethylpiperidine, pyrrole, pyridine, quinoline, indole, indolenine, carbazole, pyrazole, imidazole, thiazole, pyrimidine, quinoxaline, aminomorpholine, dimorpholineethane, [2,2,2]-diazabicyclooctane, and N,N-dimethyl-p-toluidine.
[0064] Preferred amines are N,N-dimethylaniline, N,N-diethylaniline, N,N-dimethyl-p-toluidine, N,N-bis(hydroxyalkyl)arylamines, N,N-bis(2-hydroxyethyl)aniline, N,N-bis(2-hydroxyethyl)toluidine, N,N-bis(2-hydroxypropyl)aniline, N,N-bis(2-hydroxypropyl)toluidine, N,N-bis(3-methacryloyl-2-hydroxypropyl)-p-toluidine, N,N-dibutyl Symmetrically or unsymmetrically substituted aniline and toluidine derivatives such as o- or m-toluidine, N-hydroxyhydroxypropyl-p-toluidine, N-methyl-N-hydroxyethyl-p-toluidine, N-ethyl-N-hydroxyethyl-p-toluidine, and analogous o- or m-toluidine, and 4,4'-bis(dimethylamino)diphenylmethane, as well as N,N-bis(hydroxy)alkylarylamines, and / or leuco forms of the dyes crystal violet or malachite green.
[0065] Polymeric amines, such as those obtained by polycondensation of N,N-bis(hydroxyalkyl)anilines with dicarboxylic acids or by polyaddition of ethylene oxide with these amines, are also suitable as accelerators.
[0066] Preferred accelerators are N,N-bis(2-hydroxypropyl)toluidine, N,N-bis(2-hydroxyethyl)toluidine, and para-toluidine ethoxylate (Bisomer® PTE).
[0067] In this preferred embodiment, the reactive resin component may contain the accelerator in an amount of 0.01% to 10% by weight, preferably 0.1% to 5% by weight, and particularly preferably 0.1% to 3% by weight, based on the resin component.
[0068] Alternatively, a peroxide-free curing agent system can be used for curing, which system comprises the following components: at least one manganese compound as a promoter; 1,3-dioxo compounds as initiators.
[0069] For this purpose, reference is made to DE 10 2011 078 785 A1.
[0070] Suitable 1,3-dioxo compounds are compounds of the general formula (III): [ka] During the ceremony, R 1 and R 3 are, in each occurrence, independently an unbranched or branched, optionally substituted C1-C4 alkyl group or a C1-C4 alkoxy group; R 2 is an unbranched or branched, optionally substituted C1-C4 alkyl group or C1-C4 alkoxy group, or R 1 or R 3 together form an optionally substituted 5- or 6-membered aliphatic ring which optionally contains a heteroatom in or on the ring. In this curing agent system, it is essential that in the compound of formula (III), the carbon atom linking the two carbonyl groups together has exactly one hydrogen atom bonded to it.
[0071] The compound of general formula (III) is preferably a compound of formula (IV), [ka] wherein, independently, X=C, O, n=1, 2, and R 3 is an unbranched or branched, optionally substituted C1-C4 alkyl group or C1-C4 alkoxy group. X is more preferably O. n is more preferably 1. R 3 is more preferably a C1 to C4 alkyl group.
[0072] Particularly preferably, the compound of formula (III) is 2-methyl-2,4-pentanedione, α-acetylbutyrolactone, cyclopentanone-2-carboxylic acid ethyl ester or cyclopentanone-2-carboxylic acid methyl ester, with α-acetylbutyrolactone being most preferred.
[0073] Manganese compounds, in particular manganese salts or manganese complexes, are used as accelerators. It is also possible to use mixtures of manganese salts and / or manganese complexes.
[0074] Manganese salts or complexes have proven particularly suitable, especially those based on 1,3-dioxo compounds, such as acetylacetonate (pentane-2,4-dione), and carboxylic acids, such as naphthenate, octoate, ethylhexanoate, or saturated fatty acids. There are no limitations on the manganese compound. The manganese compound is preferably soluble in a non-polar solvent. Mn(II) octoate is particularly suitable.
[0075] Also alternatively, the following components: at least one metal salt as a promoter; and at least one compound containing thiol and / or thiol ester groups as initiator. A curing agent system comprising the compound can be used for curing.
[0076] As a result of the combination or mixing of the two components, radicals can be formed which can cause the polymerization of non-aromatic double bonds, such as olefinic double bonds, for example acrylates or methacrylates, instead of the radical formers customary up to now.
[0077] Examples of thiols are thioglycerol, methyl-, ethyl mercaptan and higher homologues, such as dodecyl mercaptan, dimercaptans, such as dimercaptopropanesulfonic acid, dimercaptosuccinic acid, dithiothreitol, poly(ethylene glycol) dithiol, of the general formula HS-[CH2-CH2-O] n-CH2-CH2-SH, where n is a number from 0 to 10; liquid polysulfide polymers with thiol end groups, such as Thioplast G type from Akzo Nobel; polymercaptan hardeners and crosslinkers, such as SIQ-Amin 999 from SIQ-Kunstharze GmbH; ethoxylated and / or propoxylated alcohols from mono-, di-, tri-, tetra-, pentaols and / or other polyols with thiol end groups, such as Capcure 3-800 from Cognis, or the compounds mentioned below as particularly suitable thiols. Particularly suitable thiol esters include octanethiol acid-S-[3(triethoxysilyl)propyl] ester. Examples of suitable thiols are glycol di(3-mercaptopropionate), trimethylolpropane tri(3-mercaptopropionate), pentaerythritol tetra(3-mercaptopropionate), dipentaerythritol hexa(3-mercaptopropionate), ethoxylated trimethylolpropane tris(3-mercaptopropionate) with different degrees of ethoxylation (e.g. ETTMP700 and ETTMP1300 from Bruno Bock), tris[2-(3-mercaptopropionyloxy)ethyl]isocyanurate, 3-mercaptopropyltrimethoxysilane.
[0078] Further alternatively, the following components: at least one metal salt as a promoter; at least one CH-acidic compound of formula (V) as initiator, [ka] (In the formula, (i) -A is -C(R 1 )(R 2 )-, -X- represents a bond, and -NR 3 -or-(CR 4 R 5 )p represents - or -O-; Y is NR 6 Or (CR 7 R 8 ) q or O, where if X represents O, then Y also represents O; Preferably, X is (CR 4 R 5 ) p Y represents CR 7 R 8 represents or X is NR 3 and Y is NR 6 represents; Z 1 represents O, S, S=O or S(=O)2, Z 2 represents O, S, S=O or S(=O)2, Z 3 is O, S, S=O or S(=O)2 or R 9 and R 10 represents p represents 1, 2 or 3, preferably 1 or 2; q represents 1, 2 or 3, preferably 1; Functional group R 1 , R 2 , R 3 , R 4 , R 5 , R 6 , R 7 , R 8 , R 9 and R 10 each independently represent hydrogen, alkyl, aryl, aralkyl, cycloalkyl or cycloalkylalkyl, each unsubstituted or substituted and / or a heteroatom (in place of a C atom); Preferably, it is selected from O, N, for example NH or N-alkyl, and S, provided that the functional group R 1 and R 2 at least one of represents hydrogen; or (ii) -C(=Z) is the bond that forms the bridge 3)- is absent, -A- is -C(R 1 )(R 2 )-, X and Y each independently in each case represent an unbranched or branched, unsubstituted or substituted C1-C4 alkyl group or a C1-C4 alkoxy group, which optionally has a heteroatom (instead of a C atom; in particular selected from O, N, for example NH or N-alkyl, and S), or preferably in each case an unsubstituted or substituted C1-C4 alkoxycarbonylmethyl group or a C1-C4 alkylcarbonylmethyl group, which optionally has a heteroatom (instead of a C atom; in particular selected from O, N, for example NH or N-alkyl, and S), R 1 and R 2 are both hydrogen Z 1 and Z 2 has the meaning given above; Or X in each case represents an unbranched or branched, unsubstituted or substituted C1-C4 alkyl group or a C1-C4 alkoxy group or a C1-C4 alkoxycarbonylmethyl group or a C1-C4 alkylcarbonylmethyl group, which optionally has a heteroatom (instead of a C atom; in particular selected from O, N, for example NH or N-alkyl, and S), Y and Z 2 together with the bonded carbon atom is -CN, Z 1 has the above meaning, R 1 and R 2 is in each case as defined above, with the proviso that at least one of the functional groups is hydrogen), and / or its salts.
[0079] Preferred examples of such compounds are 2,4,6-pyrimidinetrione derivatives, such as barbituric acid (2,4,6-pyrimidinetrione) itself, 1-benzyl-5-phenylbarbituric acid (1-(phenylmethyl)-5-phenyl-2,4,6-pyrimidinetrione), 5-butylbarbituric acid (5-butyl-2,4,6-pyrimidinetrione), 1-cyclohexyl-5-ethylbarbituric acid (1-cyclohexyl-5-ethyl-2,4,6-pyrimidinetrione) or 2-thiobarbituric acid (4,6-dihydroxy-2-mercaptopyrimidine), 1,3-cyclohexanedione, 2-methyl-1,3-cyclohexanedione, 1,3-cyclopentanedione, 2-methyl-1,3-cyclopentanedione, 4,4-dimethyl-1,3-cyclohexanedione, 5,5-dimethyl-1,3-cyclohexanedione (dimedone), 2,2-dimethyl-1,3-dioxane-4,6-dione or 2,2,5-trimethyl-1,3-dioxane-4,6-dione, 3-oxoglutaric acid dimethyl ester, and / or diethyl-1,3-acetonedicarboxylate, ethyl cyanoacetate, methyl cyanoacetate or 2-ethylhexyl cyanoacetate, or the 1,3-dioxo compounds described in DE 10 2011 078 785 A1.
[0080] In both cases, the components used as promoters in the form of metal salts, including also metal complexes and metal oxides, are preferably one or more metal salts or salts, in particular of organic and / or inorganic acids with metals selected for example from cobalt, zirconium, zinc, cerium, tin, bismuth, or preferably vanadium, manganese, copper or iron, or mixtures of two or more thereof, where the organic acid is preferably saturated, and where optionally in the presence of one or two co-promoters having a metal content from the group of the above-mentioned metals, in particular inorganic acids and / or carboxylate functional groups, e.g. CH3, C2-C 20 Alkyl, C6-C 24 Aryl functional group or C7-C 30Vanadium and iron, or especially manganese and copper, are preferred in the form of salts and complexes with carboxylates having aralkyl functions, such as octanoates, e.g., 2-ethylhexanoates (isooctanoates), further neodecanoates or acetylacetonates. Particularly preferred are manganese carbonates or carboxylates, e.g., Mn acetate or octoate, copper carboxylates, e.g., copper octoate or copper naphthenate, copper quinolinates, iron carboxylates, e.g., iron octoate and / or vanadium carboxylates, and / or metal salts with inorganic acids, such as the group comprising iron chloride, iron sulfate and copper chloride.
[0081] In a further alternative, the following components: at least one metal salt as a promoter; at least one aldehyde and / or ketone and at least one primary amine as initiator, and / or b2) at least one imine containing one or more imine structural increments of formula (VI), [ka] (wherein, independently, Q represents the organic functional group (in each case) of the amine used or represents hydrogen; R 2 and R 3 are each independently hydrogen and / or an unsubstituted or substituted, mono- or poly-branched or linear organic functional group, optionally having double bonds and / or heteroatoms, and comprising at least one aliphatic, heteroaliphatic, alicyclic or heterocyclic molecular structure, or a combination of two or more of the foregoing molecular structures. and / or salts thereof can be used for curing.
[0082] The molecular weight of the imine containing the imine structural increment of formula (VI) is preferably 2000 Daltons (g / mol) or less, for example 1000 Daltons or less. The aldehyde and / or ketone, respectively, preferably have a molecular weight in these ranges.
[0083] The hardener system can be present as a finished hardener composition (e.g., with microencapsulated components a) and b) or, preferably, can be formed only during mixing with further components of the synthetic resin composition (effectively as a composition (mixture)), e.g., during use.
[0084] The aldehydes, ketones, amines, aldimines or ketimines contained or used are known or can be prepared / obtained by processes known per se, or preferably obtained subsequently. Imines can be synthesized or obtained only before application (e.g., for fastening anchor elements) or "in situ". Possible processes according to the present invention are therefore (t) separate pre-preparation, and / or (tt) "in situ" preparation, in which the aldehyde / ketone and primary amine are separated into different components of the fastening system and mixed, for example, at the application site, and / or (ttt) "in situ" preparation in a component of the fastening system, in which the aldehyde / ketone and primary amine are mixed together when preparing the relevant component. In particular, imines according to (t) are obtained by condensation with one or more aldehydes or ketones from one or more amines, with elimination of water. The corresponding reaction conditions for the separate pre-conversion (t) are known to those skilled in the art.
[0085] Examples of suitable amines and aldehydes or ketones can be found in particular in DE 10 2004 035 542 A1, EP 1 329 469 A1, EP 1 975 190 A1 and EP 2 017 260 A1.
[0086] Primary amines added as such or for the synthesis of imines include, for example, mono-, di-, or polyamines, or mixtures of two or more thereof. Usable mono-, di-, and / or polyamines may be both linear and branched. The molecular structure of the mono- and / or di- and / or polyamines may contain aliphatic, heteroaliphatic, cycloaliphatic, heterocyclic, aromatic, aliphatic-aromatic, and silane / siloxane molecular structures, or two or more independently selected therefrom. Primary, secondary, and tertiary amino groups can be present in the molecule, but at least one primary amino group (—NH) must be present to form an aldimine or ketimine.
[0087] The mono-, di-, or polyamines are preferably selected from the group of alkyl- or alkylene (mono- or di-)amines (e.g., 2-methylpentanediamine or 2,2,4- or 2,4,4-trimethylhexamethylenediamine), heteroalkyl- or heteroalkylene (mono- or di-)amines (e.g., 1,13-diamino-4,7,10-trioxatridecan, Huntsman amine-functionalized polyoxyalkylenes (available commercially from Jeffamine, or, for example, triethylenetetramine and / or higher homologues), from the group of cycloalkyl- or cycloalkylene (mono- or di)amines (e.g., isophoronediamine, 1,3-bisaminomethylcyclohexane, TCD-diamine), from the group of heteroalkylalkyl- or heterocycloalkylene (mono- or di)amines (e.g., aminoethylpiperazine), from the group of aminools or aminoalcohols (e.g., 1,3-diaminopropan-2-ol), and from the group of aliphatic-aromatic (mono- or di)amines (e.g., 1,3- or 1,4-benzenedimethaneamine, etc.), and / or from the group of aminosilanated fillers.
[0088] Further preferred are mono-, di- or polyamines from the group of aminoamides, polyaminoamides, Mannich bases and amine adducts (e.g. epoxyamine adducts as described in EP-A-0 387 418, isocyanateamine adducts (e.g. from unreacted amino groups in the imine synthesis or from the above-mentioned aminols, where, when aminols are used, reaction of the imine preferably takes place first, followed by addition to the isocyanate), Bucherer adducts and Michael adducts).
[0089] Aminoalkylsilanes containing at least one hydrolyzable group, such as alkoxy, e.g., methoxy, or ethoxy, attached to silicon, are also particularly interesting as amines. They can undergo hydrolysis and condensation (via the resulting reaction water or added water) to form oligomers that contain multiple amino groups and meet the REACH definition of polymers. Imines derived from such aminoalkylsilanes therefore form the basis of particularly preferred embodiments of the present invention. Preferred aminoalkylsilanes of this type are selected, for example, from the group comprising one or more of the following compounds: aminoalkyltri- or dialkoxysilanes, such as 3-aminopropyltrimethoxysilane or 3-aminopropyltriethoxysilane, and N-(aminoalkyl)aminoalkyltri- or dialkoxysilanes, such as N-(2-aminoethyl)-3-aminopropyltrimethoxysilane or N-(2-aminoethyl)-3-aminopropylmethyldimethoxysilane, as well as ureidoalkyltrimethoxysilanes, such as 3-ureidopropyltrimethoxysilane.
[0090] In a more specific embodiment of the present invention, an aminosilane-treated filler carrying primary amino groups, such as aminosilane-treated quartz powder (e.g., Silbond AST® from Quarzwerke GmbH), aminosilane-treated siliceous earth (e.g., Aktisil AM® from Hoffmann Mineral), or aminosilane-treated fumed silica, is provided and can be included as a polyamine.
[0091] Aldehydes and ketones which can be used as such or for the synthesis of aldimines and / or ketimines are especially those of formula (VII): [ka] (In the formula: R 2 , R 3 are each independently hydrogen and / or unsubstituted or substituted and / or mono- or poly-branched or linear organic functional groups, optionally having double bonds and / or heteroatoms, and which may include aliphatic, heteroaliphatic, alicyclic, heterocyclic molecular structures and / or combinations of the above molecular structures.
[0092] Preferably, the aldehyde and / or ketone is a compound having at least one (primary and / or secondary) hydrogen atom on the alpha carbon atom belonging to the carbonyl group. Examples of such aldehydes include propanal, valeraldehyde, isovaleraldehyde, or methoxyacetaldehyde, or 3,7-dimethyl-6-octenal (citronellal) or 3,7-dimethyl-7-hydroxyoctanal (hydroxycitronellal). Examples of such ketones include methyl isobutyl ketone, acetone, methyl ethyl ketone, or 6-methyl-5-hepten-2-one.
[0093] Aldehydes and / or ketones are particularly preferably compounds which have a double bond and / or branch on the alpha carbon atom belonging to the carbonyl group. Consequently, particularly preferred aldehydes and / or ketones have only (tertiary) hydrogen atoms on the alpha carbon atom belonging to the carbonyl group. Particularly preferred examples of aldehydes are isobutyraldehyde, 2-ethylhexanal, 2-methylbutanal, 2-ethylbutanal, 2-methylvaleraldehyde, 2,3-dimethylvaleraldehyde, cyclohexylcarboxaldehyde, or 3,7-dimethyl-2,6-octadiene (citral), 3-(4-tert-butylphenyl)-2-methylpropanal (lilial, lysmeral), tetrahydrofuran-3-carboxaldehyde, tetrahydro-2-furancarboxaldehyde, 4-formyltetrahydropyran, tetrahydro-2H-pyran-2-carbaldehyde or tetrahydro-pyran-3-carbaldehyde. Particularly preferred examples of ketones include diisopropyl ketone, 3-methyl-2-pentanone, 2-methylcyclohexanone or beta-ionone.
[0094] The above examples of suitable amines, preferred and particularly preferred aldehydes and / or ketones are not intended to limit the scope of suitable amines, aldehydes and / or ketones, but rather, for purposes of illustration, only provide some examples of compounds having the above structural features whose characteristics define them as suitable, preferred and particularly preferred.
[0095] The aldehydes, ketones or synthesized aldimines and / or ketimines described in the examples above, as well as certain amines, ketones and aldehydes, or mixtures of two or more thereof, are added as such and / or used to synthesize aldimines and / or ketimines, or mixtures of two or more thereof, and these are also particularly preferred.
[0096] Furthermore, the reactive resin component (A) may contain conventional fillers and / or additives. It should be noted that some substances can be used both as fillers and, optionally in modified form, as additives. For example, fumed silica is preferably used as a filler in its polar, non-post-treated form, and also as an additive in its non-polar, post-treated form. If the same substance can be used as both a filler and an additive, the total amount must not exceed the upper limit for fillers determined herein.
[0097] In order to prepare reactive resin components for construction applications, especially for chemical fastening (adhesive anchors), in addition to the brick powder used in the present invention, further conventional fillers can be added to the reactive resin, which are typically inorganic fillers, for example as described below.
[0098] The total proportion of fillers (brick powder and conventional fillers) and additives is preferably about 50% to about 80% by weight, more preferably about 55% to about 75% by weight, and even more preferably about 60% to about 70% by weight, based on the reactive resin component.
[0099] Conventional (and further) fillers In addition to the brick powder used according to the invention, the fillers used are conventional fillers, preferably mineral or mineral-like fillers, such as quartz, glass, sand, quartz sand, quartz powder, porcelain, corundum, ceramic, talc, silica (e.g. fumed silica, in particular polar non-post-treated fumed silica), silicates, aluminum oxide (e.g. alumina), clay, titanium dioxide, chalk, barite, feldspar, basalt, aluminum hydroxide, granite or sandstone, polymeric fillers such as Thermoset, gypsum, quicklime, hydraulic fillers such as cement (e.g. aluminate cement (often called aluminous cement) or Portland cement), metals such as aluminum, carbon black, and further wood, mineral or organic fibers, or mixtures of two or more thereof. The filler may be present in any desired shape, for example, as a powder or as a shaped body, such as a cylinder, ring, sphere, platelet, rod, saddle, or crystalline shape, or other shapes such as fibers (fibrous fillers), and the corresponding base particles preferably have a maximum diameter of approximately 10 mm and a minimum diameter of approximately 1 nm. This means that the diameter is any value greater than about 10 mm or about 1 nm and less than about 10 mm. The maximum diameter is preferably approximately 5 mm in diameter, more preferably approximately 3 mm, and even more preferably approximately 0.7 mm. A maximum diameter of approximately 0.5 mm is particularly preferred. A more preferred minimum diameter is approximately 10 nm, even more preferably approximately 50 nm, and very particularly preferably approximately 100 nm. The diameter range resulting from this combination of maximum and minimum diameters is particularly preferred. However, spherical inert materials (spherical) have a preferred, more pronounced reinforcing effect. Preferably spherical core-shell particles can also be used as fillers.
[0100] Preferred fillers are selected from the group consisting of cement, silica, quartz, quartz sand, quartz powder, and mixtures of two or more thereof. For reactive resin component (A), fillers selected from the group consisting of cement, fumed silica, especially untreated polar fumed silica, quartz sand, quartz powder, and mixtures of two or more thereof are particularly preferred.
[0101] additives Further possible additives are rheological additives, such as optionally organically or inorganically post-treated fumed silica (if not already used as a filler), in particular non-polarly post-treated fumed silica, bentonite, alkylcellulose and methylcellulose, castor oil derivatives, plasticizers, such as phthalic or sebacate esters, stabilizers, antistatic agents, thickeners, softeners, curing catalysts, rheological aids, wetting agents, coloring additives such as dyes or, in particular, pigments for differently coloring the components to improve the control of their mixing, or mixtures of two or more thereof. Agents for adjusting the pH, such as inorganic and / or organic acids according to DE 102010008971 A1, can also be used, in particular copolymers with acidic groups, such as esters of phosphoric acid. Non-reactive diluents (solvents), for example lower alkyl ketones, for example acetone, di-low alkyl lower alkanoyl amides such as dimethylacetamide, lower alkyl benzenes such as xylene or toluene, phthalates or paraffins, or water, or glycols, may also be present, preferably in an amount of up to 30% by weight, for example 1% to 20% by weight, based on the relevant components (reactive resin mortar, hardener). Additionally, agents for improving compatibility between the resin component and the hardener component, such as ionic, nonionic, or amphoteric surfactants; soaps, wetting agents, detergents; polyalkylene glycol ethers; salts of fatty acids, monoglycerides or diglycerides of fatty acids, sugar glycerides, lecithin; alkanesulfonates, alkylbenzenesulfonates, fatty alcohol sulfates, fatty alcohol polyglycol ethers, fatty alcohol ether sulfates, sulfonated fatty acid methyl esters; fatty alcohol carboxylates; alkyl polyglycosides, sorbitan esters, N-methylglucamides, sucrose esters; alkylphenols, alkylphenol polyglycol ethers, alkylphenol carboxylates; quaternary ammonium compounds, ester quats, carboxylates of quaternary ammonium compounds, etc., may also be used.
[0102] Furthermore, a metal scavenger in the form of surface-modified fumed silica can be included in the reactive resin component. Preferably, at least one thixotropic agent is present as an additive, particularly preferably organically or inorganically post-treated fumed silica, very particularly preferably non-polarly post-treated fumed silica, such as polydimethylsiloxane (PDMS), and particularly preferably non-polarly post-treated fumed silica, as used in the examples.
[0103] In this regard, reference is made to WO 02 / 079341 and WO 02 / 079293, as well as WO 2011 / 128061.
[0104] In one embodiment, the reactive resin component can further comprise an adhesion promoter. The use of an adhesion promoter improves cross-linking between the borehole wall and the mortar mass, increasing adhesion in the cured state. This is important, for example, when using two-component fastening compounds in boreholes drilled using diamond drills, and increases fracture bond strength. Suitable adhesion promoters are selected from the group of silanes functionalized with additional reactive organic groups and capable of being incorporated into the polymer network. This group includes, for example, 3-(meth)acryloyloxypropyltrimethoxysilane, 3-(meth)acryloyloxypropyltriethoxysilane, 3-(meth)acryloyloxymethyltrimethoxysilane, 3-(meth)acryloyloxymethyltriethoxysilane, vinyltrimethoxysilane, vinyltriethoxysilane, functionalized tetraethoxysilane, functionalized tetramethoxysilane, functionalized tetrapropoxysilane, functionalized ethyl or propyl polysilicates, and mixtures of two or more thereof. In this regard, reference is made to German Patent Application No. 10 2009 059210, the content of which is incorporated herein by reference.
[0105] The adhesion promoter is conveniently included in an amount of about 1% to about 10% by weight, based on the total weight of the reactive resin component (A).
[0106] Furthermore, it is preferred that the reactive resin component (A) also comprises a thixotropic agent, preferably fumed silica which has been post-treated in a non-polar manner, particularly preferably fumed silica which has been post-treated with polydimethylsiloxane (PDMS), very particularly preferably fumed silica which has been post-treated in a non-polar manner.
[0107] In a particularly preferred embodiment, the reactive resin or components of the reactive resin component (A) are one or more of the components set out in the above examples according to the invention. Particularly preferred are reactive resins or reactive resin components that contain or consist of the same components as set out in the individual examples according to the invention, preferably in approximately the proportions set out in the examples.
[0108] A further subject of the present invention is a multi-component system comprising a reactive resin component (A) according to the invention and a hardener component (B), the hardener component (B) comprising a hardener for the reactive resin.
[0109] The multi-component system according to the invention may be in the form of a cartridge system or a film pouch system. In order to use the system, the components are expelled from the cartridge or film pouch under the application of mechanical force or by gas pressure, mixed together, preferably by a static mixer through which the components are passed, and introduced into a borehole, after which the device to be attached, such as a threaded anchor rod, is introduced into the borehole containing the cured reactive resin and adjusted accordingly.
[0110] The multi-component system according to the invention is primarily used in the construction sector for concrete repair, for example as polymer concrete, as synthetic resin-based coating masses, or as cold-hardening road markings. This system is particularly suitable for chemically fastening anchoring means, such as anchors, rebars, screws, etc., into boreholes, in particular into boreholes made of various substrates (materials to be fastened), in particular mineral substrates, such as concrete, aerated concrete, brick, limestone, sandstone, natural stone, glass, etc., and metal substrates, such as steel. In one embodiment, the substrate of the borehole is concrete and the anchoring means consists of steel or iron. In a further embodiment, the substrate of the borehole is steel and the anchoring means consists of steel or iron.
[0111] The multi-component system according to the invention is used in particular for fastening anchoring means in boreholes of different substrates and for structural bonding. In one embodiment, the substrate of the borehole is concrete and the anchoring means consists of steel or iron. In a further embodiment, the substrate of the borehole is steel and the anchoring means consists of steel or iron. Preferably, the steel borehole has a groove.
[0112] A further subject of the present invention is the use of brick powder as a filler in a multi-component system having a reactive resin component (A) and a hardener component (B) for improving the performance of a fastening device comprising a mortar mass prepared from the multi-component system and a fastening means, wherein the mortar mass prepared from the multi-component system is applied to a water-filled borehole.
[0113] In a preferred embodiment, the reactive resin component (A) comprises a radically curable compound as the reactive resin. All of the above-mentioned embodiments apply to the radically curable compound.
[0114] In an alternative embodiment, the reactive resin component (A) can comprise a curable epoxy resin. In these cases, an amine for curing the epoxy resin is typically used as the curing agent component (B) in the multi-component system. Particularly preferred reactive resin components (A) and curing agent components (B) are described in WO 2020 / 058018, WO 2020 / 058017, WO 2020 / 058015, and WO 2020 / 05816, the contents of which are hereby incorporated by reference into the present application.
[0115] The present invention will be described in more detail below with reference to several examples, all of which are within the scope of the claims, but the present invention is not limited to the specific embodiments shown in the examples and drawings. DETAILED DESCRIPTION OF THE INVENTION [Example]
[0116] Unless otherwise specified, all components of the compositions described herein were commercially available and were used in their normal commercial quality.
[0117] Unless otherwise stated, all % data given in the examples are based on the total weight of the composition described as the basis of calculation.
[0118] It should be noted that the number of ethylene glycol repeat units n is not unique for the PEG200DMA used. From the product name PEG200DMA, it can be concluded that the polyethylene glycol with a molar mass of 200 g / mol is based on the monomer, which has the formula HO-(-CH2-CH2-O-) n In the case of -H, n corresponds to 4.2. Repeating unit (-CH2-CH2-O-) in molar mass nConsidering only n = 4.5, one can specify n = 4.5. This specification is primarily assumed because PEG 200, from which PEG 200 dimethacrylate is prepared, is a technical product and the cited manufacturers of dimethacrylate (Sartomer, Evonik, and GEO Specialty Chemicals) indicate n = 4 or n ≈ 4 in their technical data sheets.
[0119] List of ingredients used in the examples and references (explanation of abbreviations) and their trade names and suppliers: [Table 1] [Table 2]
[0120] Brick powders from different manufacturers were used as brick powders and were sieved before use. Sieves with the corresponding mesh sizes (Retsch GmbH) were used for this purpose. The brick powders used are shown in the table below: [Table 3]
[0121] All brick powders were dried in an oven for 48 hours at a temperature of 120° C. The brick powders have a moisture content of less than 0.2% by weight.
[0122] Preparation of reactive resin mixture HA All components of the relevant reactive resin mixture (HA) contained in Table 4 were added to a plastic beaker and stirred on a magnetic stirrer at room temperature until a solution was formed. [Table 4]
[0123] Preparation of reactive resins A1 to A19 To prepare reactive resin components A1 to A19, the components shown in the table below were combined and mixed in a dissolver (PC Laboratory Systems, Type 0.3-1) at 3500 rpm for 8 minutes under vacuum (≦100 mbar) using a 55 mm dissolver disc and edge scraper. [Table 5] [Table 6]
[0124] Preparation of hardener component (B) The curing agent component (B) used in the examples was prepared by adding all the components shown in Table 7 and mixing in a dissolver (type LDV 0.3-1) at 3500 rpm for 8 minutes under vacuum (pressure ≦100 mbar) using a 55 mm dissolver disc and edge scraper. [Table 7]
[0125] Preparation of mortar mass To prepare the mortar mass, in each case one of the reactive resin components A1 to A4 and one of the hardener components B1 to B5 according to Table 8 were filled into a rigid cartridge in a specific volume ratio and applied from the cartridge via a static mixer (HIT-RE-M, Hilti AG) into the water-filled borehole.
[0126] Determination of load value (B8 value) To determine the bond strength (load value) of the hardened mortar mass, high-strength anchor threaded rods M12 were used and fastened in water-filled boreholes with a diameter of 14 mm and a borehole depth of 72 mm in C20 / 25 concrete with the relevant chemical mortar mass at approximately 20°C. The average failure load was determined by supporting the threaded anchor rod firmly and pulling it out from the center. Five threaded anchor rods were fastened individually and the load value was determined after a curing time of 24 hours at room temperature. The average load values determined in this case (average of five measurements) are listed in Table 8 below. [Table 8]
[0127] The results in Table 8 show that the use according to the invention of brick powder as a filler in a mortar mass for the preparation of chemical fastenings makes it possible to achieve increased load values in water-filled boreholes compared to a reference example containing no brick powder at all.
[0128] The following table shows the components of a multi-component system comprising at least one epoxy resin in the reactive resin component (A) and at least one amine as a curing agent for the epoxy resin in the hardener component (B).
[0129] The reactive resin component (A), the hardener component (B), the multi-component system prepared from these two components, and the corresponding mortar mass were prepared similarly to the experimental part of WO 2020 / 058018. The application and pull-out tests of the mortar mass were carried out as already described above. [Table 9]
Claims
1. A reactive resin component (A) having at least one radically curable compound as a reactive resin, characterized in that the reactive resin component (A) contains at least 10 wt. % of brick powder, based on the total weight of the reactive resin component (A).
2. The reactive resin component according to claim 1, characterized in that the reactive resin component (A) contains 20 wt% to 60 wt% of brick powder based on the total weight of the reactive resin component (A).
3. The brick powder has a d of ≦0.90 mm 90 The reactive resin component of claim 1 having a value of
4. The brick powder has a d in the range of 0.9 mm to 0.2 mm 90 The reactive resin component of claim 3, characterized in that it has a value of
5. The reactive resin component according to any one of claims 1 to 4, characterized in that the brick powder has a moisture content of less than 1% by weight.
6. 5. The reactive resin component according to claim 1, wherein the radically curable compound is selected from the group consisting of compounds based on urethane (meth)acrylates, compounds based on epoxy (meth)acrylates, methacrylates of alkoxylated bisphenols, compounds based on further ethylenically unsaturated compounds, and combinations thereof.
7. The reactive resin component according to any one of claims 1 to 4, characterized in that it comprises at least one reactive diluent.
8. The reactive resin component according to any one of claims 1 to 4, characterized in that it further comprises an inhibitor, an accelerator and / or further additives.
9. A multi-component system comprising a reactive resin component (A) according to any one of claims 1 to 4 and a hardener component (B) comprising a hardener for said reactive resin.
10. 10. The multi-component system of claim 9, wherein the curing agent comprises a peroxide.
11. 10. A multi-component system according to claim 9, characterized in that it is a two-component system.
12. Use of a multi-component system comprising a reactive resin component (A) according to any one of claims 1 to 4 for chemical fastening or structural bonding of anchoring means in boreholes.
13. Use of the multi-component system described in claim 9 for chemical fastening or structural bonding of anchoring means in boreholes.
Citation Information
Patent Citations
Intelligent mobile phone data cable sheath and preparation method thereof
CN108440970A
JP1973012439B1
Polymer powder composition redispersible in water, manufacturing method thereof, and use of this composition
JP2005036235A
Two-component mortar mass and its use
JP2017524784A
Redispersion powders comprising pozzolanic components
US20050014881A1