Non-primary hydroxyl-based foams
By reacting polyols with up to 20% primary hydroxyl groups and a chain extender, the process addresses the low reactivity issue of secondary hydroxyl groups, resulting in foamed pellets with enhanced mechanical properties for molded articles.
Patent Information
- Application Number
- JP2022552186
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-02-28
- Filing Date
- 2021-02-26
- Publication Date
- 2025-09-17
- Estimated Expiration
- 2041-02-26
AI Technical Summary
Existing methods for producing foamed pellets based on thermoplastic polyurethanes using polyols with secondary hydroxyl groups result in polymers with insufficient mechanical properties due to low reactivity, making it difficult to achieve high molecular weights and suitable mechanical properties for applications like footwear.
A process involving the reaction of a polyol composition containing up to 20% primary hydroxyl groups with a polyisocyanate to form a prepolymer, followed by reacting this prepolymer with a chain extender of less than 500 g/mol, which allows for the production of foamed pellets with improved mechanical properties.
The process enables the production of foamed pellets with satisfactory mechanical properties, allowing for easy processing into molded articles suitable for various applications, particularly in the footwear sector.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to foamed pellets comprising a thermoplastic polyurethane, which can be obtained or are obtainable by a process comprising the steps of reacting a polyol composition (PZ-1) comprising at least one hydroxy-functionalized polyol (P1) having up to 20% primary hydroxyl groups with a polyisocyanate (I1) to obtain a polyol composition (PZ-2) containing a prepolymer (PP-1), and reacting the polyol composition (PZ-2) containing the prepolymer (PP-1) with a composition (C2) comprising a chain extender (CE) having a molecular weight of less than 500 g / mol. Furthermore, the present invention relates to foamed pellets obtained or obtainable by the process according to the invention, and to the use of the foamed pellets according to the invention for the production of molded bodies. [Background technology]
[0002] Foamed pellets, also called bead foams (or particle foams), based on thermoplastic polyurethanes or other elastomers, and the moldings produced therefrom are known (e.g. WO 94 / 20568 A1, WO 2007 / 082838 A1, WO2017030835 A1, WO 2013 / 153190 A1, WO2010 / 010010 A1) and have a wide variety of possible applications.
[0003] In the sense of the present invention, "expanded pellets", otherwise "bead foam" or "particle foam", refers to foam in the form of beads, the beads having an average diameter of 0.2 to 20 mm, preferably 0.5 to 15 mm, in particular 1 to 12 mm. In the case of non-spherical, e.g. elongated or cylindrical, beads, the diameter refers to the longest dimension.
[0004] In principle, what is needed is an expanded pellet or bead foam that is readily available and has sufficient mechanical properties and processability to give corresponding moldings at minimal temperatures while maintaining advantageous mechanical properties.
[0005] In principle, it is necessary to use a polymer that can be prepared from a cost-effective polyol. Although polyols with secondary hydroxyl groups are suitable for preparing polyurethanes, the low reactivity of the secondary hydroxyl groups results in products with low molecular weights and insufficient properties for the preparation of expanded beads. Therefore, polyurethanes for the preparation of expanded beads starting from polyols with secondary hydroxyl groups cannot be prepared using established procedures for polyurethane preparation.
[0006] The state of the art reports different approaches to preparing polyurethanes from polyols with secondary hydroxyl groups. The resulting polymers often have insufficient mechanical properties for the preparation of foamed particles.
[0007] The use of polypropylene glycol as a starting material in the production of thermoplastic polyurethanes is disclosed, for example, in WO 02 / 064656A2. Thermoplastic polyurethanes are produced in a one-shot process using polyols with a high proportion of secondary hydroxyl groups. WO 93 / 24549 A1 and US 2006 / 0258831 A1 also disclose one-shot processes for producing thermoplastic polyurethanes using polyols with secondary OH groups. The preparation of expanded particles is not disclosed.
[0008] EP 1746117 A1 discloses a method for preparing isocyanate-containing prepolymers with a low content of monomeric isocyanates by reacting a diisocyanate with at least one compound having more than two hydrogen atoms that react with isocyanate groups, optionally followed by removal of unreacted monomeric diisocyanates. A one-shot process using the prepolymer is disclosed. The preparation of expanded particles is not disclosed.
[0009] In the context of the present invention, "advantageous mechanical properties" should be interpreted with respect to the intended application, the most prominent application of the subject matter of the present invention being in the footwear sector, where the foam pellets can be used for moldings.
[0010] Due to their low cost and easy availability, polyols with secondary hydroxyl groups, such as propylene oxide-based polyether polyols or polyester polyols, are attractive raw materials for the production of thermoplastic polyurethanes. Polypropylene glycol, in particular, is an attractive starting material for polyurethanes. Polyols with secondary hydroxyl groups are not widely used in the production of thermoplastic polyurethanes due to their low reactivity. The low reactivity of secondary hydroxyl groups makes it difficult to obtain high molecular weight polymers. To circumvent these issues, additives such as crosslinkers are used in the formation of TPUs, but this can result in problems during the process of preparing foamed particles from each TPU. [Prior art documents] [Patent documents]
[0011] [Patent Document 1] WO 94 / 20568 A1 [Patent Document 2] WO 2007 / 082838 A1 [Patent Document 3] WO2017030835 A1 [Patent Document 4] WO 2013 / 153190 A1 [Patent Document 5] WO2010 / 010010 A1 [Patent Document 6] WO 02 / 064656A2 [Patent Document 7] WO 93 / 24549 A1 [Patent Document 8] US 2006 / 0258831 A1 [Patent Document 9] EP 1746117 A1 Summary of the Invention [Problem to be solved by the invention]
[0012] It was therefore an object of the present invention to provide foamed pellets containing thermoplastic polyurethanes based on a low polyol content having a maximum of 20% primary hydroxyl groups, which have good mechanical properties. Another object of the present invention was to provide a method for producing the corresponding foamed pellets. [Means for solving the problem]
[0013] According to the present invention, this object is achieved by steps (i) and (ii): (i) reacting a polyol composition (PZ-1) comprising at least one hydroxy-functionalized polyol (P1) having up to 20% primary hydroxyl groups with a polyisocyanate (I1) to obtain a polyol composition (PZ-2) containing a prepolymer (PP-1); (ii) reacting a polyol composition (PZ-2) containing a prepolymer (PP-1) with a composition (C2) containing a chain extender (CE) having a molecular weight of less than 500 g / mol; This is achieved by foamed pellets comprising a thermoplastic polyurethane obtainable or obtained by a process comprising: DETAILED DESCRIPTION OF THE INVENTION
[0014] Surprisingly, it has been found that the foamed pellets according to the present invention, which can be produced using non-primary hydroxyl group-functionalized polyols with a high proportion of secondary terminal OH groups, such as polypropylene glycol, have satisfactory mechanical properties. Surprisingly, the use of additives such as crosslinking agents in such foaming processes is not problematic.
[0015] According to the present invention, it has been found to be advantageous to carry out the process for preparing thermoplastic polyurethanes continuously, for example, to continuously produce a prepolymer which is subsequently further reacted, with a conversion rate of up to 100%, i.e., for example, 90% of the prepolymer preparation is sufficient to achieve the desired mechanical properties of the thermoplastic polyurethanes produced according to the present invention. This makes it possible, according to the present invention, to avoid the uneconomical conversion rate of 100% of the prepolymer for the in-situ TPU process.
[0016] Additionally, eTPU can be obtained directly by reacting a prepolymer with additional TPU components to produce eTPU in a reactive extruder or tandem extrusion.
[0017] The foamed pellets according to the invention comprise a thermoplastic polyurethane obtainable or obtainable by a process comprising at least steps (i) and (ii), which makes it possible to use polyols having up to 20% primary hydroxyl groups for the preparation of the thermoplastic polyurethane, and to carry out the process in a targeted manner so as to obtain foamed pellets having good mechanical properties.
[0018] Surprisingly, it has been found that thermoplastic polyurethanes of this type can be easily processed to give foamed pellets, which can in turn be easily processed to give molded articles having elastic and mechanical properties sufficient for many applications.
[0019] In step (i), a polyol composition (PZ-1) containing at least one hydroxy-functionalized polyol (P1) having up to 20% primary hydroxyl groups is reacted with a polyisocyanate (I1) to obtain a polyol composition (PZ-2) containing a prepolymer (PP-1). The polyol composition (PZ-1) used contains a polyol (P1), and the proportion of secondary terminal OH groups in the total number of terminal OH groups of the polyol is preferably in the range of 80 to 100%.
[0020] Next, in step (ii), the polyol composition (PZ-2) containing the prepolymer (PP-1) obtained in this reaction is reacted with a composition (C2) containing a chain extender (CE) having a molecular weight of less than 500 g / mol.
[0021] Unless otherwise stated, the average molecular weight Mn of the polyols used is determined in the context of the present invention via the OH number in accordance with DIN 53240-1-2013-06.
[0022] The polyol (P1) is a hydroxy-functionalized polyol having a maximum of 20% primary hydroxyl groups. Preferably, the proportion of secondary terminal OH groups in the total number of terminal OH groups of the polyol is preferably in the range of 80 to 100%, more preferably the polyol (P1) contains more than 94% non-primary hydroxyl groups, in particular more than 98% non-primary hydroxyl groups, preferably more than 99% non-primary hydroxyl groups.
[0023] According to a further embodiment, the present invention also relates to expanded pellets as disclosed above, wherein the polyol (P1) contains more than 94% of non-primary hydroxyl groups.
[0024] Suitable polyols containing non-primary hydroxyl groups are known in principle. Suitable ones are, for example, polyether polyols, such as polymers with propylene oxide blocks, propylene oxide-capped polymers, polyethylene / polypropylene oxide copolymers, butylene oxide polymers, butylene oxide-capped polymers. Suitable polyols can also be polyester polyols, such as poly(2-ethyl-1,3-hexamethylene adipate) glycol.
[0025] Suitable polyols are selected from, for example, polypropylene glycol. Mixtures containing polypropylene glycol can also be used in the context of the present invention.
[0026] According to a further embodiment, the present invention also relates to the expanded pellets as disclosed above, wherein the polyol (P1) is polypropylene glycol.
[0027] Suitable polypropylene glycols for the preparation of the thermoplastic polyurethanes according to the invention are known in principle. For example, according to the invention, polypropylene glycols having a number average molecular weight Mn in the range of 500 g / mol to 2500 g / mol, in particular in the range of 850 g / mol to 2200 g / mol, more preferably in the range of 950 g / mol to 2100 g / mol, particularly preferably in the range of 1000 g / mol to 2000 g / mol, more preferably in the range of 1200 g / mol to 1750 g / mol, for example a molecular weight Mn of 1400 g / mol, are suitable.
[0028] In particular, polypropylene glycols with higher molecular weights, for example with an average molecular weight Mn of more than 2000 g / mol, have been shown to result in poor mechanical properties for the resulting thermoplastic polyurethanes. The use of mixtures of different polypropylene glycols also leads to poorer mechanical properties.
[0029] The polyols used preferably have a polydispersity Pd of less than 2, more preferably in the range of 1.0 to 1.4.
[0030] According to a further embodiment, the present invention also relates to expanded pellets as disclosed above, wherein the number average molar mass (M n ) is in the range of 500 to 2500 g / mol.
[0031] In the context of the present invention, the composition of each of the polyol compositions (PZ-1) and (PZ-2) can vary within wide limits, and the polyol compositions can also comprise mixtures of different polyols.
[0032] Suitable further polyols are, for example, polytetramethylene oxide, polytrimethylene oxide, polyethylene glycol, or polyester polyols and polycarbonate diols.
[0033] According to the invention, the polyol composition may also comprise a solvent. Suitable solvents are known per se to those skilled in the art.
[0034] According to the present invention, the majority of the secondary terminal OH groups of polyol (P1) are reacted, for example at least 50% of the secondary terminal OH groups of polyol (P1), more preferably at least 70% of the secondary terminal OH groups of polyol (P1), in particular at least 80% of the secondary terminal OH groups of polyol (P1), in particular at least 90% or at least 95%, especially at least 99% of the secondary terminal OH groups of polyol (P1).
[0035] According to the invention, the reaction in step (i) is carried out so that the secondary terminal OH groups of the polyol (P1) are reacted.
[0036] For this purpose, for example, not only the temperature and reaction time but also the mixing quality are optimized. For example, the reaction can be carried out under adiabatic conditions for 30 minutes. The reaction time in the context of the present invention is more preferably sufficient for the completion of prepolymer formation. The reaction is preferably carried out at a temperature T below 200 ° C, preferably below 180 ° C, particularly below 150 ° C.
[0037] In the reaction in step (i), the polyol composition (PZ-1) is reacted with the polyisocyanate (I1). The polyol composition (PZ-1) may contain other components in addition to the polyol (P1). In the context of the present invention, the proportion of the polyol (P1) in the polyol composition (PZ-1) is greater than 75%, more preferably greater than 90%, and particularly preferably greater than 95%. For example, the proportion of the polyol (P1) in the polyol composition (PZ-1) is in each case in the range of 95% to 99%, based on the entire polyol composition (PZ-1).
[0038] Suitable polyisocyanates are known per se to those skilled in the art. According to the present invention, at least one polyisocyanate (I1) is used. In the context of the present invention, the term polyisocyanate also includes diisocyanates. According to the present invention, a mixture of two or more polyisocyanates can also be used as the isocyanate composition (IC) containing polyisocyanate (I1).
[0039] Suitable isocyanates in the context of the present invention are especially diisocyanates, especially aliphatic or aromatic diisocyanates, more preferably aromatic diisocyanates.
[0040] Furthermore, in the context of the present invention, a pre-reacted product may be used as the isocyanate component, in which case some of the OH components are reacted with isocyanate in a preceding reaction step, and the resulting product is reacted with the remaining OH components in a subsequent step, the actual polymer reaction, to form a thermoplastic polyurethane.
[0041] The aliphatic diisocyanates used are the usual aliphatic and / or cycloaliphatic diisocyanates, such as tri-, tetra-, penta-, hexa-, hepta- and / or octamethylene diisocyanate, 2-methylpentamethylene 1,5-diisocyanate, 2-ethyltetramethylene 1,4-diisocyanate, butylene 1,4-diisocyanate, trimethylhexamethylene 1,6-diisocyanate, 1-isocyanato-3,3,5-trimethyl-5- These include isocyanatomethylcyclohexane (isophorone diisocyanate, IPDI), 1,4- and / or 1,3-bis(isocyanatomethyl)cyclohexane (HXDI), cyclohexane 1,4-diisocyanate, 1-methylcyclohexane 2,4-diisocyanate and / or 1-methylcyclohexane 2,6-diisocyanate, methylenedicyclohexyl 4,4'-, 2,4'- and / or 2,2'-diisocyanate (H12MDI).
[0042] Suitable aromatic diisocyanates are in particular naphthylene 1,5-diisocyanate (NDI), tolylene 2,4- and / or 2,6-diisocyanate (TDI), 3,3′-dimethyl-4,4′-diisocyanatobiphenyl (TODI), p-phenylene diisocyanate (PDI), diphenylethane 4,4′-diisocyanate (EDI), methylene diphenyl diisocyanate (MDI) (wherein the term MDI is understood to mean diphenylmethane 2,2′-, 2,4′- and / or 4,4′-diisocyanate), dimethyl diphenyl 3,3′-diisocyanate, diphenylethane 1,2-diisocyanate and / or phenylene diisocyanate.
[0043] In principle, mixtures can also be used. An example of a mixture is a mixture containing at least one methylene diphenyl diisocyanate in addition to methylene diphenyl 4,4'-diisocyanate. Here, the term "methylene diphenyl diisocyanate" means diphenylmethane 2,2'-, 2,4'-, and / or 4,4'-diisocyanate, or a mixture of two or three isomers. Thus, for example, diphenylmethane 2,2'- or 2,4'-diisocyanate, or a mixture of two or three isomers, can be used as the additional isocyanate. In this embodiment, the polyisocyanate composition can also contain other of the above-mentioned polyisocyanates.
[0044] If further isocyanates are used, these are preferably present in the isocyanate composition (IC) in an amount in the range of 0.1% to 50% by weight, more preferably in the range of 0.1% to 20% by weight, even more preferably in the range of 0.1% to 10% by weight, and particularly preferably in an amount in the range of 0.5% to 5% by weight.
[0045] Preferred examples of isocyanates of higher functionality include triisocyanates, such as triphenylmethane 4,4',4''-triisocyanate, and also the cyanurates of the aforementioned diisocyanates, and oligomers obtainable by partially reacting diisocyanates with water, such as the biurets of the aforementioned diisocyanates, and also oligomers obtainable by controlled reaction of semi-blocked diisocyanates with polyols having an average of more than two, preferably three or more, hydroxyl groups.
[0046] The organic isocyanates which can be used are aliphatic, cycloaliphatic, araliphatic and / or aromatic isocyanates.
[0047] Additionally, crosslinkers, such as the previously mentioned higher-functionality polyisocyanates or polyols, or other higher-functional molecules with multiple isocyanate-reactive functional groups, can also be used. In the context of the present invention, it is also possible to achieve crosslinking of the product by using an excess of isocyanate groups in proportion to the hydroxyl groups. Examples of higher-functionality isocyanates include triisocyanates, such as triphenylmethane 4,4',4''-triisocyanate and isocyanurate, and also cyanurates of the aforementioned diisocyanates, and oligomers obtainable by partially reacting diisocyanates with water, such as biurets of the aforementioned diisocyanates, and also oligomers obtainable by the controlled reaction of semi-blocked diisocyanates with polyols having an average of more than two, preferably three or more, hydroxyl groups.
[0048] Here, in the context of the present invention, the amount of crosslinking agent, i.e. higher functionality isocyanate and higher functionality polyol or higher functionality chain extender, is not more than 3% by weight, preferably less than 1% by weight, more preferably less than 0.5% by weight, based on the total mixture of components.
[0049] The polyisocyanate composition may contain one or more solvents. Suitable solvents are known to those skilled in the art. Suitable examples are non-reactive solvents such as ethyl acetate, methyl ethyl ketone, and hydrocarbons.
[0050] The reaction in step (i) can be carried out in any suitable apparatus known to those skilled in the art, as long as it is ensured that the reaction conditions can be set so that the secondary terminal OH groups of the polyol (P1) are reacted.
[0051] According to the present invention, the reaction in step (i) is carried out, for example, at a temperature in the range of 60 to 300°C for a period of 5 hours or less to obtain polyol composition (PZ-2). According to the present invention, the reaction in step (i) is carried out for a period of preferably 1 to 180 minutes, more preferably 1 to 30 minutes, and particularly preferably 1 to 20 minutes.
[0052] According to the present invention, the temperature is preferably in the range of 60 to 300°C, preferably in the range of 80 to 220°C, particularly preferably in the range of 80 to 180°C.
[0053] The reaction in step (i) is preferably carried out continuously.
[0054] According to the present invention, the reaction can be carried out in any suitable apparatus, and suitable processes are known per se to those skilled in the art. For example, a static mixer, a reaction extruder, or a stirred tank is suitable for the reaction in step (i). Therefore, in another embodiment, the present invention also relates to a thermoplastic polyurethane as described above, wherein the reaction in step (i) is carried out in a static mixer, a reaction extruder, or a stirred tank (Continuous Stirred Tank Reactor, CSTR), or a combination thereof.
[0055] For example, an in-vessel stirrer or mixing head or high speed tube mixer, nozzle or static mixer can be used. The reaction can also be carried out in an extruder or part of a multi-screw extruder.
[0056] The components are mixed, for example, in a mixing unit, especially a mixing unit operating with high shear energy. Examples include a mixing head, a static mixer, a nozzle or a multi-screw extruder.
[0057] The temperature of the extruder housing is advantageously selected so that the reaction components are brought to a complete conversion and the possible incorporation of further auxiliaries or further components can be carried out with maximum protection of the product.
[0058] For example, the reaction in step (i) can be carried out in a static mixer or a reactive mixer / extruder, and the reaction in step (ii) can be carried out in an extruder or belt process.
[0059] For example, the reaction according to step (i), the reaction according to step (ii), or the reactions according to steps (i) and (ii) can be carried out in an extruder.
[0060] According to a preferred embodiment of the present invention, the conversion according to step (i) is carried out in a static mixer and the conversion according to step (ii) is carried out in a belt process.
[0061] According to the present invention, in the reaction according to step (i), a polyol composition (PZ-2) containing a prepolymer (PP-1) is obtained. According to the present invention, the polyol composition (PZ-2) is a mixture. According to the present invention, this mixture may contain unreacted starting materials, such as unreacted polyisocyanate (I1) or unreacted polyol composition (PZ-1). According to the present invention, the reaction product is in the form of a mixture, and the individual molecules may differ, for example, in block distribution and length.
[0062] According to the present invention, according to step (ii), the polyol composition (PZ-2) is further reacted. The polyol composition (PZ-2) can be reacted directly or a further polyol can be added.
[0063] Other polyols are known in principle to those skilled in the art and are described, for example, in "Plastics Handbook, Volume 7, Polyurethanes", Carl Hanser Verlag, 3rd Edition 1993, Chapter 3.1.
[0064] According to step (ii), a polyol composition (PZ-2) containing a prepolymer (PP-1) is reacted with a composition (C2) comprising a chain extender (CE) having a molecular weight of less than 500 g / mol.
[0065] Suitable chain extenders are known per se to those skilled in the art. For example, the chain extender is a compound having two groups reactive with isocyanate groups. Suitable chain extenders are, for example, diamines or diols. According to the present invention, diols are more preferred. Within the scope of the present invention, mixtures of two or more chain extenders can also be used.
[0066] Suitable diols are known in principle to those skilled in the art. According to the present invention, the diol has a molecular weight of less than 500 g / mol. According to the present invention, aliphatic, araliphatic, aromatic, and / or cycloaliphatic diols having a molecular weight of, for example, 50 g / mol to 220 g / mol can be used as chain extenders. Alkanediols having 2 to 10 carbon atoms in the alkylene radical are preferred, in particular di-, tri-, tetra-, penta-, hexa-, hepta-, octa-, nona-, and / or deca-alkylene glycols. 1,2-ethylene glycol, propane-1,3-diol, butane-1,4-diol, and hexane-1,6-diol are particularly preferred according to the present invention.
[0067] Suitable chain extenders (CE) in the context of the present invention also include branched compounds such as 1,4-cyclohexanedimethanol, 2-butyl-2-ethylpropanediol, neopentyl glycol, 2,2,4-trimethylpentane-1,3-diol, pinacol, 2-ethylhexane-1,3-diol or cyclohexane-1,4-diol.
[0068] According to a further embodiment, the present invention also relates to the foamed pellets as disclosed above, wherein the chain extender is selected from the group consisting of ethylene glycol, 1,3-propanediol, 1,4-butanediol, and 1,6-hexanediol.
[0069] In the context of the present invention, the components used in the process for preparing thermoplastic polyurethanes can vary within wide limits. It has been found to be advantageous to react the components with an index in the range of 950 to 1030, preferably in the range of 980 to 1020, and in particular in the range of 990 to 1010.
[0070] According to a further embodiment, the present invention also relates to expanded pellets as disclosed above, wherein in step (ii) the components are reacted with an index in the range of 950-1030.
[0071] Suitable further reactants and reaction conditions are disclosed, for example, in EP 0571 831, DE 1 962 5987 A1, EP 1 031 588 B1, EP 1 213 307 B1 and EP 1 338 614 B1.
[0072] According to the present invention, the foamed pellets comprise thermoplastic polyurethane. The foamed pellets may comprise further components, such as additives or fillers. Suitable additives are generally known to those skilled in the art. Suitable additives include, for example, processing aids, stabilizers, compatibilizers or pigments.
[0073] According to the present invention, the foamed pellets may contain an additional polymer. According to the present invention, the foamed pellets may contain one or more additional polymers. For example, it is possible to use a blend comprising a thermoplastic and one or more additional polymers. Suitable polymers are in particular thermoplastic polymers, such as thermoplastic resins selected from the group consisting of polystyrene, high-impact polystyrene, polyethylene, polypropylene, and polyethylene terephthalate, and thermoplastic elastomers in general. The foamed pellets according to the present invention may contain a mixture of polymers in the form of a blend.
[0074] According to a further embodiment, the present invention also relates to the foamed pellets as disclosed above, wherein the foamed pellets further comprise a thermoplastic resin selected from the group consisting of polystyrene, high impact polystyrene, polyethylene, polypropylene, polyethylene terephthalate, and general thermoplastic elastomers or mixtures thereof.
[0075] According to a further aspect, the present invention provides a method for producing a medicament for the preparation of ... (i) reacting a polyol composition (PZ-1) comprising at least one hydroxy-functionalized polyol (P1) having up to 20% primary hydroxyl groups with a polyisocyanate (I1) to obtain a polyol composition (PZ-2) containing a prepolymer (PP-1); (ii) reacting a polyol composition (PZ-2) containing a prepolymer (PP-1) with a composition (C2) containing a chain extender (CE) having a molecular weight of less than 500 g / mol; The present invention also relates to a method for producing foamed pellets, comprising:
[0076] In a further aspect, the present invention also relates to a method for producing foamed pellets, comprising the steps of: (A) providing a composition (C1) comprising a thermoplastic polyurethane, the thermoplastic polyurethane being prepared by steps (i) and (ii): (i) reacting a polyol composition (PZ-1) comprising at least one hydroxy-functionalized polyol (P1) having up to 20% primary hydroxyl groups with a polyisocyanate (I1) to obtain a polyol composition (PZ-2) containing a prepolymer (PP-1); (ii) reacting a polyol composition (PZ-2) containing a prepolymer (PP-1) with a composition (C2) containing a chain extender (CE) having a molecular weight of less than 500 g / mol; and (B) impregnating the composition (C1) with a blowing agent under pressure; (C) expanding the composition (C1) by reducing the pressure; The present invention relates to a method for producing foamed pellets, comprising:
[0077] In the context of the present invention, composition (C1) can be used here in the form of a melt or in the form of pellets.
[0078] With regard to preferred embodiments of the process, suitable raw materials or mixing ratios, reference is made to the corresponding above descriptions.
[0079] The method of the present invention may include further steps, such as temperature adjustment.
[0080] According to a further aspect, the present invention also relates to expanded pellets obtained or obtainable by the method disclosed above.
[0081] The unexpanded polymer mixture of composition (C1) required for the production of the expanded pellets is prepared from the individual components and optionally also further components, such as processing aids, stabilizers, compatibilizers or pigments, in a known manner. Examples of suitable processes are conventional mixing processes with the aid of kneaders in continuous or batchwise mode, or with the aid of extruders, for example co-rotating twin-screw extruders.
[0082] In the case of compatibilizers or auxiliary agents, such as stabilizers, they may already be incorporated into the components during their production. The individual components are usually combined before the mixing step or before being metered into the device where the mixing takes place. In the case of an extruder, the components are all metered into the intake and transported together into the extruder, or the individual components are added via a side feed.
[0083] Processing is carried out at a temperature at which the components exist in a plasticized state. The temperature depends on the softening or melting range of the components, but must be below the decomposition temperature of each component. Additives, such as pigments or fillers, or other of the usual auxiliaries mentioned above, are also not melted, but rather incorporated in the solid state.
[0084] Further embodiments are possible here using well-established methods, where the processes used to prepare the starting materials can be directly integrated into the production.
[0085] For example, in the case of a belt process, it is possible to introduce the styrene polymer, the impact modifier, and the filler or colorant directly at the end of the belt where the material is fed into the extruder to obtain lenticular granules.
[0086] In this step, some of the usual auxiliaries mentioned above can be added to the mixture.
[0087] The expanded pellets of the present invention generally have a bulk density of 50 g / l to 250 g / l, preferably 60 g / l to 180 g / l, particularly preferably 80 g / l to 150 g / l. The bulk density is measured in accordance with DIN ISO 697 (January 1984). In contrast to this standard, however, the measurement of the above values involves using a container with a volume of 10 l instead of a container with a volume of 0.5 l, since measurements using only a volume of 0.5 l are too inaccurate, especially for expanded beads with low density and high mass.
[0088] As mentioned above, the diameter of the foamed pellets is 0.2 to 20 mm, preferably 0.5 to 15 mm, in particular 1 to 12 mm. For non-spherical, e.g. elongated or cylindrical, foamed pellets, the diameter refers to the longest dimension.
[0089] The foam pellets are (α) providing a composition (C) of the present invention; (β) impregnating the composition with a blowing agent under pressure; (γ) Expansion of the composition due to a decrease in pressure can be prepared by well-established methods known in the prior art.
[0090] The amount of the blowing agent is preferably 0.1 to 80 parts by mass, particularly 0.5 to 35 parts by mass, and particularly preferably 1 to 30 parts by mass, based on 100 parts by mass of the composition (C) used.
[0091] One embodiment of the above process comprises: (α') providing the composition (C) of the present invention in the form of pellets; (β') impregnating the pellets with a blowing agent under pressure; (γ') Expanding the pellet due to pressure reduction Includes:
[0092] A further embodiment of the above process comprises the additional step: (α') providing the composition (C) of the present invention in the form of pellets; (β') impregnating the pellets with a blowing agent under pressure; (γ'-a) optionally reducing the pressure to standard pressure without foaming the pellets by prior reduction of the temperature; (γ'-b) Expanding the pellets by increasing the temperature Includes:
[0093] Here, the unexpanded pellets preferably have an average minimum diameter (determined via 3D evaluation of the pellets, e.g., via dynamic image analysis using a PartAn 3D optical measuring device from Microtrac) of 0.2 to 10 mm.
[0094] The individual pellets generally have an average mass in the range of 0.1 to 50 mg, preferably in the range of 2 to 48 mg, particularly preferably in the range of 4 to 45 mg, and more preferably in the range of 4 to 40 mg. The average mass of the pellets (particle mass) is determined as the arithmetic mean by three weighing operations of in each case 10 pellet particles.
[0095] One embodiment of the above process comprises impregnating the pellets with a blowing agent under pressure, and then performing steps (I) and (II): (I) Impregnating the pellets in a suitable closed reaction vessel (e.g., an autoclave) at elevated temperature under pressure in the presence of a blowing agent. (II) Rapid depressurization without cooling The method includes expanding the pellets with
[0096] The impregnation in step (I) can here be carried out in the presence of water and optionally a suspending aid, or only in the presence of a blowing agent and in the absence of water.
[0097] Suitable suspending aids are, for example, water-insoluble inorganic stabilizers such as tricalcium phosphate, magnesium pyrophosphate, metal carbonates, and also polyvinyl alcohol and surfactants such as sodium dodecylarylsulfonate, which are usually used in amounts of 0.05 to 10% by weight based on the composition of the present invention.
[0098] Depending on the selected pressure, the impregnation temperature is in the range of 100°C to 200°C, the pressure in the reaction vessel is in the range of 0.2 to 15.0 MPa, preferably 0.5 to 10.0 MPa, particularly preferably 2.0 to 6.0 MPa, and the impregnation time is generally 0.5 to 10 hours.
[0099] Carrying out processes in suspension is known to those skilled in the art and is extensively described, for example, in WO2007 / 082838.
[0100] When the process is carried out in the absence of water, care must be taken to avoid agglomeration of the polymer pellets.
[0101] Suitable blowing agents for carrying out the process in a suitable closed reaction vessel are, for example, organic liquids and gases that are in the gaseous state under the treatment conditions, such as hydrocarbons or inorganic gases, or mixtures of organic liquids or gases with inorganic gases, which may also be combined.
[0102] Examples of suitable hydrocarbons include halogenated or non-halogenated, saturated or unsaturated aliphatic hydrocarbons, preferably non-halogenated, saturated or unsaturated aliphatic hydrocarbons.
[0103] Preferred organic blowing agents are saturated aliphatic hydrocarbons, especially those having 3 to 8 carbon atoms, such as butane or pentane.
[0104] Suitable inorganic gases are nitrogen, air, ammonia or carbon dioxide, preferably nitrogen or carbon dioxide, or a mixture of the above gases.
[0105] In a further embodiment, the impregnation of the pellets with the blowing agent under pressure comprises steps (α) and (β): (α * ) impregnating the pellets in an extruder at elevated temperature under pressure in the presence of a blowing agent. (β * ) pelletizing the composition exiting the extruder under conditions that prevent uncontrolled foaming. This involves the treatment of the pellets in the oven and their subsequent expansion.
[0106] Suitable blowing agents for this process version are volatile organic compounds having a boiling point at standard pressure, 1013 mbar, of -25°C to 150°C, in particular -10°C to 125°C. Highly suitable are hydrocarbons (preferably halogen-free), in particular C4-10-alkanes, such as butane, pentane, hexane, heptane and the isomers of octane, particularly preferably isobutane. Further possible blowing agents are also sterically demanding compounds, such as alcohols, ketones, esters, ethers and organic carbonates. Furthermore, nitrogen or carbon dioxide, or mixtures containing nitrogen and carbon dioxide, can also be used as blowing agents.
[0107] In this case, the composition is mixed with a blowing agent supplied to the extruder under pressure in step (ii) while melted. The mixture containing the blowing agent is extruded under pressure, preferably using a back pressure controlled to a moderate level, and granulated (one example is underwater granulation). The molten strands are expanded in this process, and then pelletized to obtain expanded pellets.
[0108] Carrying out the process via extrusion is known to those skilled in the art and is also extensively described, for example, in WO 2007 / 082838 and WO 2013 / 153190 A1.
[0109] Extruders that can be used include any conventional screw-based machine, in particular single-screw and twin-screw extruders (e.g., type ZSK from Coperion GmbH or type ZE from KraussMaffei), such as co-kneaders, Kombiplast machines, MPC kneading mixers, FCM mixers, KEX kneading screw extruders, and shear roll extruders, as described in Saechtling (ed.), Kunststoff-Taschenbuch [Plastics Handbook], 27th edition, Hanser-Verlag, Munich, 1998, chapters 3.2.1 and 3.2.4. To ensure homogenization of the blowing agent and the melt, the extruder is usually operated at a temperature at which composition (C1) is present as a melt, for example, 120 to 250°C, in particular 150 to 210°C, and at a pressure of 40 to 200 bar, preferably 60 to 150 bar, particularly preferably 80 to 120 bar, after the addition of the blowing agent.
[0110] Here, the process can be carried out in an extruder or in an arrangement consisting of one or more extruders. Thus, for example, in a first extruder, the components can be melted and mixed and the blowing agent can be injected. In a second extruder, the impregnated melt can be homogenized and the temperature and / or pressure adjusted. For example, if three extruders are combined, the mixing of the components and the injection of the blowing agent can be divided into two different process sections. Preferably, if only one extruder is used, all process steps (melting, mixing, injection of the blowing agent, homogenization, and temperature and / or pressure adjustment) are performed in one extruder.
[0111] Alternatively, the corresponding expanded pellets (optionally already colored) can be prepared according to the method described in WO 2014 / 150122 or WO 2014 / 150124 A1 by saturating the corresponding pellets with a supercritical liquid, removing them from the supercritical liquid, and then (i') Immersing the article in a heated fluid; or (ii') Irradiating the article with high-energy radiation (e.g., infrared radiation or microwave radiation) This allows direct production from pellets.
[0112] Examples of suitable supercritical liquids are those described in WO2014150122, or for example carbon dioxide, nitrogen dioxide, ethane, ethylene, oxygen or nitrogen, preferably carbon dioxide or nitrogen.
[0113] Here, a supercritical fluid has a Hildebrand solubility parameter of 9 MPa. -1 / 2 The above polar liquids may also be included.
[0114] Here, the supercritical liquid or heated fluid may also contain a colorant, resulting in a colored foam article.
[0115] The present invention further provides a molding produced from the foamed pellets of the present invention. According to a further aspect, the present invention also relates to the use of the foamed pellets according to the present invention for the production of moldings.
[0116] Corresponding moldings can be produced by methods known to those skilled in the art, for example by using fusion techniques or by embedding foam pellets in a coating layer or foam to produce moldings according to the invention.
[0117] A preferred process for producing a foamed molded article herein comprises the following steps: (A) introducing the foamed pellets according to the invention into a suitable mold, (B) Fusing the foamed pellets according to the present invention.
[0118] The fusing in step (B) is preferably carried out in a closed mould, where fusing can be achieved by steam, hot air (for example as described in EP 1979401 B1), or high energy radiation (microwave or radio wave).
[0119] The temperature during the fusion of the foam pellets is preferably below or close to the melting point of the polymer from which the bead foam is made. Thus, for commonly used polymers, the temperature for the fusion of the foam pellets is between 100°C and 180°C, preferably between 120°C and 150°C.
[0120] The temperature profile / residence time here can be determined analogously to the processes described in, for example, US20150337102 or EP2872309B1, respectively.
[0121] Fusion by high-energy radiation is generally carried out in the microwave or radio frequency range, optionally in the presence of water or other polar liquids, such as microwave-absorbing hydrocarbons with polar groups (examples are esters of carboxylic acids, esters of diols or triols, other examples are glycols and liquid polyethylene glycols), and can be carried out similarly to the processes described in EP 3053732A or WO 16146537.
[0122] According to a further embodiment, the present invention relates to a method of using the expanded pellets as disclosed above, wherein a shaped body is produced by fusing or bonding the beads together.
[0123] As noted above, the foam pellets may also include colorants, which can be added in a variety of ways.
[0124] In one embodiment, the produced foam pellets can be colored after production. In this case, the corresponding foam pellets are contacted with a carrier liquid containing a colorant, where the carrier liquid (CL) has a polarity suitable for achieving sorption of the carrier liquid onto the foam pellets. This can be done similarly to the method described in European Patent Application No. 17198591.4.
[0125] Suitable examples of colorants include inorganic pigments or organic pigments. Suitable examples of natural or synthetic inorganic pigments include carbon black, graphite, titanium oxide, iron oxide, zirconium oxide, cobalt oxide compounds, chromium oxide compounds, and copper oxide compounds. Suitable examples of organic pigments include azo pigments and polycyclic pigments.
[0126] In a further embodiment, the colorant can be added during the production of the foamed pellets, for example, the colorant can be added to the extruder during the production of the foamed pellets by extrusion.
[0127] Alternatively, an already pigmented material can be used as the starting material for the production of foamed pellets that are extruded or expanded in a closed container by the processes described above.
[0128] Furthermore, in the process described in WO2014150122, the supercritical liquid or heated liquid may contain a colorant.
[0129] As mentioned above, the moulded articles of the invention have advantageous properties for the above mentioned applications in the requirements of the shoe or sports shoe sector.
[0130] In this case, the tensile and compressive properties of the moldings produced from the foam pellets are adjusted in a range suitable for the intended application, for example to a suitable tensile strength of more than 200 kPa (according to DIN EN ISO 1798, April 2008), a suitable elongation at break of more than 30% (according to DIN EN ISO 1798, April 2008), a suitable compressive stress at 50% compression of less than 500 kPa (similar to DIN EN ISO 844, November 2014; deviation from the standard is that the sample height is 20 mm instead of 50 mm, and the test speed is therefore adjusted to 2 mm / min).
[0131] As mentioned above, there is a relationship between the density of the produced compacts and their compressibility. The density of the produced compacts is advantageously between 75 and 375 kg / m 3, preferably 100 to 300 kg / m 3 , particularly preferably 150 to 300 kg / m 3 (DIN EN ISO 845, October 2009).
[0132] Here, the ratio of the density of the molded product to the bulk density of the expanded pellets of the present invention is generally 1.5 to 2.5, preferably 1.8 to 2.0.
[0133] The invention further provides the use of the foamed pellets of the invention for the production of moldings for shoe midsoles, shoe insoles, shoe combisoles, bicycle saddles, bicycle tires, damping elements, cushioning, mattresses, underlays, grips, protective films, components in the automotive interior or exterior sector, balls and sports equipment or as floor coverings, in particular for sports surfaces, surfaces of athletics stadiums, sports halls, shock pads, children's play areas and walkways.
[0134] According to a further embodiment, the present invention also relates to the use of the foamed pellets as disclosed above, wherein the molded article is a shoe sole, a shoe sole component, a bicycle saddle, a cushioning material, a mattress, an underlayment, a grip, a protective film, a component in the interior and exterior of an automobile.
[0135] According to a further aspect, the present invention relates to the use of the foam pellets according to the invention in balls and sports equipment or as floor coverings and wall panels, in particular for sports surfaces, surfaces of athletic fields, sports halls, children's play areas and walkways.
[0136] In a further aspect, the present invention also relates to a hybrid material comprising a matrix made of a polymer (PM) and foamed pellets according to the invention. A material comprising foamed pellets and a matrix material is called a hybrid material in the context of the present invention. Here, the matrix material may be made of a compact material or even a foam.
[0137] Polymers (PM) suitable as matrix materials are known per se to those skilled in the art. For example, ethylene-vinyl acetate copolymers, epoxy-based binders, or polyurethanes are suitable in the context of the present invention. In this case, polyurethane foams or compact polyurethanes, such as thermoplastic polyurethanes, are suitable according to the present invention.
[0138] According to the invention, the polymer (PM) is now selected so that there is sufficient adhesion between the foam pellets and the matrix in order to obtain a mechanically stable hybrid material.
[0139] Here, the matrix may completely or partially surround the foamed pellets. According to the present invention, the hybrid material may contain further components, such as further fillers or pellets. According to the present invention, the hybrid material may also contain a mixture of different polymers (PM). The hybrid material may also contain a mixture of foamed pellets.
[0140] Foam pellets that can be used other than those according to the invention are known per se to those skilled in the art. Foam pellets made from thermoplastic polyurethanes are particularly suitable in the context of the present invention.
[0141] Therefore, in one embodiment, the present invention also relates to a hybrid material comprising a matrix made of a polymer (PM), foamed pellets according to the invention, and further foamed pellets made of a thermoplastic polyurethane.
[0142] Within the context of the present invention, the matrix consists of a polymer (PM). Examples of suitable matrix materials in the context of the present invention are elastomers such as elastomers or foams, in particular polyurethane-based foams, for example ethylene-vinyl acetate copolymers or other thermoplastic polyurethanes.
[0143] The present invention therefore also relates to a hybrid material as previously described, wherein the polymer (PM) is an elastomer.Furthermore, the present invention relates to a hybrid material as previously described, wherein the polymer (PM) is selected from the group consisting of ethylene-vinyl acetate copolymers and thermoplastic polyurethanes.
[0144] In one embodiment, the present invention also relates to a hybrid material comprising a matrix composed of ethylene-vinyl acetate copolymer and foamed pellets according to the present invention.
[0145] In a further embodiment, the present invention relates to a hybrid material comprising a matrix composed of an ethylene-vinyl acetate copolymer, foamed pellets according to the invention, and further foamed pellets composed, for example, of a thermoplastic polyurethane.
[0146] In one embodiment, the present invention relates to a hybrid material comprising a matrix composed of thermoplastic polyurethane and foamed pellets according to the present invention.
[0147] In a further embodiment, the present invention relates to a hybrid material comprising a matrix made of a thermoplastic polyurethane, foamed pellets according to the invention, and further foamed pellets, for example made of a thermoplastic polyurethane.
[0148] Suitable thermoplastic polyurethanes are known per se to those skilled in the art and are described, for example, in "Kunststoffhandbuch [Plastics Handbook], Volume 7, Polyurethane [Polyurethane]", Carl Hanser Verlag, 3rd Edition, 1993, Chapter 3.
[0149] In the context of the present invention, the polymer (PM) is preferably polyurethane. "Polyurethane" in the sense of the present invention includes all known elastic polyisocyanate polyaddition products. These include, in particular, compact polyisocyanate polyaddition products, such as viscoelastic gels or thermoplastic polyurethanes, and elastic foams based on polyisocyanate polyaddition products, such as flexible foams, semi-rigid foams, or integral foams. In the sense of the present invention, "polyurethane" is understood to mean elastic polymer blends containing polyurethane and additional polymers, and foams of these polymer blends. The matrix is preferably a cured compact polyurethane binder, elastic polyurethane foam, or viscoelastic gel.
[0150] In the context of the present invention, "polyurethane binder" is understood here to mean a mixture of prepolymers (hereinafter also referred to as isocyanate prepolymers) containing isocyanate groups to an extent of at least 50% by weight, preferably at least 80% by weight, in particular at least 95% by weight. The viscosity of the polyurethane binder according to the invention, measured at 25°C in accordance with DIN 53019-1:2008-09, is preferably in the range from 500 to 4000 mPa·s, particularly preferably from 1000 to 3000 mPa·s.
[0151] In the context of the present invention, "polyurethane foam" is understood to mean foam according to DIN 7726 (1982-05).
[0152] The density of the matrix material is preferably 1.2 to 0.01 g / cm 3 Particularly preferably, the matrix material has a density of 0.8 to 0.1 g / cm 3 , especially 0.6 to 0.3 g / cm 3 The foam may be a resilient or integral foam having a density in the range of 0.1 to 1.0 mm, or a compact material such as a cured polyurethane binder.
[0153] Foam is a particularly suitable matrix material. Hybrid materials that include a matrix material composed of polyurethane foam preferably exhibit good adhesion between the matrix material and the foam pellets.
[0154] In one embodiment, the present invention also relates to a hybrid material comprising a matrix composed of polyurethane foam and foam pellets according to the present invention.
[0155] In a further embodiment, the present invention relates to a hybrid material comprising a matrix made of polyurethane foam, foam pellets according to the invention, and further foam pellets made, for example, of thermoplastic polyurethane.
[0156] In one embodiment, the present invention relates to a hybrid material comprising a matrix composed of polyurethane integral foam and foamed pellets according to the present invention.
[0157] In a further embodiment, the present invention relates to a hybrid material comprising a matrix made of polyurethane integral foam, foam pellets according to the invention, and further foam pellets made, for example, of thermoplastic polyurethane.
[0158] The hybrid material of the present invention comprising a polymer (PM) as a matrix and the foamed pellets of the present invention can be prepared, for example, by mixing the components used to prepare the polymer (PM) and the foamed pellets, optionally with further components, and reacting them to obtain the hybrid material, wherein the reaction is preferably carried out under conditions under which the foamed pellets are essentially stable.
[0159] Suitable processes and reaction conditions for producing polymers (PM), in particular ethylene-vinyl acetate copolymers or polyurethanes, are known per se to those skilled in the art.
[0160] In a preferred embodiment, the hybrid material of the present invention is an integral foam, in particular a polyurethane-based integral foam. Suitable processes for producing integral foams are known per se to those skilled in the art. Integral foams are preferably produced by a one-shot process using low-pressure or high-pressure techniques in closed, advantageously temperature-controlled molds. The molds are preferably made of metal, such as aluminum or steel. These procedures are described, for example, in Piechota and Roehr's "Integralschaumstoff" (Integral Foams), Carl-Hanser-Verlag, Munich, Vienna, 1975, or in "Kunststoff-Handbuch" (Plastics Handbook), Vol. 7, "Polyurethane," 3rd Edition, 1993, Chapter 7.
[0161] When the hybrid material of the present invention contains integral foam, the amount of the reaction mixture introduced into the mold is such that the density of the resulting molded body composed of integral foam is 0.08 to 0.70 g / cm 3 , especially 0.12 to 0.60 g / cm 3 The degree of compression for producing a molded article having a compressed surface zone and cell core is in the range of 1.1 to 8.5, preferably 2.1 to 7.0.
[0162] Therefore, it is possible to produce a hybrid material having a matrix composed of a polymer (PM) and the foam pellets of the present invention contained therein, in which the foam beads are homogeneously distributed. The foam pellets of the present invention are easily used in the production method of a hybrid material because the individual beads are small, making them flowable and eliminating special processing requirements. Here, techniques for homogeneously dispersing the foam pellets, such as slowly rotating the mold, can be used.
[0163] Further auxiliaries and / or additives can optionally be added to the reaction mixture for producing the hybrid material of the present invention, such as surface-active substances, foam stabilizers, cell regulators, mold release agents, fillers, dyes, pigments, hydrolysis stabilizers, odor-absorbing substances, and fungicides and bacteriostatic substances.
[0164] Examples of usable surface-active substances are compounds that help to homogenize starting materials and are also suitable for adjusting cell structure.Examples include emulsifiers, such as castor oil sulfate or sodium salts of fatty acids, and also salts of fatty acids and amines, such as diethylamine oleate, diethanolamine stearate, diethanolamine ricinoleate, salts of sulfonic acids, such as the alkali metal or ammonium salts of dodecylbenzene or dinaphthylmethane disulfonic acid and ricinoleic acid; foam stabilizers, such as siloxane-oxyalkylene copolymers and other organopolysiloxanes, ethoxylated alkylphenols, ethoxylated fatty alcohols, paraffin oil, castor oil esters or ricinoleic acid esters, locust oil and peanut oil, and cell adjusters, such as paraffin, fatty alcohols and dimethylpolysiloxane.Oligomer acrylates with polyoxyalkylene and fluoroalkane radicals as pendant groups are also suitable for improving the emulsification, cell structure and / or stabilization of foam.
[0165] Suitable release agents include, for example, reaction products of fatty acid esters with polyisocyanates, salts of amino-containing polysiloxanes and fatty acids, salts of saturated or unsaturated (cyclo)aliphatic carboxylic acids having at least 8 carbon atoms and tertiary amines, and also, in particular, internal release agents, such as carboxylic acid esters and / or carboxylic acid amides prepared by esterifying or amidating a mixture of montanic acid and at least one aliphatic carboxylic acid having at least 10 carbon atoms with at least difunctional alkanolamines, polyols and / or polyamines having a molecular weight of 60 to 400, mixtures of organic amines, stearic acid, metal salts of organic mono- and / or dicarboxylic acids or their anhydrides, or mixtures of imino compounds, metal salts of carboxylic acids, and optionally carboxylic acids.
[0166] Fillers, especially reinforcing fillers, are understood to mean conventional organic and inorganic fillers, reinforcing agents, weighting agents, agents for improving the wear behavior of paints, coating compositions, etc., which are known per se. Specific examples include inorganic fillers, such as siliceous minerals, such as sheet silicates, such as antigorite, bentonite, serpentine, hornblende, amphibole, chrysotile, talc, etc.; metal oxides, such as kaolin, aluminum oxide, titanium oxide, zinc oxide, and iron oxide; metal salts, such as chalk, barytes, and inorganic pigments, such as cadmium sulfide, zinc sulfide, and glass. Kaolin (china clay), aluminum silicate, and coprecipitates of barium sulfate and aluminum silicate, as well as natural and synthetic fibrous minerals, such as wollastonite, metal fibers, and especially glass fibers of various lengths, which may be optionally sized, are preferably used. Examples of organic fillers that can be used include: carbon black, melamine, colophony, cyclopentadienyl resins and graft polymers, and also cellulose fibers, polyamide fibers, polyacrylonitrile fibers, polyurethane fibers, polyester fibers based on aromatic and / or aliphatic dicarboxylic acid esters, and especially carbon fibers.
[0167] The inorganic and organic fillers can be used individually or as a mixture.
[0168] The hybrid materials of the present invention, especially those having a matrix composed of cellular polyurethane, are characterized by very good adhesion between the matrix material and the foamed pellets of the present invention. As a result, the hybrid materials of the present invention preferably do not tear at the interface between the matrix material and the foamed pellets. This makes it possible to produce hybrid materials with improved mechanical properties, such as tear propagation resistance and elasticity, at a given density compared to conventional polymer materials, especially conventional polyurethane materials.
[0169] The elasticity of the hybrid material according to the invention in the form of an integral foam is preferably greater than 30%, particularly preferably greater than 50%, according to DIN 53512 (2000-04).
[0170] The hybrid material of the present invention, particularly a material based on integral foam, further exhibits low density and high resilience. Therefore, the integral foam based hybrid material of the present invention is particularly suitable as a material for shoe soles. As a result, a lightweight, comfortable sole with good durability is obtained. Such a material is particularly suitable as a midsole for sports shoes.
[0171] The hybrid material of the present invention having a cellular matrix is suitable as a cushioning material, for example for furniture, and mattresses.
[0172] Hybrid materials with a matrix composed of viscoelastic gels are characterized in particular by increased viscoelasticity and improved rebound properties, and are therefore also suitable as cushioning materials, for example as seats, in particular as saddles, such as bicycle saddles or motorcycle saddles.
[0173] Hybrid materials with a compact matrix are suitable, for example, as floor coverings, in particular as covers for playgrounds, athletic fields, sports fields and sports halls.
[0174] The properties of the hybrid materials of the present invention can vary within wide limits depending on the polymer (PM) used, and in particular by varying the size, shape and nature of the expanded pellets, or by adding further additives, for example plastic pellets, additional non-expanded pellets such as rubber pellets, etc.
[0175] The hybrid materials of the present invention have high durability and toughness, which is manifested in particular by high tensile strength and elongation at break. Furthermore, the hybrid materials of the present invention have low density.
[0176] Further embodiments of the invention can be found in the claims and the examples. It is to be understood that the features of the subject matter / method / use according to the invention described above and elucidated below can in each case be used not only in the combination specified but also in other combinations without departing from the scope of the invention. For example, combinations of preferred features with particularly preferred features, or combinations of features not further characterized with particularly preferred features, etc. are also implicitly encompassed even if such combinations are not explicitly mentioned.
[0177] The present invention is further described by the following series of embodiments and combinations of embodiments resulting from the indicated dependencies and backward references. In particular, in each instance where a range of embodiments is mentioned, it should be noted that the context of a term such as "described in any one of embodiments 1 to 4..." means that all embodiments within this range are expressly disclosed to those skilled in the art, i.e., the wording of this term would be understood by those skilled in the art to be synonymous with "described in any one of embodiments 1, 2, 3, 4...". Furthermore, it should be expressly noted that the following series of embodiments represents a suitably structured part of the description directed to general and preferred aspects of the present invention, rather than a series of claims determining the scope of protection.
[0178] 1. Steps (i) and (ii): (i) reacting a polyol composition (PZ-1) comprising at least one hydroxy-functionalized polyol (P1) having up to 20% of primary hydroxyl groups with a polyisocyanate (I1) to obtain a polyol composition (PZ-2) containing a prepolymer (PP-1); (ii) reacting a polyol composition (PZ-2) containing a prepolymer (PP-1) with a composition (C2) containing a chain extender (CE) having a molecular weight of less than 500 g / mol 1. Expanded pellets comprising a thermoplastic polyurethane obtainable or obtained by a process comprising:
[0179] 2. The expanded pellets of embodiment 1, wherein the polyol (P1) contains more than 94% non-primary hydroxyl groups.
[0180] 3. The number average molar mass (M n 3. The expanded pellets of claim 1 or 2, wherein the molecular weight of the expanded pellets is in the range of 500 to 2500 g / mol.
[0181] 4. The expanded pellets according to any one of the preceding claims, wherein the polyol (P1) is polypropylene glycol.
[0182] 5. The expanded pellets of any one of the preceding claims, wherein the chain extender is selected from the group consisting of ethylene glycol, 1,3-propanediol, 1,4-butanediol, and 1,6-hexanediol.
[0183] 6. The foamed pellets of any one of the preceding claims, wherein the foamed pellets further comprise a thermoplastic resin selected from the group consisting of polystyrene, high impact polystyrene, polyethylene, polypropylene, polyethylene terephthalate, or mixtures thereof.
[0184] 7. Use of foamed pellets according to any one of embodiments 1 to 6 for the production of molded bodies.
[0185] 8. The use according to embodiment 7, wherein the shaped body is produced by fusing or bonding beads together.
[0186] 9. The use according to any one of claims 7 to 8, wherein the shaped article is a shoe sole, a shoe sole component, a shoe midsole, a shoe insole, a shoe combi-sole, a bicycle saddle, a bicycle tire, a damping element, a cushioning material, a mattress, an underlayment, a grip, a protective film, or a component in the interior and exterior of a car.
[0187] 10. Use of the foamed pellets according to any one of embodiments 1 to 6 in balls and sports equipment, or as floor coverings and wall panels, in particular for sports surfaces, athletics surfaces, sports halls, shock pads, children's play areas and walkways.
[0188] 11. A hybrid material comprising a matrix composed of a polymer (PM) and the expanded pellets according to any one of embodiments 1 to 6.
[0189] 12. Steps (i) and (ii): (i) reacting a polyol composition (PZ-1) comprising at least one hydroxy-functionalized polyol (P1) having up to 20% of primary hydroxyl groups with a polyisocyanate (I1) to obtain a polyol composition (PZ-2) containing a prepolymer (PP-1); (ii) reacting a polyol composition (PZ-2) containing a prepolymer (PP-1) with a composition (C2) containing a chain extender (CE) having a molecular weight of less than 500 g / mol A method for producing foam pellets, comprising:
[0190] 13. The method of embodiment 12, wherein the polyol (P1) contains more than 94% non-primary hydroxyl groups.
[0191] 14. The number average molar mass (M n 14. The method of claim 12 or 13, wherein the .sigma.
[0192] 15. The method according to any one of embodiments 12 to 14, wherein the polyol (P1) is polypropylene glycol.
[0193] 16. The method of any one of embodiments 12 to 15, wherein the chain extender is selected from the group consisting of ethylene glycol, 1,3-propanediol, 1,4-butanediol, and 1,6-hexanediol.
[0194] 17. The method of any one of claims 12 to 16, wherein the foamed pellets further comprise a thermoplastic resin selected from the group consisting of polystyrene, high impact polystyrene, polyethylene, polypropylene, polyethylene terephthalate, or mixtures thereof.
[0195] 19. A hybrid material comprising a matrix composed of a polymer (PM) and expanded pellets obtainable or obtainable by the method according to embodiment 7.
[0196] 20. Expanded pellets obtained or obtainable by the method according to embodiment 12.
[0197] 21. Expanded pellets obtained or obtainable by the method according to any one of embodiments 13 to 17.
[0198] 22. Steps (i) and (ii): (i) reacting a polyol composition (PZ-1) comprising at least one hydroxy-functionalized polyol (P1) having up to 20% primary hydroxyl groups with a polyisocyanate (I1) to obtain a polyol composition (PZ-2) containing a prepolymer (PP-1); (ii) reacting a polyol composition (PZ-2) containing a prepolymer (PP-1) with a composition (C2) containing a chain extender (CE) having a molecular weight of less than 500 g / mol; 3. A foamed pellet obtained or obtainable by a method for producing foamed pellets comprising:
[0199] 23. Use of foamed pellets according to any one of embodiments 20 to 22 for the production of a molded body.
[0200] 24. The use according to embodiment 23, wherein the shaped body is produced by fusing or bonding beads together.
[0201] 25. The use according to any one of claims 23 to 24, wherein the shaped article is a shoe sole, a shoe sole component, a shoe midsole, a shoe insole, a shoe combi-sole, a bicycle saddle, a bicycle tire, a damping element, a cushioning material, a mattress, an underlayment, a grip, a protective film, or a component in the interior and exterior of a vehicle.
[0202] 26. Use of the foamed pellets according to any one of embodiments 20 to 23 in balls and sports equipment, or as floor coverings and wall panels, in particular for sports surfaces, athletics surfaces, sports halls, shock pads, children's play areas and walkways.
[0203] 27. A hybrid material comprising a matrix composed of a polymer (PM) and the expanded pellets according to any one of embodiments 20 to 23.
[0204] The following examples serve to illustrate the invention but are in no way limiting with respect to the subject matter of the invention. [Example]
[0205] Evaluation and measurement methods Melt Flow Rate (MFR) DIN EN ISO 1133:2012-03 Tensile strength DIN 53504:2009-10 Elongation at break DIN 53504:2009-10 Bulk density DIN ISO 697:1984-01 S2-body DIN53504:2009-10 2. Materials used Polyol 1 (PPG-1000): Propylene glycol with primarily secondary hydroxyl groups and a hydroxyl number of 104 mg / KOH / g Polyol 2 (PPG-EO): Poly(propylene-b-ethylene) glycol with a mixture of secondary and primary hydroxyl groups and a hydroxyl number of 63 mg / KOH / g Isocyanate: 4,4'-methylenediphenyl diisocyanate Chain extender: 1,4-butanediol Catalyst: Tin-II-isooctoate (50% in dioctyl adipate) Surfactant 1: Calcium carbonate (CaCO3) Surfactant 2: Ethoxylated (25 EO) C16C18-fatty alcohol.
[0206] 3. Example - Preparation of Prepolymer 3.1 Prepolymer (TPU-1) Prepolymers were prepared in an adiabatic continuous reactor with a residence time of approximately 10 minutes using 4,4'-methylenediphenyl diisocyanate, tin-II-isooctoate as the catalyst, and the polyetherols listed in Table 1. The components were premixed and heated to a temperature of 100-120°C before addition to the reactor. After the adiabatic continuous reactor unit, the prepolymer was cooled to a temperature of 60-90°C. Thermoplastic polyurethanes were obtained by adding the chain extender 1,4-butanediol, which had been heated to 60°C before addition, and adjusting the temperature of the reaction mixture to 110-180°C at the belt line with a residence time of an additional 5-10 minutes.
[0207] The resulting thermoplastic polyurethane was granulated and injection-molded into 2 mm bodies. The S2 bodies (according to DIN 53504:2009-10) were tested. The mechanical properties are summarized in Table 2.
[0208] The maximum temperature of the melt was 240°C.
[0209] 3.2 One-Shot (TPU-2, TPU-3, TPU-4) Thermoplastic polyurethanes were prepared in a reactor using 4,4'-methylenediphenyl diisocyanate, 1,4-butanediol as a chain extender, tin-II-isooctoate as a catalyst, and the polyetherols shown in Table 1. After reaching a reaction temperature of 110°C, the reaction mixture was added to the belt line with a residence time of 5 to 10 minutes to obtain thermoplastic polyurethanes.
[0210] The resulting thermoplastic polyurethane was tempered at 80°C for 15 hours and then granulated. 2 mm bodies were prepared from the granules by injection molding. The resulting S2 bodies (according to DIN 53504, 2009-10) were tested. The mechanical properties are summarized in Table 2.
[0211] The maximum melt temperature in the preparation process was 240°C.
[0212] [Table 1]
[0213] The mechanical properties of the obtained materials are summarized in Table 2. For TPU-2 and TPU-3, no moldings could be obtained from the materials, and it was not possible to determine the mechanical properties of these materials.
[0214] [Table 2]
[0215] 4. Expanded beads 4.1 Extrusion Process - eTPU-1, eTPU-2, eTPU-4 The expansion process for TPU-1 and TPU-4 was carried out using a Coperion twin-screw extruder (ZSK 40). The materials were dried at 70°C for a minimum of 5 hours immediately prior to extrusion. During the process, 0.1% nucleating agent (particle size 5.6 μm-D50, volume distribution) and, if necessary, different amounts of TPU compounded with 4,4-diphenylmethane diisocyanate and polymeric diphenylmethane diisocyanate with a functionality of 2.05 (additive 1) or 2.4 (additive 2) in a separate extrusion process were added. The extruder temperature range was 190°C. CO2 and N2 were injected into the melt as blowing agents to homogeneously mix all added materials with the thermoplastic polyurethane. Table 3 shows the different compositions of eTPU-1, eTPU-2, and eTPU-4.
[0216] After mixing all ingredients in an extruder, the material was first pressed by a gear pump with a temperature of 170°C, and then by a die plate heated to 140°C. The granules were cut and shaped in an underwater pelletizing system (UWP). During transportation from the UWP, the particles were expanded under predetermined conditions of water temperature and pressure. The granules were separated from the water using a centrifugal dryer before the material was dried at 50°C for 5 hours.
[0217] The process details for all examples, such as the temperature and pressure of the water used, the amount of blowing agents CO2 and N2, the mass of the particles, and the resulting bulk density, are given in Table 3.
[0218] [Table 3]
[0219] 4.2 Autoclave Process - eTPU-3 For example, TPU-1 of the present invention was used.
[0220] The experiments were carried out in a closed pressure vessel (impregnation vessel) at a filling level of 80% by volume.
[0221] 100 parts by mass of particles from TPU-1 and a predetermined amount of water as a suspension medium resulting in a phase relationship P1 were mixed by stirring to obtain a homogeneous suspension. Phase relationship P1 was defined as the volume of solid particles divided by the volume of water. 6.7% by mass of a dispersant (surfactant 1) based on the solid particles, 0.13% by mass of an auxiliary system (surfactant 2) based on the solid particles, and a certain amount of butane based on the solid particles as a blowing agent were added to the suspension, and the mixture was further heated with stirring.
[0222] At 50°C, nitrogen was added as a co-blowing agent to increase the pressure in the vessel. The liquid phase of the suspension was heated to the desired impregnation temperature (IMT). The time from 5°C below the IMT to the IMT (soak time) was controlled to be within the range of 3 to 60 minutes. This correlates to a heating rate of 1.67°C / min to 0.083°C / min.
[0223] In this procedure, a predetermined pressure in the gas phase (IMP) was created in the IMT.
[0224] After the soaking time, when the IMT was reached, the pressure was released and the entire contents of the vessel (suspension) were poured through a relaxation device into a vessel (expansion vessel) at atmospheric pressure, forming expanded beads.
[0225] During the relaxation step, the pressure in the impregnation vessel was fixed at a constant level with nitrogen (throttle pressure SP).
[0226] Furthermore, immediately after the moderator, the expanded particles can be cooled with a specific water stream having a specific temperature (water quench).
[0227] After removal of the dispersant and / or auxiliary system (surfactant) and subsequent drying, the bulk density of the resulting expanded beads was determined (according to DIN ISO 697:1984-01).
[0228] The manufacturing parameters are detailed in Table 4.
[0229] [Table 4]
[0230] 5. Steam Chest Forming & Mechanics In the next step, the expanded material was molded into square test plates with a length of 200 mm x 200 mm and thicknesses of 10 mm and 20 mm, respectively, using a steam chest molding machine (Boost Foamer K68) from Kurtzersa GmbH. The molding parameters were the same regardless of the thickness of the test plates. In addition, crack steaming was performed on the moving side of the tool. The molding parameters are shown in Table 5.
[0231] [Table 5]
[0232] The results of the mechanical tests are shown in Table 6. Part density, tensile strength, elongation at break and compressive hardness were measured according to the test methods below.
[0233] The tensile strength and elongation at break were measured using a universal testing machine equipped with a 2.5 kN force sensor (class 0.5 (ab 10 N), DIN EN ISO 7500-1, 2018), a long-stroke extensometer (class 1 according to DIN EN ISO 9513, 2013) and pneumatic clamps (6 bar, clamping jaws with pyramidal grid (Zwick T600 R)).
[0234] Using a die, specimens (150 mm x 25.4 mm x thickness of test plate) were cut out of 200 x 200 x 10 mm test plates (dimensions may vary slightly due to shrinkage). The test plates were previously stored for at least 16 hours under standardized climatic conditions (23 ± 2 °C and 50 ± 5% humidity). Measurements were also carried out under standard climatic conditions. The density of each specimen was determined. The mass (precision scale; accuracy: ± 0.001 g) and thickness (calipers; accuracy: ± 0.01 mm, contact pressure: 100 Pa, value measured only once in the center of the specimen) were then measured. From the dimensions of the die, the length (150 mm) and width (25.4 mm) were known.
[0235] Before starting the measurement, E The distance d (50 mm) between the -position (75 mm) and the long stroke extensometer was confirmed. The sample was placed on the upper clamp and a load was applied. Then the sample was clamped and the measurement started. The measurement was carried out at a test speed of 100 mm / min and a force of 1 N. The tensile strength σ, which is the maximum tension, max The calculation of the elongation at break ε (expressed in MPa) was performed using equation (1). This tension can be the same as the tension at break. The calculation of the elongation at break ε (expressed in %) was performed using equation (2). Three specimens were tested for each material. The average value of the three measurements was obtained. If the test specimen broke outside the selected area, this was noted. Repeats with another test specimen were not performed.
[0236]
number
[0237] σ max = tensile strength F max = maximum tension [N] D = sample thickness [mm] B = width of sample [mm]
[0238]
number
[0239] ε = elongation at break L B = length at break [mm] L0 = length before measurement [mm]
[0240] [Table 6]
[0241] References WO 94 / 20568 A1 WO 2007 / 082838 A1 WO 2017 / 030835 A1 WO 2013 / 153190 A1 WO 2010 / 010010 A1 WO 02 / 064656 A2 WO 93 / 24549 A1 US 2006 / 0258831 A1 EP 1746117 A1 "Plastics Handbook, Volume 7, Polyurethanes", Carl Hanser Verlag, 3rd edition 1993, Chapters 3.1 and 7 EP 0571 831 A1 DE 1 962 5987 A1 EP 1 031 588 B1 EP 1 213 307 B1 EP 1 338 614 B1 Kunststoff-Taschenbuch [Plastics Handbook], 27th edition, Hanser-Verlag, Munich, 1998, Chapters 3.2.1 and 3.2.4 WO 2014 / 150122 A1 WO 2014 / 150124 A1 EP 1979401 B1 US 2015 / 0337102 EP 2872309 B1 EP 3053732 A1 WO 2016 / 146537 A1 "Integralschaumstoff" [Integral Form], Carl-Hanser-Verlag, Munich, Vienna, 1975
Claims
1. Steps (i) and (ii): (i) reacting a polyol composition (PZ-1) containing at least one hydroxy-functionalized polyol (P1) having up to 20% primary hydroxyl groups with a polyisocyanate (I1) to obtain a prepolymer composition containing a prepolymer (PP-1), wherein the proportion of secondary terminal OH groups in the total number of terminal OH groups of the polyol (P1) is in the range of 80 to 100%, and the proportion of polyol (P1) in the polyol composition (PZ-1) is more than 75%, based on the entire polyol composition (PZ-1); (ii) reacting a prepolymer composition containing the prepolymer (PP-1) with a composition (C2) containing a chain extender (CE) having a molecular weight of less than 500 g / mol; A method for producing foam pellets, comprising:
2. 2. The method for producing expanded pellets according to claim 1, wherein the polyol (P1) contains more than 94% of non-primary hydroxyl groups.
3. The number average molar mass (M n 3. The method for producing foamed pellets according to claim 1, wherein the molecular weight of the expanded pellets is in the range of 500 to 2500 g / mol.
4. The method for producing foamed pellets according to any one of claims 1 to 3, wherein the polyol (P1) is polypropylene glycol.
5. The method for producing foamed pellets according to any one of claims 1 to 4, wherein the chain extender is selected from the group consisting of ethylene glycol, 1,3-propanediol, 1,4-butanediol, and 1,6-hexanediol.
6. 6. Use of foamed pellets obtained by the process according to any one of claims 1 to 5 for the production of moulded bodies.
7. 7. The method of claim 6, wherein the shaped body is produced by fusing or bonding beads together.
8. 8. The method of claim 6 or 7, wherein the molded article is a shoe sole, a shoe sole part, a shoe midsole, a shoe insole, a shoe combi-sole, a bicycle saddle, a bicycle tire, a damping element, a cushioning material, a mattress, an underlayment, a grip, a protective film, or a part for the interior or exterior of a car.
9. 6. Use of the expanded pellets obtained by the process according to any one of claims 1 to 5 in balls or sports equipment or as floor coverings or wall panels.
Citation Information
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