Polyvinyl chloride-based artificial leather without foam structure and its manufacturing method
A polyvinyl chloride-based artificial leather without a foam structure, using a biomass-derived polymer plasticizer and aqueous treatment, addresses odor and health issues, providing a comfortable and environmentally friendly alternative.
Patent Information
- Application Number
- JP2023191580
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-09-12
- Filing Date
- 2023-11-09
- Publication Date
- 2025-10-01
- Estimated Expiration
- 2043-11-09
AI Technical Summary
Conventional polyvinyl chloride-based artificial leathers emit pungent odors due to the use of foaming agents and solvent-based surface treatments, and they contain harmful additives, which affect user comfort and health.
A polyvinyl chloride-based artificial leather without a foam structure, composed of a base layer and a surface layer formed from a polyvinyl chloride resin and a polymer plasticizer derived from biomass, where the plasticizer is produced through a polycondensation reaction with end-capping fatty acids, eliminating the need for foaming agents and using an aqueous surface treatment to reduce odors.
The solution significantly reduces odor emissions and improves the leather feel, while increasing the biomass content and avoiding harmful chemicals, enhancing user comfort and environmental safety.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a polyvinyl chloride-based artificial leather, and more particularly to a polyvinyl chloride-based artificial leather not having a foam structure and a method for producing the same. [Background technology]
[0002] Polyvinyl chloride (PVC) is a key raw material in the production and development of artificial leather and is widely used in automobile interiors. However, polyvinyl chloride with a high degree of polymerization has a high melting temperature and low melt fluidity, making it difficult to process.
[0003] In order to improve the melt fluidity of polyvinyl chloride, lower the processing temperature, and facilitate production processing, it is necessary to add plasticizers to polyvinyl chloride materials. However, the phenolic acid plasticizers used in conventional technology can emit a pungent odor, and the addition of other additives, such as foaming agents, during the polyvinyl chloride processing process can also emit a pungent odor.
[0004] In order to improve the surface properties of artificial leather, the surface of the synthetic leather is usually subjected to a surface treatment, and existing surface treatment methods mainly use solvent-based surface treatment agents.
[0005] However, solvent-based surface treatment agents have a problem with high odor levels. Artificial leather treated with existing surface treatments has an odor level of 4.0 or higher when measured using PV3900C3, a common automotive odor test method, which significantly affects user comfort. Furthermore, most existing solvent-based surface treatment agents contain irritating solvents (e.g., toluene and xylene), which may be harmful to physical health.
[0006] Furthermore, conventional polyvinyl chloride artificial leather (also called PVC artificial leather) usually includes a dense surface layer and a foam layer to provide a leather feel, but because the existing foam layer has a foam structure formed by a foaming agent, it may still emit a pungent odor.
[0007] In recent years, much research has been conducted into improving the odor level of PVC artificial leather.
[0008] CN107190521A discloses a low-odor polyvinyl chloride artificial leather comprising a base layer, a PVC leather layer, and a paint layer in that order. The plasticizers used in this patent include epoxidized soybean oil and phenolic acid-based plasticizers. To achieve a leather feel, this patent still uses a foaming agent to create a foamed structure. CN107366166A discloses a non-reproductively toxic polyvinyl chloride artificial leather comprising a polyvinyl chloride surface layer, a polyvinyl chloride foam layer, and an aqueous paint layer coated on the polyvinyl chloride surface layer. The aqueous paint layer is free of N-methylpyrrolidone and N-methylpyrrolidone, simultaneously meeting the environmental requirements of low VOCs and low odor. However, to achieve a leather feel, this patent still uses a foaming agent to create a foamed structure.
[0009] Since the polyvinyl chloride-based artificial leathers produced by the conventional techniques still use a foaming agent (especially chemical foaming) to generate a foamed structure, the polyvinyl chloride-based artificial leathers produced by the conventional techniques still may have an irritating odor.
[0010] In the technical field of polyvinyl chloride-based artificial leather, there is a need to further develop a technical solution to further reduce the odor level of polyvinyl chloride-based artificial leather so as to improve the in-car environment and meet the requirements of luxury cars.
[0011] Furthermore, increasing the proportion of non-petrochemical-derived materials used in polyvinyl chloride-based artificial leather is also a goal of our focus in the development of this field. [Prior art documents] [Patent documents]
[0012] [Patent Document 1] China Publication No. CN107190521A [Patent Document 2] China Publication No. CN107366166A Summary of the Invention [Problem to be solved by the invention]
[0013] The technical problem to be solved by the present invention is to provide a polyvinyl chloride-based artificial leather that does not have a foam structure and a method for producing the same, in response to the shortcomings of the prior art. [Means for solving the problem]
[0014] To solve the above technical problems, one technical means adopted by the present invention is to provide a polyvinyl chloride-based artificial leather without a foamed structure, which comprises a base layer and a surface layer formed from the surface composition and formed on the base layer, and the surface composition contains 25 to 65 parts by weight of a polyvinyl chloride resin and 20 to 60 parts by weight of a polymer plasticizer, where the total weight of the surface composition is 100 parts by weight.
[0015] Here, the polymeric plasticizer is formed by performing a polycondensation reaction between a dibasic acid raw material and a dihydric alcohol raw material, followed by end-capping with an end-capping fatty acid, where the end-capping fatty acid is a fatty acid derived from biomass, and the chemical structure of the end-capping fatty acid has a long carbon chain of C8 to C22, a carboxyl group at one end of the long carbon chain, and no carboxyl group at the other end of the long carbon chain.
[0016] Here, the residual amount of the dihydric alcohol raw material in the polymer plasticizer is less than 300 ppm, and the acid value of the polymer plasticizer is less than 1 mgKOH / g.
[0017] Preferably, the end-capping fatty acid is at least one selected from the group consisting of lauric acid, stearic acid, palmitic acid, linoleic acid, n-caprylic acid, capric acid, and myristic acid.
[0018] Preferably, in the polycondensation reaction, the first initiation mole number of the dibasic acid raw material is lower than the second initiation mole number of the dihydric alcohol raw material.
[0019] Preferably, the surface composition further comprises 3 to 5 parts by weight of a stabilizer, and the stabilizer is at least one selected from the group consisting of lithium stearate, magnesium stearate, calcium stearate, barium stearate, zinc stearate, magnesium laurate, barium laurate, zinc laurate, calcium ricinoleate, barium ricinoleate, zinc ricinoleate, and zinc caprylate.
[0020] Preferably, no foam layer is included between the surface layer and the base layer, and the surface layer does not include foam pores due to foaming.
[0021] In order to solve the above technical problems, another technical means adopted by the present invention provides a method for producing polyvinyl chloride-based artificial leather that does not have a foamed structure. The method for producing the polyvinyl chloride-based artificial leather includes providing a base layer and forming a surface layer made of a surface composition on one side of the base layer, where the surface composition includes 25 to 65 parts by weight of polyvinyl chloride resin and 20 to 60 parts by weight of a polymeric plasticizer, where the total weight of the surface composition is 100 parts by weight. The polymeric plasticizer is formed by polycondensation of a dibasic acid raw material and a dihydric alcohol raw material, followed by end-capping with an end-capping fatty acid. The end-capping fatty acid is a biomass-derived fatty acid, and the chemical structure of the end-capping fatty acid has a long carbon chain of C8 to C22, a carboxyl group at one end of the long carbon chain, and no carboxyl group at the other end of the long carbon chain. The residual amount of the dihydric alcohol raw material in the polymeric plasticizer is less than 300 ppm. The acid value of the polymeric plasticizer is less than 1 mgKOH / g.
[0022] Preferably, the polymeric plasticizer is formed through an esterification step in which the dibasic acid raw material and the dihydric alcohol raw material are mixed to form a reaction liquid, and the reaction liquid is heated to carry out the polycondensation reaction, thereby forming a polymeric polyester polyol having an excess amount of hydroxyl groups (—OH groups) at the ends of its chemical structure; and an end-capping step in which a biomass-derived end-capping fatty acid is added to the reaction liquid to end-capping the excess hydroxyl groups in the polymeric polyester polyol, thereby terminating the polycondensation reaction and forming the polymeric plasticizer.
[0023] Preferably, in the polycondensation reaction, the first initiation number of moles when the dibasic acid raw material is supplied in the esterification step is lower than the second initiation number of moles when the dihydric alcohol raw material is supplied in the esterification step.
[0024] Preferably, the third initiation number of moles of the end-capping fatty acid when supplied in the end-capping step is higher than the value obtained by subtracting the first initiation number of moles of the dibasic acid from the second initiation number of moles of the dihydric alcohol raw material, and the third initiation number of moles is 1.5 to 3 times the subtraction value.
[0025] Preferably, the first initial number of moles of the dibasic acid raw material: the second number of moles of the dihydric alcohol raw material: the third initial number of moles of the end-capped fatty acid (molar ratio) is 0.27 to 0.31: 0.32 to 0.35: 0.06 to 0.09. [Effects of the Invention]
[0026] The advantageous effects of the present invention are that, by designing the molecular weight and molecular structure of the polymeric plasticizer of the present invention, the polymeric plasticizer can be used in place of conventional low molecular weight plasticizers, eliminating the need for a foaming agent. Not only can this improve the odor level of polyvinyl chloride-based artificial leather, but the molecular structure of the polymeric plasticizer can also impart a leather feel to the surface layer of polyvinyl chloride-based artificial leather.
[0027] To further explain, the terminals of the chemical structure of the polymeric plasticizer of the present invention are end-capped fatty acids derived from biomass, thereby improving the proportion of biomass content in polyvinyl chloride-based artificial leather. Furthermore, because the end-capped fatty acids derived from biomass have a natural scent (e.g., a natural soap scent), they are useful for improving the odor emitted by polyvinyl chloride-based artificial leather. Furthermore, the method for reducing the amount of residual dihydric alcohol in the reaction liquid in the technical means provided in the embodiments of the present invention can more effectively reduce the amount of residual dihydric alcohol than the general method of removing dihydric alcohol by vacuum distillation alone. [Brief explanation of the drawings]
[0028] [Figure 1] FIG. 1 is a schematic diagram of a laminated structure of a polyvinyl chloride-based artificial leather according to the prior art. [Figure 2] 1 is a schematic diagram of the laminated structure of the polyvinyl chloride-based artificial leather of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0029] To better understand the features and technical contents of the present invention, please refer to the following detailed description of the present invention and the accompanying drawings, which are provided for reference and explanation only and are not intended to limit the scope of the present invention.
[0030] Hereinafter, embodiments of the present invention will be described in terms of certain specific embodiments, and those skilled in the art will be able to understand the advantages and effects of the present invention based on the contents disclosed herein. The present invention can be implemented or applied in other different specific embodiments, and various modifications and changes can be made to each detail in this specification based on different perspectives and applications without departing from the concept of the present invention. Also, as previously explained, the accompanying drawings of the present invention are for simple schematic illustrations and are not drawn to actual size. The technical contents of the present invention will be described in more detail based on the following embodiments, but the disclosed contents do not limit the protection scope of the present invention.
[0031] It should be understood that although various materials or parameters may be described herein using terms such as "first," "second," or "third," these materials or parameters are not limited by these terms, and the term "or" as used herein may include any one or more combinations of the associated listed items, depending on the actual circumstances.
[0032] [Vinyl chloride artificial leather] As shown in Fig. 2, an embodiment of the present invention provides polyvinyl chloride artificial leather 100, and in particular, polyvinyl chloride artificial leather 100 without a foamed structure. The composition of the polyvinyl chloride artificial leather 100 includes a material derived from biomass.
[0033] The polyvinyl chloride-based artificial leather 100 according to the embodiment of the present invention can provide the leather feel required for ordinary artificial leathers, without having a foam structure.
[0034] Specifically, the polyvinyl chloride-based artificial leather 100 according to an embodiment of the present invention includes, from bottom to top, a base fabric layer 1, a top fabric layer 2, and a selectively applied surface treatment layer 3.
[0035] The surface layer 2 is formed directly on one surface of the base layer 1, and the surface treatment layer 3 is formed on the surface of the surface layer 2 that is remote from the base layer 1. The polyvinyl chloride-based artificial leather 100 according to the embodiment of the present invention does not have a foam structure.
[0036] More specifically, in this embodiment, a solid structure (that is, the main structure of the surface layer 2) is formed so as to extend from the surface of the surface layer 2 away from the base layer 1 to the base layer 1.
[0037] The solid structure of the surface layer 2 is in direct contact with the base layer 1 so that no foam layer is provided between the surface layer 2 and the base layer 1. Because the solid structure of the surface layer 2 is not foamed, it does not contain a foam structure such as foam pores, and can provide the leather feel required of ordinary artificial leather without containing a foam structure.
[0038] It should be noted that the "solid structure" in this specification refers to a continuous resin structure that is not foamed with a foaming agent and does not contain foam pores. However, during the manufacturing process of artificial leather, due to the compatibility between different polymeric materials or added materials, or the parameters of the manufacturing method, the solid structure may contain a small amount of pores, but these are not foam pores caused by foaming.
[0039] In this specification, the term "feel of leather" means that when a user touches the polyvinyl chloride-based artificial leather, the feel that the user feels is similar to that of natural leather.
[0040] To achieve the above technical objectives, the solid structure of the surface layer 2 according to the embodiment of the present invention is formed of a fabric composition.
[0041] The surface composition includes a polyvinyl chloride resin and a polymer plasticizer.
[0042] When the total weight of the surface composition is 100 parts by weight, the amount of the polyvinyl chloride resin used is 25 parts by weight to 65 parts by weight, and preferably 35 parts by weight to 55 parts by weight, and the amount of the polymer plasticizer used is 20 parts by weight to 60 parts by weight, and preferably 30 parts by weight to 50 parts by weight.
[0043] More specifically, the polyvinyl chloride resin is a matrix material for the outer layer composition, providing the artificial leather with the mechanical strength required. The polymeric plasticizer is a high-molecular-weight plasticizer that not only improves the odor level of the artificial leather, but also imparts a leather feel to the outer layer 2.
[0044] The polyvinyl chloride resin according to the embodiment of the present invention has a weight average molecular weight (Mw) of 30,000 g / mol to 200,000 g / mol and a glass transition temperature (Tg) of 80°C to 85°C.
[0045] The polymeric plasticizer according to the embodiment of the present invention has specific material properties that allow the polyvinyl chloride-based artificial leather to have a low odor level, and also provides the leather feel required for conventional artificial leathers, provided that the polyvinyl chloride-based artificial leather does not have a foam structure.
[0046] The first weight average molecular weight of the polymer plasticizer according to the embodiment of the present invention is 1,500 g / mol to 6,000 g / mol, and preferably 2,000 g / mol to 5,000 g / mol, but the present invention is not limited thereto.
[0047] It is worth noting that the polymeric plasticizers used in the embodiments of the present invention have much higher molecular weights than existing common plasticizers (which generally have a weight average molecular weight of 300 g / mol to 800 g / mol).
[0048] The molecular structure of the polymeric plasticizer according to the embodiment of the present invention includes a linear soft segment, and the soft segment has an ether group.
[0049] The concentration of the soft segment containing the ether group in the polymer plasticizer is 10 wt % to 50 wt %, preferably 10 wt % to 40 wt %, and particularly preferably 10 wt % to 30 wt %.
[0050] By designing the molecular weight and molecular structure of the polymeric plasticizer, the polymeric plasticizer can be used in place of conventional low molecular weight plasticizers, eliminating the need for a foaming agent. This not only improves the odor level of the polyvinyl chloride-based artificial leather, but also imparts a leather feel to the surface layer 2 of the polyvinyl chloride-based artificial leather 100 due to the molecular structure of the polymeric plasticizer.
[0051] Furthermore, if the molecular structure of the polymer plasticizer contains the linear soft segment having an ether group within the above concentration range, the resin material can be made flexible and a leather feel can be provided.
[0052] The surface layer 2 of the embodiment of the present invention can provide a leather feel without having a foamed structure, so the polyvinyl chloride-based artificial leather can avoid the high-temperature process of chemical foaming.
[0053] Regarding the thickness, the thickness D of the surface layer 2 is 100 μm to 600 μm, preferably 150 μm to 350 μm, so as to provide a sufficient leather feel.
[0054] In one embodiment of the present invention, the soft segment having an ether group is incorporated into the middle or end of the molecular structure of the polymeric plasticizer. The soft segment having an ether group is present in the main chain of the molecular structure of the polymeric plasticizer, not in the form of a side chain, but the present invention is not limited thereto.
[0055] More specifically, the polymeric plasticizer is a polymeric polyester formed by a polycondensation reaction between a dibasic acid raw material and a dihydric alcohol raw material, and the soft segment having an ether group is composed of at least one of the dibasic acid raw material and the dihydric alcohol raw material.
[0056] Here, the dibasic acid raw material is, for example, at least one selected from the group consisting of adipic acid (AA), succinic acid (SA), maleic acid (MA), sebacic acid (decanediol acid), and dodecanedioic acid.
[0057] The dihydric alcohol may be at least one selected from the group consisting of diethylene glycol (DEG), triethylene glycol (TEG), tetraethylene glycol (tetraethylene glycol), polytetrahydrofuran (PTMEG), 1,2-propylene glycol (propane-1,2-diol (1,2-PG), 2-methyl-1,3-propanediol (MPO), neopentyl glycol (NPG), and 1,4-cyclohexanedimethanol ([4-(hydroxymethyl)cyclohexyl]methanol (CHDM). In one embodiment of the present invention, the dibasic acid of the polymeric plasticizer may be adipic acid (AA). The dihydric alcohol raw material of the polymer plasticizer is selectively selected from diethylene glycol (DEG), 2-methyl-1,3-propanediol (MPO) and / or polytetrahydrofuran (PTMEG).
[0058] In the polycondensation reaction, the polymeric plasticizer is terminated with an end-capped fatty alcohol, which is a monovalent fatty acid derived from biomass and has a chemical structure containing only a single carboxyl group (-COOH group).
[0059] In one embodiment of the present invention, the chemical structure of the end-capped fatty acid has a long carbon chain of C8 to C22, preferably C12 to C18, with a carboxyl group (-COOH group) at one end of the long carbon chain and no carboxyl group at the other end.
[0060] In one embodiment, the end-capping fatty acid is at least one selected from the group consisting of lauric acid, stearic acid, palmitic acid, linoleic acid, n-caprylic acid, capric acid, and myristic acid.
[0061] For example, the biomass-derived lauric acid may be at least one of coconut milk, coconut oil, bay oil, and palm kernel oil, and is preferably coconut milk, although the present invention is not limited thereto.
[0062] For example, the biomass-derived stearic acid may be at least one of tea oil, cocoa butter, and palm oil, and is preferably tea oil, although the present invention is not limited thereto.
[0063] For example, the biomass-derived palmitic acid may be at least one of palm oil and palm kernel oil, and is preferably palm oil, although the present invention is not limited thereto.
[0064] For example, the biomass-derived linoleic acid may be at least one of safflower oil, sunflower seed oil, corn oil, and linseed oil, and is preferably safflower oil, although the present invention is not limited thereto.
[0065] The chemical structure of the biomass-derived end-capped fatty acid is as follows: [Table 1]
[0066] In the polycondensation reaction, the dibasic acid raw material is the limiting reactant (also referred to as the limiting reagent) and the dihydric alcohol raw material is the excess reactant (also referred to as the excess reagent) relative to the stoichiometric number of the entire reaction.
[0067] That is, in the polycondensation reaction, the first initiation mole number when the dibasic acid raw material is supplied is lower than the second initiation mole number when the dihydric alcohol raw material is supplied.
[0068] After the polycondensation reaction of the dibasic acid raw material and the dihydric alcohol raw material is performed to a number average molecular weight of 500 g / mol to 2,000 g / mol, preferably 800 g / mol to 1,500 g / mol, the dibasic acid raw material is completely reacted, and the polymer polyester has an excess amount of hydroxyl groups (—OH groups) at the terminals of its chemical structure. The dihydric alcohol raw material remains in the reaction liquid of the polycondensation reaction.
[0069] In this embodiment, the excess hydroxyl groups in the polycondensation reaction are terminated with an end-capping fatty acid to finally form the polymeric plasticizer. The end-capping fatty acid reacts with the dihydric alcohol raw material remaining in the reaction liquid, thereby reducing the residual amount of dihydric alcohol in the polymeric plasticizer to less than 300 ppm (parts per million).
[0070] In addition, the acid value of the polymer plasticizer is controlled to less than 1 mgKOH / g to improve the rubber odor.
[0071] Here, acid number refers to the number of milligrams of potassium hydroxide (KOH) required to neutralize one gram of a chemical. The test standard may be, for example, ASTM D664.
[0072] With the above-described configuration, the terminal of the chemical structure of the polymeric plasticizer according to the embodiment of the present invention is a terminal-capped fatty acid derived from biomass, thereby improving the proportion of biomass content in the polyvinyl chloride-based artificial leather.
[0073] Furthermore, since biomass-derived end-capped fatty acids have a natural scent (for example, the scent of natural soap), they are useful for improving the odor emitted by polyvinyl chloride-based artificial leather.
[0074] In addition, the method for reducing the residual amount of dihydric alcohol in the reaction liquid in the technical means provided in the embodiments of the present invention can more effectively reduce the residual amount of dihydric alcohol than the method of removing dihydric alcohol only by general vacuum distillation.
[0075] More specifically, the viscosity of the polymeric plasticizer may be relatively high, making it difficult to mix the polymeric plasticizer uniformly with the polyvinyl chloride resin, which may make processing difficult.
[0076] In order to solve the above technical problems, the facing composition further comprises 10 parts by weight or less of processing aids.
[0077] For example, the facing composition may include 1 part by weight, 2 parts by weight, 3 parts by weight, 4 parts by weight, 5 parts by weight, 6 parts by weight, 7 parts by weight, 8 parts by weight, 9 parts by weight, or 10 parts by weight of the processing aid, but the invention is not limited thereto.
[0078] Here, the processing aid is a linear aliphatic dibasic acid ester, and has a second weight average molecular weight of 300 to 800. That is, the weight average molecular weight of the processing aid is lower than the weight average molecular weight of the polymeric plasticizer.
[0079] Regarding the material, the processing aid is at least one selected from the group consisting of bis(2-ethylhexyl) sebacate (di-octyl sebacate, DOS), di-2-ethylhexyl adipate (di-octyl adipate, DOA), di-isononyl adipate (di-isononyl adipate, DINA), di-isodecyl adipate (di-isodecyl adipate, DIDA), and di-isononyl sebacate (di-isononyl sebacate, DINS), and is preferably bis(2-ethylhexyl) sebacate (di-octyl sebacate, DOS).
[0080] With the above-described configuration, the processing aid can improve the processability of the surface material composition by reducing the viscosity of the surface material composition.
[0081] The processing aid also functions as a plasticizer and can improve the leather feel of the surface layer.
[0082] However, the amount of the processing aid used should not be too high: if the amount of the processing aid used is too high (for example, more than 15 parts by weight), the surface layer 2 may not achieve the required leather feel or odor level.
[0083] In one embodiment of the present invention, the outer material composition further provides 3 to 5 parts by weight of a stabilizer for increasing the heat resistance stability of the rubber and reducing the odor level of the artificial leather.
[0084] Here, the stabilizer is at least one selected from the group consisting of lithium stearate, magnesium stearate, calcium stearate, barium stearate, zinc stearate, magnesium laurate, barium laurate, zinc laurate, calcium ricinoleate, barium ricinoleate, zinc ricinoleate, and zinc caprylate.
[0085] In one embodiment of the present invention, the stabilizer is a metal soap compound and at least one selected from the group consisting of calcium ricinoleate, barium ricinoleate, and zinc ricinoleate.
[0086] It is worth noting that during the manufacturing process of introducing the polymeric plasticizer of the present invention into polyvinyl chloride-based artificial leather, the rubber contains a large amount of acidic substances (such as blocked fatty acids), which are disadvantageous for processing the artificial leather.
[0087] To solve this technical problem, the amount of stabilizer (e.g., calcium ricinoleate and / or zinc ricinoleate) used in the outer fabric composition of the present invention is increased to improve the processability of the artificial leather.
[0088] For example, in one embodiment of the present invention, when calcium ricinoleate and zinc ricinoleate are used simultaneously, the thermal stability of the polyvinyl chloride-based artificial leather is measured (i.e., the discoloration of the polyvinyl chloride-based artificial leather is measured at 190°C), and when the amount of the stabilizer is increased by 3 parts by weight, the polyvinyl chloride-based artificial leather does not discolor even after being heated for 80 to 85 minutes, but the present invention is not limited thereto.
[0089] In one embodiment of the present invention, the surface composition further comprises 0 to 10 parts by weight of a filler, which is an inorganic particulate material.
[0090] Here, the filler may be a metal oxide such as calcium carbonate, silicon dioxide, alumina, clay, talc, diatomaceous earth, or fertilizer, or may be at least one selected from the group consisting of fibers and powders of glass, carbon black, metals, glass balls, graphite, aluminum hydroxide, barium sulfate, magnesium oxide, magnesium carbonate, magnesium silicate, and calcium silicate.
[0091] Here, the filler is preferably calcium carbonate, but the present invention is not limited thereto.
[0092] In one embodiment of the present invention, the facing composition further includes 2 to 8 parts by weight of a flame retardant. The flame retardant may be at least one selected from the group consisting of aluminum hydroxide, magnesium hydroxide, antimony trioxide, zinc borate, cresyl diphenyl phosphate, tris(2-chloroethyl) phosphate, tris(1-chloropropan-2-yl) phosphate, tris(2-chloro-1-methylethyl) phosphoric acid ester, and chlorinated paraffin wax. The flame retardant is preferably antimony trioxide.
[0093] It is worth noting that in one embodiment of the present invention, the outer material composition does not contain a foaming agent (e.g., a chemical foaming agent or a physical foaming agent). The outer material layer 2 of this embodiment of the present invention can provide the leather feel required for conventional artificial leather, even though it does not have a foamed structure or use a foaming agent. In other words, the irritating odor caused by the use of a foaming agent or a foamed structure can be avoided in the present invention.
[0094] 2, the base layer may be, for example, a woven or nonwoven fabric. The surface layer 2 may be formed on the base fabric layer 1 by artificial synthesis, for example, to form an artificial leather similar in appearance to natural leather.
[0095] In this embodiment, the polyvinyl chloride-based artificial leather 100 further includes a surface treatment layer 3. The surface treatment layer 3 is formed on the surface of the outer layer 2 away from the base layer by coating with an aqueous surface treatment agent. The surface treatment layer 3 can improve the gloss, feel, light resistance, heat resistance, stain resistance, abrasion resistance, and scratch resistance of the polyvinyl chloride-based artificial leather 100.
[0096] The surface of the surface treatment layer 3, away from the outer layer 2, can be embossed at high temperature to form different patterns on the surface of the artificial leather. In this embodiment, the aqueous surface treatment agent is an aqueous polyurethane-based treatment agent that does not contain N-ethylpyrrolidone. This allows the formulation of the surface treatment layer 3 to reduce the odor level of the polyvinyl chloride-based artificial leather 100, thereby improving the comfort of the user.
[0097] The aqueous surface treatment agent is an N-ethylpyrrolidone-free aqueous polyurethane treatment agent, replacing the conventional solvent-based treatment agent. This avoids the use of solvents such as toluene and xylene, which have pungent odors and are harmful to humans. At the same time, the aqueous polyurethane treatment agent of this embodiment does not contain N-ethylpyrrolidone, reducing the pungent odor.
[0098] It is worth noting that in this embodiment, there is no foam layer or foam structure between the surface treatment layer 3 and the outer layer 2, and the surface treatment layer 3 does not contain foam pores due to foaming, but the present invention is not limited to this.
[0099] With the above-described configuration, the polyvinyl chloride-based artificial leather 100 without a foam structure according to the embodiment of the present invention can be applied to automobile interiors, such as door panels, instrument panels, consoles, columns, seat back panels, and seat fabrics.
[0100] Of course, the polyvinyl chloride-based artificial leather 100 without a foam structure according to the embodiment of the present invention can be applied to other fields similar to automobile interiors.
[0101] [Manufacturing method for polyvinyl chloride artificial leather] The above is a description of the materials and properties of the polyvinyl chloride-based artificial leather according to the present invention. A method for producing polyvinyl chloride-based artificial leather will now be described. The method for producing polyvinyl chloride-based artificial leather includes steps S110, S120, and S130. It should be noted that the order and operation of each step in this embodiment can be adjusted according to needs and is not limited thereto.
[0102] The step S110 includes providing a base layer 1. The base layer 1 may be, for example, a woven fabric or a nonwoven fabric.
[0103] The step S120 includes forming the surface layer 2 directly on one side of the base layer 1.
[0104] Here, the surface layer 2 is formed of a surface composition, which includes a polyvinyl chloride resin and a polymer plasticizer.
[0105] When the total weight of the surface composition is 100 parts by weight, the amount of the polyvinyl chloride resin used is 25 parts by weight to 65 parts by weight, preferably 35 parts by weight to 55 parts by weight, and the amount of the polymer plasticizer used is 20 parts by weight to 60 parts by weight, preferably 30 parts by weight to 50 parts by weight.
[0106] The first weight-average molecular weight of the polymeric plasticizer is 1,500 g / mol to 6,000 g / mol, preferably 2,000 g / mol to 5,000 g / mol, but the present invention is not limited thereto. More specifically, the polymeric plasticizer is a polymer polyester formed by a polycondensation reaction between a dibasic acid raw material and a dihydric alcohol raw material. The types of the dibasic acid raw material and the dihydric alcohol raw material have already been described above, so a repeated description will not be given here.
[0107] In the polycondensation reaction, the polymeric plasticizer is terminated with an end-capped fatty alcohol, which is a biomass-derived (e.g., plant-derived) monovalent fatty acid having a chemical structure containing only a single carboxyl group (—COOH group).
[0108] In one embodiment of the present invention, the end-capping fatty acid has a long carbon chain of C8 to C22, preferably C12 to C18, with a carboxyl group (—COOH group) at one end and no carboxyl group at the other end. In one embodiment, the end-capping fatty acid is at least one selected from the group consisting of lauric acid, stearic acid, palmitic acid, linoleic acid, n-caprylic acid, capric acid, and myristic acid. In the polycondensation reaction, the dibasic acid raw material is the limiting reactant (also referred to as the limiting reagent) and the dihydric alcohol raw material is the excess reactant (also referred to as the excess reagent) relative to the stoichiometric number of the entire reaction. That is, the first initial molar number when the dibasic acid raw material is supplied is lower than the second initial molar number when the dihydric alcohol raw material is supplied.
[0109] After the polycondensation reaction of the dibasic acid raw material and the dihydric alcohol raw material is performed to a number average molecular weight of 500 g / mol to 2,000 g / mol, preferably 800 g / mol to 2,000 g / mol, the dibasic acid raw material is completely reacted, and the polymer polyester has an excess amount of hydroxyl groups (-OH groups) at the ends of its chemical structure. The dihydric alcohol raw material remains in the reaction liquid of the polycondensation reaction.
[0110] In this embodiment, the excess hydroxyl groups in the polycondensation reaction are terminated with an end-capping fatty acid to finally form the polymeric plasticizer. The end-capping fatty acid reacts with the dihydric alcohol raw material remaining in the reaction liquid, thereby reducing the residual amount of dihydric alcohol in the polymeric plasticizer to less than 300 ppm (parts per million).
[0111] To improve the rubber odor, the acid value of the polymeric plasticizer is controlled to less than 1 mg KOH / g. The acid value refers to the number of milligrams of potassium hydroxide (KOH) required to neutralize 1 gram of a chemical substance. The test standard may be, for example, ASTM D664.
[0112] The above-described structure allows the polymeric plasticizer according to the embodiment of the present invention to have a chemical structure in which the terminals are capped fatty acids derived from biomass, thereby improving the biomass content of the polyvinyl chloride-based artificial leather. Furthermore, the biomass-derived capped fatty acids have a natural fragrance (e.g., a natural soap fragrance), which helps to improve the odor emitted by the polyvinyl chloride-based artificial leather.
[0113] In addition, the method for reducing the residual amount of dihydric alcohol in the reaction liquid in the technical means provided in the embodiments of the present invention can more effectively reduce the residual amount of dihydric alcohol than the method of removing dihydric alcohol only by general vacuum distillation.
[0114] To explain further, the polymeric plasticizer may be formed, for example, by the following production method: The production method includes an esterification step, an end-capping step, and a decompression step in this order.
[0115] In the esterification step, a dibasic acid raw material (eg, AA) and a dihydric alcohol raw material (eg, MPO, DEG, PTMEG) are mixed to form a reaction liquid.
[0116] Thereafter, the reaction liquid is heated to a first temperature (for example, 110°C to 150°C, preferably 120°C to 140°C) and maintained at that temperature for 0.5 to 2 hours, thereby carrying out a polycondensation reaction.
[0117] Thereafter, the reaction liquid is heated to a second temperature (for example, 190°C to 200°C, preferably 195°C) and maintained for 2 to 4 hours. A polycondensation reaction between the dibasic acid raw material and the dihydric alcohol raw material is carried out to form a high molecular weight polyester polyol having a number average molecular weight of 500 g / mol to 2,000 g / mol, preferably 800 g / mol to 1,500 g / mol.
[0118] As described above, in the polycondensation reaction, the dibasic acid raw material is the limiting reactant and the dihydric alcohol raw material is the excess reactant relative to the stoichiometric number of the entire reaction.
[0119] That is, the first initial number of moles when the dibasic acid raw material is supplied is lower than the second initial number of moles when the dihydric alcohol raw material is supplied.
[0120] In the end-capping step, a biomass-derived end-capping fatty acid (e.g., lauric acid) is added to the reaction liquid to end-capping the high molecular weight polyester formed in the esterification step, thereby terminating the polycondensation reaction and forming a polymeric plasticizer according to an embodiment of the present invention in the reaction liquid. In the end-capping step, the reaction liquid is heated to a third temperature (e.g., 200°C to 210°C, preferably 205°C) and maintained at that temperature for 2 to 4 hours, thereby distilling off water from the reaction liquid and increasing the concentration of the polymeric plasticizer.
[0121] It is worth noting that the third initiation molar number of the end-capping fatty acid when supplied in the end-capping step is higher than the value obtained by subtracting the first initiation molar number of the dibasic acid from the second initiation molar number of the dihydric alcohol starting material, and the third initiation molar number is 1.5 to 3 times the subtraction value. As a result, the end-capping fatty acid effectively end-caps excess hydroxyl groups in the high molecular weight polyester polyol, terminating the polycondensation reaction, and reacting with the dihydric alcohol starting material remaining in the reaction liquid, thereby reducing the amount of dihydric alcohol remaining in the reaction liquid and preventing excess end-capping fatty acid from remaining.
[0122] In one embodiment of the present invention, the molar ratio of the first starting number of moles of the dibasic acid raw material: the second starting number of moles of the dihydric alcohol raw material: the third starting number of moles of the end-capped fatty acid is, for example, 0.27-0.31:0.32-0.35:0.06-0.09, preferably 0.28-0.30:0.32-0.34:0.07-0.09, and specifically may be, for example, 0.29:0.33:0.08, but the present invention is not limited thereto.
[0123] In the decompression step, the reaction liquid containing the polymeric plasticizer in the end-capping step is decompressed from normal pressure (i.e., 760 torr) to a low pressure of 50 to 150 torr, and cooled to a fourth temperature (e.g., 190°C to 200°C, preferably 195°C), and maintained at this temperature for 1 to 3 hours. In the decompression step, the acid value of the polymeric plasticizer is controlled to 1 mg KOH / g, and the reaction reaches the end point, completing the production of the polymeric plasticizer.
[0124] With the above-mentioned configuration, the polymer plasticizer has a biomass-derived end-capped fatty acid at the end of its chemical structure, thereby increasing the proportion of biomass content in the polyvinyl chloride-based artificial leather and improving the odor of the polyvinyl chloride-based artificial leather.
[0125] In step S130, the surface treatment layer 3 is formed on the surface of the surface layer 2 away from the base layer 1. The surface treatment layer 3 is formed by applying an aqueous surface treatment agent to the surface of the surface layer 2, thereby completing the polyvinyl chloride-based artificial leather. In this embodiment, the aqueous surface treatment agent is an aqueous polyurethane-based treatment agent that does not contain N-ethylpyrrolidone.
[0126] [Measurement of experimental data] The present invention will be explained in detail below with reference to Examples 1 to 3 and Comparative Example 1. However, these examples are provided for the purpose of understanding the present invention, and the present invention is not limited thereto.
[0127] [Example 1] The surface composition of Example 1 shown in Table 1 below was prepared by mixing and high-temperature melting in a small mixer and a Banbury mixer, in that order. The surface composition was then rolled using a rolling mill to form the surface layer, and the surface layer was then bonded to the base layer by rolling. An aqueous polyurethane treatment agent was then applied to the surface of the surface layer and dried to form a surface treatment layer. The physicochemical properties of the polyvinyl chloride-based artificial leather of Example 1 were measured, and the results are shown in Table 1 below. The polymerized material was prepared by mixing a dibasic acid raw material (e.g., AA) and a dihydric alcohol raw material (e.g., a mixture of MPO:DEG:PTMEG (molar ratio) = 2:1:0.05), heating the mixture to 130°C and maintaining the temperature for 1 hour, and then heating it to 195°C and maintaining the temperature for 3 hours, thereby carrying out a polycondensation reaction (esterification reaction) and forming a polyester polyol. The polyester polyol was end-capped by adding a biomass-derived end-capped fatty acid (e.g., lauric acid) to the reaction liquid, and the reaction liquid was heated to 205°C and maintained for 3 hours to distill off water and form a polymeric plasticizer with a weight-average molecular weight of 3,845 g / mol in the reaction liquid.
[0128] In Example 1, the molar ratio of dibasic acid raw material: dihydric alcohol raw material: end-blocked alcohol was 0.29:0.33:0.08.
[0129] Finally, the reaction liquid containing the polymeric plasticizer was fed to a reduced pressure section (760-100 Torr) and reacted for 2 hours at 195°C. The acid value of the polymeric plasticizer was controlled to less than 1 mg KOH / g, and the reaction reached its end point, completing the production of the polymeric plasticizer.
[0130] The manufacturing methods of Examples 2 and 3 are basically the same as those of the previous examples, and the differences between Examples 2 and 3 and Example 1 lie in the formulation of the surface composition and the end-capped fatty acid used to synthesize the polymer plasticizer.
[0131] Furthermore, the end-capping material of the polymeric plasticizer of Comparative Example 1 was isooctanol (monohydric alcohol), not end-capping fatty acid (monovalent fatty acid).
[0132] Next, the physicochemical properties of the polyvinyl chloride-based artificial leathers produced in Examples 1 to 3 and Comparative Example 1 were measured to obtain the physicochemical properties of those polyvinyl chloride-based artificial leathers. For example, odor level, residual amount of low-boiling-point alcohol (ppm), odor type, etc. The relevant results are summarized in Table 1.
[0133] Here, the odor level was measured based on PV3900C3, a common automobile odor test method, at 80°C for 2 hours. The odor level system includes six levels: 1 = no odor; 2 = odor is present but not bothersome; 3 = odor is noticeable but not unpleasant; 4 = unpleasant odor; 5 = strong unpleasant odor; and 6 = unbearable odor.
[0134] The residual amount (ppm) of low-boiling alcohol was measured by headspace sampling: 1 g of sample was placed in a test bottle, heated at 120°C for 30 minutes, and the upper gas was extracted using a syringe needle for quantitative analysis.
[0135] [Table 2]
[0136] According to the experimental results in Table 1, the odor level of Examples 1 to 3 was 3, which was lower than the 3.5 of Comparative Example 1. The residual amount of low-boiling point alcohol in Examples 1 to 3 was 300 ppm, which was lower than the 2,242 ppm of Comparative Example 1. The odor level of Examples 1 to 3 was a natural scent, different from the chemical scent of Comparative Example 1. In experimental results not shown in Table 1, the amount of stabilizer used in Examples 1 to 3 was increased by 3 parts by weight. As a result, the polyvinyl chloride-based artificial leather finally formed did not discolor even after being heated for 80 to 85 minutes.
[0137] [Advantageous Effects of the Embodiments] The advantageous effects of the present invention are that, by designing the molecular weight and molecular structure of the polymeric plasticizer of the present invention, the polymeric plasticizer can be used in place of conventional low molecular weight plasticizers, eliminating the need for a foaming agent, and not only improving the odor level of polyvinyl chloride-based artificial leather, but also imparting a leather feel to the surface layer of polyvinyl chloride-based artificial leather due to the molecular structure of the polymeric plasticizer.
[0138] More specifically, the terminals of the chemical structure of the polymeric plasticizer according to the embodiment of the present invention are end-capped fatty acids derived from biomass, which increases the biomass content of the polyvinyl chloride-based artificial leather. Furthermore, since the end-capped fatty acids derived from biomass have a natural scent (e.g., a natural soap scent), they are useful for improving the odor emitted by the polyvinyl chloride-based artificial leather.
[0139] In addition, the method for reducing the residual amount of dihydric alcohol in the reaction liquid in the technical means provided in the embodiments of the present invention can more effectively reduce the residual amount of dihydric alcohol than the method of removing dihydric alcohol only by general vacuum distillation.
[0140] The above disclosure is merely a preferred embodiment of the present invention, and the scope of the claims of the present invention is not limited thereto. Therefore, all equivalent technical modifications made by utilizing the contents of the specification and drawings of the present invention are included in the scope of the claims of the present invention. [Explanation of symbols]
[0141] <Prior Art> 100a...Polyvinyl chloride artificial leather 1a...base layer 2a...Foam layer 3a...surface layer 4a....Surface treatment layer <Example of this invention> 100...Polyvinyl chloride artificial leather 1. Base layer 2...Surface layer 3..Surface treatment layer D...Thickness
Claims
1. A base layer; a surface layer formed of a surface composition and formed on the base layer; When the total weight of the surface composition is 100 parts by weight, the surface composition is 25 to 65 parts by weight of polyvinyl chloride resin; 20 to 60 parts by weight of a polymer plasticizer; The polymeric plasticizer is formed by carrying out a polycondensation reaction between a dibasic acid raw material and a dihydric alcohol raw material, followed by end-capping with an end-capping fatty acid; the end-capped fatty acid is a fatty acid derived from biomass, the chemical structure of the end-capped fatty acid has a long carbon chain of C8 to C22, a carboxyl group at one end of the long carbon chain, and no carboxyl group at the other end of the long carbon chain; the molecular structure of the polymeric plasticizer includes a linear soft segment having an ether group, and the concentration of the linear soft segment having an ether group in the polymeric plasticizer is 10 wt % to 50 wt %; A polyvinyl chloride-based artificial leather not having a foamed structure, characterized in that the residual amount of the dihydric alcohol raw material in the polymer plasticizer is less than 300 ppm, and the acid value of the polymer plasticizer is less than 1 mgKOH / g.
2. 2. The polyvinyl chloride-based artificial leather without a foamed structure according to claim 1, wherein the end-capping fatty acid is at least one selected from the group consisting of lauric acid, stearic acid, palmitic acid, linoleic acid, n-caprylic acid, capric acid, and myristic acid.
3. 2. The polyvinyl chloride-based artificial leather not having a foamed structure according to claim 1, wherein in the polycondensation reaction, the first initiation mole number of the dibasic acid raw material is lower than the second initiation mole number of the dihydric alcohol raw material.
4. The surface composition further comprises 3 to 5 parts by weight of a stabilizer, 2. The polyvinyl chloride-based artificial leather not having a foamed structure according to claim 1, wherein the stabilizer is at least one selected from the group consisting of lithium stearate, magnesium stearate, calcium stearate, barium stearate, zinc stearate, magnesium laurate, barium laurate, zinc laurate, calcium ricinoleate, barium ricinoleate, zinc ricinoleate, and zinc caprylate.
5. 2. The polyvinyl chloride-based artificial leather without a foamed structure according to claim 1, wherein no foam layer is included between the surface layer and the base layer, and the surface layer does not contain foam pores due to foaming.
6. providing a base layer; forming a surface layer formed from a surface composition on one side of the base layer; The surface composition contains 25 to 65 parts by weight of a polyvinyl chloride resin and 20 to 60 parts by weight of a polymer plasticizer, where the total weight of the surface composition is 100 parts by weight, the polymeric plasticizer is formed by performing a polycondensation reaction between a dibasic acid raw material and a dihydric alcohol raw material, followed by end-capping with an end-capping fatty acid, the molecular structure of the polymeric plasticizer includes a linear soft segment having an ether group, and the concentration of the linear soft segment having an ether group in the polymeric plasticizer is 10 wt % to 50 wt %; The end-capped fatty acid is a fatty acid derived from biomass, and the chemical structure of the end-capped fatty acid has a long carbon chain of C8 to C22, a carboxyl group at one end of the long carbon chain, and no carboxyl group at the other end of the long carbon chain; A method for producing a polyvinyl chloride-based artificial leather without a foamed structure, characterized in that the residual amount of the dihydric alcohol raw material in the polymer plasticizer is less than 300 ppm, and the acid value of the polymer plasticizer is less than 1 mg KOH / g.
7. The polymer plasticizer is an esterification step in which the dibasic acid raw material and the dihydric alcohol raw material are mixed to form a reaction liquid, and the polycondensation reaction is carried out by heating, thereby forming a high molecular weight polyester polyol having an excess amount of hydroxyl groups (—OH groups) at the ends of its chemical structure; an end-capping step in which a biomass-derived end-capping fatty acid is added to the reaction liquid to end-capping excess hydroxyl groups in the high molecular weight polyester polyol, thereby terminating the polycondensation reaction and forming the high molecular weight plasticizer; 7. A method for producing the polyvinyl chloride-based artificial leather having no foam structure according to claim 6, which is formed by
8. 8. The method for producing a polyvinyl chloride-based artificial leather not having a foamed structure according to claim 7, wherein a first initiation molar number of the dibasic acid raw material when supplied in the esterification step is lower than a second initiation molar number of the dihydric alcohol raw material when supplied in the esterification step.
9. a third initial number of moles of the end-capping fatty acid when supplied in the end-capping step is higher than a value obtained by subtracting the first initial number of moles of the dibasic acid from the second initial number of moles of the dihydric alcohol raw material; 9. The method for producing a polyvinyl chloride-based artificial leather not having a foamed structure according to claim 8, wherein the third initial number of moles is 1.5 to 3 times the subtracted value.
10. 10. The method for producing a polyvinyl chloride-based artificial leather not having a foamed structure according to claim 9, wherein the ratio (molar ratio) of the first initiation number of moles of the dibasic acid raw material: the second initiation number of moles of the dihydric alcohol raw material: the third initiation number of moles of the end-capped fatty acid is 0.27 to 0.31:0.32 to 0.35:0.06 to 0.09.
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