EP0622332A1 - Feuerfestes und hitzebeständiges polstermaterial und sitze für transportmittel - Google Patents

Feuerfestes und hitzebeständiges polstermaterial und sitze für transportmittel Download PDF

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Publication number
EP0622332A1
EP0622332A1 EP94906772A EP94906772A EP0622332A1 EP 0622332 A1 EP0622332 A1 EP 0622332A1 EP 94906772 A EP94906772 A EP 94906772A EP 94906772 A EP94906772 A EP 94906772A EP 0622332 A1 EP0622332 A1 EP 0622332A1
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EP
European Patent Office
Prior art keywords
fiber
flame
crimped
retardant
staple fiber
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EP94906772A
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English (en)
French (fr)
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EP0622332B1 (de
EP0622332A4 (de
Inventor
Tatuo Yamaguchi
Makoto Yoshida
Nobuo Takahashi
Takeo Kimura
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Teijin Ltd
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Teijin Ltd
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Classifications

    • DTEXTILES; PAPER
    • D04BRAIDING; LACE-MAKING; KNITTING; TRIMMINGS; NON-WOVEN FABRICS
    • D04HMAKING TEXTILE FABRICS, e.g. FROM FIBRES OR FILAMENTARY MATERIAL; FABRICS MADE BY SUCH PROCESSES OR APPARATUS, e.g. FELTS, NON-WOVEN FABRICS; COTTON-WOOL; WADDING ; NON-WOVEN FABRICS FROM STAPLE FIBRES, FILAMENTS OR YARNS, BONDED WITH AT LEAST ONE WEB-LIKE MATERIAL DURING THEIR CONSOLIDATION
    • D04H1/00Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres
    • D04H1/40Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres from fleeces or layers composed of fibres without existing or potential cohesive properties
    • D04H1/54Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres from fleeces or layers composed of fibres without existing or potential cohesive properties by welding together the fibres, e.g. by partially melting or dissolving
    • D04H1/558Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres from fleeces or layers composed of fibres without existing or potential cohesive properties by welding together the fibres, e.g. by partially melting or dissolving in combination with mechanical or physical treatments other than embossing
    • DTEXTILES; PAPER
    • D04BRAIDING; LACE-MAKING; KNITTING; TRIMMINGS; NON-WOVEN FABRICS
    • D04HMAKING TEXTILE FABRICS, e.g. FROM FIBRES OR FILAMENTARY MATERIAL; FABRICS MADE BY SUCH PROCESSES OR APPARATUS, e.g. FELTS, NON-WOVEN FABRICS; COTTON-WOOL; WADDING ; NON-WOVEN FABRICS FROM STAPLE FIBRES, FILAMENTS OR YARNS, BONDED WITH AT LEAST ONE WEB-LIKE MATERIAL DURING THEIR CONSOLIDATION
    • D04H1/00Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres
    • D04H1/40Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres from fleeces or layers composed of fibres without existing or potential cohesive properties
    • D04H1/42Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres from fleeces or layers composed of fibres without existing or potential cohesive properties characterised by the use of certain kinds of fibres insofar as this use has no preponderant influence on the consolidation of the fleece
    • D04H1/4382Stretched reticular film fibres; Composite fibres; Mixed fibres; Ultrafine fibres; Fibres for artificial leather
    • D04H1/43825Composite fibres
    • D04H1/43832Composite fibres side-by-side
    • DTEXTILES; PAPER
    • D04BRAIDING; LACE-MAKING; KNITTING; TRIMMINGS; NON-WOVEN FABRICS
    • D04HMAKING TEXTILE FABRICS, e.g. FROM FIBRES OR FILAMENTARY MATERIAL; FABRICS MADE BY SUCH PROCESSES OR APPARATUS, e.g. FELTS, NON-WOVEN FABRICS; COTTON-WOOL; WADDING ; NON-WOVEN FABRICS FROM STAPLE FIBRES, FILAMENTS OR YARNS, BONDED WITH AT LEAST ONE WEB-LIKE MATERIAL DURING THEIR CONSOLIDATION
    • D04H1/00Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres
    • D04H1/02Cotton wool; Wadding
    • DTEXTILES; PAPER
    • D04BRAIDING; LACE-MAKING; KNITTING; TRIMMINGS; NON-WOVEN FABRICS
    • D04HMAKING TEXTILE FABRICS, e.g. FROM FIBRES OR FILAMENTARY MATERIAL; FABRICS MADE BY SUCH PROCESSES OR APPARATUS, e.g. FELTS, NON-WOVEN FABRICS; COTTON-WOOL; WADDING ; NON-WOVEN FABRICS FROM STAPLE FIBRES, FILAMENTS OR YARNS, BONDED WITH AT LEAST ONE WEB-LIKE MATERIAL DURING THEIR CONSOLIDATION
    • D04H1/00Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres
    • D04H1/40Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres from fleeces or layers composed of fibres without existing or potential cohesive properties
    • D04H1/42Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres from fleeces or layers composed of fibres without existing or potential cohesive properties characterised by the use of certain kinds of fibres insofar as this use has no preponderant influence on the consolidation of the fleece
    • D04H1/4374Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres from fleeces or layers composed of fibres without existing or potential cohesive properties characterised by the use of certain kinds of fibres insofar as this use has no preponderant influence on the consolidation of the fleece using different kinds of webs, e.g. by layering webs
    • DTEXTILES; PAPER
    • D04BRAIDING; LACE-MAKING; KNITTING; TRIMMINGS; NON-WOVEN FABRICS
    • D04HMAKING TEXTILE FABRICS, e.g. FROM FIBRES OR FILAMENTARY MATERIAL; FABRICS MADE BY SUCH PROCESSES OR APPARATUS, e.g. FELTS, NON-WOVEN FABRICS; COTTON-WOOL; WADDING ; NON-WOVEN FABRICS FROM STAPLE FIBRES, FILAMENTS OR YARNS, BONDED WITH AT LEAST ONE WEB-LIKE MATERIAL DURING THEIR CONSOLIDATION
    • D04H1/00Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres
    • D04H1/40Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres from fleeces or layers composed of fibres without existing or potential cohesive properties
    • D04H1/42Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres from fleeces or layers composed of fibres without existing or potential cohesive properties characterised by the use of certain kinds of fibres insofar as this use has no preponderant influence on the consolidation of the fleece
    • D04H1/4382Stretched reticular film fibres; Composite fibres; Mixed fibres; Ultrafine fibres; Fibres for artificial leather
    • D04H1/43825Composite fibres
    • D04H1/43828Composite fibres sheath-core
    • DTEXTILES; PAPER
    • D04BRAIDING; LACE-MAKING; KNITTING; TRIMMINGS; NON-WOVEN FABRICS
    • D04HMAKING TEXTILE FABRICS, e.g. FROM FIBRES OR FILAMENTARY MATERIAL; FABRICS MADE BY SUCH PROCESSES OR APPARATUS, e.g. FELTS, NON-WOVEN FABRICS; COTTON-WOOL; WADDING ; NON-WOVEN FABRICS FROM STAPLE FIBRES, FILAMENTS OR YARNS, BONDED WITH AT LEAST ONE WEB-LIKE MATERIAL DURING THEIR CONSOLIDATION
    • D04H1/00Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres
    • D04H1/40Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres from fleeces or layers composed of fibres without existing or potential cohesive properties
    • D04H1/42Non-woven fabrics formed wholly or mainly of staple fibres or like relatively short fibres from fleeces or layers composed of fibres without existing or potential cohesive properties characterised by the use of certain kinds of fibres insofar as this use has no preponderant influence on the consolidation of the fleece
    • D04H1/4382Stretched reticular film fibres; Composite fibres; Mixed fibres; Ultrafine fibres; Fibres for artificial leather
    • D04H1/43835Mixed fibres, e.g. at least two chemically different fibres or fibre blends

Definitions

  • This invention relates to a cushioning structure having enhanced heat-resistance and flame-retardancy, and a vehicle seat molded therefrom.
  • flame-retarded polyurethanes are widely used which are made by incorporating a phosphorus-containing flame retardant in a polyurethane-forming material in the process of making polyurethane.
  • a flame-retarded polyurethane cushioning article becomes to feel hard and becomes dense and heavy, and thus, the comfortableness is reduced.
  • Comfortableness and light-weight are always required for cushioning articles, and especially, there is recently a strong demand for light-weight seats of automobiles and airplanes.
  • polyurethane cushioning articles have a problem in industrial waste incineration.
  • Cushioning articles comprising a wadding of polyester fibers have also been recently used, in which the fibers are either bonded at intersecting points of fibers by a resin binder or a low-temperature-melting fiber binder, or not bonded.
  • the cushioning articles of polyester fibers, which are not bonded at intersecting points of fibers, are apt to be deformed during the use because the wadding is not fixed and the fibers are not restricted in movement, and their bulkiness and resilience are reduced because the crimp of fibers fades away.
  • the cushioning articles of polyester fibers, which are bonded at intersecting points of fibers also have similar problems to some extent because the bonding at intersecting points of fibers is not stable and the crimp of fibers fades away. Further, in these cushioning articles, with an enhancement of flame-retardancy, the bulkiness and resilience are reduced and the comfortableness becomes lost.
  • a primary object of the present invention is to provide a cushioning structure exhibiting an enhanced flame retardancy with a minimized reduction in comfortableness, and having good heat resistance and light-weight and having no problem in industrial waste incineration, and to provide a vehicle seat made the cushioning structure.
  • a heat-resistant and flame-retardant cushioning structure comprising (a) a matrix composed of a bulky non-woven web of a crimped non-elastic staple fiber, (b) a crimped-flame retardant staple fiber exhibiting a residual weight of at least 35% as tested by a non-flaming heating test method, and (c) a thermoplastic elastic fiber; the crimped flame-retardant staple fiber (b) and the thermoplastic elastic fiber (c) being dispersed in the matrix (a) and at least part of intersecting points of the thermoplastic elastic fiber (c) with the other fibers (a) and (b) are fusion bonded.
  • a heat-resistant and flame-retardant cushioning structure having a double-layer structure composed of an inner layer of a bulky nonwoven web and an outer layer enveloping the inner layer; said outer layer comprising (a) a matrix composed of a bulky non-woven web of a crimped non-elastic staple fiber, (b) a crimped flame-retardant staple fiber exhibiting a residual weight of at least 35% as tested by a glowing test method, and (c) a thermoplastic elastic fiber; the crimped flame-retardant staple fiber (b) and the thermoplastic elastic fiber (c) being dispersed in the matrix (a) and at least part of intersecting points of the thermoplastic elastic fiber (c) with the other fibers (a) and (b) are fusion bonded.
  • a vehicle seat molded from the abovementioned cushioning structure.
  • the matrix of the cushioning structure of the present invention is composed of a bulky non-woven web of a crimped non-elastic staple fiber.
  • a crimped non-elastic staple fiber there can be mentioned a polyester fiber and an aramid fiber.
  • the crimped non-elastic polyester staple fiber includes, for example, staple fibers or mixed staple fibers of polyethylene terephthalate, polybutylene terephthalate, polytetramethylene terephthalate, poly-1,4-dimethylcyclohexane terephthalate, polyethylene naphthalate, polypivarolactone and copolyesters thereof, polyesters, and composite staple fibers composed of two or more of these polyesters.
  • Preferable polyester fibers have incorporated therein a phosphorus or halogen compound to enhance the flame retardancy and heat resistance.
  • the crimped nonelastic aramid fibers include, for example, a meta-aramid fiber and a para-aramid fiber. Of these, a meta-aramid fiber is preferable because it has not only good flame retardancy and heat resistance but also enhanced mechanical properties such as strength and modulus as well as good crimp-imparting property and crimp-fastness.
  • the shape of cross-section of the crimped non-elastic staple fiber is not particularly limited, the cross-section may be any of circular, oblong (i.e., fiber is flat), odd-shaped and hollow forms.
  • the crimped non-elastic staple fiber preferably has a thickness of 4 to 300 deniers, more preferably a thickness of 6 to 100 deniers. If the single fiber thickness is too small, the density of the cushioning structure is large and the cushioning structure becomes inelastic. In contrast, if the single fiber thickness is too large, the cushioning structure has poor handling characteristics and the web-forming property becomes deteriorated. Further, a large single fiber thickness leads to reduction in number of fibers in the web, and thus, the cushioning structure becomes inelastic and has a poor durability and a coarse feeling.
  • the crimp of the non-elastic staple fiber constituting the matrix of the cushioning structure of the present invention is important. Namely, the crimp is an important factor for imparting bulkiness and cushioning characteristics to the cushioning structure and for rendering the cushioning structure light-weight.
  • the crimped non-elastic staple fiber has an initial bulkiness of 40 to 120 cm3/gr, more preferably 50 to 120 cm3/gr and most preferably 70 to 120 cm3/gr.
  • the crimped non-elastic staple fiber has a bulkiness under a load of 10 gr/cm2 of preferably 15 to 50 cm3/gr, more preferably 20 to 50 gr/cm3 and most preferably 30 to 50 cm3/gr.
  • the initial bulkiness and the bulkiness under a load of 10 gr/cm2 are determined under a load of 0.5 gr/cm2 and a load of 10 gr/cm2, respectively, according to JIS 1015. If the initial bulkiness and the bulkiness under a load of 10 gr/cm2 are larger than the above-mentioned ranges, the staple fiber becomes to card. If these bulkinesses are smaller than the above-mentioned ranges, the cushioning properties become poor.
  • the number of crimps of the staple fiber is 5 to 15 per inch, preferably 8 to 15 per inch, and the percentage crimp thereof is 15 to 35%, preferably 20 to 35%.
  • the number of crimps and the percentage crimp are determined according to JIS 1015.
  • the density of the cushioning structure is preferably 0.01 to 0.06 gr/cm3 and more preferably 0.02 to 0.05 gr/cm3. If the density is smaller than 0.01 gr/cm3, the structure is too loose and is not springy. If the density exceeds 0.06 gr/cm3, the structure is springy but is not light-weight.
  • the matrix fibers should be set so that the cushioning structure withstands deformation under stress and, when stress is relieved, it is immediately restored to the original shape.
  • the matrix of the cushioning structure of the present invention is set by thermally bonding thermoplastic elastic fibers.
  • the thermal bonding is beneficial in that the matrix is effectively set and the working atmosphere is good and safe, as compared with a wet bonding procedure using a liquid binder.
  • the thermal bonding is effected by using a thermoplastic elastic fiber having a melting point much lower, preferably at least 60°C lower, than that of the crimped non-elastic staple fiber constituting the matrix.
  • thermoplastic elastic fiber is hereinafter described in detail
  • the matrix of the heat-resistant and flame-retardant cushioning structure of the present invention is set by using a thermoplastic elastic fiber which is not flame-retardant, but the cushioning structure exhibits good heat resistance and flame retardancy.
  • both the matrix fiber and the flame-retardant staple fiber are thermally set by using a thermoplastic elastic fiber whereby a cushioning structure having good flame retardancy, bulkiness, heat resistance and durability.
  • the residual weight of the crimped flame-retardant staple fiber is determined according to a non-flaming heating test as follows.
  • An electric heater is provided in a cubic box, each side of which has a size of 50 cm.
  • One gram of a test sample is placed in a cage so that the sample is not dripped when molten, and the cage is placed in the center of the cubic box.
  • the sample is subjected to a thermal decomposition treatment by heating at 750°C for 4 minutes.
  • the heating temperature is measured by using a thermocouple placed on a sample stage.
  • the residual weight is calculated from the weight reduction as measured after the thermal decomposition.
  • the ratio of the amount of the crimped flame-retardant staple fiber having a residual weight of at least 35% to the amount of the matrix fiber, i.e., the crimped non-elastic staple fiber is preferably in the range of 0.1/1 to 1/1 by weight. If this ratio is larger than 1/1, the cushioning structure has poor bulkiness and durability. If this ratio is smaller than 0.1/1, the flame retardancy is lowered. Even when a flame retardant staple fiber having a residual weight of 35% or lower is used, flame retardancy can be obtained to some extent if the amount used is large, but the bulkiness and durability of the cushioning structure are considerably lowered.
  • the flame-retardant fiber having a residual weight of at least 35% there can be mentioned a pre-oxidized acrylonitrile polymer fiber which is prepared by pre-oxidizing an acrylonitrile polymer and which is commercially available in the trade name of, for example, "Lastan” and "Pyromex", a completely carbonized carbon fiber, a crosslinked phenolic resin fiber which is commercially available in the tradename of, for example, "Kynol”, and polybenzimidazole fiber (PBI).
  • a pre-oxidized acrylonitile polymer fiber is preferable.
  • the crimped flame-retardant staple fiber has a single fiber thickness preferably not larger than 8 deniers, more preferably not larger than 5 deniers. If the single fiber thickness is too large, the number of fibers in the web is decreased and thus the flame retardancy is reduced. However, too small single fiber thickness badly influences the web formation, and therefore, the single fiber thickness should preferably be at least about 1 denier.
  • a polyester fiber and an aramid fiber as preferable examples of the crimped non-elastic staple fiber used in the cushioning structure of the present invention.
  • the use of a polyester fiber or an aramid fiber in combination with the above-mentioned flame-retardant fiber is described in DE 3307449-A1, GB 2183265 and GB 2152542.
  • this combination is used for a continuous yarn such as a spun yarn, and thus, these references teach only that this combination imparts flame retardancy to a two-dimensional fabric.
  • These references are silent on the use of this combination for a three-dimensional fibrous structure, namely, the references suggest nothing about a flame-retardant cushioning structure having good bulkiness and durability.
  • the cushioning structure of the present invention is characterized in that the above-mentioned crimped flame-retardant staple fiber (b) is dispersed in a matrix composed of a crimped non-elastic staple fiber (a), and further, a thermoplastic elastic fiber (c) is incorporated in the matrix, and that at least part of intersecting points of the thermoplastic elastic fiber (c) with the crimped non-elastic staple fiber (a) and the crimped flame-retardant staple fiber (b) are fusion-bonded.
  • the ratio of the thermoplastic elastic fiber (c) varies depending upon the particular thermoplastic elastic fiber used, but this ratio is preferably 10 to 50% based on the total weight of the cushioning structure.
  • the cushioning structure has a good flame retardancy, but the number of fusion-bonded intersecting points are few and hence the durability is poor. If this ratio exceeds 50%, the flame retardancy becomes poor.
  • the ratio of the thermoplastic elastic fiber is in the range of 10 to 50% based on the total weight, both the crimped non-elastic staple fiber and the crimped flame-retardant staple fiber are fusion-bonded to a considerable extent whereby no laminar separation occurs in the thickness direction of the cushioning structure and the cushioning structure becomes springy and durable.
  • thermoplastic elastomer fiber used for the formation of fusion-bonded intersections is a composite fiber made of a thermoplastic elastomer and a non-elastic polyester and having a melting point at least 60°C lower than that of the crimped non-elastic staple fiber constituting the matrix. If the difference in melting point is smaller than 60°C, the thermoplastic elastic fiber is deteriorated when heated, and the elastic fiber tends to badly influence the matrix fiber.
  • thermoplastic elastomer occupies preferably at least 1/2 of the surface area of the composite fiber.
  • the ratio of the thermoplastic elastomer to the non-elastic polyester is preferably in the range of 30/70 to 70/30.
  • the composite fiber may be either a side-by-side type or a sheath-core type, but the latter is preferable.
  • the non-elastic polyester forms the core
  • the shape of the cross-section of the core may be either concentric circle or eccentric circle.
  • the eccentric circle is more preferable because coil-shaped elastic crimps develop in the composite fiber.
  • thermoplastic elastomer there can be mentioned, for example, polyurethane elastomers and polyether-polyester elastomers.
  • non-elastic polyester there can be mentioned, for example, polyethylene terephthalate and polybutylene terephthalate. Polybutylene terephthalate having rubber elasticity is especially preferable.
  • thermoplastic elastomer fiber should be chosen in due consideration of not only melting point but also cushioning performance. More specifically, when a crimped flame-retardant staple fiber having a small number of crimps is used, large fusion-bonded areas should preferably be formed in the intersecting points thereof. Since the fusion-bonded areas are comprised of the elastomer, the areas can be deformed in accordance with the stress imposed and, when the stress is relieved, the areas can be immediately restored to the original shape. Further, the elastomer fiber exhibits a good recovery from elongation, and, when stress is repeatedly imposed, there is neither breakage nor residual strain.
  • thermoplastic elastomer fiber preferably has a single fiber diameter larger than that of the crimped flame-retardant staple fiber.
  • the thermoplastic elastomer fiber preferably has an elongation at break of at least 500% and a stress at 300% elongation of not larger than 0.6 kg/mm2, and a recovery at 300% elongation of at least 60%. If the elongation at break is smaller than 500%, the cushioning structure cannot withstand a large stress. If the the stress at 300% elongation exceeds 0.6 kg/mm2, the deformation of the cushioning structure is not smooth due to the high stress, and the comfortableness is lowered. If the recovery at 300% elongation is smaller than 60%, the recovery after the stress relief is not satisfactory.
  • the cushioning structure of the present invention is characterized in that, even when a relatively small amount (i.e., an amount smaller than that of the matrix fiber) of the crimped flame-retardant staple fiber is incorporated in the matrix fiber to provide a cushioning structure passing the FAA standard, an acceptable cushioning performance can be attained by the fact that the crimped matrix staple fiber and the thermoplastic elastic fiber exhibit a synergistic springy action and supplement the small crimps of the flame-retardant staple fibers.
  • the cushioning structure of the present invention may have a structure which is entirely composed of a substantially uniform mixture of the above-mentioned crimped non-elastic staple fiber, crimped flame-retardant staple fiber and thermoplastic elastomer fiber.
  • the cushioning structure may have a double layer structure composed of inner layer of a bulky non-woven web and an outer layer enveloping the inner layer, which outer layer is composed of the above-mentioned crimped non-elastic staple fiber, crimped flame-retardant staple fiber and thermoplastic elastomer fiber.
  • the inner layer of the double layer structure may be composed of the abovementioned three fibers, a good flame retardancy is imparted by the outer layer, and therefore, the inner layer is preferably composed of the crimped non-elastic staple fiber and the thermoplastic elastomer fiber with due regard to the bulkiness and durability of the entire cushioning structure.
  • the crimped non-elastic staple fiber used for the inner layer of the preferred double-layered cushioning structure is preferably made of a polyester in view of satisfactory mechanical properties such as strength and modulus as well as good crimping characteristics such as a crimp imparting property and a crimp fastness.
  • the thermoplastic elastomer fiber used in combination with the crimped non-elastic staple fiber for the inner layer is preferably made of an elastomer selected from those which are used for the outer layer.
  • the amount of the thermoplastic elastomer fiber used for the inner layer is preferably 10 to 50% by weight based on the weight of the inner layer in view of the bulkiness and durability of the entire cushioning structure.
  • the thermoplastic elastomer fibers are incorporated in the inner layer and the outer layer, and hence, the two layers are firmly bonded to each other and the bonded interface between the two layers is not clear.
  • the cushioning structure has a peeling strength of at least 1.0 kg as measured by applying a peel force in the thickness direction, and is very durable.
  • the peeling strength is determined according to ASTM D 3574 wherein a reinforcing fabric is adhered onto a cushioning structure by an adhesive, the adhered assembly is pressed under a pressure of 10 kg/cm2 for 24 hours, and then the peeling strength is measured on a sample having a width of 25 mm by applying a peel force at a peel rate of 50 mm/min.
  • the thickness and density of the outer layer of the double layered cushioning structure can be appropriately chosen, but are preferably 3 to 10 mm and 200 to 500 g/m2, respectively, from viewpoints of flame retardancy and fastness to surface rubbing.
  • the cushioning structure of the present invention is usually made by a procedure wherein the crimped flame retardant staple fiber and the thermoplastic elastomer fiber are incorporated with a matrix of the crimped non-elastic staple fiber, and at least part of the intersecting points between the thermoplastic elastomer fiber and the crimped non-elastic staple fiber and/or the crimped flame-retardant staple fiber are fusion-bonded whereby the three fibers are formed into an integrated body.
  • the crimped non-elastic staple fiber For making a uniform cushioning structure having a good performance by a process as short as possible, the crimped non-elastic staple fiber, it is preferable that the crimped flame-retardant staple fiber and the thermoplastic elastomer fiber are combined together and thoroughly mixed, and the mixture is then heat-treated at a temperature 20°C to 60°C higher than the melting point of the thermoplastic elastomer fiber to be thereby fusion-bonded. If the heating temperature is too low, the polymers do not flow in a molten state to the desired extent at intersecting points of staple fibers, with the results of reduction in the number of fusion-bonded points and reduction in rebound of the cushioning structure. If the heating temperature is too high, the thermoplastic elastomer fiber is subject to thermal deterioration and the physical properties at the thermally bonded points are degraded.
  • the heat-resistant and flame-retardant cushioning structure having a double layer structure is made by a procedure wherein a bulky nonwoven web for the inner layer and that for the outer layer are separately prepared by combining together and mixing thoroughly the respective fibers, the bulky nonwoven web of the inner layer is enveloped by the bulky nonwoven web of the outer layer, and the combined bulky nonwoven webs are heat-treated in the above-mentioned manner whereby the fibers are fusion-bonded.
  • the cushioning structure is molded into a vehicle seat and other cushion articles.
  • a vehicle seat is made by a process wherein a non-heat-treated bulky web of mixed fibers is packed in a mold and then heat-treated, or a process wherein fibers are combined together and mixed, the thus-obtained mixed web is heat-treated at a temperature lower than the heat-treating temperature for fusion-bonding whereby the web is temporarily bonded, the web is then cut to a shape approximately similar to a mold cavity, the cut web is packed in the mold, and the packed web is heat-treated to effect fusion-bonding, or a process wherein fibers are combined together and mixed to form a web, the web is heat-treated to effect fusion-bonding, the fusion-bonded web is cut into several parts, and the parts are adhered by using a binder and simultaneously molded in a mold.
  • Other processes can be employed such as, for example, a process using a sliver as described in EP 0483386-A1 and
  • vehicle seat used herein we mean seats in a broad sense, which include seats of an automobile and other land transport facilities and seats of airplanes.
  • Meta-aramid fiber (“Conex” supplied by Teijin Ltd.) was used as a crimped non-elastic staple fiber for a matrix; a pre-oxidized polyacrylonitrile fiber exhibiting a residual weight of 48% as measured according to a glowing test ("Lastan", 2 deniers x 74 mm) was used as a crimped flame-retardant staple fiber; and a composite fiber made as follows was used as a thermoplastic elastomer fiber.
  • thermoplastic elastomer had an intrinsic viscosity of 1.0, a melting point of 155°C, an elongation at break of 1,500% (as measured on a film), a stress at 300% elongation of 0.3 kg/mm2 and a recovery at 300% elongation of 75%.
  • An eccentric sheath-core composite fiber was made by a conventional melt-spinning process using 50% by weight of the above-mentioned thermoplastic elastomer as the sheath and 50% by weight of polybutylene terephthalate as the core.
  • the composite fiber was drawn twice the original length, cut into a length of 64 mm, and heat-treated in hot water at 95°C whereby the shrinkage of the composite fiber was reduced and crimps were developed. After drying the treated fiber, an oiling agent was applied to the fiber.
  • This thermoplastic elastomer fiber had a single fiber thickness of 6 deniers.
  • a matrix mixed fiber composed of Conex and Lastan at a ratio of 1 : 0.2 was mixed with the above-mentioned thermoplastic elastomer staple fiber to form a web at a mixing ratio of 70% by weight and 30% by weight, respectively, by a card.
  • a plurality of the webs were superposed in a square plate-shaped mold so that the thickness and density of the superposed webs are 10 cm and 0.05 g/cm3, respectively.
  • the webs were heat-treated at 200°C for 10 minutes to obtain a cushioning structure having a square plate shape. This procedure was repeated wherein three kinds of Conex fibers having the same thickness (13 deniers) and staple length (76 mm), but having different crimp characteristics were separately used.
  • Table I-1 (Run No. 1 to 3).
  • Example 1 Run No. 2 was repeated wherein the ratio of Conex to Lastan was changed as shown in Table I-1 with all other conditions remaining the same. The results are shown in Table I-1 (Run No. 4 and 5).
  • Example 1 The procedure of Example 1, Run No. 2 was repeated wherein the ratio of the thermoplastic elastomer fiber to the entire amount of the three fibers was changed as shown in Table I-2 with all other conditions remaining the same. The results are shown in Table I-2 (Run No. 6).
  • Example 1 The procedure of Example 1, Run No. 2 was repeated wherein the heat treating temperature was changed as shown in Table I-2 with all other conditions remaining the same. The results are shown in Table I-2 (Run No. 7).
  • Example 1 The procedure of Example 1, Run No. 2 was repeated wherein a crosslinked phenolic resin fiber ("Kynol”) having a thickness of 3 deniers and a staple length of 70 mm) and a crosslinked melamine resin (“Basofil”) having a thickness of 2.3 deniers and a staple length of 75 mm were separately used with all other conditions remaining the same.
  • Run No. 9 is a comparative example which does not fall within the scope of claims. The results are shown in Table I-2 (Run No. 8 and 9).
  • Example 1 The procedure of Example 1, Run No. 2 was repeated wherein (i) a polyethylene terephthalate (PET) fiber having a thickness of 14 denier and a staple length of 64 mm, (ii) a fiber of polyethylene terephthalate (PET) having copolymerized therein 0.7% by weight of a phosphorus compound, which had a thickness of 13 deniers and a staple length of 51 mm and (iii) a poly-1,4-dimethylcyclohexane terephthalate (PCT) fiber having a thickness of 25 deniers and a staple length of 76 mm were separately used as the matrix staple fiber, and the ratio of the flame-retardant staple fiber to the matrix staple fiber was changed as shown in Table II-1, Run No. 10 to 12, with all other conditions remaining the same. The results are shown in Table II-1 (Run No. 10 to 12).
  • a square plate-shaped cushioning structure having a double layer structure composed of an outer layer A and an inner layer B was made as follows.
  • a meta-aramid fiber (“Conex") having a thcikness of 13 deniers and a staple length of 76 mm as a matrix fiber and having characteristics shown in Table II-2, Run No. 13 was mixed together with a flame-retardant staple fiber and a thermoplastic elastomer fiber, which fibers and mixing ratio were shown in Table II-2, Run No. 13, by a card to obtain a web A for the outer layer A.
  • a polyethylene terephthalate (PET) fiber having a thickness of 14 deniers and a staple length of 64 mm and having characteristics shown in Table II-1, Run No.
  • Example 10 10
  • 30% by weight of the same thermoplastic elastomer fiber as that used in Example 1 were mixed together by a card to obtain a web B for the inner layer B.
  • the web B was enveloped by the web A and the combined webs were packed at a thickness of 10 cm in a mold of a square plate shape.
  • the combined webs A and B were heat-treated in the mold at 200°C for 15 minutes to obtain a square plate-shaped cushioning structure having a double layer structure.
  • This procedure was repeated wherein the thickness and basis weight of the outer layer A were changed as shown in Table II-2, Run No. 13 to 15. The results are shown in Table II-2, Run No. 13 to 15.
  • Example 7 The procedure of Example 7, Run No. 13 for the production of a cushioning structure having a double layer structure was repeated wherein a poly-1,4-dimethylcyclohexane terephthalate fiber having a thickness of 25 deniers and a staple length of 76 mm and having characteristics shown in Table II-1, Run No. 12 was used as the matrix fiber for the inner layer B with all other conditions remaining the same. The results are shown in Table II-2, Run No. 16. Table I-1 Run No. 1 2 3 4 5 Fibers (a) Matrix fiber Aramid Aramid Aramid Aramid Aramid Thickness (denier) 13 13 13 13 13 No.
  • the cushioning structure of the present invention can be made without the use of an injurious material such as freon, and has a good air permeability and thus is not stuffy.
  • the cushioning structure exhibits cushioning characteristics such that the initial density upon compression is not too high, the rebound is large. The rebound increases approximately in direct proportion to the degree of compression and the cushioning structure is not bottomed out.
  • the cushioning structure can be incinerated without generation of harmful gas, which is in contrast to a conventional cushioning structure made of polyurethane.
  • the cushioning structure of the present invention has benefits not only in the above-mentioned cushioning characteristics and the ease in incineration, but also in meeting with the demand of lightweight which is recently requested. This is in contrast to the flame-retardant polyurethane which has a great problem such that it must be densified to at least 0.060 g/cm2.
  • the cushioning structure of the present invention is very useful for seats of various vehicles.
  • a cushioning structure which is composed of a fiber web made of a polyester fiber and in which at least part of the intersecting points of fibers are fusion-bonded by a binder fiber such as an elastomer fiber.
  • This cushioning structure exhibits good cushion characteristics, but has a problem in flame-retardancy.
  • the cushioning structure of the present invention has good and balanced cushion characteristics and flame-retardancy and is comfortable.
  • the cushioning structure of the present invention is beneficial also in that a uniform cushioning structure can be made by a short and simple process wherein a bulky web of staple fibers is heat-treated.
  • the cushioning structure of the present invention has good flame retardancy, cushioning properties, durability, form stability, air permeability (i.e., reduced stuffiness), uniformity in processing and a wide processability.
  • the cushioning structure is useful for general furniture and beds and especially useful for furniture and beds in hospitals and facilities for old people, vehicle seats such as seats of subway, ships, super-express trains, airplanes and racing cars. It is also used as other flame-retardant paddings and for miscellaneous goods.
  • the cushioning structure of the present invention is useful as cushion materials for which good cushioning characteristics and a high flame retardancy are required.
  • the high flame retardancy is, for example, that satisfying the requirement for airplanes according to FAA combustion test wherein a cushion structure is placed in contact with a flame for 2 minutes by using a burner producing a flame at 1,038°C which is placed at a distance of 102 mm from the cushioning structure.

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  • Engineering & Computer Science (AREA)
  • Textile Engineering (AREA)
  • Mechanical Engineering (AREA)
  • Nonwoven Fabrics (AREA)
  • Mattresses And Other Support Structures For Chairs And Beds (AREA)
  • Laminated Bodies (AREA)
EP94906772A 1992-08-04 1993-08-04 Feuerfestes und hitzebeständiges polstermaterial und sitze für transportmittel Expired - Lifetime EP0622332B1 (de)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
JP20799092 1992-08-04
JP207990/92 1992-08-04
PCT/JP1993/001093 WO1994003393A1 (fr) 1992-08-04 1993-08-04 Materiau de rembourrage resistant au feu et a la chaleur et siege pour vehicule

Publications (3)

Publication Number Publication Date
EP0622332A1 true EP0622332A1 (de) 1994-11-02
EP0622332A4 EP0622332A4 (de) 1995-01-11
EP0622332B1 EP0622332B1 (de) 1998-07-08

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Country Link
EP (1) EP0622332B1 (de)
JP (1) JP3527507B2 (de)
DE (1) DE69319577T2 (de)
WO (1) WO1994003393A1 (de)

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WO2003023108A1 (en) * 2001-09-12 2003-03-20 Carpenter Co. Nonwoven highloft flame barrier
WO2006022857A3 (en) * 2004-03-23 2006-04-06 Du Pont Reinforced nonwoven fire blocking fabric, method for making such fabric, and articles fire blocked therewith
WO2006058002A1 (en) * 2004-11-23 2006-06-01 E.I. Dupont De Nemours And Company Reinforced nonwoven fire blocking fabric having ridges and grooves and articles fire blocked therewith
WO2006071978A1 (en) * 2004-12-27 2006-07-06 E. I. Du Pont De Nemours And Company Liquid water impermeable reinforced nonwoven fire blocking fabric, method for making such fabric, and articles fire blocked therewith
US7153794B2 (en) 2004-05-07 2006-12-26 Milliken & Company Heat and flame shield
US7341963B2 (en) 2005-05-17 2008-03-11 Milliken & Company Non-woven material with barrier skin
WO2008079236A1 (en) * 2006-12-22 2008-07-03 E. I. Du Pont De Nemours And Company Abrasion resistant fire blocking fabric
US7454817B2 (en) 2004-05-07 2008-11-25 Milliken & Company Heat and flame shield
US7589037B2 (en) 2005-01-13 2009-09-15 Basofil Fibers, Llc Slickened or siliconized flame resistant fiber blends
US7709405B2 (en) 2005-05-17 2010-05-04 Milliken & Company Non-woven composite
US7871947B2 (en) 2007-11-05 2011-01-18 Milliken & Company Non-woven composite office panel
US8163664B2 (en) 2004-07-30 2012-04-24 Owens Corning Intellectual Capital, Llc Fiberglass products for reducing the flammability of mattresses
CN112746390A (zh) * 2021-01-28 2021-05-04 广东春夏新材料科技股份有限公司 一种卫生巾用热风布及其制备方法

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JPH09294649A (ja) * 1996-05-08 1997-11-18 Osaka Gas Co Ltd 耐火腰掛け
JPH10283A (ja) * 1996-06-14 1998-01-06 Teijin Ltd 難燃性とクッション性とが改善されたクッション材およびその製造方法
JP4245753B2 (ja) * 1999-10-29 2009-04-02 呉羽テック株式会社 耐炎性シート
JP2001149719A (ja) * 1999-11-30 2001-06-05 Nippon Felt Co Ltd 耐熱性フィルタ材
US6790795B2 (en) 2001-03-21 2004-09-14 Tex Tech Industries, Inc. Fire blocking fabric
US7521386B2 (en) 2004-02-07 2009-04-21 Milliken & Company Moldable heat shield
US7428803B2 (en) 2005-05-17 2008-09-30 Milliken & Company Ceiling panel system with non-woven panels having barrier skins
US7696112B2 (en) 2005-05-17 2010-04-13 Milliken & Company Non-woven material with barrier skin
US7651964B2 (en) 2005-08-17 2010-01-26 Milliken & Company Fiber-containing composite and method for making the same
US7605097B2 (en) 2006-05-26 2009-10-20 Milliken & Company Fiber-containing composite and method for making the same
JP4951507B2 (ja) * 2006-08-11 2012-06-13 株式会社フジコー 高耐熱の断熱吸音材
US7825050B2 (en) 2006-12-22 2010-11-02 Milliken & Company VOC-absorbing nonwoven composites
DE102014213373B4 (de) * 2014-04-16 2021-06-24 Johnson Controls Gmbh & Co. Kg Polsterelement
JP6807650B2 (ja) * 2016-03-25 2021-01-06 帝人フロンティア株式会社 クッション体
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JP7172998B2 (ja) * 2018-03-30 2022-11-16 東レ株式会社 不織布
CN114592281B (zh) * 2020-12-31 2023-08-01 苏州爱美纤维科技有限公司 一种非织造材料的制备方法

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US7259117B2 (en) 2001-09-12 2007-08-21 Mater Dennis L Nonwoven highloft flame barrier
WO2003023108A1 (en) * 2001-09-12 2003-03-20 Carpenter Co. Nonwoven highloft flame barrier
WO2006022857A3 (en) * 2004-03-23 2006-04-06 Du Pont Reinforced nonwoven fire blocking fabric, method for making such fabric, and articles fire blocked therewith
EP1742787A4 (de) * 2004-05-07 2010-05-05 Milliken & Co Hitze- und flammenschild
US7153794B2 (en) 2004-05-07 2006-12-26 Milliken & Company Heat and flame shield
US7229938B2 (en) 2004-05-07 2007-06-12 Milliken & Company Heat and flame shield
US7454817B2 (en) 2004-05-07 2008-11-25 Milliken & Company Heat and flame shield
US8163664B2 (en) 2004-07-30 2012-04-24 Owens Corning Intellectual Capital, Llc Fiberglass products for reducing the flammability of mattresses
WO2006058002A1 (en) * 2004-11-23 2006-06-01 E.I. Dupont De Nemours And Company Reinforced nonwoven fire blocking fabric having ridges and grooves and articles fire blocked therewith
US7247585B2 (en) 2004-11-23 2007-07-24 E.I. Du Pont De Nemours And Company Reinforced nonwoven fire blocking fabric having ridges and grooves and articles fire blocked therewith
WO2006071978A1 (en) * 2004-12-27 2006-07-06 E. I. Du Pont De Nemours And Company Liquid water impermeable reinforced nonwoven fire blocking fabric, method for making such fabric, and articles fire blocked therewith
US7589037B2 (en) 2005-01-13 2009-09-15 Basofil Fibers, Llc Slickened or siliconized flame resistant fiber blends
US7341963B2 (en) 2005-05-17 2008-03-11 Milliken & Company Non-woven material with barrier skin
US7709405B2 (en) 2005-05-17 2010-05-04 Milliken & Company Non-woven composite
CN101568678B (zh) * 2006-12-22 2011-07-06 纳幕尔杜邦公司 耐磨阻燃织物
WO2008079236A1 (en) * 2006-12-22 2008-07-03 E. I. Du Pont De Nemours And Company Abrasion resistant fire blocking fabric
US7871947B2 (en) 2007-11-05 2011-01-18 Milliken & Company Non-woven composite office panel
US7998890B2 (en) 2007-11-05 2011-08-16 Milliken & Company Non-woven composite office panel
CN112746390A (zh) * 2021-01-28 2021-05-04 广东春夏新材料科技股份有限公司 一种卫生巾用热风布及其制备方法

Also Published As

Publication number Publication date
DE69319577D1 (de) 1998-08-13
WO1994003393A1 (fr) 1994-02-17
EP0622332B1 (de) 1998-07-08
EP0622332A4 (de) 1995-01-11
DE69319577T2 (de) 1998-11-05
JP3527507B2 (ja) 2004-05-17

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