首页> 外文期刊>The Journal of the American Leather Chemists Association >Polyurethane Electrospun Fiber Biomimetics Membrane for Constructing the Structure of Grain Layer with Good Breathability for Cattle Split Leather
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Polyurethane Electrospun Fiber Biomimetics Membrane for Constructing the Structure of Grain Layer with Good Breathability for Cattle Split Leather

机译:聚氨酯电纺纤维纤维膜,用于构建碎屑透气性良好透气性的晶粒层的结构

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摘要

The traditional thick coating on split leather does not have the ability to breathe like full grain leather. The air and water vapor permeabilities of full grain leather are well known properties due to its fiber woven structure. Simulating the fiber morphology and weaving structure of the dermis or grain layer is very important to construct a top surface layer for split leather. In this paper, a PU (polyurethane) foam layer is put first on the split to enhance the adhesion of a second application of a superfine fibrous PU resin. This foam uses well-known waterborne polyurethane foaming technology. This dried foam has good breathability because of high porosity. A superfine fiber membrane is next put atop of the foam layer by using an electro-spun polyurethane resin. This second resin imitates collagen fibers in the network structure of the leathers' grain layer. Thus, this resultant electrospun fiber biomimetics membrane simulated the grain layer of natural leather. SEM showed the morphology and structure of this electrospun fiber biomimetic membrane to be like that of the grain layer of natural leather. The porosity and apparent density were basically the same as the grain of leather, which were 63.65% and 583.878 kg/m(3) respectively. The air and water vapor permeability of the biomimetics membrane were also as high as 2250 mL.cm(-2).h(-1) and 8753.02 mu g(-1)cm(-2)h(-1) respectively. Therefore, the biomimetics membrane largely restored the ability to breathe of split leather. Thus, this method simulates the performance and structure of full grain leather and is a novel method for industrial production.
机译:分裂皮革上的传统厚涂层没有能够像全麦皮革一样呼吸。由于其纤维织物结构,全粒皮的空气和水蒸气渗透性是众所周知的特性。模拟真皮或晶粒层的纤维形态和编织结构对于构建用于分裂皮革的顶部表面层非常重要。在本文中,首先将PU(聚氨酯)泡沫层放置在分裂上,以增强第二次施加超细纤维PU树脂的粘附性。该泡沫使用着名的水性聚氨酯发泡技术。这种干燥的泡沫由于高孔隙率而具有良好的透气性。接下来,通过使用电纺聚氨酯树脂将超细纤维膜接下来放置泡沫层。该第二树脂在皮革晶粒层的网络结构中塑造胶原纤维。因此,该得到的电纺纤维生物膜模拟天然皮革的晶粒层。 SEM显示了这种电纺纤维仿真膜的形态和结构,如天然皮革的晶粒层的形态和结构。孔隙率和表观密度与皮革颗粒基本相同,皮革粒度分别为63.65%和583.878 kg / m(3)。生物体膜的空气和水蒸气渗透性也高达2250mL.cm(-2).h(-1)和8753.02μg(-1)cm(-2)h(-1)。因此,生物体膜在很大程度上恢复了呼吸分裂皮革的能力。因此,这种方法模拟了全粒皮革的性能和结构,是一种工业生产的新方法。

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    Qilu Univ Technol Shandong Acad Sci Sch Light Ind & Engn Jinan Peoples R China|China Natl Light Ind Council Key Lab Green Technol Leather Manufacture 3501 Daxue Rd Jinan 250353 Shandong Peoples R China;

    Qilu Univ Technol Shandong Acad Sci Sch Light Ind & Engn Jinan Peoples R China|China Natl Light Ind Council Key Lab Green Technol Leather Manufacture 3501 Daxue Rd Jinan 250353 Shandong Peoples R China;

    Qilu Univ Technol Shandong Acad Sci Sch Light Ind & Engn Jinan Peoples R China|China Natl Light Ind Council Key Lab Green Technol Leather Manufacture 3501 Daxue Rd Jinan 250353 Shandong Peoples R China;

    Qilu Univ Technol Shandong Acad Sci Sch Light Ind & Engn Jinan Peoples R China|China Natl Light Ind Council Key Lab Green Technol Leather Manufacture 3501 Daxue Rd Jinan 250353 Shandong Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
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