CN113071159B - 一种抑制细菌滋生的羽绒服面料及其制备方法 - Google Patents
一种抑制细菌滋生的羽绒服面料及其制备方法 Download PDFInfo
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Abstract
本发明涉及一种抑制细菌滋生的羽绒服面料及其制备方法,面料包括:外层;所述外层由外层纤维、抑菌纤维纺织制成;内层;所述内层由内层纤维、抑菌纤维纺织制成;粘接层;所述粘接层由抑菌纤维和胶水混合制成,所述粘接层粘接外层和内层并形成羽绒填充隔断;其中,抑菌纤维按重量份数计包括椰碳纤维、甲壳素、抑菌粉体、海藻酸钠、精油。本发明通过采用甲壳素、抑菌粉体和海藻酸钠与经苯乙醇稀释的精油混合搅拌,制成具有抑菌功能和除味香薰功能的抑菌溶液,在该抑菌溶液的浸泡润胀过程中,甲壳素、抑菌粉体能够快速进入多孔椰碳纤维的细胞壁中,从而制得的抑菌纤维在纺织面料中起到长期较好的抑菌、除味、留香等效果。
Description
技术领域
本发明属于羽绒服面料技术领域,具体涉及一种抑制细菌滋生的羽绒服面料及其制备方法。
背景技术
“抑菌”或“抗菌”羽绒服由于添加了一些助剂,使得羽绒产生了自洁的功能,较好地解决了长期以来困扰羽绒服的微生物二次污染问题,并大大提高了羽绒服穿着的舒适性和安全性。绿色(抑菌)羽绒服和功能(抗菌)羽绒服的出现,丰富了羽绒制品市场,给消费者营造了宽阔的选购空间,满足了不同层次消费者的消费需求。
纤维材料与人们的日常生活密切相关,服装和所有家用纺织品都是由纤维制作而成的。随着纤维科技的发展,衣服的色彩将更绚烂,穿着更舒适。食用功能纤维,能增强人体免疫力、健胃护胃、治疗肥胖症等;穿着这些功能纺织品,能抗菌防臭、透湿防水。
现有技术中在羽绒纤维与面料纤维里添加甲壳素、纳米助剂,可使羽绒服洗涤60次后依然保持抗菌、环保、不变形的特性。不论是“抑菌生态绒”羽绒服,还是“纳米抗菌绒”羽绒服,其抑菌、抗菌能力虽然永远不会消失,因为这些助剂已经与羽绒或纤维融为一体,只要羽绒或纤维存在,则助剂就会存在,但随着洗涤次数的增加,或是使用洗涤用品的不同,羽绒服的抑菌、抗菌力会逐渐减弱,降低了羽绒服的使用价值。
发明内容
本发明的目的就在于为了解决上述问题而提供一种抑制细菌滋生的羽绒服面料及其制备方法。
本发明通过以下技术方案来实现上述目的:
一种抑制细菌滋生的羽绒服面料,包括:
外层;所述外层由外层纤维、抑菌纤维纺织制成;
内层;所述内层由内层纤维、抑菌纤维纺织制成;
粘接层;所述粘接层由抑菌纤维和胶水混合制成,所述粘接层粘接外层和内层并形成羽绒填充隔断;
其中,抑菌纤维(按重量份数计)包括椰碳纤维40-50份、甲壳素19-25份、抑菌粉体15-23份、海藻酸钠12-24份、精油11-17份。
作为本发明的进一步优化方案,所述外层纤维与抑菌纤维质量比为7-9:1-3,所述外层纤维(按重量份数计)包括涤纶阳离子纤维65-75份和海藻生物基纤维25-35份。
作为本发明的进一步优化方案,所述内层纤维与抑菌纤维质量比为3-4:1-2,所述内层纤维(按重量份数计)包括涤纶阳离子纤维60-80份和玉米生物基纤维20-40份。
作为本发明的进一步优化方案,所述抑菌纤维与胶水质量比为1-2:3-4,且胶水采用热熔胶。
作为本发明的进一步优化方案,所述抑菌粉体(按重量份数计)包括超细芦荟粉体60-70份和苦豆子生物碱微粒30-40份。
作为本发明的进一步优化方案,所述精油为熏衣草香精油或柏木精油。
一种抑制细菌滋生的羽绒服面料的制备方法,包括以下步骤:
S1、抑菌纤维的制备;将甲壳素、抑菌粉体和海藻酸钠投入至经苯乙醇稀释的精油中,搅拌混合后加入椰碳纤维浸泡润胀,得到抑菌纤维;
S2、外层制备;以涤纶阳离子纤维为外包纤维旋转缠绕在由抑菌纤维和海藻生物基纤维组成的内芯外部,加捻后织造得到外层面料;
S3、内层制备;以涤纶阳离子纤维为外包纤维旋转缠绕在由抑菌纤维和玉米生物基纤维组成的内芯外部,加捻后织造得到内层面料;
S4、粘接层制备;将抑菌纤维和热熔胶混合并涂覆于外层和内层之间,外层和内层粘接于一体,得到羽绒服面料。
作为本发明的进一步优化方案,步骤S2-S3中,外芯和内芯分别由网络机网络复合纤维制成纱线,纱线由倍捻机加捻后采用喷水织机制造,得到面料。
作为本发明的进一步优化方案,步骤S1中各原料采用自动搅拌器搅拌15~25min,搅拌转速为500~1000r/min。
本发明的有益效果在于:
1)本发明通过采用甲壳素、抑菌粉体和海藻酸钠与经苯乙醇稀释的精油混合搅拌,制成具有抑菌功能和除味香薰功能的抑菌溶液,在该抑菌溶液的浸泡润胀过程中,甲壳素、抑菌粉体能够快速进入多孔椰碳纤维的细胞壁中,从而制得的抑菌纤维在纺织面料中起到长期较好的抑菌、除味、留香等效果;
2)本发明采用包覆纱技术,以涤纶阳离子纤维为外包纤维,旋转缠绕在由抑菌纤维组成的内芯外部,制成内外层面料,包覆后纱线会形成捻度,纤维不会松散产生毛羽,抑菌纤维以及抑菌微珠都被很好的包裹,减小洗涤摩擦面积或是与外界接触面积,甲壳素、抑菌粉体等抑菌因子缓慢释放,作用时间更长,也不易受到外界干扰;
3)本发明采用超细芦荟粉体和苦豆子生物碱微粒作为抑菌粉体与甲壳素混合,具备很好的抑菌效果,且其再与海藻酸钠、苯乙醇和精油混合,能够快速渗透至多孔的椰碳纤维中,从而使抑菌效果更好,时间更长,还具有除味留香功能;
4)本发明粘接层处采用抑菌纤维配合热熔胶混合制成,能够解决羽绒服粘接处厚度较薄、无羽绒填充导致的抑菌因子流失较快的问题;
5)本发明整个服装面料具备很好的抑菌、抗皱、环保等优点,且抑菌作用时间长,不易受到外界洗涤剂或是外界环境的干扰。
具体实施方式
下面对本申请作进一步详细描述,有必要在此指出的是,以下具体实施方式只用于对本申请进行进一步的说明,不能理解为对本申请保护范围的限制,该领域的技术人员可以根据上述申请内容对本申请作出一些非本质的改进和调整。
实施例1
一种抑制细菌滋生的羽绒服面料,包括:
外层;所述外层由质量比为7:3的外层纤维、抑菌纤维纺织制成;其中,所述外层纤维(按重量份数计)包括涤纶阳离子纤维65份和海藻生物基纤维35份;
内层;所述内层由质量比为3:2的内层纤维、抑菌纤维纺织制成;其中,所述内层纤维(按重量份数计)包括涤纶阳离子纤维60份和玉米生物基纤维40份;
粘接层;所述粘接层由质量比为2:3的抑菌纤维和胶水混合制成,且胶水采用热熔胶,所述粘接层粘接外层和内层并形成羽绒填充隔断;
其中,抑菌纤维(按重量份数计)包括椰碳纤维40份、甲壳素25份、抑菌粉体15份、海藻酸钠24份、精油11份。
所述抑菌粉体(按重量份数计)包括超细芦荟粉体60份和苦豆子生物碱微粒40份。
所述精油为熏衣草香精油。
所述抑制细菌滋生的羽绒服面料的制备方法,包括以下步骤:
S1、抑菌纤维的制备;将甲壳素、抑菌粉体和海藻酸钠投入至经苯乙醇稀释的精油中,经自动搅拌器以1000r/min的速度搅拌混合15min后加入椰碳纤维浸泡润胀,得到抑菌纤维;
S2、外层制备;在网络机作用下,以涤纶阳离子纤维为外包纤维旋转缠绕在由抑菌纤维和海藻生物基纤维组成的内芯外部,经倍捻机加捻后采用喷水织机织造得到外层面料;
S3、内层制备;在网络机作用下,以涤纶阳离子纤维为外包纤维旋转缠绕在由抑菌纤维和玉米生物基纤维组成的内芯外部,经倍捻机加捻后采用喷水织机织造得到内层面料;
S4、粘接层制备;将抑菌纤维和热熔胶混合并涂覆于外层和内层之间,外层和内层粘接于一体,得到羽绒服面料。
实施例2
一种抑制细菌滋生的羽绒服面料,包括:
外层;所述外层由质量比为8:2的外层纤维、抑菌纤维纺织制成;其中,所述外层纤维(按重量份数计)包括涤纶阳离子纤维70份和海藻生物基纤维30份;
内层;所述内层由质量比为3.5:1.5的内层纤维、抑菌纤维纺织制成;其中,所述内层纤维(按重量份数计)包括涤纶阳离子纤维70份和玉米生物基纤维30份;
粘接层;所述粘接层由质量比为1.5:3.5的抑菌纤维和胶水混合制成,且胶水采用热熔胶,所述粘接层粘接外层和内层并形成羽绒填充隔断;
其中,抑菌纤维(按重量份数计)包括椰碳纤维45份、甲壳素22份、抑菌粉体18份、海藻酸钠16份、精油14份。
所述抑菌粉体(按重量份数计)包括超细芦荟粉体65份和苦豆子生物碱微粒35份。
所述精油为熏衣草香精油。
所述抑制细菌滋生的羽绒服面料的制备方法,包括以下步骤:
S1、抑菌纤维的制备;将甲壳素、抑菌粉体和海藻酸钠投入至经苯乙醇稀释的精油中,经自动搅拌器以750r/min的速度搅拌混合20min后加入椰碳纤维浸泡润胀,得到抑菌纤维;
S2、外层制备;在网络机作用下,以涤纶阳离子纤维为外包纤维旋转缠绕在由抑菌纤维和海藻生物基纤维组成的内芯外部,经倍捻机加捻后采用喷水织机织造得到外层面料;
S3、内层制备;在网络机作用下,以涤纶阳离子纤维为外包纤维旋转缠绕在由抑菌纤维和玉米生物基纤维组成的内芯外部,经倍捻机加捻后采用喷水织机织造得到内层面料;
S4、粘接层制备;将抑菌纤维和热熔胶混合并涂覆于外层和内层之间,外层和内层粘接于一体,得到羽绒服面料。
实施例3
一种抑制细菌滋生的羽绒服面料,包括:
外层;所述外层由质量比为9:1的外层纤维、抑菌纤维纺织制成;其中,所述外层纤维(按重量份数计)包括涤纶阳离子纤维75份和海藻生物基纤维25份;
内层;所述内层由质量比为4:1的内层纤维、抑菌纤维纺织制成;其中,所述内层纤维(按重量份数计)包括涤纶阳离子纤维80份和玉米生物基纤维20份;
粘接层;所述粘接层由质量比为1:3的抑菌纤维和胶水混合制成,且胶水采用热熔胶,所述粘接层粘接外层和内层并形成羽绒填充隔断;
其中,抑菌纤维(按重量份数计)包括椰碳纤维50份、甲壳素19份、抑菌粉体23份、海藻酸钠12份、精油17份。
所述抑菌粉体(按重量份数计)包括超细芦荟粉体70份和苦豆子生物碱微粒30份。
所述精油为柏木精油。
所述抑制细菌滋生的羽绒服面料的制备方法,包括以下步骤:
S1、抑菌纤维的制备;将甲壳素、抑菌粉体和海藻酸钠投入至经苯乙醇稀释的精油中,经自动搅拌器以500r/min的速度搅拌混合25min后加入椰碳纤维浸泡润胀,得到抑菌纤维;
S2、外层制备;在网络机作用下,以涤纶阳离子纤维为外包纤维旋转缠绕在由抑菌纤维和海藻生物基纤维组成的内芯外部,经倍捻机加捻后采用喷水织机织造得到外层面料;
S3、内层制备;在网络机作用下,以涤纶阳离子纤维为外包纤维旋转缠绕在由抑菌纤维和玉米生物基纤维组成的内芯外部,经倍捻机加捻后采用喷水织机织造得到内层面料;
S4、粘接层制备;将抑菌纤维和热熔胶混合并涂覆于外层和内层之间,外层和内层粘接于一体,得到羽绒服面料。
对比例1
该对比例提供一种抑制细菌滋生的羽绒服面料,其制备步骤以及原料与实施例2基本相同,唯一区别在于:抑菌纤维中未添加甲壳素和抑菌粉体。
对比例2
该对比例提供一种抑制细菌滋生的羽绒服面料,其制备步骤以及原料与实施例2基本相同,唯一区别在于:抑菌纤维中未添加经苯乙醇稀释的精油。
对比例3
该对比例提供一种抑制细菌滋生的羽绒服面料,其制备步骤以及原料与实施例2基本相同,唯一区别在于:内外层面料的制备中未采用包覆纱技术,而是替换成多股纱线普通缠绕技术。
对上述实施例1-3以及对比例1-3制得的羽绒服面料进行抗菌性能测试。具体的采用AATCC-90试验法(晕圈试验法):在琼脂培养基上接种试验菌(金黄色葡萄球菌、大肠杆菌和白色念珠菌),再紧贴试样,于37℃下培养24h后,用放大镜观察菌类繁殖情况和试样周围无菌区的晕圈大小,实施例1-3面料与对比例1-3面料的试验情况比较,计算后得到以下数据:
由上表可知,本发明通过采用甲壳素、抑菌粉体和海藻酸钠与经苯乙醇稀释的精油混合搅拌,在该抑菌溶液的浸泡润胀过程中,甲壳素、抑菌粉体能够快速进入多孔椰碳纤维的细胞壁中,从而制得的面料能够起到长期且较好的抑菌效果,并且精油的添加能够使抑菌因子释放缓慢,延长抑菌时间,同样的采用包覆纱技术制备内外层面料,将抑菌材料包裹紧密也大大延长了抑菌作用时间。
以上所述实施例仅表达了本发明的几种实施方式,其描述较为具体和详细,但并不能因此而理解为对本发明专利范围的限制。应当指出的是,对于本领域的普通技术人员来说,在不脱离本发明构思的前提下,还可以做出若干变形和改进,这些都属于本发明的保护范围。
Claims (8)
1.一种抑制细菌滋生的羽绒服面料的制备方法,其特征在于,所述羽绒服面料包括:
外层;所述外层由外层纤维、抑菌纤维纺织制成;
内层;所述内层由内层纤维、抑菌纤维纺织制成;
粘接层;所述粘接层由抑菌纤维和胶水混合制成,所述粘接层粘接外层和内层并形成羽绒填充隔断;
其中,抑菌纤维按重量份数计包括椰碳纤维40-50份、甲壳素19-25份、抑菌粉体15-23份、海藻酸钠12-24份、精油11-17份;
所述制备方法包括以下步骤:
S1、抑菌纤维的制备;将甲壳素、抑菌粉体和海藻酸钠投入至经苯乙醇稀释的精油中,搅拌混合后加入椰碳纤维浸泡润胀,得到抑菌纤维;
S2、外层制备;以涤纶阳离子纤维为外包纤维旋转缠绕在由抑菌纤维和海藻生物基纤维组成的内芯外部,加捻后织造得到外层面料;
S3、内层制备;以涤纶阳离子纤维为外包纤维旋转缠绕在由抑菌纤维和玉米生物基纤维组成的内芯外部,加捻后织造得到内层面料;
S4、粘接层制备;将抑菌纤维和热熔胶混合并涂覆于外层和内层之间,外层和内层粘接于一体,得到羽绒服面料。
2.根据权利要求1所述的一种抑制细菌滋生的羽绒服面料的制备方法,其特征在于:所述外层纤维与抑菌纤维质量比为7-9:1-3,所述外层纤维按重量份数计包括涤纶阳离子纤维65-75份和海藻生物基纤维25-35份。
3.根据权利要求1所述的一种抑制细菌滋生的羽绒服面料的制备方法,其特征在于:所述内层纤维与抑菌纤维质量比为3-4:1-2,所述内层纤维按重量份数计包括涤纶阳离子纤维60-80份和玉米生物基纤维20-40份。
4.根据权利要求1所述的一种抑制细菌滋生的羽绒服面料的制备方法,其特征在于:其特征在于:所述抑菌纤维与胶水质量比为1-2:3-4,且胶水采用热熔胶。
5.根据权利要求1所述的一种抑制细菌滋生的羽绒服面料的制备方法,其特征在于:其特征在于:所述抑菌粉体按重量份数计包括超细芦荟粉体60-70份和苦豆子生物碱微粒30-40份。
6.根据权利要求1所述的一种抑制细菌滋生的羽绒服面料的制备方法,其特征在于:所述精油为熏衣草香精油或柏木精油。
7.根据权利要求1所述的一种抑制细菌滋生的羽绒服面料的制备方法,其特征在于:步骤S2-S3中,外芯和内芯分别由网络机网络复合纤维制成纱线,纱线由倍捻机加捻后采用喷水织机制造,得到面料。
8.根据权利要求1所述的一种抑制细菌滋生的羽绒服面料的制备方法,其特征在于:步骤S1中各原料采用自动搅拌器搅拌15~25min,搅拌转速为500~1000r/min。
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