CN113243234B - 用于果树的水果的具有纳米层压膜的袋及其制造方法 - Google Patents

用于果树的水果的具有纳米层压膜的袋及其制造方法 Download PDF

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Publication number
CN113243234B
CN113243234B CN202011003556.8A CN202011003556A CN113243234B CN 113243234 B CN113243234 B CN 113243234B CN 202011003556 A CN202011003556 A CN 202011003556A CN 113243234 B CN113243234 B CN 113243234B
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China
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fruit
fruit bag
film
bag
opening
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Expired - Fee Related
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CN202011003556.8A
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CN113243234A (zh
Inventor
金孝奎
高君豪
李民正
金东根
權珉慶
朴元欽
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KYONGSANGBUK-DO AGR ICHLTURAL TECHNOLOGY ADMINISTRATION
Reling Co ltd
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KYONGSANGBUK-DO AGR ICHLTURAL TECHNOLOGY ADMINISTRATION
Reling Co ltd
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Abstract

提供果袋及其制造方法,例如,用于果树的水果的果袋可包括配置成围绕水果的内表面、配置成暴露于外部的外表面、在内表面和外表面的相同位置处以预定尺寸形成的开口、通过将聚合物溶液用作纳米纤维的原材料的电纺丝来生成的纳米膜、在纳米膜的一侧或两侧上层压的用于强度增强的无纺布、以及覆盖开口的整个表面的纳米层压膜,从而在保持优异的透气性的同时,可适当地保持湿度并且抵抗各种外部环境的影响。

Description

用于果树的水果的具有纳米层压膜的袋及其制造方法
相关申请的交叉引用
本申请要求于2020年1月28日提交的第10-2020-0009742号韩国专利申请的优先权及权益,该韩国专利申请的全部内容通过引用并入本文。
技术领域
本发明涉及用于果树的水果的附接有纳米膜和具有层压无纺布的纳米层压膜的果袋以及果袋的制造方法。
背景技术
使用果袋种植水果的果袋栽培方法主要使用于在农药的发展微不足道时在夏季因漫长的雨季而导致遭受害虫侵害的韩国和日本。
从那以后,由于农药的广泛使用以及随着工业化的发展,农村劳动力的减少,因此选择了非果袋栽培来代替果袋栽培,但是广泛使用果袋栽培来预防腐烂、炭疽和/或铜绿的出现。
近来,由于梨和/或苹果的海外出口的迅速增加,水果外观的重要性已被大大强调,并且使用果袋的袋栽培的需求已增加,特别是,使用果袋的栽培水果以控制在出口水果时会是检疫的问题的害虫的需求正在增加。
大多数常规的果袋是由进口报纸制成的报纸袋,但是报纸袋具有高的吸湿率并且极有可能传播铜绿。
也尝试了用石蜡处理果袋的内层以降低果袋中的湿度的方法。然而,在夏季的雨季,降低湿度的作用微乎其微,因此不能显著改善湿度的降低。
另外,近年来,已进行了各种尝试来提高袋的遮光性以提高果袋的栽培效果,或者使用在果袋本身上使用药物进行抗菌和驱虫处理的双色果袋。
特别地,已提出了使用各种透气膜的技术来解决常规纸袋的上述弱的耐水性并且有效地克服透气性的问题,而这是塑料袋材料果袋的局限性。
例如,存在着如添加无机填料以制造透气膜的方法或在膜的后处理上应用如压花处理的物理转变的方法。
然而,在这种透气膜的情况下,透气率也示出与纸材相同的水平或更高的水平。
该材料本身太软而不能用作果袋,因此可加工性很差。即使将水果装入果袋后,其也会粘在水果上,并且存在着损坏水果果皮的风险。
着色在需要根据特定水果使用着色袋时是困难的。
透气性直接影响水果的糖含量,如果因透气性太高而使袋内环境因外部空气中的变化而迅速变化,则存在着水果果皮破裂或过热的问题。另外,存在着袋的耐久性也会降低的问题。
应用为确保透气性的网状材料具有大孔(100μm或更大),因此遮光性差,而这不适合于需要遮光的着色果袋。
相反,增加纸的克每平方米(GSM)或为了降低透气性而使用低通风袋可能增加果袋的重量。其结果,水果过早掉落的风险可能增加。
另外,由于袋中缺乏柔韧性和脱水性,因此难以装袋和缓慢干燥。
相应地,迫切具有足够的透气性并且具有优异的遮光性能以及不会因害虫或外部环境而物理变形的需要果袋。
发明内容
要解决的技术问题
本发明涉及克服现有技术的问题和局限性,
本发明的目的在于提供可确保用于果树的果袋的透气性,防止水从外部流入,散发水蒸气,并且控制湿度的用于果树的果袋。
本发明的另一个目的是提供易于根据水果的特性对果袋进行着色并且具有高疏水性,从而可长时间保持水果的物理强度的用于果树的果袋。
解决问题的手段
本发明是为了解决上述技术问题而提出的,用于果树的果袋,该果袋具有:将内侧形成为围绕水果的部分的内表面、以及将外侧形成为暴露于外部的外表面;
在内表面和外表面的相同位置处以预定尺寸形成的至少一个开口;以及
配置成覆盖开口的纳米层压膜。
此时,纳米层压膜可包括通过将聚合物溶液用作纳米纤维的原材料的电纺丝来生成的纳米膜;以及
层压在纳米膜的一侧或两侧上的用于增强强度的无纺布。
纳米膜和/或用于强度增强的无纺布可涂覆有2.5至10g/m2的热熔粘合剂。
纳米膜的重量可在2.0g/m2至6.0g/m2的范围内。
纳米膜的厚度可在3.0μm至15.0μm的范围内,并且纳米膜的透气性在125Pa的气氛下优选为0.6立方英尺/分钟(CFM)或更高。
另外,纳米层压膜的形状优选为矩形以便利切分并最小化材料的浪费,并且开口的形状可为圆形形状以便于冲孔。然而,不限于此。
另外,纳米层压膜可附接到内表面,
内表面和外表面可分开制造并且彼此接合,并且纳米层压膜可插入在内表面与外表面之间的界面处。
特别地,外表面优选地由无纺布制成以便利促销短语、产品分类和信息的印刷或着色。
另外,外表面和内表面可为由相同材料制成的单个层,并且内表面可被涂覆以具有防水涂层以防止水分渗透。
作为根据本发明的实施例的用于水果保护的果袋的制造方法,具有围绕水果的内表面和外表面的果袋的制造方法可包括:
通过在内表面和外表面的相同位置处冲孔来形成具有预定尺寸的开口;
附接纳米层压膜以覆盖开口;以及
制造具有足以包裹水果的空间的袋。
此时,将聚合物溶液用作纳米纤维的原材料的电纺丝来制备纳米膜,以生产纳米膜,并且将用于强度增强的无纺布层压在纳米膜的一侧或两侧上。
纳米膜和/或用于强度增强的无纺布可通过施涂覆2.5至10g/m2的热熔粘合剂来层压,并且纳米膜的重量为2.0g/m2至6.0g/m2,并且纳米膜的厚度优选为3.0μm至15.0μm,并且纳米膜的透气性在125Pa的压气氛下优选为0.6CFM或更大。然而,其不限于此。
此时,可分别制造作为围绕水果的部分的内表面和作为暴露于外部的部分的外表面,并且通过以预定尺寸冲孔内表面和外表面的相同位置中的每个来形成开口。
内表面和外表面可在用于覆盖开口的纳米层压膜插入在内表面与外表面之间的状态下接合。
同样地,形成在内表面和外表面上的开口被制造成圆形形状以便于冲孔,并且纳米层压膜优选被切割成正方形以容易地切分并且最小化材料浪费。
然而,根据本发明的一个或多个方面,形状可变化。
纳米层压膜的切割可通过使用沿着缠绕在第一辊上的纳米层压膜的宽度方向以规则间隔排列的多个刀在纵向方向上切割的同时缠绕在第二辊上,并且在对缠绕在第二辊上的纳米层压膜退绕的同时在宽度方向上切割来执行。
此时,外表面由无纺布制成以便能够在其上进行印刷,并且优选在外表面上印刷各种促销短语、产品信息或使用信息等,并且优选地,在内表面上施涂防潮和防水涂层。
另外,将纳米层压膜附接到内皮的内表面是良好的。外壳和内皮由相同材料的单个层制成,并且疏水涂层被施涂到内皮的内表面。
特别优选在形成开口之后在外表面上印刷并且将纳米层压膜附接在内表面上。
发明效果
根据本发明的方面,具有以上配置的用于果树的水果的果袋,其在透气性上是优异的,以防止因果袋内部和外部之间的温差导致结露。
由于纳米层压膜的性质,因此空气通过其穿过并且水分不通过其穿过,其具有利用着色袋的效果。
另外,从果袋的内部产生的水蒸气可被排放到果袋的外部,从而防止因水分而导致的各种病原体的传播。
此外,防止因水果表面上过多的水分吸收而对果皮造成伤害、破裂和/或颜色变化。
特别地,能够通过防止夏季在高温下密封果袋中的温度升高来减少因水果的高温导致的水果晒伤。
另外,使用能够印刷各种信息的无纺布,并且具有用于防水的防水涂层,可确保透气性,因此在收获品质优良且不损害外观的水果方面具有显著的效果。
附图说明
通过结合附图的以下详细描述,本发明的某些示例性实施例的上述和其它目的、特征和优点将更加显而易见,在附图中:
图1是示出根据本发明的实施例的用于水果的果袋的立体图,
图2是示出应用于图1的纳米层压膜的配置的分解立体图,
图3是示出根据本发明的一方面的纳米层压膜的分切过程的示意图,
图4是示出根据本发明的另一实施例的用于水果的果袋的配置的立体图,
图5是示出根据本发明的实施例的制造工艺的立体图,
图6是根据本发明的实施例作为实例示出图1的用于果树的果袋中的开口的形状为矩形而不是圆形形状的开口的立体图。
具体实施方式
在下文中,将通过根据附图的优选实施例更详细地描述根据本发明的一个或多个方面的果袋。
图1是示出根据本发明的实施例的用于水果的果袋的外观的立体图。
图1的用于水果的果袋可包括将内侧形成为围绕水果的部分的内表面100、以及将外侧形成为暴露于外部的外表面200。
如稍后将描述的,外表面和内表面是相同材料的单个层,并且可为可指定内表面和内表面的结构。
尽管图1示出了相同材料的单个层,但是可使用不同的材料分别制造外表面和内表面,并且将它们堆叠并接合在一起。
内表面100和外表面200均为具有优异的透气性并且具有良好的墨渗透性的无纺布或纸浆材料,因此易于打印诸如商业信息、产品信息和使用信息的信息。
然而,由于该无纺布或纸浆材料为吸湿性的,并且自身保持水分,因此存在高温高湿环境下的物理强度差,且在内表面上涂覆有疏水剂以防止水分渗透。
疏水性涂覆剂可包括石蜡、石蜡乳液、油、脂肪乳液,并且疏水剂的干燥方法可包括冷却和热风方法。
例如,冷却方法可包括以下操作:
1)通过将选自由作为增强材料的乙烯乙酸乙烯酯共聚物、聚苯乙烯、低密度聚乙烯和聚乙酸乙烯酯构成的集群中的一种或两种以上的树脂添加到通过加热熔融的石蜡溶液来制备液体涂料组合物。
2)将液体涂料组合物放入储罐中,使其通过纸材在两侧浸渍,且然后热压以使涂料组合物渗透到纸材内部并施涂均匀的厚度。
3)冷却方法是在冷却辊上快速冷却涂覆有液体涂料组合物的纸材的方法,而热风方法是通过在冷却辊上吹热气来进行干燥的方法。
图1中所示的用于果树的水果的果袋1具有顶部开口的一般封套的形状,并且在果袋1的中间具有直径为约10cm的圆形开口300。
开口300通过使用圆形夹具在图1中所示的果袋上冲孔来形成。
开口300的形状是圆形的,通过在冲孔期间使成角度的部分最小化而没有凹痕,并且在任何方向上都是对称的,从而在外观上提供稳定感。
即,开口300不限于圆形形状,并且如果需要,则可具有如正方形的各种形状,并且其尺寸也可根据水果的类型而变化。
开口300的数量也不一定是一个,而是开口300可通过对各种形状、尺寸和数量进行组合来形成。
作为根据本发明的一方面的用于水果的果袋1的主要特征中的一个,附接有覆盖开口300的整个区域的纳米层压膜400。
图2是示出根据本发明的一个或多个方面的用于果树的果袋1中使用的纳米层压膜400的结构的分解立体图。
纳米层压膜400可具有在具有透气性而水分子不可渗透的气隙纳米膜410的一侧上具有无纺布420的层压结构,以增强纳米层压膜400的强度。
在图1中所示的用于水果的果袋1的情况下,纳米层压膜400附接到果袋1的内表面100(在图1中用虚线表示),在这种情况下,如果纳米层压膜400附接到外表面,不可避免的是在开口300以外的区域中废料暴露于外部,并且由于雨水或农药的喷洒而导致异物可附接到其上。
纳米层压膜400根据开口300的尺寸而切割成预定尺寸,并且可在果袋1的展开图中通过压靠内表面或者通过热处理方法等来附接以覆盖开口300的整个区域,并且也可通过粘合剂来附接。
纳米层压膜400的形状被切成正方形以便于将在后面描述的切分,并且最小化材料的浪费。
此时,优选的是,纳米层压膜400的纳米膜410在朝向内部的方向上被附接。
因为纳米膜410对于外部冲击或外力相对脆弱,因此当由大雨、鸟类或昆虫引起的物理外力作用时,纳米膜410容易被损坏。
另外,如果纳米膜410被部分损坏,则其可能影响透气性或防水性。
除了其中用于强度增强的无纺布420被层压到纳米膜410的一个表面上的结构以外,层压到两个表面上的结构也是可能的。
纳米膜410层压在用于强度增强的无纺布420的两侧上的结构也是可能的。
在下文中,将对根据本发明的一方面的用于水果的果袋1中使用的纳米层压膜400的制造方法进行描述。
在本发明的用于果树的果袋1中使用的纳米层压膜400为申请人大量生产的产品。
当将纳米层压膜400使用在用于果树的果袋1中时,已认识到作为传统的果袋可预测几乎没有独特的效果,并且已衍生出本发明。
1.纳米膜410的制备
使用电纺丝装置,将在溶解有聚合物的电纺丝溶液(聚合物的重量比为1:1的溶液)中,将纺丝部与层叠部以10至30cm的距离间隔开。在室温条件下通过将施加的电压调节为10至55kV的同时将电纺丝溶液的流速调节到0.02至0.05ml/min而由电纺丝来制备纳米膜。
用作纳米纤维的原材料的聚合物可包括选自由柔性材料、热塑性材料、聚酰亚胺和液晶聚合物构成的集群中的任一个或其组合物。例如,用作纳米纤维的原材料的聚合物可包括选自由聚氨酯(PU)、聚丙烯腈(PAN)、聚乙烯醇(PVA)、尼龙、聚偏氟乙烯(PVdF)和聚羟基丁酸酯(PHB)、聚醚砜(PES)、聚醚酰亚胺(PEI)、聚己内酯(PCL)、聚乳酸(PLA)、聚-L-乳酸(PLLA)构成的集群中的任一个或其组合物。
另外,用于溶解电纺丝的上述聚合物的溶剂可包括选自由二甲基乙酰胺(DMA)、N,N-二甲基甲酰胺(DMF)、N-甲基-2-吡咯烷酮(NMP)、二甲基亚砜(DMSO)、四氢呋喃(THF)、二甲基乙酰胺(DMAc)、碳酸亚乙酯(EC)、碳酸二乙酯(DEC)、碳酸二甲酯(DMC)、碳酸乙基甲基酯(EMC)、碳酸亚丙酯(PC)、水、乙酸、甲酸、氯仿、二氯甲烷、丙酮和乙醇构成的集群中的任一个或其组合物。
2.用于强度增强的无纺布420的制造
通过在上述的纳米膜410的一侧上层压用于强度增强的无纺布420来获得本发明的用于水果的果袋1中使用的纳米层压膜400。
用于强度增强的无纺布420是用于增强易于撕裂的纳米膜410的配置,以执行允许空气穿过其而不渗透液体的固有功能。
PP、PE、PET或类似物用作强度增强无纺布420的原材料。
根据本发明的一方面,使用聚丙烯(PP),根据纺粘法来制造在纳米层压膜400中使用的强度增强的无纺布420。
即,将PP托盘放置在水容器中,且然后放置在料斗中并放置在螺杆挤出机中。
加热挤出机的套筒隔板,用连续的预过滤器熔融,在挤出机中切分,且然后放置在旋转箱中。
计量泵的精确测量、熔体计量到喷丝板中,通过喷嘴孔喷出以形成连续的熔体流,即,形成原材料纤维。
原材料纤维被单体吸收,被冷空气冷却并且被牵伸到空气中,且最终形成长丝。
长丝通过摆辊均匀地打孔,正压和负压的气流由输送帘送至热轧机,并且均匀地放置在通过热轧机热粘合的网帘上以形成放射性胶。
3.粘合剂
根据本发明的实施方式,纳米膜410和用于强度增强的无纺布420通过粘合剂层压。
热熔粘合剂是当施加热量时变为液态的热塑性塑料,并且丙烯酸树脂用作具有在80%或更高的湿度下固化的特性的粘合剂。
固体粘合剂被加热以使其变为液体,并且施涂到雕刻辊的表面上以施涂到无纺布220的一个表面上以进行强度增强。
热熔粘合剂以点或线的形式施涂在无纺布220的一侧上以进行强度增强,并且通过附接纳米膜210并且挤压无纺布220和纳米膜220来层压。
作为将热熔粘合剂施涂到用于强度增强的无纺布的表面上的方法,存在有喷雾法、辊法、毯式转印法等,但是对施涂方法没有特别限制,只要不损害粘合后的纳米膜的自然功能即可。
此处,根据无纺布的种类,待转印到无纺布上的粘合剂的重量可由各种形式制成,优选地,相对平坦的无纺布的表面为约4至10g/m2,并且相对粗糙的无纺布的表面可使用至约16g/m2
即,施涂到无纺布上的热熔粘合剂的重量在4至16g/m2的范围内制成。
如果热熔粘合剂的重量小于4g/m2,则有可能导致纳米膜210与用于强度增强的无纺布220之间因它们之间的粘合性减低而分离。如果热熔粘合剂的重量超过16,则其影响到透气性并且不仅降低透气性,而且增加纳米层压膜的总重量并且使粘合剂泄漏。因此,重要的是不要超过上述数值范围。
4.层压
纳米膜410被缠绕在第一辊上,并且用于强度增强的无纺布420被缠绕在第二辊上,并且纳米层压膜400通过旋转并压制与第二辊接触地旋转的片状辊来制造。
首先,在挤出机中在约190℃的温度下使粘合剂熔融,且然后使用刮刀以均匀的厚度将粘合剂施涂到雕刻辊的表面。
然后,当用于强度增强的无纺布420进入雕刻辊与第二辊之间时,施涂到雕刻辊上的粘合剂被转印到用于强度增强的无纺布420的表面。
施涂有粘合剂的无纺布通过附接到从第一辊进入的纳米膜410,在经过加压辊的同时进行层压。
此时,雕刻辊可在3至5kg/cm2的范围内的压力下压制无纺布420,并且雕刻辊的表面可保持约190℃的温度。
然而,应理解,雕刻辊的表面温度不限于此。
5.纳米层压膜400的制备
图3是用于将纳米层压膜400切分(切割)成与用于果树的水果的果袋1的开口300的尺寸对应的装置的示意图。
如图3中所示,使用沿着缠绕在第一辊R1(仅在切割工艺中对辊进行顺序地编号)上的纳米层压膜400的宽度方向以规则间隔排列的多个刀在纵向方向上进行切分,在滚动的同时缠绕在第二辊R2上。
在退绕第二辊R2的同时在宽度方向上切割纳米层压膜400以产生矩形纳米层压膜400。
此时,调节第二辊的退绕速度和在宽度方向上的切割速度以切割所需尺寸的纳米层压膜400,从而可以规则间隔排列纳米层压膜400。
根据申请人的长期研究结果,如果纳米膜410的透气性在125Pa的气氛中小于0.6CFM,则从水果中散发出的水分保留在果袋中,从而因微生物繁殖而降低了产率。
其结果,发现应确保至少0.6CFM或更高的透气性。
另外,虽然纳米膜410的透气性的上限没有意义,但是如果为100CFM或更大,则容易从外部吸收水分,雨水直接冲击到果袋中,由此水果可能腐烂。这种程度的透气性无法被成为通过电纺丝的纳米膜。
如上所述,如果在125帕的情况下将纳米膜的厚度增厚以满足0.6cfm的下限,则果袋本身的重量会增加,并且随着果树的生长,存在着水果过早掉落的风险。当重心朝向果袋的开口移动时,树干可能被拉紧,因此发现应将重量调节为在2.0g/m2至6.0g/m2的范围内。
另外,发现当纳米膜的厚度为15μm或更大时,通气性差,并且如果纳米膜的厚度为3.0μm或更小,则抗拉强度减弱并且可加工性劣化,因此应将厚度调节为在3.0μm至15.0μm范围内。
图4是本发明的另一实施例,用于果树的果袋1的内表面100和外表面200分别被制造并且接合在一起。
其是示出在纳米层压膜400介于内表面100与外表面200之间的状态下使内表面100和外表面200接合的结构的分解立体图。
平面图中间的虚线表示用果袋折叠时的虚拟折叠。
虽然根据本实施例的结构具有分别制造内表面100和外表面200的缺点,但是在将纳米层压膜400放置在内表面100与外表面200之间的开口300的位置的情况下,由于纳米层压膜400通过将内表面100和外表面200接合而被附接,因此工艺的数量可被减少。在附接纳米层压膜400之后,剩余的废料在外观上非常干净,因为其在内部或外部的任何地方都不可见。
另外,由于纳米层压膜400的附接部分在内部和外部均不暴露,因此基本上阻挡了杂质被捕集或积水的现象。
另外,当分别制造内表面100和外表面200时,如果需要,内表面100和外表面200的材料可彼此不同。在上述纸浆材料的内表面100上进行疏水性涂覆是比较容易的。
即使外表面200的外侧由具有优异的印刷性的无纺布构成,由于纳米层压膜400的高透气性和防水性,可保持本发明的用于果树的果袋10的基本效果。
另外,通过考虑日光对果袋200的外表面的影响以及根据每种水果的特性进行着色,能够以高产率和高品质生产水果。
图5是示出内表面100和外表面200由相同的材料制成单个层的根据实施例的果袋的制造工艺的立体图。
图5中所示的制造方法是在外表面200上印刷各种信息,在内表面上,在施涂了疏水涂层的平面上形成具有约为10cm的直径的开口300。
通过上述方法制备的切割成具有一侧的长度为约10cm的正方形的纳米层压膜400用粘合剂将其附接并用袋折叠来以从内表面覆盖开口300来完成。
另外,如图4中所示,根据本发明的另一实施例的用于果树的果袋的制造方法,通过在内表面100和外表面200的相同位置处冲孔而形成开口300,在将如上所述的切割的纳米层压膜400放置在内表面100与外表面200之间之后,通过折叠果袋将内表面100和外表面200接合并折叠。
当然,即使在这种情况下,各种信息也被印刷在外表面200上。
内表面100处于疏水涂层中,但是可尽可能地改变印刷、疏水涂层,开口300的形成等的顺序。
由于纳米层压膜具有层压无纺布和纳米膜的结构,因此根据本发明的一个或多个方面,其可充分地应用于要求高着色和高拉伸强度的果袋,即,基于果糖含量的数根据白度而不同的研究结果,根据水果而具有优选的颜色,并且由于纳米膜本身是白色的,因此可对无纺布进行着色以强度增强,因此可充分地证明这种着色的效果。
图6是示出图1中所示的用于果树的果袋1中的开口的形状可文除了圆形以外的各种形状的立体图。
即,图6中所示的用于果树的水果的果袋1示出了开口300的形状为近似矩形的实例。
图6的用于果树的果袋1也是常规的具有开口顶部的封套形状,并且大致矩形的开口300在果袋的中间在纵向方向上以约3cm的宽度延伸。由于开口300的整个区域从外部覆盖纳米层压膜400,因此,开口300由虚线表示,与图1不同,纳米层压膜400由实线表示。
如上所述,已根据优选实施例描述了用于果树的果袋1,但这旨在帮助理解本发明,而不旨在限制本发明的技术范围。
当然,在不背离本发明的技术范围的情况下,各种设计改变、修改和变换是可能的。
例如,除了诸如果袋和纳米膜的整体形状的结构或尺寸的变形以外开口300和/或纳米层压膜400的形状、数量、尺寸等可进行各种改变。
在以不同的材料层压内表面和外表面的结构的情况下,可存在以层压状态冲孔开口的情况,或者可在层压之前通过单独冲孔而形成开口。
另外,将纳米层压膜400附接到内表面100的方法可为作为机械方法的用线或绳进行困扎的方法,或者可为利用热塑性膜的熔融现象进行的热接合。其可为使用粘合剂的接合,并且可应用各种方法,诸如使用高频电场的高频接合或利用通过超声波的振动能量的超声接合。
应注意,措辞“包括(comprising)”不排除其它元件或步骤,并且“一(a)”或“一(an)”不排除多个。而且,与不同实施例相关联地描述的元件可被组合。
本发明的实施不限于附图中所示和上面描述的优选实施例。相反,即使在根本不同的实施例的情况下,也可使用所示的解决方案和根据本发明的原理的多种变型。

Claims (18)

1.一种用于果树的水果的果袋,包括:
内表面,所述内表面配置成围绕所述水果;
外表面,所述外表面配置成暴露于外部;
开口,所述开口在所述内表面和所述外表面的相同位置处以预定尺寸形成;
纳米膜,所述纳米膜通过将聚合物溶液用作纳米纤维的原材料的电纺丝来生成;
用于强度增强的无纺布,用于强度增强的所述无纺布层压在所述纳米膜的一侧或两侧上;以及
纳米层压膜,所述纳米层压膜覆盖所述开口的整个表面,
其中,所述纳米膜的重量为2.0g/m2至6.0g/m2,所述纳米膜的厚度在3.0μm至15.0μm的范围内,所述纳米膜的透气性在125Pa的压力下大于0.6CFM。
2.如权利要求1所述的果袋,其中,所述纳米膜和/或强度增强的所述无纺布通过涂覆2.5至10g/m2的热熔粘合剂来层压。
3.如权利要求1所述的果袋,其中,所述纳米层压膜的形状呈矩形。
4.如权利要求1所述的果袋,其中,所述开口的形状为圆形形状。
5.如权利要求1所述的果袋,其中,所述纳米层压膜附接在所述内表面上。
6.如权利要求1所述的果袋,其中,所述内表面和所述外表面被分别制造,且然后彼此接结,并且所述纳米层压膜插入在所述内表面与所述外表面之间的界面处。
7.如权利要求1所述的果袋,其中,所述外表面由无纺布制成。
8.如权利要求7所述的果袋,其中,所述内表面和所述外表面为相同材料的单个层,并且所述内表面涂覆有疏水涂层。
9.如权利要求5所述的果袋,其中,所述内表面和所述外表面为相同材料的单个层,并且所述内表面涂覆有疏水涂层以防止水分渗透。
10.一种用于果树的果袋的制造方法,其中,所述果袋具有围绕水果的内表面和外表面,所述方法包括:
通过在所述内表面和所述外表面的相同位置处冲孔来形成预定尺寸的开口;
通过作为纳米纤维的原材料的聚合物溶液的电纺丝来制备纳米膜;
切割并附接通过在所述纳米膜的一侧或两侧上层压用于强度增强的无纺布而制成的纳米层压膜以覆盖所述开口的整个前表面;
以封套的形式进行制造以形成足以包裹所述水果的内部空间,
其中所述纳米膜的重量为2.0g/m2至6.0g/m2,所述纳米膜的厚度在3.0μm至15.0μm的范围内,并且所述纳米膜的透气性在125Pa的压力下大于0.6CFM。
11.如权利要求10所述的果袋的制造方法,其中,所述纳米膜和强度增强的所述无纺布通过施涂2.5至10g/m2范围内的热熔粘合剂来层压。
12.如权利要求10所述的果袋的制造方法,还包括:
分别制造将内侧形成为围绕所述水果的部分的所述内表面和将外侧形成为暴露于外部的部分的所述外表面;
通过以预定尺寸冲孔所述内表面和所述外表面的相同位置中的每个来形成所述开口;以及
在所述内表面和所述外表面之间插入并附接切割成覆盖所述开口的整个表面的纳米层压膜的同时将所述内表面和所述外表面接合。
13.如权利要求10所述的果袋的制造方法,还包括:
在所述外表面和所述内表面上形成圆形形状的所述开口以便于冲孔;以及
将所述纳米层压膜切割成正方形形状。
14.如权利要求10所述的果袋的制造方法,还包括:
切割所述纳米层压膜,
其中,所述切割包括:
在使用沿着缠绕在第一辊上的所述纳米层压膜的宽度方向以规则间隔排列的多个刀在纵向方向上切割的同时将所述纳米层压膜缠绕在第二辊(R2)上,并且在所述第二辊上解绕的同时在所述宽度方向上切割。
15.如权利要求10所述的果袋的制造方法,还包括:
制备由无纺布制成的所述外表面;以及
在所述外表面上印刷各种促销短语、产品信息或使用信息。
16.如权利要求10所述的果袋的制造方法,还包括:
在内表面上涂覆疏水剂以防止水分渗透。
17.如权利要求10所述的果袋的制造方法,还包括:
将所述纳米层压膜附接到所述内表面的内侧。
18.如权利要求10所述的果袋的制造方法,还包括:
在单个层中用相同的材料制备所述内表面和所述外表面,用疏水材料涂覆所述内表面,并且在所述外表面上进行印刷,在形成所述开口之后将所述纳米层压膜附接在所述内表面上。
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