CN107686585A - 一种抗压pe波纹管的加工工艺 - Google Patents

一种抗压pe波纹管的加工工艺 Download PDF

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CN107686585A
CN107686585A CN201710821411.0A CN201710821411A CN107686585A CN 107686585 A CN107686585 A CN 107686585A CN 201710821411 A CN201710821411 A CN 201710821411A CN 107686585 A CN107686585 A CN 107686585A
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徐红军
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    • HELECTRICITY
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Abstract

本发明公开了一种抗压PE波纹管的加工工艺,加工后的波纹管为双层结构,内层不变,外层选用了HDPE粉末、长石粉、紫砂页岩作为主料,采用低温熟化+高温碾磨+保温养护的制备方法,原料细密均匀,提高原料的塑性、流动性和粘接性,挤出后的波纹管外层表面光滑平整,环刚度高,耐磨损,而且挠曲度好,使用寿命长,本发明不需要引发剂、溶剂,为生产PE波纹管提供了新方法,降低成本,而且减少环境污染。

Description

一种抗压PE波纹管的加工工艺
技术领域
本发明属于波纹管技术领域,具体涉及一种抗压PE波纹管的加工工艺。
背景技术
PE波纹管,即聚乙烯材质挤出成型的塑胶保护套管,因其内外部是环形波纹状又叫波纹管,由于其优异的性能和相对经济的造价,在我国已经得到了极大的推广和应用,用作排水管、污水管、地下电缆管、农业排灌管、线缆保护管等方面,具有良好的耐低温,抗冲击性能,耐磨性好等特点,但是,目前困扰大口径波纹管的最大问题是环刚度低(环刚度是衡量管材抗外压负载能力的数值指标),由于原料及制备方法的原因,现在波纹管的最大内径为710 mm,为了能够满足市场要求,研制出更大直径的波纹管,需要改进制备方法与原料配置。
发明内容
为解决上述问题,本发明公开了一种抗压PE波纹管的加工工艺,环刚度高、挠曲度好、价格低廉、耐磨损、使用寿命长;
为达到上述目的,本发明的技术方案如下:
一种抗压PE波纹管的加工工艺,其特征在于:包括以下步骤:
(1)准备原料:由如下重量份的原料制备而成:
HDPE粉末:100-115份,长石粉:10-16份,紫砂页岩:5-9份,紫外线吸收剂:1-2份,润滑剂:3-5份,抗氧剂:1-2份,着色剂:1-3份;
(2)将紫砂页岩进行破碎处理,破碎后颗粒尺寸控制在1-4mm,电磁除铁块;
(3)将紫砂页岩颗粒与长石粉混合搅拌6-8h,期间不断喷雾保湿,保持温度10-15℃,压力2-3MPa;
(4)将步骤(3)的混合物与1/3-1/4重量的HDPE粉末混合,加热到190-200℃,用压机碾磨混合物15-25min,加入紫外线吸收剂、1/2重量润滑剂,抗氧剂、着色剂,搅拌均匀后温度降到105-115℃,保温70-90min;
(5)将剩余的HDPE粉末与润滑剂搅拌均匀;
(6)将步骤(4)与步骤(5)的物料加入双螺杆挤出机里,挤出机工作温度为170-200℃,挤出波纹管,步骤(4)的物料形成波纹管外层,步骤(5)的物料形成波纹管内层;
步骤(1)所述的HDPE粉末颗粒尺寸为5-10μm;
步骤(1)所述的长石粉颗粒尺寸为45-60μm;
步骤(1)所述的紫外线吸收剂为炭黑;
步骤(1)所述的润滑剂包括聚乙烯蜡、硬脂酸锌、EVA、石蜡其中一种或几种;
步骤(1)所述的抗氧剂包括2,6-二叔丁基对酚、3-丙酸十八烷基酯、1,1,3-三丁烷、硫代二丙酸二月桂基酯、磷酸三戊酯其中一种或几种;
步骤(4)所述的压机为100-150T压机;
所述波纹管外层厚度为内层厚度的1/2-1/3;
本发明的有益效果是:
本发明所述的一种抗压PE波纹管的加工工艺,加工后的波纹管为双层结构,内层不变,外层选用了不一样的原料,选用HDPE粉末、长石粉、紫砂页岩作为主料,采用低温熟化+高温碾磨+保温养护的制备方法,波纹管外层不仅环刚度高,耐磨损,而且挠曲度好,价格低廉,使用寿命长;
本发明在原料里加入5-9份的紫砂页岩,紫砂页岩是一种以粘土矿物为主要组分的半成岩,含铁量较高并含有相当量粉砂级的成份,其表面有许多微小的气孔,与长石粉混合加压进行低温熟化,长石粉粉末粘附在气孔内以及紫砂页岩表面形成混合物,被压机碾磨后,混合物变碎变细,然后热熔的HDPE填补气孔的各种空隙作为聚合物主体,在不断碾磨过程中,HDPE粉末、长石粉、紫砂页岩紧密融合在一起,接着温度降到105-115℃,保温70-90min,各种物质离子交换进行的更加充分,提高原料的塑性,使原料细密均匀,提高流动性和粘接性,挤出后的波纹管外层不仅环刚度高,原料表面光滑平整,耐磨损,而且挠曲度好,有韧性,使用寿命长,原料价格低廉,降低成本,本发明所述的一种抗压PE波纹管的加工工艺不需要引发剂、溶剂,为生产PE波纹管提供了新方法,降低成本,而且减少环境污染。
具体实施方式
实施例1
本实施例所述的一种抗压PE波纹管的加工工艺,包括以下步骤:
(1)准备原料:由如下重量份的原料制备而成:
HDPE粉末:108份,长石粉:13份,紫砂页岩:7份,紫外线吸收剂:1份,润滑剂:4份,抗氧剂:2份,着色剂:2份;所述的HDPE粉末颗粒尺寸为8μm,所述的长石粉颗粒尺寸为50μm,所述的紫外线吸收剂为炭黑,所述的润滑剂为聚乙烯蜡,所述的抗氧剂为2,6-二叔丁基对酚、3-丙酸十八烷基酯各50%的混合物;
(2)将紫砂页岩进行破碎处理,破碎后颗粒尺寸控制在3mm,电磁除铁块;
(3)将紫砂页岩颗粒与长石粉混合搅拌7h,期间不断喷雾保湿,保持温度13℃,压力3MPa;
(4)将步骤(3)的混合物与2/7重量的HDPE粉末混合,加热到195℃,用100T压机碾磨混合物20min,加入紫外线吸收剂、1/2重量润滑剂,抗氧剂、着色剂,搅拌均匀后温度降到110℃,保温80min;
(5)将剩余的HDPE粉末与润滑剂搅拌均匀;
(6)将步骤(4)与步骤(5)的物料加入双螺杆挤出机里,挤出机工作温度为185℃,挤出波纹管,步骤(4)的物料形成波纹管外层,步骤(5)的物料形成波纹管内层;
本实施例所述的PE波纹管的外观光滑,色泽均匀,内外壁无划伤、气泡、裂口、硬块,外层厚度为内层厚度的41%,符合GB/T 14152《热塑性塑料管材耐外冲击性能试验方法》的标准,环钢度大于8KN/M2;
实施例2
本实施例所述的一种抗压PE波纹管的加工工艺,包括以下步骤:
(1)准备原料:由如下重量份的原料制备而成:
HDPE粉末:100份,长石粉:16份,紫砂页岩:5份,紫外线吸收剂:2份,润滑剂:3份,抗氧剂:2份,着色剂:1份;所述的HDPE粉末颗粒尺寸为10μm,所述的长石粉颗粒尺寸为45μm,所述的紫外线吸收剂为炭黑,所述的润滑剂为硬脂酸锌、EVA各50%的混合物,所述的抗氧剂为1,1,3-三丁烷;
(2)将紫砂页岩进行破碎处理,破碎后颗粒尺寸控制在4mm,电磁除铁块;
(3)将紫砂页岩颗粒与长石粉混合搅拌6h,期间不断喷雾保湿,保持温度15℃,压力2MPa;
(4)将步骤(3)的混合物与1/3重量的HDPE粉末混合,加热到190℃,用150T压机碾磨混合物15min,加入紫外线吸收剂、1/2重量润滑剂,抗氧剂、着色剂,搅拌均匀后温度降到115℃,保温70min;
(5)将剩余的HDPE粉末与润滑剂搅拌均匀;
(6)将步骤(4)与步骤(5)的物料加入双螺杆挤出机里,挤出机工作温度为200℃,挤出波纹管,步骤(4)的物料形成波纹管外层,步骤(5)的物料形成波纹管内层;
本实施例所述的PE波纹管的外观光滑,色泽均匀,内外壁无划伤、气泡、裂口、硬块,外层厚度为内层厚度的35%,符合GB/T 14152《热塑性塑料管材耐外冲击性能试验方法》的标准,环钢度大于7KN/M2;
实施例3
本实施例所述的一种抗压PE波纹管的加工工艺,包括以下步骤:
(1)准备原料:由如下重量份的原料制备而成:
HDPE粉末:115份,长石粉:10份,紫砂页岩:9份,紫外线吸收剂:1份,润滑剂:5份,抗氧剂:1份,着色剂:3份;所述的HDPE粉末颗粒尺寸为5μm,所述的长石粉颗粒尺寸为60μm,所述的紫外线吸收剂为炭黑,所述的润滑剂为石蜡,所述的抗氧剂为硫代二丙酸二月桂基酯、磷酸三戊酯以4:6重量比的混合物;
(2)将紫砂页岩进行破碎处理,破碎后颗粒尺寸控制在1mm,电磁除铁块;
(3)将紫砂页岩颗粒与长石粉混合搅拌8h,期间不断喷雾保湿,保持温度10℃,压力3MPa;
(4)将步骤(3)的混合物与1/4重量的HDPE粉末混合,加热到200℃,用100T压机碾磨混合物25min,加入紫外线吸收剂、1/2重量润滑剂,抗氧剂、着色剂,搅拌均匀后温度降到105℃,保温90min;
(5)将剩余的HDPE粉末与润滑剂搅拌均匀;
(6)将步骤(4)与步骤(5)的物料加入双螺杆挤出机里,挤出机工作温度为170℃,挤出波纹管,步骤(4)的物料形成波纹管外层,步骤(5)的物料形成波纹管内层;
本实施例所述的PE波纹管的外观光滑,色泽均匀,内外壁无划伤、气泡、裂口、硬块,外层厚度为内层厚度的48%,符合GB/T 14152《热塑性塑料管材耐外冲击性能试验方法》的标准,环钢度大于8.5KN/M2

Claims (8)

1.一种抗压PE波纹管的加工工艺,其特征在于:包括以下步骤:
(1)准备原料:由如下重量份的原料制备而成:
HDPE粉末:100-115份,长石粉:10-16份,紫砂页岩:5-9份,紫外线吸收剂:1-2份,润滑剂:3-5份,抗氧剂:1-2份,着色剂:1-3份;
(2)将紫砂页岩进行破碎处理,破碎后颗粒尺寸控制在1-4mm,电磁除铁块;
(3) 将紫砂页岩颗粒与长石粉混合搅拌6-8h,期间不断喷雾保湿,保持温度10-15℃,压力2-3MPa;
(4)将步骤(3)的混合物与1/3-1/4重量的HDPE粉末混合,加热到190-200℃,用压机碾磨混合物15-25min,加入紫外线吸收剂、1/2重量润滑剂,抗氧剂、着色剂,搅拌均匀后温度降到105-115℃,保温70-90min;
(5)将剩余的HDPE粉末与润滑剂搅拌均匀;
(6)将步骤(4)与步骤(5)的物料加入双螺杆挤出机里,挤出机工作温度为170-200℃,挤出波纹管,步骤(4)的物料形成波纹管外层,步骤(5)的物料形成波纹管内层。
2.根据权利要求1所述的一种抗压PE波纹管的加工工艺,其特征在于:步骤(1)所述的HDPE粉末颗粒尺寸为5-10μm。
3.根据权利要求1所述的一种抗压PE波纹管的加工工艺,其特征在于:步骤(1)所述的长石粉颗粒尺寸为45-60μm。
4.根据权利要求1所述的一种抗压PE波纹管的加工工艺,其特征在于:步骤(1)所述的紫外线吸收剂为炭黑。
5.根据权利要求1所述的一种抗压PE波纹管的加工工艺,其特征在于:步骤(1)所述的润滑剂包括聚乙烯蜡、硬脂酸锌、EVA、石蜡其中一种或几种。
6.根据权利要求1所述的一种抗压PE波纹管的加工工艺,其特征在于:步骤(1)所述的抗氧剂包括2,6-二叔丁基对酚、3-丙酸十八烷基酯、1,1,3-三丁烷、硫代二丙酸二月桂基酯、磷酸三戊酯其中一种或几种。
7.根据权利要求1所述的一种抗压PE波纹管的加工工艺,其特征在于:步骤(4)所述的压机为100-150T压机。
8.根据权利要求1所述的一种抗压PE波纹管的加工工艺,其特征在于:所述波纹管外层厚度为内层厚度的1/2-1/3。
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