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Gamma-irradiated cross-linked LDPE foams: Characteristics and properties

机译:γ辐照交联的LDPE泡沫:特性和性能

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Foamed polymers are future materials, as they are increasingly considered "green materials" due to their interesting properties at very low consumption of raw materials. They can be used to improve appearance of insulation structures, thermal and acoustic insulation, core materials for sandwich panels, fabrication of furniture and flotation materials or to reduce costs involving materials. Low-density polyethylene is widely used because of its excellent properties, such as softness, elasticity, processibility and insulation. In general, cross-linking is often applied to improve the thermal and mechanical properties of polyethylene products, due to the formation of a three-dimensional network. In particular for the production of PE foams, cross-linking is applied prior the expansion to control bubble formation, cell characteristics and final properties of the foam. However, the usual production process of PE foams is a process in which a gaseous blowing agent is injected into a melted thermoplastic polymer, under pressure, to form a solution between blowing agent and melted polymer. An extrusion system is provided for foaming the polymer, supplied to an extruder and moving through a rotating screw. The pressure must be high enough to keep the gas blowing agent (or foaming agent) in the solution with the melt. The foaming agent is then diffused and dissolved in the molten material to form a single-phase solution. In the present work carbon dioxide was used as the bowing agent, a chemically stable and non-toxic gas, with good diffusion coefficient; gas pressure used varied within a 20-40 bar range. Some requirements for physical foaming are required, as low friction heat generation, homogeneous melt temperature distribution, melt temperature at die exit just above crystallization temperature (die) and high melt strength during expansion. This work studied foams properties gamma-irradiated within 0,10,15,20,25, and 30 kGy, from a LDPE exhibiting 2.6 g/10 min Melt Index. Accomplished tests: DSC, gel-fraction, swelling ratio in various solvents, Theological measurements, infra-red spectroscopy and melt strength. It was verified that within a given radiation dose range; the material exhibited an optimization in viscoelastic properties, providing the desired melt strength range for obtaining foams.
机译:发泡聚合物是未来的材料,因为它们在非常低的原材料消耗下具有令人感兴趣的特性,因此越来越被认为是“绿色材料”。它们可用于改善隔热结构,隔热和隔音,夹芯板的芯材,家具的制造和浮选材料的外观,或用于降低涉及材料的成本。低密度聚乙烯因其优异的性能(如柔软性,弹性,可加工性和绝缘性)而被广泛使用。通常,由于形成了三维网络,交联通常用于改善聚乙烯产品的热性能和机械性能。特别是对于PE泡沫的生产,在膨胀之前进行交联以控制泡沫的形成,泡孔特性和最终性能。然而,PE泡沫的通常生产过程是这样的过程,其中在压力下将气态发泡剂注入熔融的热塑性聚合物中,以在发泡剂和熔融的聚合物之间形成溶液。提供一种挤出系统,用于使聚合物发泡,将其供应至挤出机并通过旋转螺杆移动。压力必须足够高,以使气体发泡剂(或发泡剂)与熔体保持在溶液中。然后将发泡剂扩散并溶解在熔融材料中以形成单相溶液。在目前的工作中,二氧化碳被用作弓箭剂,是一种化学稳定且无毒的气体,具有良好的扩散系数。使用的气压在20-40 bar范围内变化。需要物理发泡的一些要求,例如低摩擦生热,均匀的熔体温度分布,模头出口处的熔体温度刚好高于结晶温度(模头)以及膨胀时的高熔体强度。这项工作研究了从表现出2.6 g / 10 min熔体指数的LDPE在0、10、15、20、25和30 kGyγ辐射下的泡沫特性。完成的测试:DSC,凝胶分数,在各种溶剂中的溶胀率,流变学测量,红外光谱和熔体强度。确认在给定的辐射剂量范围内;该材料表现出粘弹性的优化,为获得泡沫提供了所需的熔体强度范围。

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