纳米/微米炭黑增强低密度聚乙烯的性能比较研究

Q3 Materials Science
O. Sabr, N. Al-Mutairi, A. Layla
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引用次数: 3

摘要

用途:低密度聚乙烯因其独特的结构和优异的综合性能,是工业上常用的聚合物。由于LDPE相对较低的机械性能和热稳定性,有时会限制其在工业上的应用。因此,颗粒增强聚合物复合材料的开发是下一代工程产品领域中非常有前途的方法之一。设计/方法/方法:以低密度聚乙烯LDPE为增强材料,加入不同重量分数的炭黑颗粒(CB)(2、4、8)%,先在溶剂中分散纳米和微炭黑颗粒CB,然后与低密度聚乙烯LDPE颗粒人工混合,通过双螺杆挤出机共混,制备纳米和微复合材料,研究其力学性能(拉伸强度、弹性模量、硬度)、FTIR、采用DSC、导热系数和两种方法制备了纳米微复合材料,并对纳米微复合材料的形态性能进行了研究。结果表明:纳米炭黑的加入使纯低密度聚乙烯的抗拉强度从13.536 MPa提高到19.71 MPa,再下降到11.03 MPa,而随炭黑添加量的增加,LDPE/CB纳米微复合材料的弹性模量均有提高。结果表明,添加纳米炭黑比添加微炭黑更能改善复合材料的力学性能。红外光谱显示了LDPE与炭黑之间的物理相互作用。导热系数从0.33 w/m提高。k对纯LDPE为0.62234 w/m。当炭黑微粒含量为2%时,温度降至0.18645 w/m。K和0.34063 w/m。k分别为(4)和(8)%时,LDPE-CB纳米复合材料的导热系数总体上低于LDPE-CB微复合材料。DSC结果表明,纳米和微炭黑的加入改善了结晶温度Tc、熔融温度和结晶程度。扫描电镜显示,低碳含量时,LDPE与CB之间分布均匀,结合良好;高碳含量时,LDPE与CB之间存在一定的团聚现象。研究局限/意义:本研究研究了采用两步法制备的纳米和微复合材料的特性:将炭黑颗粒与溶剂混合,然后通过双挤出机制备出可用于包装材料的纳米和微炭黑颗粒,但主要限制是纳米和微炭黑颗粒在LDPE基体内分布均匀。在进一步的研究中,制备了LDPE与其他材料的共混物,并改善了用于包装应用的共混物的降解性。原创性/价值:具有纳米复合材料的LDPE因其热稳定性、增加的机械强度、刚度和低透气性等特性而备受关注,这些特性使其成为包装和汽车行业应用的理想选择。纳米级炭黑的LDPE增强材料具有比微米级更好的机械和热性能,因此在特定应用中所需的材料更少,成本更低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characteristic of low-density polyethylene reinforcement with nano/micro particles of carbon black: a comparative study
Purpose: Low density polyethylene is commonly used polymer in the industry because of its unique structure and excellent overall performance. LDPE, is relatively low mechanical properties and thermal stability can sometimes limit its application in industry. Therefore, the development of particulate reinforced polymer composites is one of the highly promising methodologies in the area of next generation engineering products. Design/methodology/approach: Nano and Micro composite from low density polyethylene LDPE reinforced with different weight fraction of carbon black particles (CB) (2, 4 and 8)% prepared by first dispersion Nano and Micro carbon black particles CB in solvent and then mixing manually with low density polyethylene LDPE pellet and blended by twin-screw extruder, the current research study the mechanical properties (tensile strength, elastic modulus,and hardness), FTIR, DSC,and thermal conductivity of prepared nano and micro composites using two methodes and the morphological properties of nano-micro composites. Findings: The tensile strength of the LDPE/CB nano and micro composites improved at 2% and 4%, respectively, and decreasing at 8%, addition of carbon black nanoparticles led to increase the tensile strength of pure low-density polyethylene from 13.536 MPa to 19.71 MPa, and then dropping to 11.03 MPa at 8% percent,while the elastic modulus of LDPE/ CB nano and miro composites shows an improvement with all percentages of CB. The results show that the mechanical properties were improved by the addition carbon black nanoparticles more than addition micro- carbon black . FTIR show that physical interaction between LDPE and carbon black. The thermal conductivity improvement from 0.33 w/m.k for pur LDPE to 0.62234 w/m.k at 2% CB microparticle content and the reduced to 0.18645 w/m.k and 0.34063 w/m.k at (4 and 8)% micro-CB respectively , The thermal conductivity of LDPE-CB nano-composites is low in general than that the LDPE-CB microcomposite. DSC result show improvement in crystallization temperature Tc, melting temperature and degree of crystallization with addition nano and micro carbon black. Morever, SEM images revealed to uniform distribution and good bonding between LDPE and CB at low percentages and the precence of some agglomeration at high CB content.Research limitations/implications: This research studied the characteristics of both nano and micro composite materials prepared by two steps: mixing CB particles with solvent and then prepared by twin extruder which can be used packaging material, but the main limitation was the uniform distribution of nano and micro CB particles within the LDPE matrix. In a further study, prepare a blend from LDPE with other materials and improve the degradation of the blend that used in packaging application. Originality/value: LDPE with nanocomposites are of great interest because of their thermal stability, increased mechanical strength, stiffness, and low gas permeability, among other properties that have made them ideal for applications in the packaging and automotive industries. LDPE reinforcements nano-sized carbon black can have better mechanical and thermal properties than micron, resulting in less material being needed for a given application at a lower cost.
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来源期刊
Archives of materials science and engineering
Archives of materials science and engineering Materials Science-Materials Science (all)
CiteScore
2.90
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