Siddikali Palaiam, Sreekanth P S Rama
School of Mechanical Engineering, VIT-AP University, Amaravati 522337, Andhra Pradesh, India.
Polymers (Basel). 2022 Aug 18;14(16):3366. doi: 10.3390/polym14163366.
The utility of polymers in the present decade is consistently increasing, giving scope to many applications from automobiles to prosthetics. Polymers used for solid free-form fabrication (SFFF), also known as 3D printing, comprise a quick fabrication process adopted by many industries to increase productivity and decrease the run time to cope with the market demands. In this research work, pure polyethylene terephthalate glycol (PETG) and multi-walled carbon nanotube (MWCNT)-PETG with an electroless metal layer coating and without a coating are discussed. The effect of the electroless metal layer coating on the reinforced PETG-MWCNT results in improved mechanical, tribological, and other surface properties. Pure PETG was incorporated with MWCNT nanofillers at 0.3 wt.% and extruded as a filament through a twin screw extruder with a 1.75 mm diameter and printed on ASTM standards. Tensile testing was performed on all four types of un-coated pure PETG, PETG-MWCNT, and metal-layer-coated PETG and PETG-MWCNT with a coating thickness of 26, 32, 54, and 88 μm. Dynamic mechanical analysis (DMA) showed that the coated PETG-MWCNT had the highest storage and loss modulus. The heat deflection temperature was improved to 88 °C for the coated PETG-MWCNT. The wear volume against the sliding distance at a load of 40, 50, and 60 N showed that the coefficient of friction decreased with an increase in the load. The scratch test results revealed the lowest penetration depth and lowest friction coefficient for the coated PETG-MWCNT sample. The water contact angle test showed that a greater coating thickness makes the sample surface more hydrophobic, and the microhardness test indicated that the indentation hardness value for the PETG-MWCNT was 92 HV. The study revealed that the metal-layer-coated PETG-MWCNT had better performance compared to the other specimens due to a good metal layer bonding on the PETG substrate. It was concluded that adding MWCNTs to a metal layer electroless coating improved the surface and mechanical properties of the PETG, and this may be suitable for many applications.
在过去十年中,聚合物的用途一直在不断增加,涵盖了从汽车到假肢等众多应用领域。用于实体自由成型制造(SFFF)(也称为3D打印)的聚合物包括许多行业采用的快速制造工艺,以提高生产率并缩短生产时间,从而满足市场需求。在这项研究工作中,讨论了纯聚对苯二甲酸乙二醇酯二醇(PETG)以及带有和不带有化学镀金属层涂层的多壁碳纳米管(MWCNT)-PETG。化学镀金属层涂层对增强的PETG-MWCNT的影响导致其机械性能、摩擦学性能和其他表面性能得到改善。将纯PETG与0.3 wt.%的MWCNT纳米填料混合,并通过直径为1.75 mm的双螺杆挤出机挤出成细丝,然后按照ASTM标准进行打印。对所有四种类型的未涂层纯PETG、PETG-MWCNT以及涂层厚度分别为26、32、54和88μm的金属层涂层PETG和PETG-MWCNT进行了拉伸测试。动态力学分析(DMA)表明,涂层PETG-MWCNT具有最高的储能模量和损耗模量。涂层PETG-MWCNT的热变形温度提高到了88°C。在40、50和60 N的载荷下,磨损体积与滑动距离的关系表明,摩擦系数随载荷的增加而降低。划痕测试结果显示,涂层PETG-MWCNT样品的穿透深度最低,摩擦系数也最低。水接触角测试表明,涂层厚度越大,样品表面越疏水,显微硬度测试表明PETG-MWCNT的压痕硬度值为92 HV。研究表明,由于金属层与PETG基材之间的良好结合,金属层涂层的PETG-MWCNT与其他样品相比具有更好的性能。得出的结论是,在金属层化学镀涂层中添加MWCNT可改善PETG的表面性能和机械性能,这可能适用于许多应用。