Cryogenic Treatment of Polymer/MWCNT Nano-Composites for Mechanical and Tribological Applications

Swamini Chopra, S. Sreya, Rohit V. Babhulkar, Swaksha P. Halde, Kavita A. Deshmukh, D. Peshwe
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引用次数: 4

Abstract

The cryogenic treatment of material has been known to motivate structural stability by rearranging its crystallographic structure in metals and by promoting intermolecular as well as intramolecular rearrangements in polymers. Additionally, in case of polymers reinforced with micro fillers, the structural changes brought about by cryogenic treatment are still largely governed by the polymer matrix itself. Thus, when investigated for their mechanical and tribological properties, the response of polymer/MWCNT nano-composites after cryogenic treatment was found to be depending on the cryo-structural modifications in the polymer matrix, followed by the MWCNT interaction to some extent. The enhancement in the mechanical properties of the polymer/MWCNT nano-composites is attributed to the increasing % crystallinity, changes in crystal structure, conversion of less stable phases into more stable phases, change in the nature of bonding and strengthening of interphase between polymer and MWCNT. Thus, for the cryogenic treatment temperature of -185 °C, the optimum soaking period for PA and PA/MWCNT nano-composite was 24 hrs, whereas for PBT and PBT/MWCNT nano-composite it was 12 hrs and 16 hrs, respectively. This agrees well with the popular claim that each polymer has a specific functional group and/or structural characteristic that readily responds to the cryogenic treatments conditions (irrespective of the filler type, content and/or interaction), thereby, modifying the structure and giving superior properties, which makes cryogenic treatment a material specific process.
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低温处理聚合物/MWCNT纳米复合材料的机械和摩擦学应用
已知材料的低温处理通过重排金属中的晶体结构和促进聚合物中的分子间和分子内重排来激发结构稳定性。此外,在微填料增强聚合物的情况下,低温处理带来的结构变化在很大程度上仍受聚合物基体本身的控制。因此,在研究其机械和摩擦学性能时,发现低温处理后聚合物/MWCNT纳米复合材料的响应取决于聚合物基体的低温结构修饰,其次是MWCNT在一定程度上的相互作用。聚合物/MWCNT纳米复合材料力学性能的提高是由于结晶度的提高、晶体结构的改变、不稳定相向更稳定相的转变、聚合物与MWCNT之间键合性质的改变和界面相的加强。因此,低温处理温度为-185℃时,PA和PA/MWCNT纳米复合材料的最佳浸泡时间为24小时,而PBT和PBT/MWCNT纳米复合材料的最佳浸泡时间分别为12小时和16小时。这很好地符合流行的说法,即每种聚合物具有特定的官能团和/或结构特征,易于响应低温处理条件(与填料类型、含量和/或相互作用无关),从而改变结构并提供优越的性能,这使得低温处理成为材料的特定过程。
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