用于氢气输送应用的自修复共聚物的氢渗透性

D. Hitchcock, T. Krentz, A. Mullins, C. James, Qianhui Liu, Siyang Wang, Samruddhi Gaikwad, M. Urban
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引用次数: 0

摘要

安全可靠的加氢组件是氢燃料大规模部署的关键。现场数据表明,目前用于点胶软管的材料不符合组件可靠性的现行标准。目前,现代共聚方法正在研究中,以创建一个使用自愈合共聚物的内软管技术的新平台。理想情况下,这些廉价的自修复共聚物内层将降低H2输送软管的成本,并将其使用寿命延长至25000次以上。在这项工作中,气体驱动的氢渗透性测量在各种自愈共聚物膜上进行,所有这些共聚物膜在以前的研究中都表现出优异的自愈性能。用聚(2,2,2-三氟甲基丙烯酸乙酯/丙烯酸正丁酯)[p(TFEMA/nBA)]和聚(甲基丙烯酸甲酯/丙烯酸正丁酯)[p(MMA/nBA)]制备共聚物。测量是在一系列温度和源压力下进行的。此外,还研究了组分、共聚物比例和分子量对氢渗透性、溶解度和扩散系数的影响。正如预期的那样,氢通过样品的渗透率与源压力成正比,与聚合物的分子量成反比。总的来说,自愈共聚物表现出与文献中类似弹性体的数据一致的氢渗透性。这些结果表明,这类可自我修复的共聚物可能是有希望的候选者,可以用作廉价的氢气分配软管内层,延长使用寿命。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hydrogen Permeability of Self-Healing Copolymers for Use in Hydrogen Delivery Applications
Safe and reliable fueling components are essential for large scale deployment of H2 fuel. Field data has shown that existing materials used in dispensing hoses do not meet current standards for component reliability. Currently modern copolymerization methods are under investigation to create a new platform for inner hose technologies using self-healable copolymers. Ideally these inexpensive self-healable copolymer inner layers will reduce the cost of H2 delivery hoses and extend their service life beyond 25,000 refills. In this work gas driven hydrogen permeability measurements were performed on a variety of self-healing copolymer membranes all of which have exhibited excellent self-healing properties in previous studies. Copolymers were prepared with Poly(2,2,2-trifluoroethyl methacrylate/n-butyl acrylate) [p(TFEMA/nBA)] and Poly(methyl methacrylate/nbutyl acrylate) [p(MMA/nBA)]. Measurements were performed through a range of temperatures and source pressures. Additionally, the effects of composition, copolymer ratio, and molecular weight on the hydrogen permeability, solubility, and diffusivity were all studied. As expected, hydrogen permeation through the samples is proportional to the source pressure and inversely proportional to the molecular weight of the polymer. In general, the self-healing copolymers exhibit hydrogen permeabilities consistent with literature data for similar elastomers. These results suggest this class of self-healable copolymers may be promising candidates for use as inexpensive inner layers in hydrogen dispensing hoses with extended service life.
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