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Additive manufacturing of liquid/gas diffusion layers for low-cost and high-efficiency hydrogen production

机译:液/气扩散层的增材制造,可低成本高效地制氢

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A low-cost additive manufacturing technology, electron beam melting (EBM), is employed for the first time to fabricate titanium liquid/gas diffusion media with high-corrosion resistances and well-controlled multifunctional parameters, including two-phase transport and high electric/thermal conductivities. Its application in proton exchange membrane electrolyzer cells (PEMECs) has been investigated in-situ with modular galvano (MG) and galvano electrochemical impedance spectroscopy (GEIS) and characterized ex-situ with SEM and XRD. Compared with conventional woven and sintered liquid/gas diffusion layers (LGDLs), much better performance is obtained with EBM-fabricated LGDLs due to a significant reduction of ohmic losses. The EBM technology components exhibited several distinct advantages in fabricating LGDLs: well-controllable pore morphology and structure, rapid prototyping, fast manufacturing, highly customizable design, and economic. In addition, by taking advantage of additive manufacturing, it is possible to fabricate complicated three-dimensional designs of virtually any shape from a digital model into one single solid object faster, cheaper, and easier, especially for titanium components. More importantly, this development will provide LGDLs with well-controllable pore morphologies, which will be valuable to develop sophisticated models of PEMECs with optimal and repeatable performance. Furthermore, it could lead to a manufacturing solution that greatly simplifies the PEMEC/fuel cell components. Copyright (C) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:首次采用低成本的增材制造技术电子束熔化(EBM)来制造具有高耐蚀性和良好控制的多功能参数的钛液/气扩散介质,包括两相传输和高电/热导率。用模块化电镜(MG)和电镜电化学阻抗谱(GEIS)对它在质子交换膜电解槽(PEMEC)中的应用进行了研究,并用SEM和XRD进行了非原位表征。与传统的机织和烧结液体/气体扩散层(LGDL)相比,EBM制造的LGDL可显着降低欧姆损耗,从而获得更好的性能。 EBM技术组件在制造LGDL时表现出几个明显的优势:可控的孔隙形态和结构,快速成型,快速制造,高度可定制的设计以及经济性。另外,通过利用增材制造的优势,可以将数字模型中几乎任何形状的复杂的三维设计制造成更快,更便宜,更容易的数字模型,从而成为一个单一的实体,特别是对于钛部件。更重要的是,这项开发将为LGDL提供可控的孔形貌,这对于开发具有最佳和可重复性能的PEMEC复杂模型将非常有价值。此外,这可能会导致极大简化PEMEC /燃料电池组件的制造解决方案。 Hydrogen Energy Publications,LLC版权所有(C)2015。由Elsevier Ltd.出版。保留所有权利。

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