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Feasibility investigations on a novel micro-manufacturing process for fabrication of fuel cell bipolar plates: Internal pressure-assisted embossing of micro-channels with in-die mechanical bonding

机译:用于制造燃料电池双极板的新型微制造工艺的可行性研究:带有模内机械键合的微通道内部压力辅助压花

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摘要

In this paper, we present the results of our studies on conceptual design and feasibility experiments towards development of a novel hybrid manufacturing process to fabricate fuel cell bipolar plates that consists of multi-array micro-channels on a large surface area. The premises of this hybrid micro-manufacturing process stem from the use of an internal pressure-assisted embossing process (cold or warm) combined with mechanical bonding of double bipolar plates in a single-die and single-step operation. Such combined use of hydraulic and mechanical forming forces and in-process bonding will (a) enable integrated forming of micro-channels on both surfaces (as anode and cathode flow fields) and at the middle (as cooling channels), (b) reduce the process steps, (c) reduce variation in dimensional tolerances and surface finish, (d) increase the product quality, (e) increase the performance of fuel cell by optimizing flow-field designs and ensuring consistent contact resistance, and (f) reduce the overall stack cost. This paper explains two experimental investigations that were performed to characterize and evaluate the feasibility of the conceptualized manufacturing process. The first investigation involved hydroforming of micro-channels using thin sheet metals of SS304 with a thickness of 51 μm. The width of the channels ranged from 0.46 to 1.33 mm and the height range was between 0.15 and 0.98 mm. Our feasibility experiments resulted in that different aspect ratios of micro-channels could be fabricated using internal pressure in a controllable manner although there is a limit to very sharp channel shapes (i.e., high aspect ratios with narrow channels). The second investigation was on the feasibility of mechanical bonding of thin sheet metal blanks. The effects of different process and material variables on the bond quality were studied. Successful bonding of various metal blanks (Ni201, A13003, and SS304) was obtained. The experimental results from both investigations demonstrated the feasibility of the proposed manufacturing technique for making of the fuel cell bipolar plates.
机译:在本文中,我们介绍了概念设计和可行性实验研究的结果,以开发一种新型混合制造工艺来制造燃料电池双极板,该板由大表面积的多阵列微通道组成。这种混合式微制造工艺的前提是使用内部压力辅助压花工艺(冷或热压)以及在单模和单步操作中将双双极板机械粘合在一起。液压和机械成形力以及过程中结合的这种结合使用将(a)使得能够在两个表面(作为阳极和阴极流场)和在中间(作为冷却通道)的微通道一体化形成,(b)减少工艺步骤,(c)减少尺寸公差和表面光洁度的变化,(d)提高产品质量,(e)通过优化流场设计并确保一致的接触电阻来提高燃料电池的性能,以及(f)降低整体堆栈成本。本文介绍了两个实验研究,以表征和评估概念化制造过程的可行性。首次研究涉及使用厚度为51μm的SS304薄金属板对微通道进行液压成型。通道的宽度为0.46至1.33mm,高度范围为0.15至0.98mm。我们的可行性实验导致可以使用内部压力以可控制的方式制造不同的微通道长宽比,尽管对非常尖锐的通道形状(即,窄通道的高长宽比)有限制。第二项研究是关于机械粘合薄金属板坯料的可行性。研究了不同工艺和材料变量对粘结质量的影响。成功粘合了各种金属毛坯(Ni201,A13003和SS304)。两次调查的实验结果证明了所提出的制造技术用于制造燃料电池双极板的可行性。

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