论文标题
便携式氢能系统的被动质子交换膜燃料电池的热中子X射线照相
Thermal neutron radiography of a passive proton exchange membrane fuel cell for portable hydrogen energy systems
论文作者
论文摘要
使用热中子放射线照相研究了用于低功率和便携式应用的质子交换膜燃料电池(PEMFC)。 PEMFC在全面的被动条件下运行,带有空气呼吸的阴极和静态环境空气和干燥氢的死端阳极。一个柱状阴极板有利于水滴在阴极表面及其消除。热中子图像显示在操作过程中,液态水在垂直和水平位置的操作过程中积聚,即,其主平面分别平行并垂直于重力场。极化曲线和阻抗光谱显示出与水积累谱有关的细胞方向依赖性反应。在垂直位置,消除了在阴极表面上滚动的水滴和自然对流的发作,使阴极电极中的较低水含量受到青睐。结果,垂直电池中的氧气转运得到了改善,垂直电池可以在环境条件下完全被动地操作,从而提供稳定的峰值功率密度高于100 mW/cm2。重力和自然对流在水平位置的有效性较低,导致氧气传输损失引起的峰值密度降低了17%。如果上电极是阴极,则水平位置尤其不利,因为阳极泛滥导致少量水(5 mg/cm2)产生细胞失败。来自热中子射线照相和细胞反应特征的组合信息解释了细胞取向对便携式应用中完全被动的气动PEMFC性能的重要影响。
A proton exchange membrane fuel cell (PEMFC) for low power and portable applications is studied with thermal neutron radiography. The PEMFC operates under full passive conditions, with an air-breathing cathode and a dead-end anode supplied with static ambient air and dry hydrogen, respectively. A columnar cathodic plate favors the mobility of water drops over the cathode surface and their elimination. Thermal neutron images show liquid water build up during operation with the cell in vertical and horizontal positions, i.e. with its main plane aligned parallel and perpendicular to the gravity field, respectively. Polarization curves and impedance spectroscopy show cell orientation dependent response that can be related with the water accumulation profiles. In vertical position, lower water contents in the cathode electrode is favored by the elimination of water drops rolling over the cathode surface and the onset of natural convection. As a consequence, oxygen transport is improved in the vertical cell, that can be operated full passive for hours under ambient conditions, providing steady peak power densities above 100 mW/cm2. Gravity and natural convection are less effective in horizontal position, leading to a 17% decrease in peak power density due to oxygen transport losses. The horizontal position is especially adverse if the upper electrode is the cathode, because of anode flooding causing cell failure after production of a small amount of water (5 mg/cm2). The combined information from thermal neutron radiography and cell response characteristics explains the important influence of cell orientation on the performance of a fully passive air-breathing PEMFC for portable applications.