首页> 外文期刊>Journal of Fuel Cell Science and Technology >Plasma Nitrided Type 349 Stainless Steel for Polymer Electrolyte Membrane Fuel Cell Bipolar Plate—Part I: Nitrided in Nitrogen Plasma
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Plasma Nitrided Type 349 Stainless Steel for Polymer Electrolyte Membrane Fuel Cell Bipolar Plate—Part I: Nitrided in Nitrogen Plasma

机译:聚合物电解质膜燃料电池双极板的等离子渗氮349型不锈钢-第一部分:氮等离子渗氮

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摘要

An austenite 349 stainless steel was nitrided via nitrogen plasma. Glancing angle X-ray diffraction patterns suggest that the nitrided layer is amorphous. X-ray photoelectron spectroscopy analysis indicated that the plasma nitridation process produced bulk-type nitrides in the surface layer. In general, the nitrided layer was composed of iron oxide in the outer layer and chromium oxide in the inner layers. Contaminations of vanadium and tin were detected in the as-grown nitrided layer; these dissolved away after polarization. The influence of these contaminants on the corrosion resistance of the nitrided layer in polymer electrolyte membrane fuel cell (PEMFC) environments is not considered significant. The nitrided sample had a much higher contact resistance than the bare one and the contact resistance increased with the nitriding time. The high interfacial contact resistance values can be related to the thicker oxide film after plasma nitridation. The corrosion resistances obtained for the 1 h nitrided and bare stainless steels in simulated PEMFC environments were similar. The outmost nitrided layer dissolved after polarization in the PEMFC environments leaving a passive film (modified with nitrides), similar to that of bare stainless steel under the same conditions. The passive film thickness was 3.7 nm for nitrided steel in PEMFC cathode environment and 4.2 nm for nitrided steel in PEMFC anode environment.
机译:奥氏体349不锈钢通过氮等离子体氮化。掠射角X射线衍射图表明氮化层是非晶的。 X射线光电子能谱分析表明,等离子体氮化过程在表面层中产生了块状氮化物。通常,氮化层由外层的氧化铁和内层的氧化铬组成。在刚生长的氮化层中检测到了钒和锡的污染。这些在极化后溶解掉了。在聚合物电解质膜燃料电池(PEMFC)环境中,这些污染物对氮化层耐腐蚀性的影响被认为是不明显的。氮化样品的接触电阻比裸露样品高得多,并且接触电阻随氮化时间的增加而增加。较高的界面接触电阻值可能与等离子体氮化后的较厚氧化膜有关。在模拟的PEMFC环境中,经过1 h渗氮和裸露不锈钢所获得的耐腐蚀性相似。在极化之后,最外层的氮化层在PEMFC环境中溶解,从而留下钝化膜(用氮化物改性),类似于在相同条件下的裸露不锈钢。在PEMFC阴极环境中,氮化钢的钝化膜厚度为3.7 nm,在PEMFC阳极环境中,氮化膜的钝化膜厚度为4.2 nm。

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