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首页> 外文期刊>International journal of hydrogen energy >Hydrogen production by reacting water with mechanically milled composite aluminum-metal oxide powders
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Hydrogen production by reacting water with mechanically milled composite aluminum-metal oxide powders

机译:水与机械研磨的铝-金属复合氧化物粉末反应制氢

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Several composite aluminum-metal oxide powders were prepared by mechanical milling and considered for hydrogen production in the Al-water split reaction. The powders included compositions capable of independent, highly exothermic thermite reaction between components: AlMoO_3, AlBi_2O_3, and Al·CuO, as well as chemically inert compositions Al·MgO and A1A1_2O_3. Experiments used a water displacement method to quantify hydrogen production. In most experiments, the flask containing water and composite powder was maintained at 80 °C; additional limited experiments were performed at varied temperatures. Condensed reaction products were collected and examined using electron microscopy and X-ray diffraction. For all compositions, the aluminum-water split reaction was nearly complete. Average reaction rates were comparable to those reported earlier for materials with similar particle sizes prepared by ball milling. Reaction rates were affected by the specific composition; the Al·Bi_2O_3 composite reacted substantially faster than other materials. It was observed that the Al-water split reaction initiated at 80 ℃ could be completely stopped by cooling the reacting flask to room temperature; the reaction did not restart at room temperature but could be resumed at its previous rate by heating the flask back to 80 ℃. For Al-MoO_3 composite, an interruption in the hydrogen production was observed at a constant temperature; it was associated with the formation of MoO_2.4(OH)_(0.6). A hydrated MoO_3 phase. Evidence of thermite reactions interfering with the Al-water split reaction and generating metallic Bi and Cu was obtained for experiments with Al·Bi_2O_3, and Al·CuO composites, respectively. A qualitative reaction mechanism is proposed assigning different rate controlling processes to different stages of the Al-water split reaction for the composites prepared by ball milling.
机译:通过机械研磨制备了几种复合铝-金属氧化物粉末,并考虑将其用于铝水分解反应中的制氢。该粉末包括能够在组分:AlMoO_3,AlBi_2O_3和Al·CuO之间独立,高度放热的铝热反应的组合物,以及化学惰性的组合物Al·MgO和AlA1_2O_3。实验使用水置换法来量化氢气的产生。在大多数实验中,将装有水和复合粉末的烧瓶保持在80°C;在不同的温度下进行了另外的有限实验。收集冷凝的反应产物,并使用电子显微镜和X射线衍射检查。对于所有组合物,铝-水分解反应几乎完成。通过球磨制备的具有相似粒径的材料的平均反应速率与先前报道的相当。反应速率受具体组成的影响; Al·Bi_2O_3复合材料的反应明显快于其他材料。观察到,通过将反应瓶冷却至室温,可以完全停止在80℃引发的Al-水分解反应。反应不会在室温下重新开始,但可以通过将烧瓶加热到80℃以以前的速率恢复。对于Al-MoO_3复合材料,在恒定温度下观察到氢产生中断;它与MoO_2.4(OH)_(0.6)的形成有关。水合的MoO_3相。分别在Al·Bi_2O_3和Al·CuO复合材料的实验中获得了铝热反应干扰Al-水分解反应并生成金属Bi和Cu的证据。提出了定性反应机理,对球磨制备的复合材料的铝水分解反应的不同阶段分配了不同的速率控制过程。

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