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Hydrotreating of fast pyrolysis oil: A comparison of carbons and carbon-covered alumina as supports for Ni_2P

机译:快速热解油的加氢处理:碳和碳覆盖的氧化铝作为Ni_2P载体的比较

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Nickel phosphide is a promising material for substitution of metal nobles and sulfides catalysts in fast pyrolysis oil hydrotreating. In this study, we compared the effects of three different carbon supports for Ni2P on the catalyst activity and selectivity in hydrodeoxygenation (HDO) reactions. It was also evaluated the impacts of temperature and pressure on the quality of hydrotreated bio-oils. The experiments were carried out in a batch reactor at 150 degrees C and 250 degrees C while the pressure ranged from 50 to 100 bar. The results showed that Ni2P on activated carbon (AC) performed better at 150 degrees C than Ni2P on carbon covered alumina (CCA) and mineral charcoal (MC), producing bio-oils with lower oxygen content and higher heating value. At 250 degrees C, best results were obtained with Ni2P/CCA catalyst, giving bio-oils with lower O/C molar ratio and higher H/C molar ratio. Overall, hydrogenation reactions were favored at the higher temperature in all catalytic systems. TGA analysis indicated that coking tendency of hydrotreated bio-oils was influenced by their chemical composition and reaction temperature. In addition, catalyst characterization before and after reactions, revealed that carbon supported materials were more affected at 250 degrees C by pore blocking. XRD results also showed the presence of different Ni-phases after reaction, such as Ni12P5 and Ni, probably due to the loss of P by oxidation and/or formation of PH3.
机译:磷化镍是一种在快速热解油加氢处理中替代金属贵金属和硫化物催化剂的有前途的材料。在这项研究中,我们比较了Ni2P的三种不同碳载体对加氢脱氧(HDO)反应中催化剂活性和选择性的影响。还评估了温度和压力对加氢处理生物油质量的影响。实验在间歇反应器中在150摄氏度和250摄氏度进行,压力范围为50至100巴。结果表明,活性炭(AC)上的Ni2P在150摄氏度下的性能优于碳覆盖的氧化铝(CCA)和矿物木炭(MC)上的Ni2P,产生的生物油具有较低的氧含量和较高的热值。在250摄氏度下,使用Ni2P / CCA催化剂可获得最佳结果,从而使生物油具有较低的O / C摩尔比和较高的H / C摩尔比。总体而言,在所有催化体系中,较高温度下都有利于氢化反应。 TGA分析表明加氢生物油的焦化趋势受其化学组成和反应温度的影响。另外,反应前后的催化剂表征表明,碳负载的材料在250摄氏度下受孔阻塞的影响更大。 XRD结果还显示反应后存在不同的Ni相,例如Ni12P5和Ni,可能是由于氧化和/或形成PH3而损失了P。

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