Ni-ZrO2-MSS和Ni-HZSM5在水-粗甘油共溶剂中催化水热液化葡萄渣。

IF 4.3 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
ACS Omega Pub Date : 2025-03-23 eCollection Date: 2025-04-01 DOI:10.1021/acsomega.4c08250
Shahin Mazhkoo, Omid Norouzi, Omid Pourali, Maryam Ebrahimzadeh Sarvestani, Aneela Hayder, Francesco Di Maria, Animesh Dutta
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引用次数: 0

摘要

以水-粗甘油为共溶剂,采用Ni-HZSM5和ni - zro2改性钢渣(MSS)为催化剂,研究了葡萄渣的催化水热液化(HTL)。该研究旨在了解温度、溶剂比和粗甘油组成对生物原油收率和性能的影响,并评估再生催化剂的稳定性。结果表明,当使用富含脂肪酸/甘油酯的粗甘油时,在320℃、助溶剂中粗甘油浓度为75%的条件下,生物原油收率最高,为76 wt %, HHV为41 MJ/kg, H/C比为1.81,能量回收率为90.9%。Ni-HZSM5催化HTL可使生物原油的酸含量显著降低44%。Ni-ZrO2-MSS虽然使生物原油收率从44.07 wt %提高到49.97 wt %,但促进了生物原油中酸类的生成,降低了生物原油中的酯类。TGA炼油厂切割结果表明,两种催化剂均能提高柴油产量,其中ni - zsm5的柴油收率最高(41.24%),高于Ni-ZrO2-MSS(37.51%)和非催化工艺(33.56%)。此外,这两种催化剂都显著降低了重馏分的产量,如残余燃料油和沥青。改性使原钢渣在Ni-ZrO2-MSS中的BET表面积从4.04提高到49.61 m2/g,而HTL后再生催化剂的表面积下降到15.88 m2/g,这与H2吸收率下降一致,表明活性位点的损失。同样,Ni-HZSM5经HTL处理后的表面积从522.25减小到387.37 m2/g,孔隙体积从0.2095增大到0.3425 cm3/g。然而,废Ni-HZSM5催化剂的H2吸收量增加(269.49 μmol/g),还原峰温度升高,表明在反应过程中产生了新的活性位点或NiO的分散发生了变化。TPO图证实了焦的存在,其结构介于非晶碳和石墨碳之间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Catalytic Hydrothermal Liquefaction of Grape Pomace Using Ni-ZrO2-MSS and Ni-HZSM5 in a Water-Crude Glycerol Cosolvent.

This study focused on the catalytic hydrothermal liquefaction (HTL) of grape pomace using Ni-HZSM5 and Ni-ZrO2-modified steel slag (MSS) catalysts, employing a water-crude glycerol cosolvent. The research aimed to understand how temperature, solvent ratios, and crude glycerol composition affect biocrude yield and properties, and to evaluate the stability of regenerated catalysts. The results revealed that when fatty acids/glycerides-rich crude glycerol was used, the highest biocrude yield of 76 wt %, HHV of 41 MJ/kg, H/C ratio of 1.81, and energy recovery of 90.9% was achieved at 320 °C with 75% crude glycerol concentration in the cosolvent. Catalytic HTL with Ni-HZSM5 significantly reduced the acid content of the biocrude by 44%. Although Ni-ZrO2-MSS increased the biocrude yield from 44.07 to 49.97 wt %, it promoted the production of acids and reduced the esters in biocrude. TGA refinery cut results showed that both catalysts enhance diesel production, with Ni-HZSM5 yielding the highest diesel fraction (41.24%) compared to Ni-ZrO2-MSS (37.51%) and the noncatalytic process (33.56%). Moreover, both catalysts significantly reduced the production of heavier fractions, such as residual fuel oil and bitumen. While the modification significantly enhanced the BET surface area of raw steel slag from 4.04 to 49.61 m2/g in Ni-ZrO2-MSS, the surface area of the regenerated catalyst after HTL dropped to 15.88 m2/g, aligning with decreased H2 uptake, indicating a loss of active sites. Similarly, the surface area of Ni-HZSM5 decreased from 522.25 to 387.37 m2/g after HTL, while the pore volume increased from 0.2095 to 0.3425 cm3/g. However, the spent Ni-HZSM5 catalyst displayed an increase in H2 uptake (269.49 μmol/g) with a shift in the reduction peaks to higher temperatures, suggesting the creation of new active sites or changes in the dispersion of NiO species during the reaction. The TPO graphs confirm the presence of coke with an intermediate structure between amorphous and graphitic carbon.

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来源期刊
ACS Omega
ACS Omega Chemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍: ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.
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