Thermo-oxidative aging of linear and branched alcohols as stability criterion for their use as e-fuels

IF 5 3区 材料科学 Q2 CHEMISTRY, PHYSICAL Sustainable Energy & Fuels Pub Date : 2024-06-19 DOI:10.1039/d4se00400k
Anne Lichtinger, Maximilian J. Poller, Olaf Schröder, Julian Türck, Thomas Garbe, Jürgen Krahl, Markus Jakob, Jakob Albert
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Abstract

The decarbonization of the energy supply is one of the biggest and most important challenges of the 21st century. This paper contributes to the solution of the energy crisis by investigating the stability of alcohols as e-fuels. The focus is on the investigation of the aging mechanism of the linear alcohols 1-hexanol and 1-octanol compared to the iso-alcohol 2-hexanol. It is analysed in detail how the time-dependent aging varies depending on the chain length and the position of the hydroxy-group, both in the liquid and in the gas phase. It is shown that a variety of aging products such as aldehydes, acids, short-chain alcohols and esters are formed during the aging of the n-alcohols by oxidation, decarboxylation, oxidative C–C bond cleavage and esterification. In contrast, the decomposition of the iso-alcohol is significantly lower. The results show that the total acid number is significantly higher for aged n-alcohols than for the aged iso-alcohos, while the kinematic viscosity decreases for all alcohols during aging. Carbon mass balancing shows that after accelerated aging for 120 hours, around 80% of the iso-alcohol is still present, compared to only around 57–63% for the n-alcohols. In addition, significantly fewer acids are formed with the iso-alcohol. In this study, iso-alcohols have a higher stability against thermo-oxidative aging compared to n-alcohols, showing their potential as e-fuels. Furthermore, the chain length of the alcohols has also an influence on aging, as more different aging products can be formed with increasing chain length.

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线性醇和支链醇的热氧化老化作为其用作电子燃料的稳定性标准
能源供应的去碳化是 21 世纪最大、最重要的挑战之一。本文通过研究醇类作为电子燃料的稳定性,为解决能源危机做出了贡献。与异构醇 2-hexanol 相比,本文重点研究了线性醇 1-hexanol 和 1-octanol 的老化机理。研究详细分析了在液相和气相中,随时间变化的老化如何取决于链长和羟基的位置。研究表明,在正辛醇的老化过程中,通过氧化、脱羧、C-C 键氧化裂解和酯化作用,会形成各种老化产物,如醛、酸、短链醇和酯。相比之下,异构醇的分解率明显较低。结果表明,老化的正丁醇的总酸数明显高于老化的异丁醇,而所有醇类在老化过程中的运动粘度都会下降。碳质量平衡显示,在加速老化 120 小时后,仍有约 80% 的异-醇存在,而正-醇只有约 57-63%。此外,异构醇形成的酸明显较少。在这项研究中,与正辛醇相比,异辛醇对热氧化老化具有更高的稳定性,这表明它们具有作为电子燃料的潜力。此外,醇的链长对老化也有影响,因为随着链长的增加,会形成更多不同的老化产物。
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来源期刊
Sustainable Energy & Fuels
Sustainable Energy & Fuels Energy-Energy Engineering and Power Technology
CiteScore
10.00
自引率
3.60%
发文量
394
期刊介绍: Sustainable Energy & Fuels will publish research that contributes to the development of sustainable energy technologies with a particular emphasis on new and next-generation technologies.
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