QUANTUM CHEMICAL STUDY OF HYDROGENATION OF SUNFLOWER OIL OVER NICKEL CATALYSTS

Zh.A. Sailau, N.Zh. Almas, K. P. Aimaganbetov, B. A. Kurbanova, K. Toshtay, A.A. Aldongarov
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Abstract

Vegetable oil hydrogenation is vital in edible margarine production, preventing rapid deterioration caused by double bond oxidation. Hydrogenation preserves vegetable oils by countering double bond oxidation, ensuring product quality. During this process, geometric isomers, notably trans isomers, form, driven by thermodynamic stability. Nickel catalysts are crucial in the oil and ghee industry for efficient hydrogenation. Purpose. Our study investigates the hydrogenation of sunflower oil with nickel catalysts, aiming to uncover molecular dynamics and interactions shaping this process. We reveal essential insights into linoleic acid-nickel interactions, elucidating hydrogenation mechanisms and implications for glycerol production. Methodology. Quantum chemical calculations and HyperChem software were employed to study the linoleic acid-nickel interaction during hydrogenation. This study delves into the hydrogenation of sunflower oil using nickel catalysts, employing quantum chemical calculations and HyperChem software. Results. Our research elucidates robust linoleic acid-nickel interactions through optimized structures, molecular electrostatic maps, molecular orbitals, bond lengths, and energies. These findings enhance our understanding of hydrogenation mechanisms. Additionally, we found that nickel-metal interactions primarily drive glycerol production from biofuels, promising efficiency gains. Conclusion. Our study yields insights into vegetable oil hydrogenation with nickel catalysts, optimizing processes in the oil and ghee industry. Furthermore, it has implications for glycerol production from biofuels, offering potential advancements in this area.
镍催化剂上葵花籽油加氢的量子化学研究
植物油氢化在食用人造黄油生产中至关重要,可以防止双键氧化引起的快速变质。氢化通过对抗双键氧化来保存植物油,确保产品质量。在此过程中,几何异构体,特别是反式异构体,在热力学稳定性的驱动下形成。镍催化剂是石油和酥油工业中高效加氢的关键。目的。本研究利用镍催化剂研究了葵花籽油的氢化反应,旨在揭示分子动力学和相互作用对这一过程的影响。我们揭示了亚油酸-镍相互作用的基本见解,阐明了加氢机制和对甘油生产的影响。方法。利用量子化学计算和HyperChem软件研究了亚油酸-镍在加氢过程中的相互作用。本研究利用量子化学计算和HyperChem软件,深入研究了镍催化剂对葵花籽油的加氢作用。结果。我们的研究通过优化结构、分子静电图、分子轨道、键长和能量来阐明亚油酸-镍之间的强大相互作用。这些发现增强了我们对氢化机理的理解。此外,我们发现镍-金属相互作用主要推动生物燃料生产甘油,有望提高效率。结论。我们的研究对镍催化剂的植物油加氢,优化油和酥油工业的工艺有深入的了解。此外,它对生物燃料生产甘油有影响,为该领域提供了潜在的进步。
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