6, the insulating and interrupting medium in electrical equipment,'/> Calculated rate constants of main C5 PFK (C5F10O) decomposition reactions: An environmental-friendly alternative gas in electrical equipment
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Calculated rate constants of main C5 PFK (C5F10O) decomposition reactions: An environmental-friendly alternative gas in electrical equipment

机译:主要C5 PFK(C5F10O)分解反应的计算速率常数:电气设备中的环保替代气体

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Studies on candidate gases of SF6, the insulating and interrupting medium in electrical equipment, have become a hot topic in recent decades. C5-perfluorinated ketone (C5F10O) was reported as a potential replacement due to its excellent insulation capacity. However, the decomposition property of C5F10O under discharge, which is closely related to insulation deterioration mechanism, is still unknown. Although the fundamental decomposition pathways of C5F10O were reported [1], the corresponding rate constants are essential but not computed yet. Therefore, we calculated the rate constants of different decomposition reactions using transition state theory (TST) combined with density functional theory (DFT). The structural optimizations, vibrational frequency calculations and energy calculations of the species involved in reactions were carried out with DFT-(U)B3LYP/6-311G(d, p) method. Detailed potential energy surface (PES) was then investigated thoroughly by the same method. For reactions with a transition state (TS), each stationary point on PES was analyzed by a harmonic vibrational frequency analysis and characterized as a minimum (reactants or products with all real frequencies) or a TS (with only one imaginary frequency). Intrinsic reaction coordinate (IRC) calculations were used to verify each TS. Then the corresponding rate constants were estimated by conventional transition state theory (CTST). For barrierless reactions, the broken symmetry guess were added for optimization where the selected bond distance was held constant. Then the rate constants and equilibrium constants were estimated by canonical variational transition state theory (VTST). The results are hopefully to lay a theoretical basis in further evaluating and online-monitoring the insulation condition of C5F10O gas-insulated electrical equipment.
机译:SF候选气体的研究 6 电气设备中的绝缘和中断介质已成为近几十年来的热门话题。 C5-全氟酮(C 5 F 10 由于其出色的绝缘能力,据报道O)是潜在的替代品。但是,C的分解特性 5 F 10 与绝缘劣化机理密切相关的放电中的O仍是未知的。尽管C的基本分解途径 5 F 10 O被报道[1],相应的速率常数是必不可少的,但尚未计算。因此,我们结合过渡态理论(TST)和密度泛函理论(DFT)计算了不同分解反应的速率常数。使用DFT-(U)B3LYP / 6-311G(d,p)方法进行了反应物种的结构优化,振动频率计算和能量计算。然后,用相同的方法对详细的势能面(PES)进行了彻底的研究。对于具有过渡态(TS)的反应,通过谐波振动频率分析来分析PES上的每个固定点,并将其表征为最小值(具有所有实际频率的反应物或产物)或TS(仅具有一个假想频率)。本征反应坐标(IRC)计算用于验证每个TS。然后通过常规过渡态理论(CTST)估算相应的速率常数。对于无障碍反应,为了使选择的键距保持恒定,添加了打破对称性的猜测以进行优化。然后,通过典型的变分过渡态理论(VTST)估算速率常数和平衡常数。该结果有望为进一步评估和在线监测C的绝缘状况奠定理论基础。 5 F 10 O气体绝缘的电气设备。

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