Chen Yuqi, Liu Dayou, Maharana Mrutyunjay, Zhou Jiacheng, Ge Yi, Wu Kai
State Key Laboratory of Electric Insulation and Power Equipment, Xi'an Jiaotong University, Xi'an 710049, China.
J Phys Chem B. 2024 Feb 15;128(6):1483-1494. doi: 10.1021/acs.jpcb.3c06348. Epub 2024 Feb 2.
Oil-paper insulation is widely used as a reliable composite insulation system in power transformers. The dielectric property of oil insulation plays an important role in the reliable operation of power equipment. To recognize the charge transfer process in composite insulation, the mobility of the charge in aged insulating oil is studied. However, few studies have been conducted on the microscopic mechanism of charge transport phenomena at the molecular level. In this research, we have studied the molecular electronic structure and the distribution of holes and electrons in the insulating oil by first-principles calculation. By combining with Marcus theory, the corresponding electron coupling energy, reorganization energy, and free energy are obtained. The corresponding charge hopping model is chosen by the parameter relation, and the hopping rate is calculated. At last, the mobility of holes and electrons in insulating oil within the insulation is simulated by the Monte Carlo method. Other possible charge migration methods are also studied and discussed for the comparison. It is observed that the transfer integral of electrons is 2 orders of magnitude larger than that of holes, which is mostly due to the localization of lowest unoccupied molecular orbitals (LUMO). The hole and charge transfers accord with Marcus hopping, the adiabatic charge transfer model, and the charge hopping rate is obtained. The actual free energy action under an external electric field is obtained by calculating polarizability and permittivity. Monte Carlo simulation is used to obtain the charge transfer image and mobility under an actual electric field. Possible types of traps and mobility of ions and clusters in the insulating oil are also studied.
油纸绝缘作为一种可靠的复合绝缘系统在电力变压器中得到广泛应用。油绝缘的介电性能对电力设备的可靠运行起着重要作用。为了认识复合绝缘中的电荷转移过程,对老化绝缘油中电荷的迁移率进行了研究。然而,在分子水平上对电荷输运现象的微观机制进行的研究较少。在本研究中,我们通过第一性原理计算研究了绝缘油中的分子电子结构以及空穴和电子的分布。结合Marcus理论,得到了相应的电子耦合能、重组能和自由能。通过参数关系选择相应的电荷跳跃模型,并计算跳跃率。最后,用蒙特卡罗方法模拟了绝缘体内绝缘油中空穴和电子的迁移率。还研究和讨论了其他可能的电荷迁移方法以作比较。结果表明,电子的转移积分比空穴的转移积分大2个数量级,这主要是由于最低未占据分子轨道(LUMO)的局域化。空穴和电荷转移符合Marcus跳跃、绝热电荷转移模型,并得到了电荷跳跃率。通过计算极化率和介电常数得到了外电场下实际的自由能作用。用蒙特卡罗模拟得到了实际电场下的电荷转移图像和迁移率。还研究了绝缘油中可能的陷阱类型以及离子和团簇的迁移率。