Bilyaz S, Bhati A, Hamalian M, Maynor K, Soori T, Gattozzi A, Penney C, Weeks D, Xu Y, Hu L, Zhu J Y, Nelson J K, Hebner R, Bahadur V
Walker Department of Mechanical Engineering, The University of Texas at Austin, Austin, TX, 78712, USA.
Center for Electromechanics, The University of Texas at Austin, Austin, TX, 78712, USA.
Heliyon. 2024 Mar 12;10(6):e27783. doi: 10.1016/j.heliyon.2024.e27783. eCollection 2024 Mar 30.
Degradation of insulation paper is a key contributor to the failure of power transformers. Insulation degradation accelerates at elevated temperatures, which highlights the potential for better thermal management to prolong life. While several studies have analyzed the benefits of high thermal conductivity oil for reducing temperatures inside a transformer, this study is an initial assessment of the benefits of high thermal conductivity paper on transformer life. Blending particulates with cellulosic fibers offers a pathway for high thermal conductivity paper (with good dielectric properties), which can reduce internal temperatures. Presently, life extensions that can be achieved by the use of such thermally conducting papers were estimated, with the thermal conductivity of the paper being the key parameter under study. The analytical-numerical thermal model used in this study was validated against experimental measurements in a distribution transformer, adding confidence to the utility of the model. This model was then used to provide estimates of hot-spot temperature reduction resulting from the use of papers with higher thermal conductivity than baseline. Transformer life was predicted conventionally by tracking the degree of polymerization of paper over time, based on an Arrhenius model. Results indicate that increasing the thermal conductivity of paper from 0.2 W/mK (baseline) to 1 W/mK reduces the hot spot temperature by 10 °C. While degradation significantly depends on the moisture and oxygen content, the model shows that such a temperature reduction can increase life for all conditions, by as much as a factor of three.
绝缘纸的降解是电力变压器故障的一个关键因素。在高温下绝缘性能会加速退化,这凸显了通过更好的热管理来延长使用寿命的潜力。虽然已有多项研究分析了高导热性油对降低变压器内部温度的益处,但本研究是对高导热性纸对变压器寿命影响的初步评估。将颗粒与纤维素纤维混合为制造高导热性纸(具有良好介电性能)提供了一条途径,这种纸能够降低内部温度。目前,对使用这种导热纸所能实现的寿命延长进行了估算,纸的导热系数是研究中的关键参数。本研究中使用的分析 - 数值热模型通过与一台配电变压器的实验测量结果进行验证,增强了对该模型实用性的信心。然后使用该模型来估算使用比基线导热系数更高的纸所导致的热点温度降低情况。传统上,基于阿伦尼乌斯模型,通过跟踪纸随时间的聚合度来预测变压器寿命。结果表明,将纸的导热系数从0.2W/mK(基线)提高到1W/mK可使热点温度降低10°C。虽然降解显著取决于水分和氧气含量,但该模型表明,这样的温度降低在所有条件下都能将寿命延长多达三倍。