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Evaluation of dynamic loading capability for optimal loading strategies of power transformers

机译:功率变压器最优装载策略动态加载能力的评价

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Increasing needs for operational flexibility encourage concepts of using thermal operational limits of grid equipment instead of nominal limits, e.g., "dynamic line rating" for transmission lines. Using the available loading flexibility of complex and valuable power transformers requires a comprehensive approach. The thermal state and condition of a power transformer are among the most considerable impact factors for planning overload capability and lifetime management in the long term. This paper investigates the dynamic loading capability of power transformers by using a dynamically calculated initial thermal state, set thermal limits and a dynamic thermal model as proposed in the IEC 60076-7:2017. Different thermal limits can be set depending on the operation state, e.g., long-term emergency or insulation-friendly. The suggested thermal limits also consider ageing and dielectric properties of insulation. Thermal limits of equal ageing velocity for different moisture content in solid insulation can be used to operate the transformer with respect to long-term asset management strategies. Using the proposed reverse calculation of the thermal model's steady-state loading limits, e.g., nameplate rating, the permissible short-term loading beyond the steady-state limits can be obtained for given timespan. The dependency of the steady-state loading limit from ambient temperature is approximated as a polynomial function with linear, quadratic and cubic components. For a safe loading of the power transformer the steady-state limits of the subsystems have to be compared. The study shows that the hot-spot steady-state limits for normal and long-term emergency loading are lower than the top-oil steady-state limits. Power transformers are usually subject to variations in the loading profile. The current thermal state becomes essential for the estimation of the thermal reserve and loading capability, especially when permissible overloading for a time of up to 60 minutes is scheduled. When determining the possible overload for a longer time span, the validity of the results is decreasing due to growing uncertainties. Moreover, the paper proposes a system to enhance the model by a moisture migration model for mineral-oil-immersed power transformers, decision-making under uncertainties assistance and transformer's intelligent condition assessment system.
机译:越来越多的操作灵活性需求鼓励使用网格设备的热运行限制而不是标称限制的概念,例如,用于传输线的“动态线额定值”。使用复杂和有价值的电力变压器的可用负载灵活性需要全面的方法。电力变压器的热状态和条件是长期规划过载能力和寿命管理的最相当大的影响因素。本文通过使用动态计算的初始热状态,设置热限制和IEC 60076-7:2017中提出的动态热模型来研究电力变压器的动态加载能力。可以根据操作状态,例如长期紧急或绝缘友好设置不同的热限制。建议的热限装还考虑绝缘的老化和介电性能。固体绝缘中不同水分含量的相应衰老速度的热速度可用于在长期资产管理策略方面操作变压器。使用所提出的热模型的稳态装载限制的反向计算,例如铭牌评级,可以获得超出稳态限制的允许短期加载,以便给定时。来自环境温度的稳态加载限制的依赖性近似为具有线性,二次和立方组件的多项式函数。为了安全地加载电力变压器,必须比较子系统的稳态范围。该研究表明,正常和长期应急载荷的热点稳态限制低于顶部油稳态限制。电力变压器通常受加载轮廓的变化。当前热状态对于估计热储存和加载能力而言,特别是当调度最多60分钟的时间允许的过载时。当确定可能的过载更长的时间跨度时,由于不确定的不确定性,结果的有效性是降低的。此外,本文提出了一种通过用于矿泉油浸泡电力变压器的水分迁移模型来增强模型的系统,根据不确定性辅助和变压器的智能条件评估系统。

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