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Heat Flux Analysis in Electrical Transformers through Integral Operators of Mechanics

机译:通过力学积分算符分析变压器的热通量

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Considering the continuous functioning of a power transformer under charge of high capacity of 50 MVA, predicted studies are proposed to be performed of their thermal behavior under perma nent and variable regimens of flow of charge, using noninvasive methods based in integral trans forms that measure and determine parameters of geometrical, analytical and physical type of the transformer. In before works, we have studied a basic geometry of a winding composed of high and low voltage sections with a uniform heat generation and heat convection boundary conditions. The heat conduction equation representing the phenomena of heat generation in a cylindrical structure was solved by using an integral transform. In this sense, this new study considers the basic geometry composed of a three cylindrical windings (high and low voltage turns) and a rec tangular core. Thus it is proposed to solve magnetic flow equations using integral transforms (Han kel transforms and Bessel integrals) in order to obtain the heat source distribution in the core due to the magnetization currents which are developed in function of the magnetic field flow equations. Based on this, it is proposed as a second step to use this heat source distribution to obtain the corresponding temperature distribution in the core by solving the cylindrical heat conduction equation for the core (cylindrical). Bearing this in mind, it is proposed finally to solve the 3D cylindrical heat conduction equation for the one winding using the calculated heat convection coefficients, the conductivity of the winding, behavior of the mineral oil and the non uniform winding heat generation predicted in recent researches. This equation will be solved by using integral methods (Radon, Hankel and Fourier transforms). This methodology will be useful to establish a new design of a power transformer based on the values of their integrals and the results that throw the inverse methods for this case. Finally if possible we will use the programs of Fluent and/or Phoenics for the validation of functional proposed models of prediction and prevention of heat flow and charge based on the obtained results. ?
机译:考虑到功率互感器在50 MVA的高容量充电下的连续运行,建议使用永久性和可变电荷流方案,使用基于积分变换形式的非侵入性方法对功率互感器的热行为进行预测研究,该方法可测量和确定变压器的几何,分析和物理类型的参数。在以前的工作中,我们研究了由高低压部分组成的绕组的基本几何形状,并具有均匀的发热和热对流边界条件。通过使用积分变换来求解表示圆柱结构中的发热现象的热传导方程。从这个意义上讲,这项新研究考虑了由三个圆柱绕组(高低压绕组)和矩形铁芯组成的基本几何形状。因此,提出了使用积分变换(Han kel变换和Bessel积分)求解磁流方程的方法,以便获得由磁化电流引起的铁心中的热源分布,磁化电流是根据磁场流方程而产生的。基于此,建议第二步,利用该热源分布,通过求解铁心的圆柱热传导方程(圆柱)来获得铁心中的相应温度分布。牢记这一点,最后提出了使用最近计算出的热对流系数,绕组的电导率,矿物油的特性以及不均匀绕组产生的热量来求解一个绕组的3D圆柱热传导方程的方法。 。该方程将通过使用积分方法(Radon,Hankel和Fourier变换)求解。该方法将有助于根据其积分值和引发针对这种情况的逆方法的结果建立电力变压器的新设计。最后,如果可能的话,我们将使用Fluent和/或Phoenics的程序,基于获得的结果,验证功能性的预测模型以及热流和热量的预防模型。 ?

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