Sensitivity to Initial Data Errors in Interpreting Temperature Logging of an Isolated Injection Well Segment

K. Potashev, D. R. Salimyanova, A. B. Mazo, A. A. Davletshin, A. V. Kosterin
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Abstract

This study considers the inverse problems inherent in interpreting temperature logging data from an isolated segment of the injection well in order to ascertain its operating period and the thermophysical properties of the oil reservoir.The forward problem of thermal conductivity was reduced to a one-dimensional axisymmetric formulation within the oil reservoir layer, disregarding the vertical thermal exchange with neighboring layers.The inverse problem of determining the well operating period was solved by reformulating the forward problem with regard to the temperature field derivative, which enabled the use of first-order optimization methods. Thus, Nesterov’s method was applied. An algorithm to automatically scale one of the method’s parameters (step length) was developed, and the optimal value of the second parameter (inertial step) was calculated. This increased the efficiency of the method by 10 – 15 % in solving the problem under consideration.The algorithm’s stability against perturbations in the initial data on temperature and thermophysical properties was demonstrated. The sensitivity analysis revealed that a 1 % error in the temperature measurements results in a standard deviation of the solution, which is about 2 % from the true value of the well operating period. A similar level of error was seen when the thermal diffusivity was overor underestimated by approximately 15 %. The solution was little sensitive to variations in the heat transfer coefficient between the oil reservoir and the well at characteristic magnitudes; even with a twofold distortion, the error in the determination of the well operating period did not exceed 1.5 %. To mitigate the error in thermometry interpretation to 1 %, temperature measurements must have an error margin of no more than 0.25 %, alongside precisely specified thermophysical properties of the oil reservoir, or, alternatively, when temperature is measured accurately, the rock thermal diffusivity must be set within an error margin of less than 3 %, but it is nearly impossible under real conditions.Increasing the number of temperature measurements diminishes the sensitivity to measurement errors, with the optimal efficacy achieved at 10 measurements, rendering further increments impractical.Therefore, the algorithm’s stability and the solution’s sensitivity of the inverse problem of determining the reservoir thermal diffusivity for a given operating period of the well relative to temperature measurement errors were found. The results show that a 1 % error in temperature measurements leads to a standard deviation of about 6 % from the true value. 
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解读隔离注水井段温度测井数据时对初始数据误差的敏感性
本研究考虑了在解释注水井孤立井段的温度测井数据以确定其作业期和油藏热物理性质时所固有的反问题。热导率的正向问题被简化为油藏层内的一维轴对称问题,忽略了与邻近油层的垂直热交换。因此,采用了涅斯捷罗夫方法。开发了一种算法来自动调整该方法的一个参数(步长),并计算出第二个参数(惯性步长)的最佳值。该算法在温度和热物理性质初始数据发生扰动时的稳定性得到了验证。灵敏度分析表明,温度测量误差为 1%时,解法的标准偏差约为油井工作周期真实值的 2%。热阻系数高估或低估约 15%时,也会产生类似的误差。该解决方案对油藏和油井之间热传导系数在特征量级上的变化几乎不敏感;即使有两倍的扭曲,油井作业期的确定误差也不超过 1.5%。要将测温解释的误差减小到 1%,温度测量的误差率必须不超过 0.25%,同时还要精确确定油藏的热物理性质,或者,在精确测量温度时,必须将岩石热阻设定在误差率小于 3% 的范围内,但这在实际条件下几乎是不可能的。增加温度测量次数会降低对测量误差的敏感性,10 次测量就能达到最佳效率,因此再增加测量次数是不切实际的。因此,研究了在给定的油井作业期内确定储层热阻反问题的算法稳定性和解决方案对温度测量误差的敏感性。结果表明,温度测量误差为 1%,与真实值的标准偏差约为 6%。
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