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首页> 外文期刊>Journal of Petroleum Science & Engineering >Hydrocarbon reservoirs characterization by co-interpretation of pressure and flow rate data of the multi-rate well testing
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Hydrocarbon reservoirs characterization by co-interpretation of pressure and flow rate data of the multi-rate well testing

机译:通过多口井试井的压力和流量数据的共同解释来表征油气藏

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摘要

Pressure transient behavior is among the most important information for characterizing a reservoir, forecasting its future performance, and designing an appropriate recovery scheme. Although a continuous real-time monitoring of reservoir bottom-hole pressure has become a routine task in intelligent wells, complete extraction of the potential information from these valuable sources of data may not be achieved by using traditional interpretation methods. Deconvolution transforms the pressure transient data related to the wells with variable production rates into an equivalent constant rate pressure data with duration equal to the whole duration of the multi-rate test i.e., unit step response. This technique can reveal high valuable information over a distance from the wellbore which may be several orders of magnitude greater than the radius of investigation of individual flow periods. In the present study, a robust and practical deconvolution methodology is developed for extracting the unit step response (USR) from synthetic, noisy and incomplete pressure transient histories pertaining to multi-rate data. Our proposed scheme calculates the USR from those multi-rate well testing data which may contain high levels of noises in both the flow rate and pressure data. A coupled wavelet transform/superposition theorem is the basis of the proposed method. The algorithm has shown an excellent performance for revealing reservoir/boundary models and their associated parameters. (C) 2015 Elsevier B.V. All rights reserved.
机译:压力瞬变行为是表征油藏,预测其未来性能以及设计合适的采收方案的最重要信息之一。尽管对储层井底压力的连续实时监控已成为智能井的常规任务,但使用传统的解释方法可能无法从这些有价值的数据源中完全提取出潜在信息。去卷积将与具有可变生产率的井有关的压力瞬变数据转换成等效的恒定速率压力数据,其持续时间等于多速率测试的整个持续时间,即单位阶跃响应。该技术可以在距井眼一定距离的位置揭示高价值的信息,该信息可能比单个流动周期的研究半径大几个数量级。在本研究中,开发了一种强大而实用的反卷积方法,用于从与多速率数据有关的合成,嘈杂和不完整的压力瞬态历史中提取单位阶跃响应(USR)。我们提出的方案从那些多速率试井数据中计算出USR,这些数据可能在流速和压力数据中都包含高水平的噪声。耦合小波变换/叠加定理是该方法的基础。该算法在揭示储层/边界模型及其相关参数方面表现出了出色的性能。 (C)2015 Elsevier B.V.保留所有权利。

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