Sensitivity Analysis Using One-Factor-at-a-Time and Response Surface Method in Liquid-Dominated Geothermal Reservoir

D. A. Maharsi, Jeffrey Chrystian Ta'dung, L. Jannoke, I. Budi
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Abstract

In addition to extensive information that has been obtained from pre-feasibility, exploration, and drilling phase, we can improve our knowledge of reservoir behavior related to thermal extraction using sensitivity analysis. Such analysis is commonly applied to address technical uncertainty and risks in economic evaluation. The purpose of this study is to determine the parameters that have the most influence on thermal power generation using two different approaches named one-factor-at-a-time or OFAT and response surface method or RSM. Moreover, RSM analysis allowed us to make a predictive model for thermal power extracted in liquid-dominated geothermal reservoir. Literature study is conducted to understand various properties commonly encountered in a liquid-dominated geothermal reservoir including porosity, conductivity, reservoir temperature, and permeability. This information is then used to construct reservoir model in CMG STARS simulator with a single producer and injector. Two different sampling method, named OFAT and Box-Behnken are used to construct dataset, each contains different combination of levels of reservoir porosity, conductivity, temperature, permeability, and re-injection temperature. A total of 31 models using OFAT method with 7-level for each parameter are simulated to understand individual effect of each parameter. Meanwhile, 47 models are constructed using RSM method with 3-level for each parameter to evaluate the effect of interaction between parameters on thermal generation potential as well as constructing predictive model. Sensitivity analysis using both OFAT and RSM agree that the reservoir temperature is the most significant characteristic of geothermal reservoir to affect its thermal power potential. Meanwhile, re-injection temperature that initially expected to strongly effect the lifetime and sustainability of a liquid-dominated geothermal utilization is insignificant. This finding suggest that optimization re-injection temperature is solely for the purpose of maintaining sustainability of geothermal reservoir or cater the concern of environmental issue on wastewater management, and not for maximizing the thermal extraction.
液控地热储层响应面法和单因素一次敏感性分析
除了从预可行性、勘探和钻井阶段获得的大量信息外,我们还可以通过灵敏度分析提高对热采相关油藏行为的认识。这种分析通常用于解决经济评估中的技术不确定性和风险。本研究的目的是使用两种不同的方法,即单因素一次法(OFAT)和响应面法(RSM)来确定对火力发电影响最大的参数。此外,通过RSM分析,建立了以液体为主的地热储层提取热功率的预测模型。通过文献研究,了解以液体为主的地热储层中常见的孔隙度、导电性、储层温度和渗透率等各种特性。然后利用这些信息在CMG STARS模拟器中构建具有单一采油和注入器的油藏模型。OFAT和Box-Behnken两种不同的采样方法用于构建数据集,每种方法都包含油藏孔隙度、电导率、温度、渗透率和回注温度的不同组合。利用OFAT方法模拟了31个模型,每个参数7个级别,以了解每个参数的个体效应。同时,采用RSM方法构建了47个模型,每个参数为3个层次,以评价参数之间的相互作用对产热势的影响,并构建预测模型。利用OFAT和RSM进行敏感性分析,均认为储层温度是影响地热储层热电潜力的最显著特征。与此同时,最初预计对液体地热利用的寿命和可持续性产生强烈影响的回注温度是微不足道的。这表明,优化回注温度仅仅是为了保持地热储层的可持续性或满足废水管理方面的环境问题,而不是为了最大限度地提高热采收率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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