首页> 外文OA文献 >Um sistema para estimação da vazão de gás de poços produzindo por Plunger Lift para vaso separador de teste em plataformas de petróleo
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Um sistema para estimação da vazão de gás de poços produzindo por Plunger Lift para vaso separador de teste em plataformas de petróleo

机译:用于估计油平台上的测试分离器容器的柱塞举升系统产生的气体流量的系统

摘要

This work intends to analyze the behavior of the gas flow of plunger lift wells producing to well testing separators in offshore production platforms to aim a technical procedure to estimate the gas flow during the slug production period. The motivation for this work appeared from the expectation of some wells equipped with plunger lift method by PETROBRAS in Ubarana sea field located at Rio Grande do Norte State coast where the produced fluids measurement is made in well testing separators at the platform. The oil artificial lift method called plunger lift is used when the available energy of the reservoir is not high enough to overcome all the necessary load losses to lift the oil from the bottom of the well to the surface continuously. This method consists, basically, in one free piston acting as a mechanical interface between the formation gas and the produced liquids, greatly increasing the well s lifting efficiency. A pneumatic control valve is mounted at the flow line to control the cycles. When this valve opens, the plunger starts to move from the bottom to the surface of the well lifting all the oil and gas that are above it until to reach the well test separator where the fluids are measured. The well test separator is used to measure all the volumes produced by the well during a certain period of time called production test. In most cases, the separators are designed to measure stabilized flow, in other words, reasonably constant flow by the use of level and pressure electronic controllers (PLC) and by assumption of a steady pressure inside the separator. With plunger lift wells the liquid and gas flow at the surface are cyclical and unstable what causes the appearance of slugs inside the separator, mainly in the gas phase, because introduce significant errors in the measurement system (e.g.: overrange error). The flow gas analysis proposed in this work is based on two mathematical models used together: i) a plunger lift well model proposed by Baruzzi [1] with later modifications made by Bolonhini [2] to built a plunger lift simulator; ii) a two-phase separator model (gas + liquid) based from a three-phase separator model (gas + oil + water) proposed by Nunes [3]. Based on the models above and with field data collected from the well test separator of PUB-02 platform (Ubarana sea field) it was possible to demonstrate that the output gas flow of the separator can be estimate, with a reasonable precision, from the control signal of the Pressure Control Valve (PCV). Several models of the System Identification Toolbox from MATLAB® were analyzed to evaluate which one better fit to the data collected from the field. For validation of the models, it was used the AIC criterion, as well as a variant of the cross validation criterion. The ARX model performance was the best one to fit to the data and, this way, we decided to evaluate a recursive algorithm (RARX) also with real time data. The results were quite promising that indicating the viability to estimate the output gas flow rate from a plunger lift well producing to a well test separator, with the built-in information of the control signal to the PCV
机译:这项工作旨在分析生产到海上生产平台中的油井测试分离器的柱塞举升井的气流的行为,以制定一种技术程序来估算段塞生产期间的气流。这项工作的动力来自对位于北里奥格兰德州海岸的Ubarana海域的PETROBRAS配备了柱塞举升法的油井的期望,在该油井中,通过平台的试井分离器对产出液进行了测量。当油层的可用能量不足以克服所有必要的载荷损失以将油从井底连续提升到地面时,可以使用称为柱塞举升的人工油举方法。该方法基本上包括一个自由活塞,该自由活塞充当地层气与采出液之间的机械接口,从而大大提高了井的提升效率。气动控制阀安装在流动管线上,以控制循环。当此阀打开时,柱塞开始从井底移动到井面,将其上方的所有油气抬起,直至到达井测试分离器,在井分离器中测量流体。试井分离器用于测量在一定时间段内由试井产生的所有体积,称为生产测试。在大多数情况下,分离器设计为通过使用液位和压力电子控制器(PLC)并假设分离器内部处于稳定压力来测量稳定流量,换言之,测量合理恒定的流量。在柱塞举升井中,表面的液体和气体流动是周期性且不稳定的,这会导致分离器内部出现团块(主要是在气相中),这是因为在测量系统中引入了重大误差(例如:超量程误差)。这项工作中提出的流动气体分析是基于两个数学模型一起使用的:i)Baruzzi [1]提出的柱塞举升井模型,Bolonhini [2]后来进行了修改,以建立柱塞举升模拟器; ii)基于Nunes [3]提出的三相分离器模型(气体+油+水)的两相分离器模型(气体+液体)。基于以上模型,并从PUB-02平台的试井分离器(Ubarana海域)收集的现场数据,可以证明分离器的输出气体流量可以通过控制以合理的精度进行估算。压力控制阀(PCV)的信号。分析了来自MATLAB®的系统识别工具箱的几种模型,以评估哪种模型更适合从现场收集的数据。为了验证模型,使用了AIC标准以及交叉验证标准的变体。 ARX模型的性能是最适合数据的模型,因此,我们决定使用实时数据评估递归算法(RARX)。结果是非常有希望的,它表明了通过控制信号到PCV的内置信息来估计从柱塞举升井生产到试井分离器的输出气体流速的可行性。

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