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Validation of Scale Prediction Algorithms at Oilfield Conditions

机译:油田条件下尺度预测算法的验证

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Scale and corrosion continue to be serious and costly problems in oil and gas production facilities. Production engineers rely upon computer programs to predict the severity and location of scale deposition and corrosion. The core of these computer programs are algorithms to correlate a set of theoretically derived equations, e.g. the conditional solubility products in Oddo-Tomson saturation index and activity effect corrections in Pitzer theory of specific ion interactions, to a limited set of thermodynamic solubility data. Typically, the solubility data at various temperature and pressure are only available in low salinity matrix. The solubility in high salinity matrix is often done at STP with only simple background electrolytes, e.g. KC1. Limited mixed salt data are available and mostly consisted of seawater matrix at STP. Solubility data are more rigorously tested for halite and calcite, while they are scarce for other oil-field minerals, e.g. barite, gypsum, celestite, and metal-sulfides. Hence, the validity of these equations to extreme oil field conditions is not known. In this paper, a new corrosion-proof, high-temperature, high-pressure flow-through apparatus was developed to measure mineral salt solubilities under relevant oil and gas production conditions, i.e., high temperature, pressure, TDS (total dissolve solids), mixed ion matrices of sulfate, acetate, calcium, magnesium, and the presence of methanol and ethylene glycol. New solubility data illustrates the validity and limitation of the Pitzer activity correction of mineral salt solubilities. Pitzer equations have been shown to accurately predict scaling indices to within 0.1 SI, with ScaleSoftPitzer?, ~(at) extreme oil and gas production condition.
机译:在石油和天然气生产设施中,水垢和腐蚀仍然是严重且代价高昂的问题。生产工程师依靠计算机程序来预测水垢沉积和腐蚀的严重程度和位置。这些计算机程序的核心是将一组理论上推导的方程式相关联的算法。 Oddo-Tomson饱和指数中的条件溶解度乘积和比泽尔理论中特定离子相互作用的活性效应校正,以获取有限的热力学溶解度数据集。通常,仅在低盐度矩阵中可获得各种温度和压力下的溶解度数据。在高盐度基质中的溶解度通常是在STP上仅使用简单的背景电解质完成的,例如KC1。现有有限的混合盐数据,并且主要由STP的海水基质组成。对于岩盐和方解石的溶解度数据进行了更严格的测试,而对于其他油田矿物质(例如矿物)则很少。重晶石,石膏,天青石和金属硫化物。因此,这些方程对极端油田条件的有效性尚不清楚。本文开发了一种新型的耐腐蚀,高温,高压流通设备,用于测量相关油气生产条件下的矿物盐溶解度,即高温,高压,TDS(总溶解固体),硫酸盐,乙酸盐,钙,镁的混合离子矩阵,以及甲醇和乙二醇的存在。新的溶解度数据说明了矿物盐溶解度的Pitzer活性校正的有效性和局限性。已经证明,在ScaleSoftPitzer?,〜(极端)石油和天然气生产条件下,Pitzer方程可以准确地将比例指数预测到0.1 SI之内。

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