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Thermodynamic Behavior of Olefin and Methane Mixtures Applied to Synthetic Drilling Fluids Well Control

机译:烯烃和甲烷混合物的热力学行为适用于合成钻井液井控制

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The pre-salt discoveries in deep water have evidenced a challenging environment for drilling operations because of the technical demand and restriction and also environmental regulations fomenting technological development. Inaccurate estimation of the pressure could lead to drilling problems such as kick, lost circulation and wellbore instability. In this context, understanding the drilling fluid and gas formation mixture behavior is essential in situations of gas influx from the formation into the wellbore. These evidence the drilling fluids importance for the drilling operational efficiency, safety and cost reduction. Since the synthetic based drilling fluids are more sensitive to the pressure and temperature variations than water based drilling fluids, the effect of pressure, temperature and mixture composition on the thermodynamic properties such as density, formation volume factor, solubility ratio and saturation pressure were determined based on PVT (pressure/temperature/volume) experimental measurements for methane and olefin mixtures. Those properties are crucial for the mixture volumetric behavior knowledge at downhole conditions especially when gas enters into the wellbore. The experiments were conducted in isothermal conditions and a gas enrichment experimental procedure was applied. The temperature was set at a range between 25°C and 80°C while the gas molar fraction ranged from 30% to 50% and pressures up to 70 MPa. Additionally, the data collected was compared with the teamwork database for methane and n-paraffin mixtures and methane and ester mixtures. According to the literature, olefins show less toxicity and better biodegrability when compared to isomerized paraffins and esters, therefore olefins fit in with the new requirements present by the Brazilian Institute of Environment and Renewable Natural Resources (IBAMA), which restricted the disposal of cuttings associated with paraffins in offshore operations. Moreover, as each base has its own particularity, the findings exhibited the importance of the methane and olefin mixtures behavior knowledge at downhole conditions to guarantee the operational safety and efficiency. The experimental data will be essential to bring well control software up to date, which helps the decision-making of the engineers during well control.
机译:由于技术的需求和限制以及滋养技术发展,深水中的盐水预防发现是钻井业务的具有挑战性的环境。压力的不准确估计可能导致钻孔,如踢球,循环和井筒不稳定等问题。在这种情况下,了解钻井液和气体形成混合物行为在气体流入到井筒中的气体流入的情况下是必要的。这些证据钻孔流体对钻井操作效率,安全性和降低成本的重要性。由于基于合成的钻井液对压力和温度变化比水基钻井液更敏感,因此基于基于诸如密度,形成体积因子,溶解度和饱和度和饱和度,压力,温度和混合物组合物对热力学性质的影响关于甲烷和烯烃混合物的PVT(压力/温度/体积)实验测量。这些性质对于在井下条件下的混合体积行为知识,特别是当气体进入井筒时对混合体积的行为知识至关重要。实验在等温条件下进行,施用了气体富集实验程序。温度设定在25℃和80℃之间的范围内,而气体摩尔级分的范围为30%至50%,压力高达70MPa。另外,将收集的数据与甲烷和N-石蜡混合物和甲烷和酯混合物进行比较。根据文献,与异构化的石蜡和酯相比,烯烃显示出较少的毒性和更好的生物可生物,因此烯烃适合巴西环境研究所和可再生自然资源(IBAMA)的新要求,这限制了相关的扦插处置在海上行动中的石蜡。此外,随着每个碱的特殊性,调查结果表现出甲烷和烯烃混合物在井下条件下的行为知识的重要性,以保证操作安全性和效率。实验数据对于将良好的控制软件带来最新的实验数据至关重要,这有助于在良好的控制过程中有助于工程师的决策。

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