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Relationship between operational variables, fundamental physics and foamed cement properties in lab and field generated foamed cement slurries

机译:实验室和现场产生的泡沫水泥浆的操作变量,基本物理特性和泡沫水泥性能之间的关系

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Foamed cement is a critical component for wellbore stability. The mechanical performance of a foamed cement depends on its microstructure, which in turn depends on the preparation method and attendant operational variables. Determination of cement stability for field use is based on laboratory testing protocols governed by API Recommended Practice 10B-4 (API RP 10B-4, 2015). However, laboratory and field operational variables contrast considerably in terms of scale, as well as slurry mixing and foaming processes. Here, laboratory and field operational processes are characterized within a physics-based framework. It is shown that the "atomization energy" imparted by the high pressure injection of nitrogen gas into the field mixed foamed cement slurry is - by a significant margin - the highest energy process, and has a major impact on the void system in the cement slurry. There is no analog for this high energy exchange in current laboratory cement preparation and testing protocols. Quantifying the energy exchanges across the laboratory and field processes provides a basis for understanding relative impacts of these variables on cement structure, and can ultimately lead to the development of practices to improve cement testing and performance. Published by Elsevier B.V.
机译:发泡水泥是确保井筒稳定性的关键组成部分。泡沫水泥的机械​​性能取决于其微观结构,而微观结构又取决于制备方法和相关的操作变量。用于现场使用的水泥稳定性的确定是基于受API推荐规程10B-4(API RP 10B-4,2015)约束的实验室测试规程。但是,实验室和现场操作变量在规模,浆液混合和发泡过程方面存在明显的差异。在此,实验室和现场操作流程在基于物理学的框架内进行了表征。结果表明,将氮气高压注入到现场混合泡沫水泥浆中所产生的“雾化能”是(最大幅度)最高的能量过程,并且对水泥浆中的空隙系统有重大影响。当前实验室水泥的制备和测试方案中没有这种高能量交换的类似物。量化整个实验室和现场过程中的能量交换,为理解这些变量对水泥结构的相对影响提供了基础,并且最终可以导致开发改进水泥测试和性能的方法。由Elsevier B.V.发布

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