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首页> 外文期刊>Scientific reports. >Incorporation of Hydroxyethylcellulose-Functionalized Halloysite as a Means of Decreasing the Thermal Conductivity of Oilwell Cement
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Incorporation of Hydroxyethylcellulose-Functionalized Halloysite as a Means of Decreasing the Thermal Conductivity of Oilwell Cement

机译:掺入羟乙基纤维素官能化埃洛石作为降低油井水泥导热系数的手段

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The significant heat loss and severe thermal fluctuations inherent in steam-assisted gravity drainage (SAGD) and cyclic steam stimulation (CSS) impose considerable constraints on well cementing. In order to obtain better energy efficiency and mechanical robustness, there is considerable interest in the development of low-thermal-conductivity cement that can provide a combination of enhanced thermal insulation and mechanical resilience upon thermal cycling. However, the current palette of thermal cements is exceedingly sparse. In this article, we illustrate a method for decreasing the thermal conductivity of cement by inclusion of hydroxyethylcellulose-functionalized halloysite nanotubes. Halloysite/hydroxyethylcellulose inclusions offer an abundance of disparate interfaces and void space that can effectively scatter phonons, thereby bringing about a pronounced reduction of thermal conductivity. The microstructure of the nanocomposite cementitious matrix is strongly modified even as the compositional profile remains essentially unaltered. Modified cement nanocomposites incorporating halloysite nanotubes along with hydroxyethylcellulose in a 8:1 ratio with an overall loading of 2 wt.% exhibit the lowest measured thermal conductivity of 0.212?±?0.003?W/m.K, which is substantially reduced from the thermal conductivity of unmodified cement (1.252?W/m.K). The ability to substantially decrease thermal conductivity without deleterious modification of mechanical properties through alteration of microstructure, inclusion of encapsulated void spaces, and introduction of multiple phonon-scattering interfaces suggests an entirely new approach to oilwell cementing based on the design of tailored nanocomposites.
机译:蒸汽辅助重力排水(SAGD)和循环蒸汽增产(CSS)中固有的显着热量损失和严重的热波动对固井起到了很大的限制作用。为了获得更好的能量效率和机械强度,人们对开发低导热率的水泥有相当大的兴趣,该水泥可以在热循环时提供增强的隔热性和机械弹性。但是,当前的热固水泥调色板非常稀疏。在本文中,我们说明了一种通过包含羟乙基纤维素功能化的埃洛石纳米管来降低水泥导热系数的方法。埃洛石/羟乙基纤维素夹杂物提供了大量不同的界面和空隙空间,可以有效地分散声子,从而显着降低热导率。即使组成分布基本上保持不变,纳米复合水泥基的微观结构也被强烈修饰。以8:1的比例掺入埃洛石纳米管和羟乙基纤维素的改性水泥纳米复合材料,其总载量为2 wt。%,其最低测得的热导率为0.212?±?0.003?W / mK,与未改性的水泥(1.252?W / mK)。通过改变微观结构,包封的空隙空间以及引入多个声子-散射界面,可以在不降低机械性能的情况下大幅降低热导率,这是一种基于定制的纳米复合材料设计油井固井的全新方法。

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