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首页> 外文期刊>Acta Mechanica >On the fatigue fracture at adsorption/desorption of water in/from liquid-repellent nanoporous silica
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On the fatigue fracture at adsorption/desorption of water in/from liquid-repellent nanoporous silica

机译:斥液性纳米多孔二氧化硅吸附/解吸水时的疲劳断裂

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In this work, fatigue fracture tests on liquid-repellent nanoporous silica micro-particles dispersed in water are reported; then, models of the grain cracking and fragmentation are proposed. Such tests can be regarded, from an external standpoint, as conducted under temporally variable but spatially uniform pressure distribution in the liquid surrounding the silica grains, or from an internal standpoint, as surface fatigue that occurs at the cyclical adsorption/desorption of water in/from the nanoporous particles. The test rig represents a compression-decompression cylinder divided into two chambers, one of constant volume and the other of variable volume. Silica is introduced inside the cavity of fixed volume, and a micro-filter is used to separate it from the chamber of variable volume, in which only water is supplied. Experimental results suggest that the fatigue fracture of silica particles occurs from the inside, explosion-like, oppositely to the previously reported implosion-like collapse of silica under wet pressurization. This is accompanied by enhancement of the hydrophilic silanol groups on the silica surface and by redistribution of the size of particles and pores. Critical numbers of cycles to achieve fracture of the silica particles obtained experimentally, and from the models of grain cracking and fragmentation, under cyclical pressurization, are in good agreement.
机译:在这项工作中,报道了对分散在水中的拒液纳米多孔二氧化硅微粒的疲劳断裂试验。然后,提出了晶粒开裂和破碎的模型。从外部的角度来看,这种测试可以看作是在围绕二氧化硅颗粒的液体中随时间变化但在空间上均一的压力分布下进行的测试,或者从内部的角度来看,可以看作是水在//循环吸附/解吸时发生的表面疲劳。从纳米孔颗粒。该试验装置代表一个压缩减压缸,分为两个腔室,一个是恒定容积,另一个是可变容积。将二氧化硅引入固定体积的腔体内,并使用微型过滤器将其与体积可变的腔室分离,在腔室中仅供水。实验结果表明,二氧化硅颗粒的疲劳断裂从内部发生,呈爆炸状,这与先前报道的湿加压下二氧化硅的内爆状塌陷相反。这伴随着二氧化硅表面上亲水硅烷醇基团的增强以及颗粒和孔尺寸的重新分布。在循环加压下,通过实验获得的,通过晶粒破裂和破碎模型获得的二氧化硅颗粒断裂的关键循环数非常吻合。

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