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Assessment of in-situ alkali-silica reaction (ASR) development of glass aggregate concrete prepared with dry-mix and conventional wet-mix methods by X-ray computed micro-tomography

机译:通过X射线计算微型层析术,对原位碱 - 二氧化硅反应(ASR)发育玻璃骨料混凝土的发育

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A recent study showed that concrete products prepared with the dry-mix method have better alkali-silica reaction (ASR) resistance than that prepared by the wet-mix method. But the mechanism of ASR in dry-mix glass concrete remains unclear. Meanwhile, the techniques such as Scanning Electron Microscopy (SEM) and Mercury Intrusion Porosimetry (MIP) cannot reflect the in-situ evolution of the microstructure with the progress of the ASR. In this study, two common casting methods, the wet-mix and dry-mix methods, were adopted to prepare the glass concrete. The non-destructive X-ray computed micro-tomography (X-ray mu CT) technique was applied to observe the pore geometries of both the wet-mix and dry-mix glass concrete, to determine their porosities using 3D volumes and to investigate the generation of cracks during ASR development. This study firstly observed the irregular pore geometry of the glass concretes by quantitatively comparing the pore geometries using the sphericity developed by Wadell for both dry-mix and wet-mix glass concrete. The test results of the porosity measured by 3D volume showed that the porosity of the dry-mix glass concrete decreased after the ASR test. However, no obvious change was observed in the porosity of the wet-mix glass concrete. This change may be attributed to the large pores in the dry-mix glass concrete which can accommodate the ASR gel. Through the in-situ observation using 3D X-ray mu CT, no new cracks were generated in the dry-mix glass concrete during the progressive development of ASR. On the contrary, new cracks which were filled with ASR gel were densely distributed in the wet-mix glass concrete, which led to failure of the concrete matrix. This is because the expansive ASR gel formed could not be accommodated by the limited pore space in the wet-mix glass concrete, and the swelling pressure of ASR gel induced new cracks in the wet-mix glass concrete.
机译:最近的一项研究表明,用干混方法制备的混凝土产品具有比通过湿式混合方法制备的更好的碱性二氧化硅反应(ASR)电阻。但是在干混玻璃混凝土中ASR的机制仍不清楚。同时,诸如扫描电子显微镜(SEM)和汞侵入孔隙瘤(MIP)之类的技术不能反映微结构的原位演变随着ASR的进展。在该研究中,采用了两种常见的铸造方法,湿混合和干混方法来制备玻璃混凝土。应用非破坏性X射线计算的微型层析术(X射线MU CT)技术,观察湿混合和干混玻璃混凝土的孔形状,以使用3D卷和研究它们的孔隙率并研究在ASR开发期间产生裂缝。本研究首先通过定量比较了使用由Wadell开发的干混和湿混玻璃混凝土的球形度来定量比较孔几何形状的玻璃混凝土的不规则孔几何形状。通过3D体积测量的孔隙率的测试结果表明,ASR试验后干混玻璃混凝土的孔隙率降低。然而,在湿混合玻璃混凝土的孔隙率下没有观察到明显的变化。这种变化可以归因于干混玻璃混凝土中的大孔,其可以容纳ASR凝胶。通过使用3D X射线MU CT的原位观察,在ASR的渐进式发育过程中,在干混玻璃混凝土中没有产生新的裂缝。相反,填充有ASR凝胶的新裂缝密集地分布在湿混玻璃混凝土中,导致混凝土基质的失效。这是因为在湿式混合玻璃混凝土中,所形成的膨胀ASR凝胶不能容纳,并且ASR凝胶的溶胀压力诱导湿混玻璃混凝土中的新裂缝。

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