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具有高压实潜力的水泥基复合材料:建模与校准

Cementitious Composites with High Compaction Potential: Modeling and Calibration.

作者信息

Vu Giao, Iskhakov Tagir, Timothy Jithender J, Schulte-Schrepping Christoph, Breitenbücher Rolf, Meschke Günther

机构信息

Institute for Structural Mechanics, Ruhr University Bochum, Universitaetsstrasse 150, 44801 Bochum, Germany.

Institute for Building Materials, Ruhr University Bochum, Universitaetsstrasse 150, 44801 Bochum, Germany.

出版信息

Materials (Basel). 2020 Nov 5;13(21):4989. doi: 10.3390/ma13214989.

Abstract

There is an increasing need for the development of novel technologies for tunnel construction in difficult geological conditions to protect segmental linings from unexpected large deformations. In the context of mechanized tunneling, one method to increase the damage tolerance of tunnel linings in such conditions is the integration of a compressible two-component grout for the annular gap between the segmental linings and the deformable ground. In this regard, expanded polystyrene (EPS) lightweight concrete/mortar has received increasing interest as a potential "candidate material" for the aforementioned application. In particular, the behavior of the EPS lightweight composites can be customized by modifying their pore structure to accommodate deformations due to specific geological conditions such as squeezing rocks. To this end, novel compressible cementitious EPS-based composite materials with high compaction potential have been developed. Specimens prepared from these composites have been subjected to compressive loads with and without lateral confinement. Based on these experimental data a computational model based on the Discrete Element Method (DEM) has been calibrated and validated. The proposed calibration procedure allows for modeling and prognosis of a wide variety of composite materials with a high compaction potential. The calibration procedure is characterized by the identification of physically quantifiable parameters and the use of phenomenological submodels. Model prognoses show excellent agreement with new experimental measurements that were not incorporated in the calibration procedure.

摘要

在困难地质条件下进行隧道施工时,对于开发新技术以保护管片衬砌免受意外大变形影响的需求日益增长。在机械化隧道施工的背景下,在这种条件下提高隧道衬砌损伤容限的一种方法是在管片衬砌与可变形地层之间的环形间隙中采用可压缩双组分灌浆材料。在这方面,发泡聚苯乙烯(EPS)轻质混凝土/砂浆作为上述应用的潜在“候选材料”受到了越来越多的关注。特别是,通过改变其孔隙结构以适应诸如挤压岩石等特定地质条件引起的变形,可以定制EPS轻质复合材料的性能。为此,已开发出具有高压实潜力的新型可压缩水泥基EPS复合材料。由这些复合材料制备的试样已在有和没有侧向约束的情况下承受压缩载荷。基于这些实验数据,已校准并验证了基于离散元法(DEM)的计算模型。所提出的校准程序允许对具有高压实潜力的各种复合材料进行建模和预测。校准程序的特点是识别物理上可量化的参数并使用唯象子模型。模型预测与未纳入校准程序的新实验测量结果显示出极好的一致性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3936/7663914/d8d1276d70f7/materials-13-04989-g001.jpg

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