Earthquake Engineering and Structural Dynamics Laboratory (EESD), School of Architecture, Civil and Environmental Engineering (ENAC), Institute of Civil Engineering (IIC), EPFL, Lausanne, 1015, Switzerland.
Laboratory for Timber Constructions (IBOIS), School of Architecture, Civil and Environmental Engineering (ENAC), Institute of Civil Engineering (IIC), EPFL, Lausanne, 1015, Switzerland.
Sci Data. 2023 Aug 10;10(1):533. doi: 10.1038/s41597-023-02417-3.
Research on irregular stone masonry walls is hampered by the lack of detailed geometrical models of their internal micro-structure, i.e. the shape and size of each stone and its position within the wall. Without such a geometric digital twin of walls tested in the laboratory, it is difficult to evaluate the accuracy of existing numerical simulation techniques. Here, we describe the generation of geometrical digital twins of three irregular stone masonry walls built in the laboratory. We labelled each stone manually and then obtained the geometry of the individual stones using a portable laser scanning device. With the same device we scanned the wall after the construction of each layer. We then registered the position of each stone in the layer. This paper outlines the methodology for the data acquisition and digital reconstruction and presents the datasets for the walls. The developed geometrical digital twins provide unique information regarding the micro-structure of constructed walls that is key for the development and validation of numerical simulation techniques for stone masonry.
不规则石砌体墙的研究受到其内部微观结构详细几何模型的限制,即每个石头的形状和大小及其在墙内的位置。如果没有对实验室中测试的墙壁进行这样的几何数字孪生,就很难评估现有数值模拟技术的准确性。在这里,我们描述了三个在实验室中建造的不规则石砌体墙的几何数字孪生的生成。我们手动标记每个石头,然后使用便携式激光扫描设备获取单个石头的几何形状。我们使用相同的设备扫描了每层施工后的墙壁。然后,我们注册了每层中每个石头的位置。本文概述了数据采集和数字重建的方法,并为墙壁提供了数据集。开发的几何数字孪生提供了有关构建墙微观结构的独特信息,这对于开发和验证石砌体数值模拟技术至关重要。