Ortega Javier, Meersman Marnix F L, Aparicio Sofía, Liébana Juan Carlos, Martín Rodrigo, Anaya José Javier, González Margarita
Institute of Physical and Information Technologies (ITEFI), Agencia Estatal Consejo Superior de Investigaciones Cientificas, Madrid, Community of Madrid, 28006, Spain.
Faculty of Aerospace Engineering, Technische Universiteit Delft, Delft, South Holland, 2629 HS, The Netherlands.
Open Res Eur. 2023 Apr 21;3:60. doi: 10.12688/openreseurope.15769.1. eCollection 2023.
The conservation of the built masonry heritage requires a comprehensive understanding of its geometrical, structural, and material characteristics. Non-destructive techniques are a preferred approach to survey historical buildings, given the cultural value of their fabric. However, currently available techniques are typically operated manually, consuming much time at operational and processing level and thus hindering their use for the on-site inspection of heritage structures. A novel automated sonic tomography system was designed and built to inspect and obtain information about the inner structure and damage of historic masonry walls. The system consists of a hitting device mounted on a frame that can be placed adjacent to the wall under analysis. The hitting device can move along the surface within the frame area in X, Y and Z directions, generating the sonic wave. The receiving system is a scanning laser vibrometer, able to measure from the distance the displacement of a focused point over time, recording the wave when it reaches the opposite surface. Six stone masonry walls with different interior geometries were constructed at the laboratory by a professional stonemason. The construction of the walls was carefully documented, including the generation of detailed photogrammetric models of each single stone. The system was applied to survey the six masonry walls. Since the inner morphology of the walls is known, the resulting tomographic images could be compared with the ground truth. Automating the inspection allowed to collect thousands of data in a few hours. New software was also developed to automate the processing of the data. Results are expected to highlight the potential of tomography to obtain quantitative information about the interior of heritage structures, while providing new tools that make the implementation of the technique more practical for professionals. Data, software and models have been made publicly available.
砖石建筑遗产的保护需要全面了解其几何、结构和材料特性。鉴于历史建筑结构的文化价值,无损检测技术是勘测历史建筑的首选方法。然而,目前可用的技术通常需要人工操作,在操作和处理层面耗费大量时间,因此阻碍了其在遗产结构现场检测中的应用。设计并构建了一种新型自动声波层析成像系统,用于检测历史砖石墙的内部结构并获取相关损伤信息。该系统由安装在框架上的敲击装置组成,该框架可放置在待分析墙体附近。敲击装置可在框架区域内沿表面在X、Y和Z方向移动,产生声波。接收系统是一台扫描激光振动计,能够从一定距离外测量聚焦点随时间的位移,并在波到达对面表面时进行记录。专业石匠在实验室建造了六面内部几何形状不同的石墙。墙体的建造过程被仔细记录,包括生成每块石头的详细摄影测量模型。该系统被应用于勘测这六面石墙。由于墙体的内部形态已知,因此可以将所得的层析图像与实际情况进行比较。自动化检测使得在数小时内就能收集数千个数据。还开发了新软件来自动处理这些数据。预计结果将突出层析成像在获取遗产结构内部定量信息方面的潜力,同时提供新工具,使该技术的实施对专业人员来说更具实用性。数据、软件和模型已公开提供。