Jornet-Monteverde Julio Antonio, Galiana-Merino Juan José, Soler-Llorens Juan Luis
Department of Physics, Systems Engineering and Signal Theory, University of Alicante, Crta. San Vicente del Raspeig, s/n, 03080 San Vicente del Raspeig, Spain.
University Institute of Physics Applied to Sciences and Technologies, University of Alicante, Crta. San Vicente del Raspeig, s/n, 03080 San Vicente del Raspeig, Spain.
Sensors (Basel). 2021 Jun 4;21(11):3875. doi: 10.3390/s21113875.
This article presents a new wireless seismic sensor network system, especially design for building monitoring. The designed prototype allows remote control, and remote and real-time monitoring of the recorded signals by any internet browser. The system is formed by several Nodes (based on the CC3200 microcontroller of Texas Instruments), which are in charge of digitizing the ambient vibrations registered by three-component seismic sensors and transmitting them to a central server. This server records all the received signals, but also allows their real-time visualization in several remote client browsers thanks to the JavaScript's Node.js technology. The data transmission uses not only Wi-Fi technology, but also the existing network resources that nowadays can be found usually in any official or residential building (lowering deployment costs). A data synchronization scheme was also implemented to correct the time differences between the Nodes, but also the long-term drifts found in the internal clock of the microcontrollers (improving the quality of records). The completed system is a low-cost, open-hardware and open-software design. The prototype was tested in a real building, recording ambient vibrations in several floors and observing the differences due to the building structure.
本文介绍了一种新型无线地震传感器网络系统,专为建筑监测而设计。所设计的原型允许通过任何互联网浏览器进行远程控制以及对记录信号进行远程实时监测。该系统由多个节点(基于德州仪器的CC3200微控制器)组成,这些节点负责将三分量地震传感器记录的环境振动数字化,并将其传输到中央服务器。该服务器不仅记录所有接收到的信号,还借助JavaScript的Node.js技术允许在多个远程客户端浏览器中对其进行实时可视化。数据传输不仅使用Wi-Fi技术,还利用如今在任何官方或住宅建筑中通常都能找到的现有网络资源(降低部署成本)。还实施了一种数据同步方案,以校正节点之间的时间差以及微控制器内部时钟中发现的长期漂移(提高记录质量)。完整的系统是一种低成本、开放硬件和开放软件的设计。该原型在一座真实建筑中进行了测试,记录了多个楼层的环境振动,并观察了由于建筑结构而产生的差异。