Implementation of Wireless Sensor Network (WSN) for Earthquake Detection

I. Sitanggang, J. A. I. Damanik, F. Hutabarat, A. Sagala
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Abstract

The current earthquake monitoring system uses a seismometer that can capture seismic vibrations very well but is expensive, heavy, and difficult to launch. Therefore, earthquake monitoring stations can only be launched in a few places in small numbers. This study aims to implement a Wireless Sensor Network (WSN) system for earthquake monitoring. The WSN system has advantages in cost, size, and ease of launch, so it is very appropriate to be used for this purpose. An earthquake detection sensor system has been designed in this study using a vibration sensor and a piezoelectric sensor. When an earthquake occurs, the resulting shock will trigger the vibration sensor and activate the sensor node. The shock data is then captured by the piezo sensor and processed by the microcontroller using Fast Fourier Transform (FFT) to determine the frequency value of the shock. The data is then sent to a gateway via a sensor network and uploaded to the Cayenne monitoring website. Operators can then view the data on the website. Three sensor nodes are implemented in this study. The test is done by placing those sensor nodes together in random positions. A shock is then given to the three sensor nodes, and the resulting data is then observed. The results show that the three sensors can detect, retrieve, process, and send shock data to the Cayenne monitoring website.
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无线传感器网络(WSN)地震探测的实现
目前的地震监测系统使用的地震仪可以很好地捕捉地震振动,但价格昂贵,重量大,而且难以发射。因此,地震监测站只能在少数地方少量启动。本研究旨在实现一种用于地震监测的无线传感器网络(WSN)系统。无线传感器网络系统在成本、体积、发射方便等方面具有优势,因此非常适合用于这一目的。本研究采用振动传感器和压电传感器设计了一种地震探测传感器系统。当地震发生时,产生的冲击将触发振动传感器并激活传感器节点。冲击数据随后由压电传感器捕获,并由微控制器使用快速傅里叶变换(FFT)进行处理,以确定冲击的频率值。然后,数据通过传感器网络发送到网关,并上传到卡宴监控网站。操作员可以在网站上查看数据。本研究实现了三个传感器节点。测试是通过将这些传感器节点随机放置在一起来完成的。然后给三个传感器节点一个冲击,然后观察得到的数据。结果表明,三种传感器均能检测、检索、处理冲击数据,并将其发送到卡宴监测网站。
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审稿时长
10 weeks
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