Consejo Nacional de Investigaciones Científicas y Técnicas, Centro Atómico Bariloche (CONICET), Comisión Nacional de Energía Atómica (CNEA), San Carlos de Bariloche R8402AGP, Argentina.
Centro Atómico Bariloche, Comisión Nacional de Energía Atómica (CNEA), San Carlos de Bariloche R8402AGP, Argentina.
Sensors (Basel). 2023 Apr 2;23(7):3684. doi: 10.3390/s23073684.
Monitoring the tortoise in the wild, currently in a vulnerable state of conservation in southern Argentina, is essential to gather movement information to elaborate guidelines for the species preservation. We present here the electronic circuit design as well as the associated firmware for animal monitoring that was entirely designed by our interdisciplinary research team to allow the extension of device features in the future. Our development stands out for being a family of low-cost and low-power devices, that could be easily adaptable to other species and contexts. Each device is composed of a sub 1 GHz radiofrequency IoT-compatible transceiver, a global navigation satellite system (GNSS) receiver, a magnetometer, and temperature and inertial sensors. The device does not exceed 5% of the animal's weight to avoid disturbance in their behavior. The board was designed to work as a monitoring device as well as a collecting data station and a tracker, by adding only small pieces of hardware. We performed field measurements to assess the autonomy and range of the radiofrequency link, as well as the power consumption and the associated positioning error. We report those values and discuss the device's limitations and advantages. The weight of the PCB including battery and GNSS receiver is 44.9 g, its dimensions are 48.7 mm × 63.7 mm, and it has an autonomy that can vary between a week and a month, depending on the sampling rates of the sensors and the rate of the RF signal and that of the GNSS receiver. The characterization of the device parameters will favor the open use of this development by other research groups working on similar projects.
监测野生龟,目前在阿根廷南部处于脆弱的保护状态,对于收集运动信息以制定物种保护指南至关重要。我们在此展示了动物监测的电子电路设计和相关固件,这些都是由我们跨学科研究团队完全设计的,旨在为未来扩展设备功能提供可能。我们的开发成果是一系列低成本、低功耗的设备,它们可以很容易地适应其他物种和环境。每个设备都由一个低于 1GHz 的射频物联网兼容收发器、一个全球导航卫星系统(GNSS)接收器、一个磁力计以及温度和惯性传感器组成。该设备的重量不超过动物体重的 5%,以避免对其行为造成干扰。该电路板被设计为监测设备、数据采集站和跟踪器,可以通过添加少量硬件来实现这些功能。我们进行了现场测量,以评估射频链路的自主性和范围、功耗以及相关的定位误差。我们报告了这些值,并讨论了设备的局限性和优势。包括电池和 GNSS 接收器在内的 PCB 重量为 44.9 克,尺寸为 48.7mm×63.7mm,其自主性可在一周到一个月之间变化,具体取决于传感器的采样率、RF 信号和 GNSS 接收器的速率。设备参数的特征将有利于其他从事类似项目的研究小组开放使用这项开发。