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An IoT-based autonomous system for workers' safety in construction sites with real-time alarming, monitoring, and positioning strategies

机译:基于IoT的自治系统,可通过实时警报,监视和定位策略保护建筑工地工人的安全

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Civil construction sites are considered as one of the riskiest environments where many potential hazards may occur. To protect construction workers and prevent accidents in such sites, this paper proposes a novel design for an autonomous system that monitors, localizes, and warns site laborers who avail within danger zones. The proposed system is user-friendly, and its architecture is based on Internet of Things (IoT). The heterogeneous components of this architecture are seamlessly integrated into a middleware backend online server. To accurately detect and identify construction workers, the proposed system employs three combined techniques. They are 1) the 868 MHz radio frequency, 2) directional antennas, and 3) the 40 kHz ultrasound waves. Vehicle's rear is secured by a sensing unit that ensures good coverage along with a wearable device for workers. The design of the wearable device includes a set of components which are a radio transceiver (transmitter/receiver), a wake-up sensor, an alarm actuator, and a GPRS module. The wearable device has a power saving scheme with a current consumption as low as 0.5 mu A at 3 V supply; thanks to our RF wake-up sensor. Via proximity, this wearable device becomes hybrid (active/passive) in which it remains in deep sleep mode until the presence of a radio frequency (RF) field. Consequently, the rechargeable battery's life gets increased by up to 2 days of autonomy before recharging. Furthermore, the paper presents an implementation of wireless nodes that are powered by light energy using photovoltaic cells. These nodes adopt energy management and storage schemes for continuous operation for indoor and outdoor environments.
机译:土木建筑工地被认为是可能发生许多潜在危害的最危险的环境之一。为了保护建筑工人并防止在此类地点发生事故,本文提出了一种针对自治系统的新颖设计,该系统可以监视,定位并警告在危险区域内工作的现场工人。提出的系统是用户友好的,其体系结构基于物联网(IoT)。该体系结构的异构组件无缝集成到中间件后端在线服务器中。为了准确地检测和识别建筑工人,建议的系统采用了三种组合技术。它们是1)868 MHz射频,2)定向天线和3)40 kHz超声波。车辆的后部由传感单元固定,该传感单元可确保良好的遮挡以及工人的可穿戴设备。可穿戴设备的设计包括一组组件,这些组件是无线电收发器(发送器/接收器),唤醒传感器,警报执行器和GPRS模块。可穿戴设备具有一种节能方案,在3 V电源下的电流消耗低至0.5μA。多亏了我们的RF唤醒传感器。通过可穿戴设备,该可穿戴设备变为混合(主动/被动)设备,在该设备中,该设备一直处于深度睡眠模式,直到出现射频(RF)场。因此,可充电电池的寿命在充电之前最多可以延长2天。此外,本文提出了一种使用光伏电池由光能供电的无线节点的实现。这些节点采用能量管理和存储方案,以在室内和室外环境中连续运行。

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