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Design and energy optimization of a multifunctional IoT solution for connected bikes

机译:用于连接自行车的多功能IoT解决方案的设计和能源优化

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IoT systems face a severe energy autonomy challenge in keeping electronics alive without massive and heavy batteries, pressing for the development of efficient ultra low power architectures and energy harvesting solutions. In this paper we present a new IoT system designed for long-term tracking applications of personal vehicles and moving assets, such as bicycles and carts. The system integrates Cellular, GNSS and BLE communication technologies that enable the implementation of a wide set of geo-aware tracking and fitness monitoring applications. Power consumption minimization is one of the main goals and design challenges for the presented system. This paper focuses on methods and techniques for power consumption optimization at the hardware and software level. We present the design of a miniature kinetic energy harvesting solution and of system architectures for leakage currents minimization and ultra-low power consumption. Results obtained in both simulation and in-field experiments demonstrate high efficiency and performance of the proposed solution, resulting in energy neutral performance of continuous tracking task.
机译:物联网系统在没有大量笨重电池的情况下保持电子设备的生命力方面面临着严峻的能源自治挑战,这迫切要求开发高效的超低功耗架构和能量收集解决方案。在本文中,我们提出了一种新的物联网系统,该系统旨在长期跟踪个人车辆和移动资产(如自行车和手推车)的应用。该系统集成了Cellular,GNSS和BLE通信技术,可实现各种地理感知跟踪和健康监测应用程序。功耗最小化是该系统的主要目标和设计挑战之一。本文重点介绍在硬件和软件级别优化功耗的方法和技术。我们介绍了一种微型动能收集解决方案的设计以及用于最小化泄漏电流和超低功耗的系统架构。在仿真和现场实验中均获得的结果证明了所提出解决方案的高效率和性能,从而实现了连续跟踪任务的能量中立性能。

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