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Eliminating Battery Replacement Throughout the Useful Life of IoT Devices with Limited-Capacity Batteries: Analysis and Design of a Zero Energy Air Interface

机译:在具有有限容量电池的IOT设备的整个使用寿命中消除电池更换:零能量空气接口的分析和设计

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In cellular systems, IoT devices usually encounter a compromise between device’s reachability and its battery life. Reducing the communication latency entails reducing the battery life. To mitigate this compromise, the lifetime of a battery powered wireless device can be significantly extended by deploying ultra-low power (ULP) receivers with energy harvesting capabilities operating over a zero-energy (ZE) downlink air-interface that does not draw power from the device’s battery. In this paper, we investigate the feasibility of the ZE downlink air interface, as a supplement to a Uu air-interface, in supporting IoT devices with limited-capacity batteries. We formulate an online energy management policy to handle energy consumption and harvesting requirements. We then develop an analysis for the probability distributions of the battery’s charge levels across time instances, followed by a simulation framework aimed at evaluating the correct decoding probability of the information messages. Simulation results show that better than 90% probability of both successful ZE operation and correct message decoding can be achieved for receiver power consumption of less than 120nW while maintaining network resource utilization to less than 5%.
机译:在蜂窝系统中,物联网设备通常遇到设备可达性与电池寿命之间的折衷。减少通信延迟需要降低电池寿命。为了缓解这种折衷,可以通过将超低功耗(ULP)接收器部署在不汲取电力的零能量(ZE)下行链路空气接口中,通过部署超低功耗(ULP)接收器来显着扩展电池供电无线设备的寿命。设备的电池。在本文中,我们研究了ZE下行链路空中接口的可行性,作为UU空气接口的补充,在支持具有有限容量电池的IOT设备中的补充。我们制定在线能源管理政策,以处理能源消耗和收获要求。然后,我们开发了跨时间实例的电池充电水平的概率分布的分析,然后是旨在评估信息消息的正确解码概率的仿真框架。仿真结果表明,对于较好的ZE操作和正确的消息解码的概率优于90%,可以实现小于120nw的接收器功耗,同时保持网络资源利用率小于5%。

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