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Ultra-narrowband for energy-scavenging-powered wireless sensor networks

机译:超窄带,用于能量消除供电的无线传感器网络

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Industrial and consumer applications, such as smart energy and e-wearables, have become a reality - thanks to the Internet of Things and wireless sensor networks - creating a billions-worth market. Very-large-scale integration combined with energy scavenging give a promising ultra-low-power, cost-effective, and environment-friendly solution for the increasing power consumption demands as tens of millions of nodes are deployed worldwide every year. Most available wireless standards are power-hungry and, therefore, not suitable for energy scavenging. In this paper, we motivate ultranarrowband as an energy-scavenging-compatible wireless technology for low-throughput wireless sensor networks (WSNs). The ultra-narrowband approach is energy-efficient for two case scenarios. The first one is for WSNs with a large coverage area. The second case scenario is where WSN nodes experience a high level of interference from other co-existing communication systems. Two practical use cases are studied numerically, one for each case scenario. In both cases, on a node level, the link is significantly imbalanced between the transmitting and receiving sections in terms of energy consumption and data rate. However, in case of an interference-rich environment, the radiated power from the WSN base station as well as the WSN nodes is preferred to be as low as possible, thus leading to a more balanced link.
机译:得益于物联网和无线传感器网络,工业和消费类应用(例如智能能源和可穿戴设备)已成为现实,从而创造了价值数十亿美元的市场。超大规模集成与节能相结合,为日益增长的功耗需求提供了一种有前途的超低功耗,经济高效且环境友好的解决方案,因为全球每年部署了数千万个节点。大多数可用的无线标准都非常耗电,因此不适合进行能量清除。在本文中,我们激励超窄带作为一种低能耗无线传感器网络(WSN)的节能兼容无线技术。对于两种情况,超窄带方法都是节能的。第一个是针对覆盖范围较大的WSN。第二种情况是WSN节点受到来自其他共存通信系统的高度干扰。对两个实际用例进行了数值研究,每种情况下一个。在这两种情况下,在节点级别上,就能耗和数据速率而言,发送和接收部分之间的链路均存在明显的不平衡。但是,在干扰多的环境中,优选地,来自WSN基站以及WSN节点的辐射功率应尽可能低,从而导致链路更加均衡。

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