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Analysis and design of an integrated RF energy harvester for ultra low-power environments

机译:用于超低功耗环境的集成RF能量收割机的分析与设计

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Radio-frequency (RF) energy harvesting must cope with the limited availability and high variability of the energy source. In this paper, the available RF power in three typical environments (urban, semi-urban, and rural) is investigated. Measurements show that in the surveyed urban and semi-urban environments, an average input power above -22 and -29 dBm, respectively, is available in the [700, 1,000] MHz band. A mathematical model of the interface between the RF rectifier and the DC-DC converter is provided. The analysis demonstrates that the energy can be efficiently transferred to the external accumulator coupling the rectifier with a strobed, input control DC-DC converter. Based on the measurements and the analysis, an RF harvester architecture has been designed in 65 nm Complementary Metal-Oxide Semiconductor (CMOS) technology to operate over the [-40, 85]C-o temperature and the [1.1, 2.5] V battery voltage ranges. The input control strategy adopted for the converter allows the adaptation of the harvester to the available RF power and enables a real maximum power point tracking (MPPT). Post-layout simulation of the harvester, recharging a large capacitor, precharged at 2 V, at 950 MHz of input frequency returned a 33.4% peak efficiency with an input power of 15 mu W (-18 dBm). The minimum input power leading to a positive energy balance is -30 dBm with an output voltage of 1.1 V.
机译:射频(RF)能量收集必须应对能源的有限可用性和高可变性。本文调查了三种典型环境中的可用RF电力(城市,半城市和农村)。测量结果表明,在调查的城市和半城市环境中,分别为-22和-29 dBm的平均输入电源,可在[700,1000] MHz频段中使用。提供了RF整流器与DC-DC转换器之间的接口的数学模型。该分析表明,通过闪光的输入控制DC-DC转换器可以有效地将能量有效地传递到整流器的外部蓄能器。基于测量和分析,RF Harvester架构已经设计成65nm互补金属氧化物半导体(CMOS)技术,以在[-40,85] CO温度和[1.1,2.5] V电池电压范围内进行操作。转换器采用的输入控制策略允许将收割机适配到可用的RF功率,并启用真实的最大功率点跟踪(MPPT)。收割机的后布局模拟,充电大电容,在2V中预充电,输入频率为950 MHz,返回33.4%的峰值效率,输入功率为15μW(-18 dBm)。导致正能量平衡的最小输入功率为-30 dBm,输出电压为1.1V。

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