An energy management strategy integrating high-efficiency voltage regulation and charge protection for ambient energy harvesting system

IF 9 1区 工程技术 Q1 ENERGY & FUELS
Yubao Li , Ruisi Zong , Juhuang Song , Zhiwei Chen , Chunbiao Yang , Lingfei Qi , Jinyue Yan
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引用次数: 0

Abstract

Micro-energy harvesting technologies are expected to replace traditional chemical batteries, providing stable and continuous clean energy for low-power wireless sensors. However, the voltage generated by micro-energy harvesting systems is often irregular and chaotic, making it unsuitable for direct use in electronic devices. To address this issue, this paper proposes an adaptive duty cycle interface circuit based on the Perturb and Observe (P&O) method, aiming to reduce the fluctuation of the output voltage while also implementing charging and discharging protection control for the battery. Experimental data have verified the feasibility of the voltage regulation strategy proposed in this paper, when the input voltage is constant and the target output voltage varies within the range of 1.2 V–4.2 V, the output voltage fluctuation of the P&O-based adaptive duty cycle control strategy is limited to 0.034 V. Moreover, when the input voltage is between 1 and 50 V, the maximum fluctuation of the output voltage is 0.344 V and the maximum deviation is 9.3 %. When the wind speed is between 3 and 7 m/s, the energy conversion efficiency ranges from 24.4 % to 56.8 %. At a moderate wind speed of 7 m/s, the power generation can reach 6835.2 J/day, and 2460.68 kJ/year. To prevent battery discharge when there is no energy input and overcharging due to continuous charging, this paper uses an analog-to-digital converter (ADC) and a logic gate circuit to implement charging and discharging protection control for the battery, ensuring protection during charging and preventing battery discharge.
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来源期刊
Energy
Energy 工程技术-能源与燃料
CiteScore
15.30
自引率
14.40%
发文量
0
审稿时长
14.2 weeks
期刊介绍: Energy is a multidisciplinary, international journal that publishes research and analysis in the field of energy engineering. Our aim is to become a leading peer-reviewed platform and a trusted source of information for energy-related topics. The journal covers a range of areas including mechanical engineering, thermal sciences, and energy analysis. We are particularly interested in research on energy modelling, prediction, integrated energy systems, planning, and management. Additionally, we welcome papers on energy conservation, efficiency, biomass and bioenergy, renewable energy, electricity supply and demand, energy storage, buildings, and economic and policy issues. These topics should align with our broader multidisciplinary focus.
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