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首页> 外文期刊>Journal of power sources >Internet of Things temperature sensor powered by bacterial fuel cells on paper
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Internet of Things temperature sensor powered by bacterial fuel cells on paper

机译:由纸上细菌燃料电池供电的物联网温度传感器

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The present work deals with a frugal paper-based microbial fuel cell (PMFC) that generates an average power of 25 mu W per device using Shewanella putrefaciens. Bacteria colonized on the paper matrix can be activated by readily available nutrient sources leading to instant power generation. Current study translates this technology to energize a wireless Internet of Things (IoT) sensor. A well-designed stacking of multiple cells is adopted to boost the power output. The power profile characteristics of three 10-unit PMFC configurations namely series (Cl), parallel (C2), and combination of both (C3) are investigated. Attempts to directly charge a supercapacitor using serially-connected PMFC stack results in voltage reversal (VR). Hence, to harvest this microbial energy prudently, a customized power management system consisting of integrated Maximum Power Point Tracking (MPPT) feature is deployed. This helps in interfacing the PMFCs to capture charge, boost the harvested voltage and to prevent voltage reversal (VR). Power harvested from PMFCs is stored into a supercapacitor in order to drive the wireless IoT sensor module, which in turn measures temperature and communicates the data to a smart phone. The current endeavours can pave the way for "bacteria powered IoT devices" by unlocking the potential of microbes through PMFCs.
机译:本工作涉及一种节俭的纸基微生物燃料电池(PMFC),该燃料电池使用Shewanella putrefaciens产生的平均功率为25μW。定居在纸质基质上的细菌可以通过容易获得的营养物质来激活,从而立即发电。当前的研究将这一技术转化为无线物联网(IoT)传感器。设计良好的多个电池堆可以提高功率输出。研究了三个10单元PMFC配置的功率分布特性,即串联(C1),并联(C2)和两者的组合(C3)。尝试使用串行连接的PMFC堆栈直接为超级电容器充电会导致电压反转(VR)。因此,为了谨慎地收集这种微生物能量,部署了一个由集成的最大功率点跟踪(MPPT)功能组成的定制电源管理系统。这有助于连接PMFC以捕获电荷,提高收集的电压并防止电压反转(VR)。从PMFC收集的电能存储在超级电容器中,以驱动无线IoT传感器模块,该模块依次测量温度并将数据传送到智能手机。当前的努力可以通过PMFC释放微生物的潜力,从而为“细菌驱动的IoT设备”铺平道路。

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