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Development and application of flexible integrated microsensor as real-time monitoring tool in proton exchange membrane water electrolyzer

机译:柔性集成微传感器作为质子交换膜水电解槽实时监控工具的开发与应用

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The proton exchange membrane (PEM) water electrolyzer has such advantages as simple system, low operating temperature and small-scale hydrogen production according to real time requirement, and the hydrogen production process is clean, meeting the environmental requirements. The PEM water electrolysis hydrogen production is the reverse reaction of fuel cell, but the water electrolysis requires high operating voltage, the resistance is likely to generate a lot of waste heat, and the nonuniform current density results in hot spots, the internal temperature rises, accelerating the decomposition of hydrogen molecules, the water electrolyzer is likely to age and fail. In addition, four important physical parameters (temperature, flow, voltage and current) in the running water electrolyzer can influence its performance and life, but the present bottleneck is external, theoretical, simulated or single measurement, the authentic information in the water electrolyzer cannot be obtained accurately and instantly. This study uses micro-electro-mechanical systems (MEMS) technology to develop a flexible integrated (temperature, flow, voltage and current) microsensor applicable to the high voltage and electrochemical environment in water electrolyzer, which is integrated with a 20 mu m thick polyimide (PI) film material. The real-time microscopic diagnosis and measurement in the PEM water electrolyzer can measure the internal local temperature, voltage, current and flow distribution uniformity instantly and accurately, so as to optimize the operating conditions and analysis. (C) 2019 Elsevier Ltd. All rights reserved.
机译:质子交换膜(PEM)水电解槽具有系统简单,运行温度低,根据实时要求制氢规模小等优点,制氢过程清洁,符合环保要求。 PEM水电解制氢是燃料电池的逆反应,但是水电解需要较高的工作电压,电阻很可能会产生大量废热,电流密度不均匀会导致热点,内部温度升高,加速氢分子的分解,水电解槽可能会老化和失效。此外,自来水电解槽中的四个重要物理参数(温度,流量,电压和电流)会影响其性能和寿命,但当前的瓶颈是外部,理论,模拟或单一测量,因此水电解槽中的真实信息无法实现准确,即时地获得。这项研究使用微机电系统(MEMS)技术开发了一种灵活的集成式(温度,流量,电压和电流)微传感器,该传感器适用于水电解槽中的高压和电化学环境,并与20微米厚的聚酰亚胺集成在一起(PI)胶片材料。 PEM电解槽的实时微观诊断和测量可以即时,准确地测量内部局部温度,电压,电流和流量分布的均匀性,从而优化运行条件和分析。 (C)2019 Elsevier Ltd.保留所有权利。

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