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Experimental investigation and numerical modelling of hydrogen exposed piezoelectric actuators for fuel injector applications

机译:用于燃料喷射器的氢暴露压电致动器的实验研究和数值模型

摘要

Piezoelectric actuators are increasingly used for the electronic control of fuel injector opening valves. Hydrogen is considered an attractive clean alternative fuel for automobile and power generation applications. Current understanding of the performance of piezoelectric actuators in a hydrogen environment is very limited. This work is aimed at experimentally investigating the performance of hydrogen-exposed piezoelectric actuators under conditions directly relevant to a hydrogen-based fuel injector. The performance is assessed with both quasi-static and dynamic electric loads. It is found that up to 12 weeks of continuous exposure to hydrogen at 100°C and 10 MPa has a negligible effect on the actuator stroke when testing is conducted at temperatures of 5-80°C. Cyclic exposure and exposure done on fatigue cycled actuators also yields similar results. Microstructure and dielectric investigations confirm this behavior. The reason for a negligible effect of hydrogen is attributed to the presence of a protective ceramic insulation around the lateral surface of actuators which deactivates the hydrogen diffusion mechanism. A fully-coupled 3-D FEM-based numerical model of a Thermo-Electro-Mechanical continuum in hydrogen environment is developed using the ‘Equation Based Modeling’ feature of COMSOL Multiphysics. The model provides a useful tool for understanding the localized responses of the actuators in hydrogen environment and to predict their durability and applicability under different conditions.
机译:压电执行器越来越多地用于燃油喷射器打开阀的电子控制。氢被认为是用于汽车和发电应用的有吸引力的清洁替代燃料。目前对氢环境中压电致动器性能的了解非常有限。这项工作的目的是在与氢基燃料喷射器直接相关的条件下,通过实验研究暴露于氢的压电致动器的性能。使用准静态和动态电气负载评估性能。已经发现,当在5-80°C的温度下进行测试时,在100°C和10 MPa的氢气下连续暴露12周对执行机构行程的影响可以忽略不计。循环曝光和在疲劳循环执行器上进行的曝光也会产生相似的结果。微观结构和介电研究证实了这种行为。氢影响可忽略的原因是在致动器侧面周围存在保护性陶瓷绝缘层,该绝缘层使氢扩散机制失活。利用COMSOL Multiphysics的“基于方程式建模”功能,开发了氢环境中热电-机械连续体基于3D FEM的全耦合数值模型。该模型为了解执行器在氢气环境中的局部响应并预测其在不同条件下的耐用性和适用性提供了有用的工具。

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    Singh Yadvinder;

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  • 年度 2013
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