首页> 美国卫生研究院文献>Sensors (Basel Switzerland) >Numerical Modeling and Experimental Validation by Calorimetric Detection of Energetic Materials Using Thermal Bimorph Microcantilever Array: A Case Study on Sensing Vapors of Volatile Organic Compounds (VOCs)
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Numerical Modeling and Experimental Validation by Calorimetric Detection of Energetic Materials Using Thermal Bimorph Microcantilever Array: A Case Study on Sensing Vapors of Volatile Organic Compounds (VOCs)

机译:使用热双压电晶片微悬臂阵列量热法检测含能材料的数值建模和实验验证:挥发性有机化合物(VOC)感测蒸气的案例研究

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摘要

Bi-layer (Au-Si3N4) microcantilevers fabricated in an array were used to detect vapors of energetic materials such as explosives under ambient conditions. The changes in the bending response of each thermal bimorph (i.e., microcantilever) with changes in actuation currents were experimentally monitored by measuring the angle of the reflected ray from a laser source used to illuminate the gold nanocoating on the surface of silicon nitride microcantilevers in the absence and presence of a designated combustible species. Experiments were performed to determine the signature response of this nano-calorimeter platform for each explosive material considered for this study. Numerical modeling was performed to predict the bending response of the microcantilevers for various explosive materials, species concentrations, and actuation currents. The experimental validation of the numerical predictions demonstrated that in the presence of different explosive or combustible materials, the microcantilevers exhibited unique trends in their bending responses with increasing values of the actuation current.
机译:阵列中制造的双层(Au-Si3N4)微悬臂用于在环境条件下检测高能材料(如炸药)的蒸气。通过测量来自激光源的反射光线的角度来实验监测每个热双压电晶片(即微悬臂梁)的弯曲响应随致动电流的变化,该激光源用于照亮氮化硅微悬臂梁表面上的金纳米涂层。是否存在指定的可燃物质。进行实验以确定对于本研究考虑的每种爆炸物,该纳米量热仪平台的特征响应。进行了数值建模,以预测微悬臂梁对各种爆炸性材料,物质浓度和致动电流的弯曲响应。数值预测的实验验证表明,在存在不同爆炸物或可燃材料的情况下,微悬臂梁的弯曲响应随驱动电流值的增加而呈现出独特的趋势。

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