Department of Mechanical Engineering, Brigham Young University, Provo, UT 84602, USA.
Department of Exercise Science, Brigham Young University, Provo, UT 84602, USA.
Sensors (Basel). 2023 Apr 4;23(7):3719. doi: 10.3390/s23073719.
Polymeric foams, embedded with nano-scale conductive particles, have previously been shown to display quasi-piezoelectric (QPE) properties; i.e., they produce a voltage in response to rapid deformation. This behavior has been utilized to sense impact and vibration in foam components, such as in sports padding and vibration-isolating pads. However, a detailed characterization of the sensing behavior has not been undertaken. Furthermore, the potential for sensing quasi-static deformation in the same material has not been explored. This paper provides new insights into these self-sensing foams by characterizing voltage response vs frequency of deformation. The correlation between temperature and voltage response is also quantified. Furthermore, a new sensing functionality is observed, in the form of a piezoresistive response to quasi-static deformation. The piezoresistive characteristics are quantified for both in-plane and through-thickness resistance configurations. The new functionality greatly enhances the potential applications for the foam, for example, as insoles that can characterize ground reaction force and pressure during dynamic and/or quasi-static circumstances, or as seat cushioning that can sense pressure and impact.
先前已经证明,嵌入纳米级导电颗粒的聚合物泡沫具有准压电(QPE)特性;也就是说,它们会在快速变形时产生电压。这种行为已被用于感测泡沫组件中的冲击和振动,例如在运动衬垫和隔振垫中。但是,尚未对传感行为进行详细的特征描述。此外,尚未探索在相同材料中感测准静态变形的潜力。本文通过对变形频率与电压响应的关系进行特征描述,为这些自感测泡沫提供了新的见解。还量化了温度与电压响应之间的相关性。此外,还观察到了一种新的传感功能,即对准静态变形的压阻响应。对平面内和贯穿厚度的电阻配置的压阻特性进行了量化。这种新功能极大地增强了泡沫的潜在应用,例如,作为可以在动态和/或准静态情况下表征地面反作用力和压力的鞋垫,或者作为可以感测压力和冲击的座椅缓冲垫。