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Bladder Inflation Stretch Test Method for Reliability Characterization of Wearable Electronics

机译:穿戴式电子产品可靠性表征的膀胱充气拉伸试验方法

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The recent development of electronic materials that can maintain electrical performance while undergoing large applied strains have demonstrated potential for use in a new breed of electronic systems. The rapid development of these electronic systems that are flexible, stretchable, and/or wearable necessitates the concurrent development of robust mechanical and electrical test methods to improve their design and reliability. In this paper, one such mechanical test method is discussed in which a stretchable electronic test coupon is mounted onto an inflatable bladder of known geometry to induce multiaxial strains, while in-situ 4-point resistance measurement is employed to assess the device's performance and electromechanical integrity. The material combination of a stretchable screen-printed silver ink cured onto a thermoplastic polyurethane (TPU) substrate is studied given the proclivity for the use of TPU in wearable devices. A dome-shaped bladder configuration is employed in this work to study the performance of printed conductors under biaxial stretching. Various monotonic and cyclic loading regimes are employed to characterize the fatigue behavior and maximum use conditions of the samples. Volume of water displaced into the bladder during inflation is measured and correlated to the induced multiaxial strains on the mounted devices using 3D digital image correlation. Relationships between resistance and applied multiaxial strains are presented. Experimental results are compared with literature, and plausible extensions of the test method including direct printing on the bladder material are discussed.
机译:电子材料的最新发展可以在承受较大的应用应变的同时保持电气性能,这表明其在新型电子系统中的应用潜力。这些柔性,可拉伸和/或可穿戴的电子系统的快速发展,需要同时开发健壮的机械和电气测试方法,以改善其设计和可靠性。在本文中,讨论了一种这样的机械测试方法,其中将可拉伸的电子测试试样安装到已知几何形状的可充气囊袋上,以诱发多轴应变,同时采用原位4点电阻测量来评估设备的性能和机电正直。考虑到可穿戴设备中使用TPU的倾向性,研究了可固化的丝网印刷银墨固化到热塑性聚氨酯(TPU)基材上的材料组合。在这项工作中采用了圆顶形的囊状结构,以研究双轴拉伸下印刷导体的性能。采用各种单调和循环加载方式来表征样品的疲劳行为和最大使用条件。使用3D数字图像相关性,测量在充气过程中排入膀胱的水量,并将其与安装的设备上引起的多轴应变相关联。提出了电阻和施加的多轴应变之间的关系。将实验结果与文献进行了比较,并讨论了包括直接印刷在膀胱材料上的测试方法的合理扩展。

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