Karaş Büşra, Beedasy Vimanyu, Leong Zhaoyuan, Morley Nicola A, Mumtaz Kamran, Smith Patrick J
Innovative Process Laboratory, Department of Mechanical Engineering, The University of Sheffield, 64 Garden Street, Sheffield S1 4BJ, UK.
Applied Inkjet Printing Laboratory, Department of Mechanical Engineering, The University of Sheffield, 64 Garden Street, Sheffield S1 4BJ, UK.
Micromachines (Basel). 2021 Sep 29;12(10):1185. doi: 10.3390/mi12101185.
Inkjet-printing technology enables the contactless deposition of functional materials such as conductive inks on surfaces, hence reducing contamination and the risk of substrate damage. In printed electronics, inkjet technology offers the significant advantage of controlling the volume of material deposited, and therefore the fine-tuning of the printed geometry, which is crucial for the performance of the final printed electronics. Inkjet printing of functional inks can be used to produce sensors to detect failure of mechanical structures such as carbon fiber reinforced composite (CFRC) components, instead of using attached sensors, which are subject to delamination. Here, silver nanoparticle-based strain sensors were embedded directly in an insulated carbon-fiber laminate by using inkjet printing to achieve an optimized conductive and adhesive geometry, forming a piezoresistive strain sensor. Following the inkjet-printing optimization process, the sensor conductivity and adhesion performance were evaluated. Finally, the sensor was quantified by using a bending rig which applied a pre-determined strain, with the response indicating an accurate sensitivity as the resistance increased with an increased strain. The ability to embed the sensor directly on the CFRC prevents the use of interfacial adhesives which is the main source of failure due to delamination.
喷墨打印技术能够在表面非接触式沉积导电油墨等功能材料,从而减少污染和基板损坏风险。在印刷电子领域,喷墨技术具有显著优势,能够控制材料沉积量,进而微调印刷几何形状,这对最终印刷电子产品的性能至关重要。功能油墨的喷墨打印可用于生产传感器,以检测机械结构(如碳纤维增强复合材料(CFRC)部件)的故障,而无需使用易分层的附着式传感器。在此,通过喷墨打印将基于银纳米颗粒的应变传感器直接嵌入绝缘碳纤维层压板中,以实现优化的导电和粘合几何形状,形成压阻式应变传感器。经过喷墨打印优化过程后,对传感器的导电性和粘附性能进行了评估。最后,使用施加预定应变的弯曲试验台对传感器进行量化,结果表明随着应变增加电阻增大,响应显示出准确的灵敏度。将传感器直接嵌入CFRC的能力避免了使用界面粘合剂,而界面粘合剂是由于分层导致失效的主要原因。