Nguyen Van-Cuong, Le Minh-Quyen, Mogniotte Jean-François, Capsal Jean-Fabien, Cottinet Pierre-Jean
Laboratoire de Génie Electrique et Ferroélectricité, Institut National des Sciences Appliquées, Université de Lyon, 69621 Villeurbanne, France 2 Hybria Institute of Business and Technologies, Écully Campus, 69130 Écully, France.
Hybria Institute of Business and Technologies, Écully Campus, 69130 Écully, France.
Micromachines (Basel). 2022 Sep 27;13(10):1606. doi: 10.3390/mi13101606.
Suction cups (SCs) are used extensively by the industrial sector, particularly for a wide variety of automated material-handling applications. To enhance productivity and reduce maintenance costs, an online supervision system is essential to check the status of SCs. This paper thus proposes an innovative method for condition monitoring of SCs coated with printed electronics whose electrical resistance is supposed to be correlated with the mechanical strain. A simulation model is first examined to observe the deformation of SCs under vacuum compression, which is needed for the development of sensor coating thanks to the 3D printing process. The proposed design involves three circle-shaped sensors, two for the top and bottom bellows (whose mechanical strains are revealed to be the most significant), and one for the lip (small strain, but important stress that might provoke wear and tear in the long term). For the sake of simplicity, practical measurement is performed on 2D samples coated with two different conductive inks subjected to unidirectional tensile loading. Graphical representations together with analytical models of both linear and nonlinear piezoresistive responses allows for the characterization of the inks' behavior under several conditions of displacement and speed inputs. After a comparison of the two inks, the most appropriate is selected as a consequence of its excellent adhesion and stretchability, which are essential criteria to meet the target field. Room temperature extrusion-based 3D printing is then investigated using a motorized 3D Hyrel printer with a syringe-extrusion modular system. Design optimization is finally carried out to enhance the surface detection of sensitive elements while minimizing the effect of electrodes. Although several issues still need to be further considered to match specifications imposed by our industrial partner, the achievement of this work is meaningful and could pave the way for a new generation of SCs integrated with smart sensing devices. The 3D printing of conductive ink directly on the cup's curving surface is a true challenge, which has been demonstrated, for the first time, to be technically feasible throughout the additive manufacturing (AM) process.
吸盘在工业领域有着广泛应用,尤其适用于各种自动化物料搬运应用。为提高生产率并降低维护成本,在线监控系统对于检查吸盘状态至关重要。因此,本文提出一种创新方法,用于监测涂有印刷电子器件的吸盘状态,其电阻应与机械应变相关。首先研究一个仿真模型,以观察吸盘在真空压缩下的变形情况,这对于借助3D打印工艺开发传感器涂层是必要的。所提出的设计包括三个圆形传感器,两个用于顶部和底部波纹管(其机械应变被证明最为显著),一个用于唇缘(应变小,但长期可能引起磨损的重要应力)。为简单起见,在涂有两种不同导电油墨的二维样品上进行单向拉伸加载的实际测量。线性和非线性压阻响应的图形表示以及分析模型,能够表征油墨在几种位移和速度输入条件下的行为。比较两种油墨后,由于其出色的附着力和拉伸性,选择了最合适的一种,这是满足目标领域的关键标准。然后使用带有注射器挤出模块系统的电动3D Hyrel打印机研究基于室温挤出的3D打印。最后进行设计优化,以增强敏感元件的表面检测,同时最小化电极的影响。尽管仍有几个问题需要进一步考虑,以符合我们工业合作伙伴提出的规格要求,但这项工作的成果是有意义的,可能为集成智能传感设备的新一代吸盘铺平道路。将导电油墨直接3D打印在杯子的弯曲表面是一项真正的挑战,本文首次证明在整个增材制造(AM)过程中在技术上是可行的。