Kim Do-Yeon, Kim Hong-Seok, Kamath Sarath Suresh, Hou Xiangying, Choi Jae-Won, Park Sang-Hu
Graduate School of Mechanical Engineering, Pusan National University, Busan, 46241, Korea.
Department of Mechanical Engineering, The University of Akron, Akron, OH, 44325, USA.
Sci Rep. 2024 May 19;14(1):11419. doi: 10.1038/s41598-024-62101-3.
A novel auxetic structure applicable to airless tire spokes is designed based on the primitive-type triply periodic minimal surface (P-TPMS) to have higher stiffness through deformation under compressive force. For becoming higher stiffness by deformation, an unit cell of auxetic structure is proposed and its characteristics according to design parameters are studied. Based on the parametric study, a rotated primitive-type auxetic structure (RPAS) is designed, and the deformative behaviors of an airless tire with the RPAS spokes are compared with a generally used honeycomb spoke. Simulation and experiment results show that the designed RPAS tire exhibits more stable behavior through higher rigidity depending on the deformation state when compressed on flat ground and obstacles. This variable stiffness characteristic of RPAS tires can be advantageous for shock absorption and prevention of large local deformations. Also, the manufacturability of the designed auxetic structure is evaluated using real rubber-based additive manufacturing processes for practical application in the tire manufacturing industry.
基于原始型三重周期极小曲面(P - TPMS)设计了一种适用于无气轮胎辐条的新型负泊松比结构,使其在压缩力作用下通过变形具有更高的刚度。为了通过变形获得更高的刚度,提出了一种负泊松比结构的单胞,并研究了其根据设计参数的特性。基于参数研究,设计了一种旋转原始型负泊松比结构(RPAS),并将具有RPAS辐条的无气轮胎的变形行为与常用的蜂窝辐条进行了比较。模拟和实验结果表明,设计的RPAS轮胎在平坦地面和障碍物上压缩时,根据变形状态通过更高的刚度表现出更稳定的行为。RPAS轮胎的这种可变刚度特性有利于减震和防止大的局部变形。此外,使用基于真实橡胶的增材制造工艺评估了设计的负泊松比结构的可制造性,以便在轮胎制造业中实际应用。