Mapley Martin, Lu Yidi, Gregory Shaun D, Pauls Jo P, Tansley Geoff, Busch Andrew
School of Engineering and Built Environment, Griffith University, Queensland, Australia.
Innovative Cardiovascular Engineering and Technology Laboratory, The Prince Charles Hospital, Brisbane, Queensland, Australia.
HardwareX. 2020 Jun 27;8:e00119. doi: 10.1016/j.ohx.2020.e00119. eCollection 2020 Oct.
Due to manufacturer implemented processing parameter restrictions and the cost prohibitive nature of selective laser sintering (SLS) machines, researchers have limited opportunities to explore the processing of new materials using this additive manufacturing (3D printing) process. Accordingly, this article aimed to overcome these limitations by describing the build and operation of a customizable low-cost polymer SLS machine. The machine boasts a three piston powder bed with the center build piston heated by PID controlled ceramic heaters. Thermal energy for powder consolidation was provided via a 2.44 W solid state diode laser which was mechanically traversed using stepper motor driven belt drives. New layers of powder were deposited by a counter-rotating roller system. The SLS machine was controlled by executing G-code in Mach3 allowing full customization of processing parameters. The machine demonstrated the production of parts from polyamide-12 reaching densities of 918 ± 9 kg/m while achieving an elastic modulus of 358.36 ± 3.04 MPa and elongation at break of 11.13 ± 0.02%. With part properties similar to those achievable with a commercial machine, this low-cost SLS machine could be a vital tool in assisting researchers to explore the processing of new materials.
由于制造商实施的加工参数限制以及选择性激光烧结(SLS)机器成本过高的特性,研究人员利用这种增材制造(3D打印)工艺探索新材料加工的机会有限。因此,本文旨在通过描述一台可定制的低成本聚合物SLS机器的构建和操作来克服这些限制。该机器拥有一个三活塞粉末床,中心构建活塞由PID控制的陶瓷加热器加热。粉末固结所需的热能由一台2.44瓦的固态二极管激光器提供,该激光器通过步进电机驱动的皮带传动进行机械横移。新的粉末层由一个反向旋转的辊筒系统沉积。SLS机器通过在Mach3中执行G代码进行控制,允许对加工参数进行完全定制。该机器展示了用聚酰胺-12生产零件,其密度达到918±9千克/立方米,同时弹性模量为358.36±3.04兆帕,断裂伸长率为11.13±0.02%。由于零件性能与商用机器所能达到的性能相似,这台低成本的SLS机器可能成为协助研究人员探索新材料加工的重要工具。