The Effect of Time Delay on 3D Printed Part Strength

Carl Moore, M. Pollard, Tarik J. Dickens, Hui Wang
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Abstract

We are investigating the impact on 3D printed part strength when the extruder is positioned using articulated robotic arms in place of a traditional x-y gantry-style system. One of our printer designs is called the DeXter printer [1] which uses two selective compliance assembly robotic arms (SCARA) to position dual extruders. An advantage of using dual robotic arms is that two extruders can move independently drastically reducing build times, or the second arm can perform additional operations like segment stimulation during the build process [2]. In either case the arms require a collision avoidance process to prevent them from colliding in the part space. A possible drawback of the collision avoidance requirement is that it can result in a time delay along some sections of the layer which, due to cooling, could have adverse effects on the part strength. This research aims to determine how this cooling time will affect the strength of ABS extruded parts. We performed tensile tests on 3D printed part samples for which we altered the g-code to produce a variable time delay during the printing process. Our control sample had a zero-dwell time, and as we increased dwell time we found that the ultimate tensile strength (UTS) did decrease.
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时间延迟对3D打印零件强度的影响
我们正在调查对3D打印部件强度的影响,当挤出机定位时,使用铰接式机械臂代替传统的x-y龙门式系统。我们的打印机设计之一被称为DeXter打印机[1],它使用两个选择性合规装配机械臂(SCARA)来定位双挤出机。使用双机械臂的一个优点是,两台挤出机可以独立移动,大大减少了建造时间,或者第二只机械臂可以在建造过程中执行额外的操作,如分段刺激[2]。在任何一种情况下,手臂都需要一个防撞过程,以防止它们在零件空间中碰撞。避免碰撞要求的一个可能的缺点是,它可能导致沿层的某些部分的时间延迟,由于冷却,可能对零件强度产生不利影响。本研究旨在确定冷却时间将如何影响ABS挤压件的强度。我们对3D打印部件样品进行了拉伸测试,我们改变了g代码,在打印过程中产生可变的时间延迟。我们的对照样品的停留时间为零,随着停留时间的增加,我们发现极限拉伸强度(UTS)确实降低了。
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