首页> 外文会议>ASME International Mechanical Engineering Congress and Exposition >ACCELERATING LARGE-FORMAT METAL ADDITIVE MANUFACTURING: HOW CONTROLS RD IS DRIVING SPEED, SCALE, AND EFFICIENCY
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ACCELERATING LARGE-FORMAT METAL ADDITIVE MANUFACTURING: HOW CONTROLS RD IS DRIVING SPEED, SCALE, AND EFFICIENCY

机译:加速大幅面的金属添加剂制造:控制研发是如何驱动速度,规模和效率的

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This article highlights work at Oak Ridge National Laboratory's Manufacturing Demonstration Facility to develop closed-loop, feedback control for laser-wire based Directed Energy Deposition, a form of metal Big Area Additive Manufacturing (m-BAAM), a process being developed in partnership with GKN Aerospace specifically for the production of Ti-6Al-4V pre-forms for aerospace components. A large-scale structural demonstrator component is presented as a case-study in which not just control, but the entire 3D printing workflow for m-BAAM is discussed in detail, including design principles for large-format metal AM, too/path generation, parameter development, process control, and system operation, as well as post-print net-shape geometric analysis and finish machining. In terms of control, a multi-sensor approach has been utilized to measure both layer height and melt pool size, and multiple modes of closed-loop control have been developed to manipulate process parameters (laser power, print speed, deposition rate) to control these variables. Layer height control and melt pool size control have yielded excellent local (intralayer) and global (component-level) geometry control, and the impact of melt pool size control in particular on thermal gradients and material properties is the subject of continuing research. Further, these modes of control have allowed the process to advance to higher deposition rates (exceeding 7.5 Ibhr), larger parts (1-meter scale), shorter build times, and higher overall efficiency. The control modes are examined individually, highlighting their development, demonstration, and lessons learned, and it is shown how they operate concurrently to enable the printing of a large-scale, near net shape Ti-6Al-4V component.
机译:本文突出了橡树岭国家实验室的制造演示设施,开发闭环,对基于激光线的定向能量沉积的反馈控制,一种金属大面积添加剂制造(M-BAAM)的形式,是与合作关系开发的过程GKN航空航天专门用于生产TI-6AL-4V的航空航天组分的预形式。将大规模的结构示范器组件作为一个案例研究,其不仅仅是控制,而是详细讨论了M-BAAM的整个3D打印工作流程,包括用于大格式金属的设计原则,也是/路径生成,参数开发,过程控制和系统操作,以及后印刷网状几何分析和完成加工。在控制方面,已经利用多传感器方法来测量层高度和熔池池大小,并且已经开发了多种闭环控制模式来操纵处理参数(激光功率,打印速度,沉积速率)来控制这些变量。层高度控制和熔融池尺寸控制产生了优异的本地(体内)和全局(组件级)几何控制,特别是熔融池尺寸控制的影响特别是在热梯度和材料特性上是继续研究的主题。此外,这些控制模式允许该过程推进到更高的沉积速率(超过7.5 IBHR),较大的部件(1米刻度),更短的构建时间和更高的整体效率。控制模式是单独检查的,突出显示其发展,演示和经验教训,并显示它们如何同时操作,以便打印大规模的近净形状Ti-6Al-4V组件。

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