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DESIGN AND MODELING OF A MICROSCALE SELECTIVE LASER SINTERING SYSTEM

机译:微观选择性激光烧结系统的设计与建模

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The development of micro and nanoscale additive manufacturing methods in metals and ceramics is important for many applications in the aerospace, medical device, and electronics industries. Unfortunately, most commercially available metal additive manufacturing tools have feature-size resolutions of greater than 100 urn, which is too large to precisely control the micro structure of the parts they produce. A few research-grade metal additive manufacturing tools do exist, but their build rate is generally too slow for commercial applications. Therefore, this paper presents a new microscale selective laser sintering (μ-SLS) that can be used to improve the minimum feature-size resolution of metal additively manufactured parts by up to two orders of magnitude, while still maintaining the throughput of traditional additive manufacturing processes. In order to achieve this goal, several innovative design features like the use of (1) ultra-fast lasers, (2) a micro-mirror based optical system, (3) nanoscale powders, and (4) a precision spreader mechanism, have been implemented. The micro-SLS system is capable of achieving build rates of approximately 1 cm~3/hr while achieving a feature-size resolution of approximately 1 μm. This paper will also present new molecular scale models that have been developed for the micro-SLS to quantify and certify the micro-SLS build process. Modeling of the micro-SLS process is challenging, because most macroscale models of the SLS process contain assumptions that are no longer valid when the size of the particles that are being sintered is smaller than the wavelength of the laser being used to sinter them. Therefore, in modeling the micro-SLS process we must account for the wave nature of light and can no longer rely on the ray tracing models commonly used to model the SLS process. Also, heat transfer in the micro-SLS process is dominated by near-field radiation due to the diffraction of the light off the nanoparticles in the powder bed and the ultrafast lasers that are used in the micro-SLS system. This means that the assumptions of heat transfer by conduction and far-field radiation in the macroscale SLS systems are no longer valid for the micro-SLS system. Finally, the agglomeration of nanoparticles in the powder bed must be accurately modeled in order to precisely predict the formation of defects in the final parts produced. Overall, the goal of this modeling effort is to be able to predict the quality of a part produced using any given processing conditions, in order to produce parts that are "born certified" and do not need to be tested post fabrication.
机译:金属和陶瓷中的微型和纳米级添加剂制造方法的开发对于航空航天,医疗装置和电子行业的许多应用都很重要。遗憾的是,大多数商用的金属添加剂制造工具具有大于100 URN的特征尺寸分辨率,这对于精确控制它们产生的部件的微结构太大。一些研究级金属添加剂制造工具确实存在,但它们的构建速率通常对商业应用来说太慢了。因此,本文介绍了一种新的微观选择性激光烧结(μ-SLS),可用于改善金属的最小特征尺寸分辨率,该尺寸较大的数量级,同时仍保持传统添加剂制造的吞吐量流程。为了实现这一目标,多种创新设计特点,如(1)超快速激光器,(2)基于微镜的光学系统,(3)纳米级粉末,(4)是一种精密铺展机构,具有已实施。微SLS系统能够实现约1cm〜3 / hr的构建速率,同时实现大约1μm的特征尺寸分辨率。本文还将呈现新的分子尺度模型,该模型已经为微型SLS制定,以量化和认证微码材构建过程。微SLS过程的建模是具有挑战性的,因为当烧结的颗粒的尺寸小于用于烧结它们的激光的波长时,SLS过程的大多数宏观模型都包含不再有效的假设。因此,在建模微秒过程中,我们必须考虑光的波形,并且不能再依赖于常用的光线跟踪模型来模拟SLS过程。而且,由于在粉末床中的纳米颗粒的衍射和微秒系统中使用的超快激光器,微叠层工艺中的传热由近场辐射支配。这意味着通过导通和宏观SLS系统中的传热和远场辐射的传热假设不再适用于微秒系统。最后,必须精确建模粉末床中纳米颗粒的凝聚,以便精确地预测所产生的最终部件中的缺陷的形成。总的来说,这种建模努力的目标是能够预测使用任何给定的处理条件产生的部件的质量,以便产生“出生的经过认证”的部件,并且不需要进行制造后测试。

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