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Additive Manufacturing with Bioinspired Sustainable Product Design: A Conceptual Model

机译:添加剂制造与BioinSpired可持续产品设计:概念模型

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The development of additive manufacturing (AM) has led to enormous opportunities for product design and manufacturing. The industrial application of AM, however, remains limited to aerospace, medical, and research arenas. These limitations are largely due to AM’s weaknesses in process speed, surface finish, and the cost of raw materials and equipment, which prevent traditional industry away from adopting AM in their productions. The potential benefit (e.g., material reduction and higher product quality) from AM is often overlooked traditional manufacturing industry. Bioinspired product design creates innovations in product redesign for less material consumption, better functionality, and less environmental impact. The objective of this paper is to develop a conceptual model for manufacturers to redesign product and identify additive manufacturing process adoption opportunities, and implement AM processes in production. This conceptual model integrates concurrent considerations of multiple additive manufacturing design and bioinspired design factors including raw material quality (e.g. size, shape, internal porosity), processing parameters (e.g., laser power, roller speed), and functionality of the product (e.g., stress, strain, displacement). A case study is conducted on making a unit Titanium product with selective laser sintering process. Three structures were examined: diamond structure, honey comb structure, and bone structure. This study reveals that the method can be applied in additive manufacturing early product design and it assists researchers and engineers explore new bioinspired geometries that could be used in manufacturing.
机译:添加剂制造业(AM)的发展导致了产品设计和制造的巨大机会。然而,AM的工业应用仍然仅限于航空航天,医学和研究竞技场。这些限制主要是由于AM在工艺速度,表面光洁度和原材料和设备成本中的弱点,这防止了传统产业远离其在其制作中。来自AM的潜在利益(例如,材料减少和更高的产品质量)通常被忽视了传统制造业的潜在忽视。 BioinSpired产品设计在产品重新设计中创造了更少的物质消费,更好的功能和对环境影响更少的创新。本文的目的是为制造商开发概念模型,以重新设计产品并确定添加剂制造过程采用机会,并在生产中实施AM过程。这种概念模型集成了多个添加剂制造设计和生物悬浮的设计因子的并发考虑因素,包括原料质量(例如尺寸,形状,内部孔隙率),加工参数(例如,激光功率,滚筒速度)和产品的功能(例如,应力,菌株,位移)。采用具有选择性激光烧结过程的单位钛产品进行案例研究。检查了三种结构:金刚石结构,蜂蜜梳理结构和骨骼结构。本研究表明,该方法可应用于添加剂制造早期产品设计,它协助研究人员和工程师探索可用于制造业的新生物悬浮的几何形状。

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