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ACTIVE MIXING NOZZLE FOR MULTI-MATERIAL AND MULTI-SCALE 3D PRINTING

机译:用于多种材料和多尺寸3D打印的主动混合喷嘴

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Multi-scale and multi-material 3D printing is new frontier in additive manufacturing. It has shown great potential to implement the simultaneous and full control for fabricated object including external geometry, internal architecture, functional surface, material composition and ratio as well as gradient distribution, feature size ranging from nano, micro, to marco-scale, embedded components and electro-circuit, etc. Furthermore, it has the ability to construct the heterogeneous and hierarchical structured object with tailored properties and multiple functionalities which cannot be achieved through the existing technologies. That paves the way and may result in great breakthrough in various applications, e.g., functional tissue and organ, functionally graded material/structure, wearable devices, soft robot, functionally embedded electronics, metamaterial, multi-functionality product, etc. However, very few of the established additive manufacturing processes have now the capability to implement the multi-material and multi-scale 3D printing. This paper presented a single nozzle-based multi-scale and multi-material 3D printing process by integrating the electrohydrodynamic jet (E-jet) printing and the active mixing multimaterial nozzle. The proposed AM technology has the capability to create multifunctional heterogeneously structured objects with control of the macro-scale external geometry and micro-scale internal structures as well as functional surface features, particularly, the potential to dynamically mix, grade and vary the ratios of different materials. An active mixing nozzle, as a core functional component of the 3D printer, is systematically investigated by combining with the theoretical analysis, numerical simulation and experimental verification. The study aims at exploring a feasible solution to implement the multi-scale and multi-material 3D printing at low cost.
机译:多尺度和多种材料的3D打印是增材制造的新领域。它显示出对制造对象进行同时和完全控制的巨大潜力,包括外部几何形状,内部结构,功能表面,材料成分和比率以及梯度分布,特征尺寸范围从纳米,微米到马可规模,嵌入式组件此外,它具有构建具有定制属性和多种功能的异构层次结构对象的能力,这是现有技术无法实现的。这铺平了道路,并可能在各种应用中取得重大突破,例如功能组织和器官,功能分级的材料/结构,可穿戴设备,软机器人,功能嵌入式电子产品,超材料,多功能产品等。已建立的增材制造工艺中的一部分现已具备实施多材料和多规模3D打印的能力。本文通过将电动液力喷射(E-jet)打印和主动混合多材料喷嘴集成在一起,提出了基于单喷嘴的多尺度和多材料3D打印过程。所提出的增材制造技术具有通过控制宏观外部几何形状和微观内部结构以及功能表面特征来创建多功能异构结构对象的能力,特别是具有动态混合,分级和改变不同比例的潜力。材料。通过与理论分析,数值模拟和实验验证相结合,系统地研究了作为3D打印机核心功能部件的主动混合喷嘴。该研究旨在探索一种可行的解决方案,以低成本实现多规模和多种材料的3D打印。

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