用于 3D 打印微流体设备的开源互动设计平台

Yushen Zhang, Mengchu Li, Tsun-Ming Tseng, Ulf Schlichtmann
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摘要

微流控技术和三维打印技术为生物、化学和医学领域新技术和新应用的开发提供了令人兴奋的机遇。然而,三维打印微流体设备的设计仍然是一项具有挑战性的复杂任务,需要流体力学、三维建模和三维打印技术方面的专业知识和专业技能。目前,很少有工具能帮助工程师完成设计微流控器件这一劳动密集型过程,更不用说能帮助他们设计用于 3D 打印的微流控器件的工具了。在这项工作中,我们介绍了用于设计三维打印微流控设备的交互式软件平台 Flui3d。Flui3d 提供了一个标准的参数化元件库,支持多层设计,无需专业知识即可设计和配置微流控器件。Flui3d 集成了独特的制造设计 (DFM) 功能,便于使用商用消费级打印机无缝制造所设计的微流控器件。我们讨论了 Flui3d 的主要功能和优势,并通过设计微流控设备的实例进行了演示。我们还讨论了 Flui3d 的设计复杂性和潜在应用。Yushen Zhang 及其同事报告了一个开源、交互式软件平台,用于高效、便捷地设计可三维打印的微流控设备。该方法结合了为制造而设计的功能,便于使用商用消费级打印机制造设备。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Open-source interactive design platform for 3D-printed microfluidic devices
Microfluidics and 3D printing offer exciting opportunities for the development of new technologies and applications in the fields of biology, chemistry, and medicine. However, the design of 3D-printed microfluidic devices remains a challenging and complex task, requiring specialized knowledge and expertise in fluid mechanics, 3D modeling, and 3D printing technology. Currently, there are very few tools helping engineers to do the labor-intensive process of designing microfluidic devices, let alone any tools that can help them design microfluidic devices for 3D printing. In this work, we introduce Flui3d, an interactive software platform for designing microfluidic devices for 3D printing. Flui3d offers a standard parameterized component library, support for multi-layer design, and the ability to design and configure microfluidic devices without the need for specialized knowledge. Flui3d incorporates a distinctive Design-for-Manufacturing (DFM) function, facilitating seamless fabrication of the designed microfluidic devices using commercial consumer-grade printers. We discuss the key features and benefits of Flui3d and demonstrate them by designing examples of microfluidic devices. We also discuss the design complexity and the potential applications of Flui3d. Yushen Zhang and colleagues report an open source, interactive software platform for the efficient and convenient design of 3D printable microfluidic devices. The approach incorporates a design-for-manufacturing function, facilitating device fabrication using commercial consumer-grade printers.
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