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Rapid Prototyping for Micro-Engineering and Microfluidic Applications: Recycled PMMA, a Sustainable Substrate Material

机译:微型工程和微流体应用的快速原型设计:再生的PMMA,可持续的基材材料

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Poly(methylmethacrylate), PMMA, is one of the most commonly used thermoplastics for the manufacture of micromechanical and microfluidic devices, due to its optical transparency, rigid mechanical properties, low cost and good workability in conjunction with its rapid prototyping and mass manufacturing. Recent advances in the rapid-prototyping fields have allowed the production of precise features compatible with microfluidic structures and accelerated the conversion process from bench-side to mass market. For example, to address the need for fast design cycles using material compatible with mass manufacturing, we have developed an ultrafast prototyping technique for the manufacture of multi-layer PMMA micro devices (doi:10.1007/s10404-016-1823-1) and described a method to choose the right PMMA for this prototyping technique (doi:10.3233/978-1-61499-792-4-181). PMMA is a petrochemical-derived material and the rising demand for single-use disposable devices will inevitably result into increased medical plastic waste. To address this problem at the design/prototyping stage, we explored the possibility of utilizing recycled PMMA (Re-PMMA) as the substrate material in our technique. The aim of this work is to compare commercially available recycled PMMA (Re-PMMA) with pristine PMMA (pPMMA) in conjunction with our prototyping technique. The information reported here will provide a practical guide to researchers when selecting Re-PMMA material for a more sustainable approach to micro-engineering and microfluidic rapid-prototyping.
机译:聚(甲基丙烯酸甲酯),PMMA,是用于制造微机械和微流体装置的,最常用的热塑性塑料之一,由于其光学透明性,刚性的机械特性,成本低,良好的可加工性与它的快速原型设计和大规模制造结合使用。快速原型制造领域的最新进展允许生产与微流体结构相容的精确特征,并从台面到大众市场加速转换过程。例如,为了满足使用与大规模制造兼容的材料进行快速设计周期的需求,我们开发了用于制造多层PMMA微器件的超快原型技术(DOI:10.1007 / S10404-016-1823-1)和描述一种为此原型技术选择右PMMA的方法(DOI:10.3233 / 978-1-61499-792-4-181)。 PMMA是石油化学衍生的材料,单用一次性装置的不断增长的需求将不可避免地导致增加医用塑料废物。为了解决设计/原型设计阶段,我们探讨了在我们技术中利用再循环PMMA(RE-PMMA)作为基材材料的可能性。这项工作的目的是将商业上可获得的再生PMMA(RE-PMMA)与原型PMMA(PPMMA)与我们的原型技术相结合。这里报告的信息将为研究人员提供更可持续的微流体和微流体快速原型选择的重新PMMA材料时提供实用指南。

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