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논문 기본 정보

자료유형
학술저널
저자정보
최해운 (Keimyung University) 윤성철 (Grad. School of Keimyung University) 마재권 (Grad. School of Keimyung University) 방대욱 (Keimyung University)
저널정보
한국생산제조학회 한국생산제조학회지 한국생산제조시스템학회지 Vol.23 No.3
발행연도
2014.6
수록면
218 - 222 (5page)

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초록· 키워드

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A 3D printer was used to fabricate a micro-TAS system for biomedical applications. A polymeric medical device fabrication based on a 3D printer can be performed at atmospheric conditions. A CAD- and CAM-based system is a flexible method to design medical components, and a 3D printer is a suitable device to perform this task. In this research, a 100-micron-wide fluidic channel was fabricated with a high-aspect ratio. A cross-sectional SEM image confirmed its possible usage in a micro-reactor using 3D printers. CNC-machined samples were compared to 3D printer-fabricated samples, and the advantages and disadvantages were discussed. Based on the SEM images, the surface roughness of the 3D printed reactor was not affected by wet or dry conditions due to its manufacturing principle. An aspect ratio of 5 to 1 was achievable with 100-μ m-wide fluid channels. No melting was found, and the shape of channels was straight enough to be used for micro reactors.

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ABSTRACT
1. 서론
2. 실험장치 구성 및 방법
3. 실험 결과
4. 결론 및 고찰
References

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UCI(KEPA) : I410-ECN-0101-2015-550-001698300