• Title/Summary/Keyword: 적층조형

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Microstructures of Powders and Additively Manufactured Objects of an Alloy Tool Steel for Cold-Work Dies (냉간금형용 합금공구강 분말 및 적층조형체의 미세조직)

  • Kang, Jun-Yun;Yun, Jaecheol;Kim, Hoyoung;Kim, Byunghwan;Choe, Jungho;Yang, Sangsun;Yu, Ji-Hun;Kim, Yong-Jin
    • Journal of Powder Materials
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    • v.24 no.3
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    • pp.202-209
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    • 2017
  • A cold-work tool steel powder is used to fabricate 3-dimensional objects by selective laser melting using a high-pressure gas atomization process. The spherical powder particles form continuous carbide networks among the austenite matrix and its decomposition products. The carbides comprise Nb-rich MC and Mo-rich $M_2C$. In the SLM process, the process parameters such as the laser power (90 W), layer thickness ($25{\mu}m$), and hatch spacing ($80{\mu}m$) are kept fixed, while the scan speed is changed from 50 mm/s to 4000 mm/s. At a low scan speed of 50 mm/s, spherical cavities develop due to over melting, while they are substantially reduced on increasing the speed to 2000 mm/s. The carbide network spacing decreases with increasing speed. At an excessively high speed of 4000 mm/s, long and irregularly shaped cavities are developed due to incomplete melting. The influence of the scan pattern is examined, for which $1{\times}1 mm^2$ blocks constituting a processing layer are irradiated in a random sequence. This island-type pattern exhibits the same effect as that of a low scan speed. Post processing of an object using hot isostatic pressing leads to a great reduction in the porosity but causes coarsening of the microstructure.

Development of Hybrid Fused Deposition Modeling System for Three-Dimensional Circuit Device Fabrication (3 차원 회로 장치 제작을 위한 FDM 기반의 통합 시스템 개발)

  • O, Sung Taek;Lee, In Hwan;Kim, Ho-Chan;Cho, Hae Yong
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.38 no.8
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    • pp.869-874
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    • 2014
  • It is possible to fabricate a three-dimensional (3D) shape using the solid freeform fabrication (SFF) technology. However, there are several problems in applying conventional SFF technologies to the direct manufacturing of a product. Hence, multimaterial SFF is gaining attention. Moreover, a 3D circuit device that is different from a conventional two-dimensional PCB can also be fabricated using multimaterial SFF. In this study, a hybrid system using fused deposition modeling and direct writing was designed for 3D circuit device fabrication.

Comparison of Hounsfield Units by Changing in Size of Physical Area and Setting Size o f Region o f Interest b y Using the CT Phantom Made with a 3D Printer (3D 프린터로 제작된 CT 팬톰을 이용한 물리적 관심영역과 설정 관심영역의 크기에 따른 하운스필드의 비교)

  • Seoung, Youl-Hun
    • Journal of radiological science and technology
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    • v.38 no.4
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    • pp.421-427
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    • 2015
  • In this study, we have observed the change of the Hounsfield (HU) in the alteration of by changing in size of physical area and setting size of region of interest (ROI) at focus on kVp and mAs. Four-channel multi-detector computed tomography was used to get transverse axial scanning images and HU. Three dimensional printer which is type of fused deposition modeling (FDM) was used to produce the Phantom. The structure of the phantom was designed to be a type of cylinder that contains 33 mm, 24 mm, 19 mm, 16 mm, 9 mm size of circle holes that are symmetrically located. It was charged with mixing iodine contrast agent and distilled water in the holes. The images were gained with changing by 90 kVp, 120 kVp, 140 kVp and 50 mAs, 100 mAs, 150 mAs, respectively. The 'image J' was used to get the HU measurement of gained images of ROI. As a result, it was confirmed that kVp affects to HU more than mAs. And it is suggested that the smaller size of physical area, the more decreasing HU even in material of a uniform density and the smaller setting size of ROI, the more increasing HU. Therefore, it is reason that to set maximum ROI within 5 HU is the best way to minimize in the alteration of by changing in size of physical area and setting size of region of interest.