• 제목/요약/키워드: 하이브리드 드릴링

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피코초 레이저를 이용한 양극산화 알루미늄 미세 홀 가공의 실험적 연구 (Experimental study on micro-hole drilling of anodized aluminum using picosecond laser)

  • 오부국;방준호;김종기;임성묵;이승기;정수화;홍순국
    • 한국레이저가공학회지
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    • 제17권2호
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    • pp.5-10
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    • 2014
  • Aluminum has been widely used in the electric applications because of light metals. When mechanical element is periodically moving with contacting other surfaces, the anodizing process for aluminum is useful for avoiding the abrasive damage. The anodized element has quietly different characteristics with respect to the distribution of hardness and crystal structure. In this work, the laser drilling of anodized surface is studied experimentally. Fusion drilling method - laser drilling with inert gas blowing - is used. The effect of various process parameters (gas pressure, laser power, focus position) is investigated with respect to the hole size and circularity.

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원공노치를 갖는 A17075/CFRP 적층 복합재의 노치강도 특성에 관한 연구 (The Study on Notch Strength Characteristics with Circular Hole Notch in A17075/CFRP Layered Composites)

  • 이제헌;김영환;박준수;윤한기
    • Composites Research
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    • 제13권3호
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    • pp.58-66
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    • 2000
  • 본 연구는 기존 수지기지 복합소재의 흡습성, 약한 충격강도, 열충격 손상문제 등을 해결하고 뛰어난 비강도, 내충격, 내피로 특성 등을 가지는 것으로 보고되고 있는 Al과 CFRP 접착소재인 CARALL(CArbon fiber Reinforced ALuminum Laminates) 하이브리드 복합소재를 제조하고, 이러한 소재가 항공기 부품제작에 적용되기 위해서 우선적으로 파악되어야 하는 특성, 즉 부품조립을 위해 가공되는 드릴링에 의한 원공노치 강도저하 효과를 조사하였다. 이를 위해 CFRP, A17075-T6, CARALL재 시편에 대한 판폭과 원공노치의 크기가 노치인장강도에 미치는 영향을 비교하고 고강도, 고 노치민감 소재인 CFRP 소재의 물성이 양면에 Al을 접착한 CARALL소재형태에 의해 개선될 수 있는지에 대해 파악하였다. 또한 각 소재에 대한 Whitney 및 Kim등의 노치인장강도 예측식을 적용하여 그 유효성을 검토하였다.

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피코초 레이저 및 CDE를 이용한 TSV가공기술 (TSV Formation using Pico-second Laser and CDE)

  • 신동식;서정;조용권;이내응
    • 한국레이저가공학회지
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    • 제14권4호
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    • pp.14-20
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    • 2011
  • The advantage of using lasers for through silicon via (TSV) drilling is that they allow higher flexibility during manufacturing because vacuums, lithography, and masks are not required; furthermore, the lasers can be applied to metal and dielectric layers other than silicon. However, conventional nanosecond lasers have disadvantages including that they can cause heat affection around the target area. In contrast, the use of a picosecond laser enables the precise generation of TSVs with a smaller heat affected zone. In this study, a comparison of the thermal and crystallographic defect around laser-drilled holes when using a picosecond laser beam with varing a fluence and repetition rate was conducted. Notably, the higher fluence and repetition rate picosecond laser process increased the experimentally recast layer, surface debris, and dislocation around the hole better than the high fluence and repetition rate. These findings suggest that even the picosecond laser has a heat accumulation effect under high fluence and short pulse interval conditions. To eliminate these defects under the high speed process, the CDE (chemical downstream etching) process was employed and it can prove the possibility to applicate to the TSV industry.

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유리탄소섬유 하이브리드 복합재의 절삭 조건에 따른 가공 결함 비교 (Comparison of Machining Defects by Cutting Condition in Hybird FRP Drilling)

  • 백종현;김수진
    • 한국기계가공학회지
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    • 제21권9호
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    • pp.12-20
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    • 2022
  • Delamination and burr defects are important problems in drilling fiber reinforced plastics. A method for measuring FRP drilling defects has been studied. Delamination and burr factors were defined as the relative length or area. Using these factors, the effects of tool shape and drilling conditions on delamination and burr were studied. In this study, the defects that occur when drilling a glass-carbon fiber hybrid composite were compared in terms of three factors. In the glass-carbon fiber hybrid composite, the effects of the feed rate and tool point angle on the delamination and burr factors were similar to those in previous studies. The diameter of the tool did not affect the defect factor. A circular burr was generated in a drill tool with a point angle of 184°, and a relatively small deburring factor was observed compared with a tool with a point angle of 140°.