• Title/Summary/Keyword: 미세드릴가공

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The improvement of micro-drilling method of SUS430 material (SUS430 소재의 미세홀 가공시 가공방법 개선)

  • Lee K.Y.;Kim H.M.;Park S.S.;Park H.Y.
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 2006.05a
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    • pp.237-238
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    • 2006
  • Micro drilling is a very important machining method to produce precise parts or small molds. General macro-program for drilling is a non-efficient method because of many movements to safety height. In this research new macro-program was suggested to raise machining-efficiency. New micro-drilling method caused the much reduction of machining time and the same tool life.

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

  • Oh, B.K.;Bang, J.H.;Kim, J.K.;Lim, S.M.;Lee, S.K.;Jeong, S.H.;Hong, S.K.
    • Laser Solutions
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    • v.17 no.2
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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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Stress Modeling of the Laser Drilling Process in Carbon Steel (레이저 드릴링을 통한 강판 가공 시 응력 모델링)

  • Lee, Wooram;Kim, Joohan
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.37 no.7
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    • pp.857-864
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    • 2013
  • A laser machining process has been applied in many manufacturing fields and it provides an excellent energy control for treating materials. However, a heat effect during laser machining can deteriorate material properties. Specifically, a thermally induced stress can be a problem in laser-machined structures on a metal surface. In this study, temperature and stress on cold-rolled carbon steel sheet machined with laser hole drilling were explored in an experimental approach and a numerical method. Stresses by temperature gradients inside the materials were generated in fast cooling. The stresses were measured by using a hole-drilling method and the material properties of carbon steel (SCP1-S) were obtained in the experiment. It was found that the stress predicted from the numerical analysis was in agreement with the stresses measured by using the hole-drilling method. The analysis can be applied for evaluating structure characteristics machined with a laser.

Ultrafast Laser Micro-machining Technology (극초단 펄스 레이저 응용 미세가공기술)

  • Lee, Jae-Hoon;Sohn, Hyon-Kee
    • Journal of the Korean Society for Precision Engineering
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    • v.27 no.2
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    • pp.7-12
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    • 2010
  • Due to the extremely short interaction time (< $10\times10^{-12}$sec) between laser pulse and material, which enables the minimization of heat affection, ultrafast laser micro-machining has rapidly widened its applications. In this paper, the characteristics of ultrafast laser micro-machining have been reviewed and experimentally demonstrated in laser drilling of silicon wafer and in laser cutting of rigid PCB.

A Study on Micro Drill-Bit Measurement Using Images (영상을 이용한 미세 드릴비트 측정에 관한 연구)

  • Kwak, Dong-gyu;Choi, Han-go
    • Journal of the Institute of Convergence Signal Processing
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    • v.16 no.3
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    • pp.90-95
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    • 2015
  • This study presents a method to test quite small-sized and light-weighted micro-drill bits which are used to make holes in printed circuit boards(PCB). After getting images of micro-drill bits through the high resolution microscope, we developed image processing algorithms to detect fiducial points, and then measured diverse factors of the drill-bit based on these points. We also developed the window-based inspection system to automatically discriminate normal and abnormal status. For the relative comparison of its performance, the system was compared with an existing inspection system using test images. Experimental results showed that the proposed system slightly improved performance, and also classified correctly some misjudged errors which were occurred in the existing system.

Laser Beam Application and Technology in Micro Machining (레이저 빔 응용 기술)

  • 윤경구;이성국;김재구;신보성;최두선;황경현;박진용
    • Journal of the Korean Society for Precision Engineering
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    • v.17 no.7
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    • pp.27-35
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    • 2000
  • 재료가공분야에의 레이저의 적용은 1960년대 후반부터 시작되었으며, 고출력 CO$_2$ 와 Nd:YAG 레이저가 많은 산업분야에서 보편화될 정도로 발전하여 왔다. 재료가공에서의 레이저의 적용분야는 금속의 절단, 용접 및 드릴링, 세라익의 스크라이빙, 플라스틱과 복합재의 절단 및 여러 가지 재료의 마킹 등을 포함한다. 이와 같은 모든 응용에서 공통적인 것이 레이저 조사에 의해 재료를 용융, 증발시키는 열적 메카니즘이다.(중략)

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A Study on the Micro Hole Drilling of Silicon (실리콘 미세구멍가공기술에 관한 연구)

  • Huh, Chan;Lee, Chang-Gyu;Chae, Seung-Su;Park, Se-Jin;Lee, Jong-Chan
    • Journal of the Korean Society of Manufacturing Process Engineers
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    • v.4 no.1
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    • pp.18-23
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    • 2005
  • This paper reports experimental results on microdrilling process for silicon parts used in semiconductor equipments. An experimental system was developed consisting of a high speed precision machine, microscope system, and project profile instrument. The experimental results indicate that the amount of chipping at the entrance and exit of micro hole decreases as the spindle speed increases up to 18,000 rpm. At higher spindle speed, however, the amount of chipping increases rapidly. The amount of chipping and infeed rate show proportional relationship up to 20 m/min of infeed rate. Beyond that infeed rate, however, sudden increase in the amount of chipping has occurred.

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세포 포집 소자 제작을 위한 펨토초 레이저 미세 가공

  • Park, Hyeon-Ae;Lee, Jun-Gi;Choe, Byeong-Deok
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.08a
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    • pp.303-303
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    • 2011
  • 최근 세포 포집 소자 제작에 있어 세포의 종류와 크기의 다양성을 고려하여 정확하게 포집하기 위한 고정밀화, 소형화 된 도구 제작 기술 개발이 중요한 현안으로 떠오르고 있다. 본 연구에서는 선행 기술에서의 세포 포집 한계를 극복하기 위한 방안으로 펨토초 레이저 가공을 통한 미세 세포 포집 장치 제작에 관한 실험을 진행하였다. 펨토초 레이저의 짧은 파장의 대역 범위와 전력 특성이 미세 소자 제작을 가능하게 함에 따라 수백, 수천 개의 세포 포집에 있어 보다 안정적이고 신뢰도 높은 포집 장치 구현을 실현시킬 수 있다. 실험에서는 펨토초 레이저의 가공 조건을 가변하며 MEMS 소자에 홀(hole)을 형성시켰다. flatness 200인 Polycarbonate 재질의 기판 위에 CNC공작기계를 사용하여 유로를 제작하고 상부에 젤라틴 코팅 부분 2를 포함한 총 두께 12의 membrane 필름을 부착하였다. 이후 775 nm 파장의 펨토초 레이저를 사용하여 10${\times}$10 개수의 홀을 형성 한 후 홀 주위의 thermal damage와 레이저의 파워에 따른 홀의 형태와 크기 변화를 비교하였다. 실험 결과 membrane 막의 젤라틴 코팅 측면 홀의 평균 직경은 레이저의 파워와 비례하여 증가하였으며, 레이저 파워가 일정한 임계치에 도달하면 특정 시점에서 수렴됨을 확인하였다. 또한 PET 측면의 직경은 서서히 증가하고 빠르게 일정한 값으로 수렴됨을 확인하였다. 본 실험에서는 펨토초 레이저의 특성 파라미터와 레이저의 가공 조건을 수립함으로써 실험에서 사용 된 레이저를 이용한 드릴링 방안을 제시한다.

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Real-Time Prediction of Electrode Wear for the Small Hole Pass-Through by EDM-drill (방전 드릴을 이용한 미세 홀 관통 공정의 전극 소모량 실시간 예측)

  • Choi, Yong-Chan;Huh, Eun-Young;Kim, Jong-Min;Lee, Cheol-Soo
    • Journal of the Korean Society of Manufacturing Technology Engineers
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    • v.22 no.2
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    • pp.268-274
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    • 2013
  • Electric discharge machining drill (EDM-drill) is an efficient process for the fabrication of micro-diameter deep metal hole. As there is non-physical contact between tool (electrode) and workpiece, EDM-drill is widely used to machine the hard machining materials such as high strength steel, cemented carbide, titanium alloys. The electro-thermal energy forces the electrode to wear out together with the workpiece to be machined. The electrode wear occurs inside of a machining hole. and It causes hard to monitor the machining state, which leads the productivity and the quality to decrease. Thus, this study presents a methodology to estimated the electrode wear amount while two coefficients (scale factor and shape factor) of the logarithmic regression model are evaluated from the experiment result. To increase the accuracy of estimation model, the linear transformation method is adopted using the differences of initial electrode wear differences. The estimation model is verified through experiment. The experimental result shows that within minute error, the estimation model is able to predict accurately.