• Title/Summary/Keyword: Lens fabrication

Search Result 221, Processing Time 0.026 seconds

Automatioc Density Measurement System Using Optical Lens in High Speed Textile Fabrication Process (고속의 직물 제직 공정에서 광학적 렌즈를 이용한 자동 밀도 측정 시스템)

  • Lee, Eung-Joo;Hyun, Eung-Joo;Jeong, In-Gab
    • The Transactions of the Korea Information Processing Society
    • /
    • v.5 no.1
    • /
    • pp.111-118
    • /
    • 1998
  • The density of fabric is a very important parameter in many fabric production processes. However, in the textile fabrication factories, textile density measurement process has been done inefficiently by handicraft. Thus, exact textile density measurement process is necessary to fabricate high quality textile through weft straighten. In this paper, we propose an automatic textile density measurement system to measure textile density automatically and to improve fabrication efficiency. The proposed system uses cylindrical lens to optically scan the weftl information of the fabric as well as convex lens to enlarge the weft images. The proposed system improves textile quality and provides constant density value to the whole textile range in the high speed fabrication process.

  • PDF

Design of Optical Path for Small Form Factor Optical Disk Drive and Fabrication of Micro-Compensatory Lens (초소형 광 정보 저장 기기를 위한 광 경로 설계 및 마이크로 보정 렌즈 제작)

  • 김홍민;정경성;최우재;박노철;강신일;박영필
    • Proceedings of the Korean Society of Precision Engineering Conference
    • /
    • 2002.10a
    • /
    • pp.115-118
    • /
    • 2002
  • The purpose of this paper is to design a pick-up for the small form factor optical disk drive and to fabricate a micro-compensatory lens for the pick-up using the micro-compression molding process. At design stage, the optical elements including the objective lens and the compensatory lens are miniaturized. The height of pick-up and free working distance are designed as 2mm and 0.2% respectively. To analyze the fabricated micro-compensatory lens, the system was analyzed using the surface profile of the fabricated micro-compensatory lens and CODE V which is commercial software. The RMS wave front aberration of the system using fabricated micro-compensatory lens is 0.01677λ which is lower than Marechal's criterion, 0.07λ.

  • PDF

Fabrication of Micro-Lens Array with Long Focal Length for Confocal Microscopy (공초점 현미경용 장초점 마이크로렌즈 제작)

  • Kim, Gee-Hong;Lim, Hyung-Jun;Jeong, Mi-Ra;Lee, Jae-Jong;Choi, Kee-Bong;Lee, Hyung-Seok;Do, Lee-Mi
    • Journal of the Korean Society of Manufacturing Technology Engineers
    • /
    • v.20 no.4
    • /
    • pp.472-477
    • /
    • 2011
  • This paper shows the method of fabrication of a micro lens array comprised of a Nipkow disk used in a large-area, high-speed confocal microscopy. A Nipkow disk has two components, a micro lens array disk and a pinhole array disk. The microlens array focuses illumination light onto the pinhole array disk and redirects reflected light from a surface to a sensor. The micro lens which are positioned in order on a disk have a hemispheric shape with a few tens of micron in diameter, and can be fabricated by a variety of methods like mechanical machining, semiconductor process, replication process like imprinting process. This paper shows how to fabricate the micro lens array which has a long focal length by reflow and imprinting process.

A Study on Rapid Fabrication of Micro Lens Array using 355nm UV Laser Irradiation (355nm UV 레이저를 이용한 마이크로 렌즈 어레이 쾌속 제작에 관한 연구)

  • Je, S.K.;Park, S.H.;Choi, C.K.;Shin, B.S.
    • Transactions of Materials Processing
    • /
    • v.18 no.4
    • /
    • pp.310-316
    • /
    • 2009
  • Micro lens array(MLA) is widely used in information technology(IT) industry fields for various applications such as a projection display, an optical power regulator, a micro mass spectrometer and for medical appliances. Recently, MLA have been fabricated and developed by using a reflow method having the processes of micro etching, electroplating, micro machining and laser local heating. Laser thermal relaxation method is introduced in marking of microdots on the surface of densified glass. In this paper, we have proposed a new direct fabrication process using UV laser local thermal-expansion(UV-LLTE) and investigated the optimal processing conditions of MLA on the surface of negative photo-resist material. We have also studied the 3D shape of the micro lens obtained by UV laser irradiation and the optimal process conditions. And then, we made chrome mold by electroplating. After that, we made MLA using chrome mold by hot embossing processing. Finally, we have measured the opto-physical properties of micro lens and then have also tested the possibility of MLA applications.

Fabrication of High-Quality Diffractive-Lens Mold having Submicron Patterns (서브 미크론의 패턴으로 구성된 고효율 회절 렌즈 몰드 제작)

  • Woo, Do-Kyun;Hane, Kazuhiro;Lee, Sun-Kyu
    • Transactions of the Korean Society of Mechanical Engineers A
    • /
    • v.34 no.11
    • /
    • pp.1637-1642
    • /
    • 2010
  • In this paper, we present the fabrication of a high-quality diffractive-lens mold having submicron patterns, which is suitable for an ultra-slim optical system. In order to fabricate high-quality diffractive lens with a variety of submicron patterns, the multi-alignment method was used; high-resolution electron-beam lithography and FAB plasma etching were carried out to obtain the patterns. The most important key technology in the multi-alignment method is to reduce alignment error, lithography error, and etching error. In this paper, these major fabrication errors were minimized, and a high-quality diffractive lens with a diameter of $267\;{\mu}m$ (NA = 0.25), minimum pattern width of 226 nm, and thickness of 819 nm was successfully fabricated.

Fabrication Measurement and Evaluation of a Parabolic Mirror with the Diameter of 450 mm(f/2.7) by Autostigmatic Null Lens System (자동무수차점 방식 널 렌즈 광학계를 이용한 직경 450 mm(f/2.7) 포물면경의 제작 및 측정 평가)

  • Lee, Young-Hun;Jo, Jae-Heung;Rim, Cheon-Seog;Lee, Yun-Woo;Yang, Ho-Soon;Lee, Jae-Hyeob;Lee, In-Won
    • Korean Journal of Optics and Photonics
    • /
    • v.17 no.2
    • /
    • pp.165-174
    • /
    • 2006
  • The autotstigmatic null lens system is designed and constructed for the fabrication of a parabolic mirror with the diameter of 450 mm(f/2.7). And the measurement reliability is also analyzed theoretically by means of the tolerancing technique using lens design software(CODE V). From this analysis, we can precisely fabricate a parabolic mirror with the large diameter of 450 mm(f/2.7). Meanwhile, in order to confirm the fabrication results by the autostigmatic method, the mirror surface is tested again by an autocollimating method that uses only a plane mirror without any null lens.

Fabrication of Microstructure Array using the Projection Microstereolithography System (전사방식 마이크로광조형을 이용한 배열 형태 미세 구조물 가공)

  • Choi, Jae-Won;Ha, Young-Myoung;Lee, Seok-Hee
    • Journal of the Korean Society for Precision Engineering
    • /
    • v.24 no.8 s.197
    • /
    • pp.138-143
    • /
    • 2007
  • Microstereolithography technology is similar to the conventional stereolithography process and enables to fabricate a complex 3D microstructure. This is divided into scanning and projection type according to aiming at precision and fabrication speed. The scanning MSL fabricates each layer using position control of laser spot on the resin surface, whereas the projection MSL fabricates one layer with one exposure using a mask. In the projection MSL, DMD used to generate dynamic pattern consists of $1024{\times}768$ micromirrors which have $13.68{\mu}m$ per side. The fabrication range and resolution are determined by the field of view of the DMD and the magnification of the projection lens. If using the projection lens with high power, very fine microstructures can be fabricated. In this paper, the projection MSL system adapted to a large surface for array-type fabrication is presented. This system covers the meso range, which is defined as the intermediate range between micro and macro, with a resolution of a few ${\mu}m$. The fabrication of array-type microstructures has been demonstrated to verify the performance of implemented system.

Micro-lens Patterned LGP Injection Mold Fabrication by LIGA-reflow Process (LIGA-reflow 응용 Micro-lens Pattern 도광판 금형 제작)

  • Hwang C.J.;Kim J.D.;Chung J.W.;Ha S.Y.;Lee K.H.
    • Proceedings of the Korean Society for Technology of Plasticity Conference
    • /
    • 2004.05a
    • /
    • pp.241-244
    • /
    • 2004
  • Microlens patterned micro-mold fabrication method for Light Guiding Plate(LGP), kernel part of LCD-BLU(Back Light Unit), was presented. Instead of erosion dot pattern for LCP optical design, microlens pattern, fabricated by LIGA-reflow process, was applied. Optical pattern design method was also developed not only for negative pattern LGP, but also positive pattern LGP. In order to achieve flow balance during the micro-injection molding process and dimensional accuracy, two LGP pattern was made in one micro-mold.

  • PDF

Material Properties of GeSbSe Chalcogenide Glass and Fabrication Process for 8~12 ㎛ IR Region Aspherical Optical Lens (GeSbSe계 기반 8~12 ㎛ 파장대역 적외선 광학 렌즈 제작 및 비구면 렌즈 가공기술 개발)

  • Bae, Dong-Sik;Yeo, Jong-Bin;Han, Sang-Hyun;Lee, Hyun-Yong
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
    • /
    • v.26 no.3
    • /
    • pp.183-189
    • /
    • 2013
  • The chalcogenide glass has superior optical properties in IR region transmittances. We have determined the composition of GeSbSe chalcogenide glass for the application of good IR lenses, resulting in the composite rate of $Ge_{19}Sb_{23}Se_{58}$. The optical, structural, thermal and physical properties were measured by Fourier transform infrared spectroscopy (FT-IR), X-ray diffraction (XRD), Differential scanning calorimeter (DSC), X-ray computed tomography (X-ray CT) respectively. The fabrication of the chalcogenide glass lens for infrared optics applications was proposed using a diamond turning machining technology which is known as the suitable ways for the production cost reduction and the accurate fabrication process control.