• Title/Summary/Keyword: 파이버 어레이

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Fiber-channel-based Shared Disk Distributed File System (파이버채널(Fiber-channel)기반 공유디스크 분산 파일시스템)

  • 이영무;김경호;임상석;박규호
    • Proceedings of the Korean Information Science Society Conference
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    • 1999.10c
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    • pp.786-788
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    • 1999
  • 파이버채널은 고용량 디스크를 특성 호스트에 의존하지 않고 네트웍에 직접 연결할 수 있는 매우 빠른 입출력 시스템 인터페이스이다. 파이버채널의 등장에 따라 고용량 디스크 어레이를 공유하는 분산 파일시스템에 관한 관심이 늘고 있다. 본 논문에서는 파이버 채널의 장점을 이용하여 효율적인 공유디스크 분산 파일시스템의 설계 결과를 제시한다. 제시된 파일시스템은 시스템에 참여하는 모든 호스트들이 부하를 균등하게 나누어 부담하도록 설계되었으며 특히 호스트들이 파이버채널상에서 직접 통신을 통하여 공유디스크 데이터의 일관성을 유지할 수 있도록 하므로써 별도의 장치 없이 일반디스크를 사용할 수 있도록 하여 비용대 성능비가 우수한 시스템에 적합하도록 하였다.

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Micropattern Arrays of Polymers/Quantum Dots Formed by Electrohydrodynamic Jet (e-jet) Printing (이젯 프린터를 사용한 고분자/퀀텀닷 마이크로 패터닝 공정)

  • Kim, Simon;Lee, Su Eon;Kim, Bong Hoon
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.35 no.1
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    • pp.18-23
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    • 2022
  • Electrohydrodynamic jet (e-jet) printing, a type of direct contactless microfabrication technology, is a versatile fabrication process that enables a wide range of micro/nanopattern arrays by applying a strong electric field between the nozzle and the substrate. In general, the morphology and the thickness of polymers/quantum dot micropatterns show a systematic dependence on the diameter of the nozzle and the ink composition with a fully automated printing machine. The purpose of this report is to provide typical examples of e-jet printed micropatterns of polymers/quantum dots to explain the effect of each process variable on the result of experiments. Here, we demonstrate several operating conditions that allow high-resolution printing of layers of polymers/quantum dots with a precise control over thickness and submicron lateral resolution.

Multi-channel LD - Driver designed for CTP(computer to plate) (CTP용 다 채널 LD - 드라이버 설계)

  • Lee, Bae-Kyu
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.19 no.3
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    • pp.667-673
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    • 2015
  • A laser diode(LD) has been studied in many fields what medical, industrial processing, sensor, advertising equipment, printing equipment. And the LD is being used in industry. However, LD will require precision handling. Therefore, the actual use of LD is limited to areas of specialization. In this study, attend to the characteristics of the LD what weak to electrostatic and physical impact, current and heat. And will make a sample module that use comfortably a various wavelength LD. Furthermore, Furthermore, through the printing CTP(Computer to Plate) equipment used the 128-channel LD-Driver, compares it with a 64-channel CTP device about the print speed and resolution. And will solved the problem of delay between the dot and the dot. Finally, consider the potential of the 256-channel LD-Driver.

Small-Scale Wind Energy Harvester Using PZT Based Piezoelectric Ceramic Fiber Composite Array (PZT계 압전 세라믹 파이버 어레이 복합체를 이용한 미소 풍력 에너지 하베스터)

  • Lee, Min-Seon;Na, Yong-Hyeon;Park, Jin-Woo;Jeong, Young-Hun
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.32 no.5
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    • pp.418-425
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    • 2019
  • A piezoelectric ceramic fiber composite (PCFC) was successfully fabricated using $0.69Pb(Zr_{0.47}Ti_{0.53})O_3-0.31[Pb(Zn_{0.4}Ni_{0.6})_{1/3}Nb_{2/3}]O_3$ (PZT-PZNN) for use in small-scale wind energy harvesters. The PCFC was formed using an epoxy matrix material and an array of Ag/Pd-coated PZT-PZNN piezo-ceramic fibers sandwiched by Cu interdigitated electrode patterned polyethylene terephthalate film. The energy harvesting performance was evaluated in a custom-made wind tunnel while varying the wind speed and resistive load with two types of flutter wind energy harvesters. One had a five-PCFC array vertically clamped with a supporting acrylic rod while the other used the same structure but with a five-PCFC cantilever array. Stainless steel (thickness: $50{\mu}m$) was attached onto one side of the PCFC to form the PZT-PZNN cantilever. The output power, in general, increased with an increase in the wind speed from 2 m/s to 10 m/s for both energy harvesters. The highest output power of $15.1{\mu}W$ at $14k{\Omega}$ was obtained at a wind speed of 10 m/s for the flutter wind energy harvester with the PZT-PZNN cantilever array. The results presented here reveal the strong potential for wind energy harvester applications to supply sustainable power to various IoT micro-devices.