• 제목/요약/키워드: Optical Flow Sensor

검색결과 84건 처리시간 0.019초

Recent Advancements in Technologies to Detect Enterohaemorrhagic Escherichia coli Shiga Toxins

  • Jeongtae Kim;Jun Bong Lee;Jaewon Park;Chiwan Koo;Moo-Seung Lee
    • Journal of Microbiology and Biotechnology
    • /
    • 제33권5호
    • /
    • pp.559-573
    • /
    • 2023
  • Shiga toxin (Stxs)-producing enterohaemorrhagic Escherichia coli (EHEC) and Shigella dysenteriae serotype 1 are major causative agents of severe bloody diarrhea (known as hemorrhagic colitis) and hemolytic uremic syndrome (HUS) associated with extraintestinal complications such as acute renal failure and neurologic impairment in infected patients under 9 years of age. Extreme nephrotoxicity of Stxs in HUS patients is associated with severe outcomes, highlighting the need to develop technologies to detect low levels of the toxin in environmental or food samples. Currently, the conventional polymerase chain reaction (PCR) or immunoassay is the most broadly used assay to detect the toxin. However, these assays are laborious, time-consuming, and costly. More recently, numerous studies have described novel, highly sensitive, and portable methods for detecting Stxs from EHEC. To contextualize newly emerging Stxs detection methods, we briefly explain the basic principles of these methods, including lateral flow assays, optical detection, and electrical detection. We subsequently describe existing and newly emerging rapid detection technologies to identify and measure Stxs.

종이 기반 전기화학 센서의 연구 동향 (A Review on Paper-based Electrochemical Sensors)

  • 서민지
    • 전기화학회지
    • /
    • 제27권1호
    • /
    • pp.1-7
    • /
    • 2024
  • 신체에 부착하는 웨어러블(wearable) 센서 및 현장 진단 검사(point-of-care testing)가 용이한 센서의 필요성이 부각되면서, 종이를 기반으로 하는 센서들이 활발히 연구되어왔다. 종이는 매우 저렴하면서도 가볍고 유연할 뿐만 아니라, 표면에 카본과 같은 전도성 물질 및 왁스와 같은 소수성 물질을 입히기 쉽다. 또한, 종이를 이루는 셀룰로오스 섬유에 의한 모세관 현상으로 외부 힘 없이 용액의 흐름을 유도할 수 있어 웨어러블 전기화학 센서의 플랫폼으로 특히 주목받고 있다. 이에 따라, 다양한 분석 물질들을 전기화학적인 방법으로 검출하는 종이 기반 센서들이 활발히 개발되어 왔다. 특히, 분석 물질에 따른 전류 값 이외에도, 전기화학 발광현상(electrochemiluminescence) 혹은 전기 변색 물질(electrochromic material)을 도입하여 시각적으로 데이터를 나타내는 센서들도 보고되어 왔다. 이 논문에서는 종이 기반 전기화학 센서들의 제작법 및 다양한 활용 전략을 사례 중심으로 소개하였다.

선박탐지를 위한 초소형 SAR 군집위성 활용방안 연구 (A Study on the Utilization of SAR Microsatellite Constellation for Ship Detection)

  • 김윤지;강기묵
    • 대한원격탐사학회지
    • /
    • 제37권3호
    • /
    • pp.627-636
    • /
    • 2021
  • SAR위성영상을 활용한 선박탐지연구는 세계적으로 많은 연구가 이루어지고 있으나, 초소형 SAR위성을 활용한 연구는 아직 소수에 불과하다. 최근 ICEYE, Capella 위성을 필두로 초소형 SAR 위성들의 활용이 가능하며, 뉴 스페이스 시대의 흐름에 맞추어 국내외에서 초소형군집위성 개발이 활발히 진행되고 있다. 현재 대부분의 초소형 위성은 광학위성이나, 운용 및 개발 진행중인 SAR (핀란드 ICEYE: 18기(~2021), 미국 Capella: 36기(~2023), 국내 해양경찰 SAR: 32기(기획 연구) 등)의 운용계획에 선제적으로 대비하기 위하여 초소형 SAR 위성의 활용방안에 대한 구체적인 논의가 필요한 시점이다. 이에 본 논문에서는 현재 운용되고 있는 광학 및 SAR 초소형 군집 위성의 현황 및 특징을 기술하였으며, 이를 활용한 연구들에 대해 조사하였다. 또한, 대표적인 초소형 SAR 위성인 ICEYE와 Capella위성의 현황 및 특징을 기반으로 초소형 SAR 위성 자료가 선박탐지연구에서 유용하게 활용될 수 있는 방안에 대해 기술하였다. 그 결과, 초소형 SAR위성은 군집으로 운용되어 재방문주기가 짧으며 고해상도 영상의 신속한 제공이 가능하다는 장점이 있어, 시간 및 공간의 고해상도 영상 수집이 필수적인 광역 해상 선박 모니터링에 크게 기여할 것으로 판단하였다.

Modern Paper Quality Control

  • Olavi Komppa
    • 한국펄프종이공학회:학술대회논문집
    • /
    • 한국펄프종이공학회 2000년도 제26회 펄프종이기술 국제세미나
    • /
    • pp.16-23
    • /
    • 2000
  • The increasing functional needs of top-quality printing papers and packaging paperboards, and especially the rapid developments in electronic printing processes and various computer printers during past few years, set new targets and requirements for modern paper quality. Most of these paper grades of today have relatively high filler content, are moderately or heavily calendered , and have many coating layers for the best appearance and performance. In practice, this means that many of the traditional quality assurance methods, mostly designed to measure papers made of pure. native pulp only, can not reliably (or at all) be used to analyze or rank the quality of modern papers. Hence, introduction of new measurement techniques is necessary to assure and further develop the paper quality today and in the future. Paper formation , i.e. small scale (millimeter scale) variation of basis weight, is the most important quality parameter of paper-making due to its influence on practically all the other quality properties of paper. The ideal paper would be completely uniform so that the basis weight of each small point (area) measured would be the same. In practice, of course, this is not possible because there always exists relatively large local variations in paper. However, these small scale basis weight variations are the major reason for many other quality problems, including calender blacking uneven coating result, uneven printing result, etc. The traditionally used visual inspection or optical measurement of the paper does not give us a reliable understanding of the material variations in the paper because in modern paper making process the optical behavior of paper is strongly affected by using e.g. fillers, dye or coating colors. Futhermore, the opacity (optical density) of the paper is changed at different process stages like wet pressing and calendering. The greatest advantage of using beta transmission method to measure paper formation is that it can be very reliably calibrated to measure true basis weight variation of all kinds of paper and board, independently on sample basis weight or paper grade. This gives us the possibility to measure, compare and judge papers made of different raw materials, different color, or even to measure heavily calendered, coated or printed papers. Scientific research of paper physics has shown that the orientation of the top layer (paper surface) fibers of the sheet paly the key role in paper curling and cockling , causing the typical practical problems (paper jam) with modern fax and copy machines, electronic printing , etc. On the other hand, the fiber orientation at the surface and middle layer of the sheet controls the bending stiffness of paperboard . Therefore, a reliable measurement of paper surface fiber orientation gives us a magnificent tool to investigate and predict paper curling and coclking tendency, and provides the necessary information to finetune, the manufacturing process for optimum quality. many papers, especially heavily calendered and coated grades, do resist liquid and gas penetration very much, bing beyond the measurement range of the traditional instruments or resulting invonveniently long measuring time per sample . The increased surface hardness and use of filler minerals and mechanical pulp make a reliable, nonleaking sample contact to the measurement head a challenge of its own. Paper surface coating causes, as expected, a layer which has completely different permeability characteristics compared to the other layer of the sheet. The latest developments in sensor technologies have made it possible to reliably measure gas flow in well controlled conditions, allowing us to investigate the gas penetration of open structures, such as cigarette paper, tissue or sack paper, and in the low permeability range analyze even fully greaseproof papers, silicon papers, heavily coated papers and boards or even detect defects in barrier coatings ! Even nitrogen or helium may be used as the gas, giving us completely new possibilities to rank the products or to find correlation to critical process or converting parameters. All the modern paper machines include many on-line measuring instruments which are used to give the necessary information for automatic process control systems. hence, the reliability of this information obtained from different sensors is vital for good optimizing and process stability. If any of these on-line sensors do not operate perfectly ass planned (having even small measurement error or malfunction ), the process control will set the machine to operate away from the optimum , resulting loss of profit or eventual problems in quality or runnability. To assure optimum operation of the paper machines, a novel quality assurance policy for the on-line measurements has been developed, including control procedures utilizing traceable, accredited standards for the best reliability and performance.