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公开(公告)号:CN104755897A
公开(公告)日:2015-07-01
申请号:CN201380054704.0
申请日:2013-10-18
Applicant: 皮卡罗股份有限公司
CPC classification number: G01M3/20 , G01M3/38 , G01N21/3504 , G01N21/39 , G01N2021/0314 , G01N2201/025
Abstract: 提供了来自移动平台的改进的气体泄漏检测。可执行自动水平空间尺度分析,以将被测气体的泄漏与背景水平区分开。通过使用同位素比和/或化学示踪器来将被测气体的泄漏与其它源区分开,可提供源标识。与多点测量结果的空间分析相组合的多点测量可提供泄漏源距离估计。可单独地或以任何组合来实施这些方法。
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公开(公告)号:CN104718607A
公开(公告)日:2015-06-17
申请号:CN201380045373.4
申请日:2013-09-02
Applicant: 联达科技设备私人有限公司
Inventor: 林靖
IPC: H01L21/68 , H01L21/677 , H01L21/683
CPC classification number: H01L21/681 , B25J11/0095 , B25J15/0616 , B25J15/0658 , B25J15/0666 , G01B11/27 , G01N21/9501 , G01N2201/025 , H01L21/67144 , H01L21/67706 , H01L21/6838 , H01L21/68757 , Y10T29/49826
Abstract: 自动地校正未适当地安装在膜片架上的晶圆的旋转错位包括在检查系统开始晶圆检查过程之前,使用图像捕获装置捕获晶圆的多个部分的图像;数字地确定晶圆相对于膜片架和/或图像捕获装置的视野的一组参考轴的旋转错位角度和旋转错位方向;以及借助于与检查系统分离的膜片架操持设备校正晶圆的旋转错位,所述晶圆操持设备被构造为在与旋转错位方向相反的方向上将膜片架旋转旋转错位角度。能够在没有减少膜片架操持吞吐量或检查处理吞吐量的情况下,在将膜片架放置在晶圆台上之前进行这样的膜片架旋转。
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公开(公告)号:CN103995000A
公开(公告)日:2014-08-20
申请号:CN201410205987.0
申请日:2014-05-15
Applicant: 京东方科技集团股份有限公司 , 北京京东方显示技术有限公司
IPC: G01N21/88
CPC classification number: G01N21/01 , G01N21/8803 , G01N21/95 , G01N2021/9513 , G01N2201/025
Abstract: 本发明涉及显示基板检查技术领域,公开了一种显示基板的检查装置及检查系统,检查装置包括:支架;翻转机台,翻转机台包括:通过枢转轴枢装于支架的载台,载台具有贯穿其厚度方向的观察槽孔;安装于载台以将显示基板限位于观察槽孔范围内的定位夹具;与载台的枢转轴传动连接以驱动翻转机台绕载台的枢转轴旋转的第一驱动装置。使用上述检查装置对显示基板的外观进行检查时,可以通过翻转机台的翻转实现对显示基板的全方位检查,且能够避免检查者与显示基板之间的接触,减小显示基板外观检查时受到的损伤,进而减小外观检查对显示基板造成的不良。
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公开(公告)号:CN103988065A
公开(公告)日:2014-08-13
申请号:CN201280062058.8
申请日:2012-12-14
Applicant: 西门子医疗保健诊断公司
IPC: G01N21/01
CPC classification number: G01N21/8483 , G01B11/14 , G01N21/253 , G01N21/27 , G01N35/00069 , G01N35/04 , G01N2035/00148 , G01N2035/0491 , G01N2035/0494 , G01N2201/025 , G01N2201/0438 , G01N2201/06113
Abstract: 试剂卡分析机包括被构造成发送光学信号的光学信号源以及光学信号探测器,该光学信号探测器与光学信号源间隔开一定距离以限定所述光学信号所被发送至的光学信号路径,该光学信号探测器被构造成探测所述光学信号并且输出指示所述光学信号的电信号。读取器被构造成读取试剂卡的试剂垫。试剂卡移动机构被构造成使得具有包括前端和后端的试剂垫的试剂卡移动通过光学信号路径。光学探测器接口电耦合至光学信号探测器,并且被构造成接收电信号并且当试剂卡运动通过光学信号路径时输出指示前端和后端中的至少一者的垫探测信号。
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公开(公告)号:CN1526024A
公开(公告)日:2004-09-01
申请号:CN02807911.6
申请日:2002-02-06
Applicant: 麻省理工学院
Inventor: 詹姆斯·道格拉斯·哈佩尔 , 理查德·哈特·马修斯 , 贝尔纳黛特·约翰逊 , 马莎·苏珊·彼得罗维克 , 安·朗德尔 , 弗朗西丝·艾伦·纳吉 , 蒂莫西·斯蒂芬斯 , 琳达·玛丽·门登霍尔 , 马克·亚历山大·霍利斯 , 阿尔贝特·M·扬 , 托德·哈里森·赖德 , 埃里克·戴维·施沃贝尔 , 特里纳·雷·维安
IPC: C12Q1/68 , G01N27/26 , G01N33/53 , G01N33/543 , G01N33/552 , G01N33/554 , H01L21/203 , H01L29/00
CPC classification number: G01N33/554 , G01N15/0205 , G01N21/07 , G01N21/64 , G01N21/6428 , G01N21/75 , G01N21/76 , G01N33/54373 , G01N33/54393 , G01N33/56983 , G01N33/582 , G01N2021/6439 , G01N2201/025 , G01N2201/061 , Y10S435/808 , Y10S436/805
Abstract: 本发明涉及探测一或多种靶颗粒的光电子系统。该系统包括一个反应室,一个样品收集器,一个光学探测器,和一个含有细胞的容器,每个所述细胞都具有受体,所述受体存在于每个细胞的表面上并且对待测靶颗粒具有特异性,其中所述靶颗粒与所述受体的结合将直接或间接地激活一个报告分子,由此产生一个可测量的光学信号。
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公开(公告)号:EP2795294A1
公开(公告)日:2014-10-29
申请号:EP12857516.4
申请日:2012-12-14
Applicant: Siemens Healthcare Diagnostics Inc.
Inventor: MILESKY, Lawrence , ZANTOS, George
IPC: G01N21/01
CPC classification number: G01N21/8483 , G01B11/14 , G01N21/253 , G01N21/27 , G01N35/00069 , G01N35/04 , G01N2035/00148 , G01N2035/0491 , G01N2035/0494 , G01N2201/025 , G01N2201/0438 , G01N2201/06113
Abstract: A reagent card analyzer comprises an optical signal source configured to transmit an optical signal and an optical signal detector spaced a distance from the optical signal source to define an optical signal path into which the optical signal is transmitted, the optical signal detector configured to detect the optical signal and to output an electrical signal indicative of the optical signal. A reader is configured to read a reagent pad of a reagent card. A reagent card moving mechanism is configured to move the reagent card having the reagent pad including a leading and trailing end through the optical signal path. An optical detector interface is electrically coupled with the optical signal detector and configured to receive electrical signals and to output a pad detect signal indicative of at least one of the leading and the trailing end as the reagent card is moved through the optical signal path.
Abstract translation: 试剂卡分析仪包括光信号源和光信号检测器,所述光信号源被配置为发送光信号,所述光信号检测器与所述光信号源隔开一段距离,以限定光信号被发送到的光信号路径,所述光信号检测器被配置为检测 光信号并输出表示光信号的电信号。 读取器被配置为读取试剂卡的试剂垫。 试剂卡移动机构被配置为通过光信号路径移动具有包括前端和后端的试剂垫的试剂卡。 光学检测器接口与光学信号检测器电耦合,并被配置为接收电信号并且当试剂卡移动通过光学信号路径时输出指示前端和后端中的至少一个的焊盘检测信号。
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公开(公告)号:EP1750129A2
公开(公告)日:2007-02-07
申请号:EP06022907.7
申请日:2002-02-06
Applicant: Massachusetts Institute of Technology
Inventor: Harper, James Douglas , Mathews, Richard Hart , Johnson, Bernadette , Petrovick, Martha Susan , Rundell, Ann , Nargi, Frances Ellen , Stephens, Timothy , Mendenhall, Linda Marie , Hollis, Mark Alexander , Young, Albert M. , Rider, Todd Holman , Schwoebel, Eric David , Vian, Trina Rae
IPC: G01N33/50
CPC classification number: G01N33/554 , G01N15/0205 , G01N21/07 , G01N21/64 , G01N21/6428 , G01N21/75 , G01N21/76 , G01N33/54373 , G01N33/54393 , G01N33/56983 , G01N33/582 , G01N2021/6439 , G01N2201/025 , G01N2201/061 , Y10S435/808 , Y10S436/805
Abstract: The invention relates to optoelectronic systems for detecting one or more target particles. The system includes a reaction chamber, a specimen collector, an optical detector, and a reservoir containing cells, each of the cells having receptors which are present on the surface of each cell and are specific for the target particle to be detected, where binding of the target particle to the receptors directly or indirectly activates a reporter molecule, thereby producing a measurable optical signal.
Abstract translation: 本发明涉及用于检测一种或多种目标颗粒(例如细菌和抗原)的光电子系统。 该系统包括反应室,样品收集器,光学检测器和含有电池的储存器,每个电池具有存在于每个电池表面上并且对待检测的靶颗粒是特异性的受体,其中结合 受体的目标颗粒直接或间接激活报告分子,例如水母发光蛋白或indo-1,从而产生可测量的光学信号。
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公开(公告)号:EP1364070B1
公开(公告)日:2006-11-15
申请号:EP02726568.5
申请日:2002-02-06
Applicant: MASSACHUSETTS INSTITUTE OF TECHNOLOGY
Inventor: HARPER, James, Douglas , MATHEWS, Richard, Hart , JOHNSON, Bernadette , PETROVICK, Martha, Susan , RUNDELL, Ann , NARGI, Frances, Ellen , STEPHENS, Timothy , MENDENHALL, Linda, Marie , HOLLIS, Mark, Alexander , YOUNG, Albert, M. , RIDER, Todd, Harrison , SCHWOEBEL, Eric, David , VIAN, Trina, Rae
CPC classification number: G01N33/554 , G01N15/0205 , G01N21/07 , G01N21/64 , G01N21/6428 , G01N21/75 , G01N21/76 , G01N33/54373 , G01N33/54393 , G01N33/56983 , G01N33/582 , G01N2021/6439 , G01N2201/025 , G01N2201/061 , Y10S435/808 , Y10S436/805
Abstract: The invention relates to optoelectronic systems for detecting one or more target particles (Figure 4). The system includes a reaction chamber, a specimen collector, an optical detector, and a reservoir containing cells, each of the cells having receptors which are present on the surface of each cell and are specific for the target particle to be detected, where binding of the target particle to the receptors directly or indirectly activates a reporter molecule, thereby producing a measurable optical signal.
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公开(公告)号:EP2909597B1
公开(公告)日:2018-08-08
申请号:EP13846762.6
申请日:2013-10-18
Applicant: Picarro, Inc.
Inventor: RELLA, Chris, W. , CROSSON, Eric, R. , WOELK, Michael, R. , TAN, Sze, Meng
CPC classification number: G01M3/20 , G01M3/38 , G01N21/01 , G01N21/31 , G01N21/3504 , G01N21/39 , G01N2021/0314 , G01N2201/025
Abstract: Improved gas leak detection from moving platforms is provided. Automatic horizontal spatial scale analysis can be performed in order to distinguish a leak from background levels of the measured gas. Source identification can be provided by using isotopic ratios and/or chemical tracers to distinguish gas leaks from other sources of the measured gas. Multi-point measurements combined with spatial analysis of the multi-point measurement results can provide leak source distance estimates. These methods can be practiced individually or in any combination.
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公开(公告)号:EP2909598B1
公开(公告)日:2018-07-04
申请号:EP13847836.7
申请日:2013-10-18
Applicant: Picarro, Inc.
Inventor: RELLA, Chris, W. , CROSSON, Eric, R. , WOELK, Michael, R. , TAN, Sze, Meng
CPC classification number: G01M3/20 , G01N21/3504 , G01N33/0004 , G01N2201/025
Abstract: Improved gas leak detection from moving platforms is provided. Automatic horizontal spatial scale analysis can be performed in order to distinguish a leak from background levels of the measured gas. Source identification can be provided by using isotopic ratios and/or chemical tracers to distinguish gas leaks from other sources of the measured gas. Multi-point measurements combined with spatial analysis of the multi-point measurement results can provide leak source distance estimates. These methods can be practiced individually or in any combination.
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