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    科

    科学应用国际公司(美国)

    Science Applications International Corporation (United States)
    企业EST. 1969
    2,191论文总数
    6.8万引用总数

    论文量&引用量时间轴

    机构学者

    排序
    Joel Susskind
    Joel Susskind
    Goddard Space Flight Center, National Aeronautics and Space Administration
    论文:32引用:0H-index:0
    Lena Iredell
    Lena Iredell
    NASA
    论文:22引用:0H-index:0
    John M. Irvine
    John M. Irvine
    SAIC
    论文:19引用:0H-index:0
    Sujay V Kumar
    Sujay V Kumar
    Goddard Space Flight Center, National Aeronautics and Space Administration
    论文:18引用:0H-index:0
    John Blaisdell
    John Blaisdell
    NASA Goddard Space Flight Ctr
    论文:15引用:0H-index:0
    Christa Peters-Lidard
    Christa Peters-Lidard
    Schmidt Sciences
    论文:13引用:0H-index:0
    Roy Sterritt
    Roy Sterritt
    School of Computing, University of Ulster
    论文:11引用:0H-index:0
    Baruch Levush
    Baruch Levush
    Naval Research Laboratory
    论文:11引用:0H-index:0
    James L. Rash
    James L. Rash
    Department of Computer Science, Advanced Architectures and Automation Branch, NASA Goddard Space Flight Center
    论文:11引用:0H-index:0

    论文(2191)

    年份
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    1Design Sensitivity Study of an Underground Repository in a Salt Formation
    William C. Yeung, John Rtinucci
    2026Key Questions in Rock Mechanics(2026)引用:24
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    2Near-field Shaft Response Analysis Using the CAVS Jointed Rock Model
    W.Dial Barry,E.Maxwell Donald,McNulty Edmund Gregory,Reeves Mark
    2026Key Questions in Rock Mechanics(2026)引用:23
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    3A Comparison of Multiple Radial Fracturing Enhancement Techniques – Laboratory Investigation
    Bennett Zeigler,John Schatz,Edward Nudd
    2026Key Questions in Rock Mechanics(2026)引用:23
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    4A Simple Model for Determining 3-D Thermal Response Near a Waste Canister in an Underground Repository
    William C. Yeung
    2026Key Questions in Rock Mechanics(2026)引用:23
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    53D-Printed Fiber-Bundle Fluorescence Microscope for Quantifying Single-Cell Responses to High-Power Radiofrequency Sources
    Sean P. O'connor, Aryana J. Cruz Santory,Joseph E. Clary,Anna Sedelnikova, Zachary T. Brawley, Ryan M. Kulow,Gary D. Noojin, Kaitlin S. Nelson-rakofsky, Joel N. Bixler,Zachary A. Steelman

    Modern telecommunications systems rely on the ubiquitous use of radiofrequency (RF) fields. To ensure the safety of living systems under RF exposure, standards have been developed which rely on observed thresholds that produce an adverse response. Unfortunately, real-time imaging of single-cell responses to high-peak power RF exposures is experimentally difficult, as high-power RF may damage sensitive electronics such as cameras or photodetectors, and any metal in the exposure zone (such as a microscope objective or translation stage) interacts with the RF by reflecting the RF field, acting as an antenna, or altering the dose delivered to the sample. In this work, we present a custom fluorescence microcopy system compatible with high-power RF environments. Our device uses a custom, 3D-printed objective consisting entirely of plastic and glass components as well as a coherent fiber bundle to relay light between the exposure zone and the fluorescence detection scheme. Our device was validated against a high-end commercial confocal microscope by comparing cellular responses to a well-characterized nanosecond pulsed electric field (nsPEF) stimulus delivered via an electrode pair. Our system performed well under extreme RF exposure, demonstrating continuous fluorescence imaging and maintenance of the focal plane despite >40°C temperature variation at the sample caused by high peak power free-field RF exposure at a frequency of 2.8 GHz. This system is intended to aid researchers in investigating real-time biological responses to radiofrequency and microwave sources.

    2025BIOMEDICAL OPTICS EXPRESS(2025)引用:3
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    合作机构(100)

    戈达德太空飞行中心合作论文 205
    美国国家航空航天局合作论文 173
    兰利研究中心合作论文 78
    美国国家卫生研究院合作论文 63
    马里兰大学合作论文 60
    爱尔兰国家学院合作论文 54
    Ames Research Center,National Aeronautics and Space Administration,Government of the United States of America合作论文 53
    国家癌症研究所合作论文 38
    国家海洋和大气管理局合作论文 31
    乔治梅森大学合作论文 25

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