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3篇 您的检索式:作者名="KyanA"
    题名 作者 年代 出处 被引量
1固体气泡损伤探测器探测高能重离子的研究显示文摘用高能重离子Ar和C进行的实验表明:(1)高能重离子可以在固体气泡损伤探测器中产生径迹,重离子径迹呈直线形,由一连串微小气泡组成;(2)固体气泡损伤探测器探测重离子具有阈特性,阈的实质近似为临界能量损失率(dE/dX)C,这一阈特性与蚀刻径迹探测器类似。固体气泡损伤探测器的阈值为(dE/dX)c=2220MeV/g·cm2,可用于重离子物理、宇宙射线和宇宙暗物质探测以及癌症治疗模拟等领域。郭士伦 李丽 郭洪英 涂彩清 王玉兰 DokeT KatoT OzakiK KyanA PiaoY MurakamiT 1999核技术1999,22,7:3
2Role of immunologic and in- flammatory factors in the development of endomeriosis : indica-tions for treatment stralegies显示文摘Mihalyi A Kyana CM Simsa P 2005Therapy2005,2,4:1
3Micron-gap spacers with ultrahigh thermal resistance and mechanical robustness for direct energy conversion Samuel显示文摘In thermionic energy converters,the absolute efficiency can be increased up to 40%if space-charge losses are eliminated by using a sub-10-μm gap between the electrodes.One practical way to achieve such small gaps over large device areas is to use a stiff and thermally insulating spacer between the two electrodes.We report on the design,fabrication and characterization of thin-film alumina-based spacers that provided robust 3–8μm gaps between planar substrates and had effective thermal conductivities less than those of aerogels.The spacers were fabricated on silicon molds and,after release,could be manually transferred onto any substrate.In large-scale compression testing,they sustained compressive stresses of 0.4–4 MPa without fracture.Experimentally,the thermal conductance was 10–30 mWcm^(−2)K^(−1)and,surprisingly,independent of film thickness(100–800 nm)and spacer height.To explain this independence,we developed a model that includes the pressure-dependent conductance of locally distributed asperities and sparse contact points throughout the spacer structure,indicating that only 0.1–0.5%of the spacerelectrode interface was conducting heat.Our spacers show remarkable functionality over multiple length scales,providing insulating micrometer gaps over centimeter areas using nanoscale films.These innovations can be applied to other technologies requiring high thermal resistance in small spaces,such as thermophotovoltaic converters,insulation for spacecraft and cryogenic devices.M.Nicaise Chen Lin Mohsen Azadi Tara Bozorg-Grayeli Promise Adebayo-Ige Drew E.Lilley Yann Pfitzer Wujoon Cha Kyana Van Houten Nicholas A.Melosh Roger T.Howe Jared W.Schwede Igor Bargatin 2019Microsystems & Nanoengineering2019,5,1:1
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