6 research outputs found

    福州市部分养老机构护理员现状及分析

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    随着我国老龄化不断加剧,养老服务人力资源问题日益凸显,养老服务成为当今社会都应重视的问题。目前养老机构越来越多,与迅速增加的老年人口及养老机构床位数相比,养老护理员的增长明显不足。养老护理员是对老年人生活进行照料、护理的服务人员,其职业定义与工作内容同医疗机构中的执业护士有本质区别[1]。养老护理员作为社会养老服务的中坚力量,其服务水平高低直接关系到养老服务

    钝体尾迹区通气空泡流动特性研究

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    该文采用实验的方法开展了不同雷诺数和通气量下钝体尾迹区通气空泡流动特性的研究,依据雷诺数Re和通气率Q_v建立了通气空泡气液两相流的流型图谱。根据通气空泡流动特征,将其分为两大类,分别是旋涡脱落型和相对稳定型。当通气率为Q_v=0.086 6时,雷诺数的改变不影响空泡流型,均属于旋涡脱落型。当通气率为Q_v=0.278时,钝体尾部有空泡包裹,随着雷诺数的增加,空泡长度显著减小,空泡形态由相对稳定型向旋涡脱落型转变。当雷诺数保持一致时,随着通气率的增加,均出现了由旋涡脱落型向相对稳定型转变的趋势。随着雷诺数的增加,由旋涡脱落型转变为相对稳定型所需要的通气率增大

    SPNRD的光电负阻特性与光学双稳态特性间的对应关系

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    文章对电阻为负载时,硅光电负阻器件(SPNRD)的光电负阻特性和光学双稳态特性间的对应关系进行了系统的分析,定义了描述静态光学双稳态特性的7个基本参数,并分析了负载电阻(R_L)和电源电压(V_0)对这些参数的影响,理论分析结果与实测结果相一致。所得出的结论适用于由负阻特性产生双稳态特性的所有情况

    JUNO Sensitivity on Proton Decay pνˉK+p\to \bar\nu K^+ Searches

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    The Jiangmen Underground Neutrino Observatory (JUNO) is a large liquid scintillator detector designed to explore many topics in fundamental physics. In this paper, the potential on searching for proton decay in pνˉK+p\to \bar\nu K^+ mode with JUNO is investigated.The kaon and its decay particles feature a clear three-fold coincidence signature that results in a high efficiency for identification. Moreover, the excellent energy resolution of JUNO permits to suppress the sizable background caused by other delayed signals. Based on these advantages, the detection efficiency for the proton decay via pνˉK+p\to \bar\nu K^+ is 36.9% with a background level of 0.2 events after 10 years of data taking. The estimated sensitivity based on 200 kton-years exposure is 9.6×10339.6 \times 10^{33} years, competitive with the current best limits on the proton lifetime in this channel

    JUNO sensitivity on proton decay pνK+p → νK^{+} searches

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    JUNO sensitivity on proton decay p → ν K + searches*

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    The Jiangmen Underground Neutrino Observatory (JUNO) is a large liquid scintillator detector designed to explore many topics in fundamental physics. In this study, the potential of searching for proton decay in the pνˉK+ p\to \bar{\nu} K^+ mode with JUNO is investigated. The kaon and its decay particles feature a clear three-fold coincidence signature that results in a high efficiency for identification. Moreover, the excellent energy resolution of JUNO permits suppression of the sizable background caused by other delayed signals. Based on these advantages, the detection efficiency for the proton decay via pνˉK+ p\to \bar{\nu} K^+ is 36.9% ± 4.9% with a background level of 0.2±0.05(syst)±0.2\pm 0.05({\rm syst})\pm 0.2(stat) 0.2({\rm stat}) events after 10 years of data collection. The estimated sensitivity based on 200 kton-years of exposure is 9.6×1033 9.6 \times 10^{33} years, which is competitive with the current best limits on the proton lifetime in this channel and complements the use of different detection technologies
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