5 research outputs found

    刀具安装误差对面齿轮齿廓曲面影响分析

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    为分析插齿加工中刀具安装误差对面齿轮齿廓曲面的影响,建立考虑刀具安装误差的面齿轮插齿加工的啮合坐标系;采用包络原理,推导了面齿轮齿廓曲面方程;应用数值仿真的方法,建立了含刀具偏置与轴交角误差的面齿轮齿廓曲面模型,分析刀具偏置与轴交角误差对面齿轮齿廓曲面的影响。研究结果表明,面齿轮齿廓曲面对刀具的安装误差不敏感

    大规模现代化农业数字化技术应用研究与开发

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    该项目为“大规模现代化农业数字化技术应用研究与开发”。研究开发集成了棉蚜、棉铃虫自动监测、数据传输、模型处理系统,棉田土壤水分自动监测与灌溉控制系统、棉花滴灌决策模型,棉田土壤植株养分诊断技术与滴灌变量施肥控制系统;建立棉花变量施肥、节水灌溉、病虫草害诊治等数字化农业技术应用示范区0.3万亩,辐射推广125.75万亩;与现有常规施肥技术相比,肥料利用率提高10-12%,在现有膜下滴灌技术条件下,节水28%,节约劳力由每个管理定额(100亩)现50-60个下降为10-15个,棉田亩防治成本节省20元。建立农业信息服务网站2个,棉花专用肥生产线2条

    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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