6 research outputs found

    基于通用MCU的智能SFP光模块设计

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    本文介绍一种兼容Sff-8472协议的智能SfP光模块的设计方案,提出了一种通用的光模块数字诊断监测(ddM)的设计思路,适用于不同型号MCu的ddM系统。使用MCu的flASH存储A2H地址的内容,采用内外部校准相结合的新校准方式,更灵活,更简便。通过实际测试,该方案的精度满足协议的要求

    2.45GHz单电荷态电子回旋共振离子源

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    描述了一台 2 .4 5GHz单电荷态电子回旋共振 (ECR)离子源的原理、结构与应用。介绍了其微波系统与磁场结构。在微波输入功率约 6 0 0W ,引出高压 2 2kV ,引出孔径为6mm时 ,该离子源的总束流I(H1++H2 ++H3+)可达 90mA

    新疆棉花可持续优质高产综合技术集成示范工程

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    该项目通过技术综合集成,分别形成早熟棉区、中低产棉区、风沙土棉区相应的100、120、150、200和250kg棉花优质高产栽培技术模式与配套技术体系;根据种植区光热、土壤条件,创立增株增铃为主的技术路线,将亩株数从认为已达极限的1.1万株增至1.8-2.2万株;利用农区多样性生物相生相克关系,首创种植苜蓿带防治棉蚜“生态棉田”新模式,实现无害化生产;根据新疆早熟棉区冬寒多雪,利用长效肥缓释特点,改基肥+追肥的传统施肥为秋季一次性全耕层施肥技术;建立性诱剂、赤眼蜂、病毒杀虫剂、瓢虫扩繁等研制、开发及其综防体系,并加以应用;其脱落酸研究成果具有我国自主知识产权,在棉花种植中应用,可促进根系发育、..

    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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