10 research outputs found

    新型铁碳微电解填料制备与除磷性能评价

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    针对传统铁碳填料处理污水活性低的问题,通过均质化-碳化-成型工艺制备新型铁碳微电解填料,采用SEM-EDS、XRD等方法对制备填料进行了表征,探讨了新型填料除磷机理;同时,开展了填料制备条件优化及生活污水除磷性能评价研究。结果表明,新型填料(Fe-C)由于焦油经高温碳化处理可在海绵铁表面及内部孔道形成大量铁碳微原电池,提高了电化学反应速率,其磷脱除率显著高于传统填料(Fe/C);在焦油/铁比(Tar/Fe)为0.3、碳化温度为950℃、恒温时间为0 min、黏结剂质量分数为30%、900℃焙烧90 min条件下,制备的填料除磷性能最佳,除磷效率达98%,可实现含磷废水达标排放

    新型铁碳微电解填料制备与除磷性能评价

    No full text
    针对传统铁碳填料处理污水活性低的问题,通过均质化-碳化-成型工艺制备新型铁碳微电解填料,采用SEM-EDS、XRD等方法对制备填料进行了表征,探讨了新型填料除磷机理;同时,开展了填料制备条件优化及生活污水除磷性能评价研究。结果表明,新型填料(Fe-C)由于焦油经高温碳化处理可在海绵铁表面及内部孔道形成大量铁碳微原电池,提高了电化学反应速率,其磷脱除率显著高于传统填料(Fe/C);在焦油/铁比(Tar/Fe)为0.3、碳化温度为950℃、恒温时间为0 min、黏结剂质量分数为30%、900℃焙烧90 min条件下,制备的填料除磷性能最佳,除磷效率达98%,可实现含磷废水达标排放

    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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