• [口頭報告]Experimental and modeling study of photoreactor packed with GQDs/BiOCl-coated glass beads for enhancing NO removal
    00
    days
    00
    hours
    00
    minutes
    00
    seconds
    00
    days
    00
    hours
    00
    minutes
    00
    seconds

    [口頭報告]Experimental and modeling study of photoreactor packed with GQDs/BiOCl-coated glass beads for enhancing NO removal

    Experimental and modeling study of photoreactor packed with GQDs/BiOCl-coated glass beads for enhancing NO removal
    編號:81 稿件編號:324 訪問權限:僅限參會人 更新:2024-05-16 19:01:00 瀏覽:140次 口頭報告

    報告開始:2024年05月31日 17:15 (Asia/Shanghai)

    報告時間:15min

    所在會議:[S6] Clean Processing, Conversion and Utilization of Energy Resources ? [S6-2] Afternoon of May 31st

    暫無文件

    摘要
    Photocatalysis is deemed as a promising technology to control NO emissions due to its high degradation efficiency and environmental friendliness. Most of the studies focus on photocatalyst synthesis, whereas the design of photoreactor attracts less attention, which greatly impairs the industrialization of photocatalytic technology in environmental treatment. In this work, we design and fabricate a novel packed-glass-bead photoreactor (PGBR) for NO removal using GQDs/BiOCl catalysts. This new photoreactor achieves a NO photodegradation efficiency 1.6 times greater than that of the flat plate reactor (FPR). The synthesized GQDs/BiOCl catalysts used in PGBR have excellent durability and regeneration. Its degradation performance only decreased by 8.0% during three consecutive cycles. Subsequently, the catalytic activity could be fully restored by facile thermal regeneration. More importantly, the PGBR reaches 94.3% of NO degradation efficiency under natural sunlight, which demonstrates great potential for industrial application. In addition, the kinetic parameters determined using particle swarm optimization algorithm in a simple FPR are utilized to model the complex PGBR using CFD simulations; the RMSE between corrected model results and experimental data is 3.88%. The resolved velocity and concentration fields revealed an enhanced mass transfer effect in the PGBR.
     
    關鍵字
    photocatalysis; packed-glass-bead reactor; NO removal; photoreactor modeling
    報告人
    Guoqing Zhang
    China University of Mining and Technology

    稿件作者
    國慶 張 中國礦業大學
    和勝 俞 中國礦業大學
    發表評論
    驗證碼 看不清楚,更換一張
    全部評論

    聯系我們

    投稿事宜:張老師
    電話:0516-83995113
    會務事宜:張老師
    電話:0516-83590258
    酒店事宜:張老師
    電話:15852197548
    會展合作:李老師
    電話:0516-83590246
    登錄 注冊繳費 提交摘要 酒店預訂
  • 成人视频