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Experimental Assessment of Water Sprays Utilization for Controlling Hydrogen Sulfide Releases in Confined Space

机译:水雾控制密闭空间中硫化氢释放的实验评估

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This paper reported the utilization of water spray for controlling H_2S release in a'confined space, which is especially important in industry. A typical spray tower was modified to simulate the confined space for peoples enterable routine operation (e.g., pump room), in which the dilution capacity of water sprays can also be evaluated. This work consists of two parts: the first part focuses on the influences of different operating conditions on chemical dilution capacities of water sprays in mechanisms; the second one is comparison between two nozzle configurations for evaluating their feasibilities of practical application. Water sprays express eligible performance for H_2S release control even though their dilution capacity was weakened at high gaseous concentrations and rates of releases. The presence of Na_2CO_3 can significantly improve absorption effectiveness of H_2S in water and the optimal Na_2CO_3 additive was found to be 1.0 g·L~(-1) in this test. Compared with Na_2CO_3, adjusting water flow rate may be an effective strategy in enhancing dilution capacity of water sprays due to the fact that larger flow rate led to both less dilution time (T_D) and dilution concentration (C_D). Furthermore, multinozzle configuration is more efficient than single-nozzle configuration under the same water consumption.
机译:本文报道了利用喷水来控制狭窄空间中H_2S的释放,这在工业中尤为重要。修改了典型的喷淋塔以模拟人们可进入的常规操作的密闭空间(例如泵房),在该空间中还可以评估喷水的稀释能力。这项工作包括两个部分:第一部分着眼于不同操作条件对机构中水喷雾化学稀释能力的影响;第二个是比较两种喷嘴配置,以评估其实际应用的可行性。即使在高气体浓度和释放速率下其稀释能力减弱,喷水剂仍具有控制H_2S释放的合格性能。 Na_2CO_3的存在可以显着提高水中H_2S的吸收效率,在该试验中,最佳的Na_2CO_3添加剂为1.0 g·L〜(-1)。与Na_2CO_3相比,调节水流量可能是提高喷水稀释能力的有效策略,因为较大的流量会导致更短的稀释时间(T_D)和稀释浓度(C_D)。此外,在相同的用水量下,多喷嘴配置比单喷嘴配置更有效。

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  • 来源
    《Journal of nanotechnology》 |2015年第2015期|958252.1-958252.9|共9页
  • 作者单位

    Department of Environmental and Safety Engineering, College of Chemical Engineering, China University of Petroleum, Qingdao, Shandong 266580, China;

    Department of Environmental and Safety Engineering, College of Chemical Engineering, China University of Petroleum, Qingdao, Shandong 266580, China;

    Department of Environmental and Safety Engineering, College of Chemical Engineering, China University of Petroleum, Qingdao, Shandong 266580, China;

    Department of Environmental and Safety Engineering, College of Chemical Engineering, China University of Petroleum, Qingdao, Shandong 266580, China;

    Department of Environmental and Safety Engineering, College of Chemical Engineering, China University of Petroleum, Qingdao, Shandong 266580, China;

    Department of Environmental and Safety Engineering, College of Chemical Engineering, China University of Petroleum, Qingdao, Shandong 266580, China;

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