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使用浸渍活性炭吸附剂从沼气模拟物中去除硫化氢。

Removal of hydrogen sulfide from a biogas mimic by using impregnated activated carbon adsorbent.

机构信息

Research Centre for Sustainable Process Technology (CESPRO), Faculty of Engineering and Built Environment, Universiti Kebangsaan Malaysia, UKM Bangi, Selangor, Malaysia.

Program of Chemical Engineering, Faculty of Engineering and Built Environment, Universiti Kebangsaan Malaysia, UKM Bangi, Selangor, Malaysia.

出版信息

PLoS One. 2019 Feb 12;14(2):e0211713. doi: 10.1371/journal.pone.0211713. eCollection 2019.

Abstract

Adsorption technology has led to the development of promising techniques to purify biogas, i.e., biomethane or biohydrogen. Such techniques mainly depend on the adsorbent ability and operating parameters. This research focused on adsorption technology for upgrading biogas technique by developing a novel adsorbent. The commercial coconut shell activated carbon (CAC) and two types of gases (H2S/N2 and H2S/N2/CO2) were used. CAC was modified by copper sulfate (CuSO4), zinc acetate (ZnAc2), potassium hydroxide (KOH), potassium iodide (KI), and sodium carbonate (Na2CO3) on their surface to increase the selectivity of H2S removal. Commercial H2S adsorbents were soaked in 7 wt.% of impregnated solution for 30 min before drying at 120°C for 24 h. The synthesized adsorbent's physical and chemical properties, including surface morphology, porosity, and structures, were characterized by SEM-EDX, FTIR, XRD, TGA, and BET analyses. For real applications, the modified adsorbents were used in a real-time 0.85 L single-column adsorber unit. The operating parameters for the H2S adsorption in the adsorber unit varied in L/D ratio (0.5-2.5) and feed flow rate (1.5-5.5 L/min) where, also equivalent with a gas hourly space velocity, GHSV (212.4-780.0 hour-1) used. The performances of H2S adsorption were then compared with those of the best adsorbent that can be used for further investigation. Characterization results revealed that the impregnated solution homogeneously covered the adsorbent surface, morphology, and properties (i.e., crystallinity and surface area). BET analysis further shows that the modified adsorbents surface area decreased by up to 96%. Hence, ZnAc2-CAC clarify as the best adsorption capacity ranging within 1.3-1.7 mg H2S/g, whereby the studied extended to adsorption-desorption cycle.

摘要

吸附技术已经催生了一些有前景的沼气净化技术,例如生物甲烷或生物氢气。这些技术主要依赖于吸附剂的能力和操作参数。本研究专注于通过开发新型吸附剂来改进沼气技术的吸附技术。使用商业椰子壳活性炭 (CAC) 和两种气体 (H2S/N2 和 H2S/N2/CO2)。在 CAC 表面用硫酸铜 (CuSO4)、醋酸锌 (ZnAc2)、氢氧化钾 (KOH)、碘化钾 (KI) 和碳酸钠 (Na2CO3) 进行改性,以提高 H2S 去除的选择性。商业 H2S 吸附剂在 7wt%的浸渍溶液中浸泡 30 分钟,然后在 120°C 下干燥 24 小时。合成吸附剂的物理和化学性质,包括表面形貌、孔隙率和结构,通过 SEM-EDX、FTIR、XRD、TGA 和 BET 分析进行了表征。为了实际应用,改性吸附剂用于实时 0.85 L 单柱吸附器单元。吸附器单元中 H2S 吸附的操作参数在 L/D 比 (0.5-2.5) 和进料流速 (1.5-5.5 L/min) 中变化,这也相当于气体空速,GHSV (212.4-780.0 小时-1)。然后将 H2S 吸附性能与可用于进一步研究的最佳吸附剂的性能进行比较。表征结果表明,浸渍溶液均匀覆盖了吸附剂的表面、形貌和性质(即结晶度和表面积)。BET 分析进一步表明,改性吸附剂的表面积减少了高达 96%。因此,ZnAc2-CAC 被证明具有最佳的吸附容量,范围在 1.3-1.7mg H2S/g 之间,研究范围进一步扩展到吸附-解吸循环。

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