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It is found that the adsorption of zeolite on NH4+ and K+ in photo-fermentation hydrogen production tailing liquid exhibites a tendency of accelerated adsorption, then gradually reaches balance, which is attained at 2 h and 3 h of adsorption, respectively. When adsorption time is 2h and adsorption temperature is 35 ℃, zeolite demonstrates stronger adsorption capacity for NH4+ with an adsorption of 1.82 mg/g. When adsorption time is 3 h and adsorption temperature is 45 ℃, zeolite exhibites its maximum adsorption capacity for K+, reaching 7.11 mg/g. The quasi-secondary kinetic model provides a superior description for the adsorption process. The adsorption process of zeolite on NH4+ and K+ in the tailing liquid of photo-fermentation hydrogen production is non-spontaneous. The adsorption of NH4+ by zeolite is characterised as an exothermic entropy reduction reaction, while the adsorption of K+ is identified as an adsorptive entropy increase reaction., authors=Zhou Xiaokai, Zhang Kai, Jing Yanyan, Zhang Quanguo, Lu Chaoyang, authorsList=Zhou Xiaokai, Zhang Kai, Jing Yanyan, Zhang Quanguo, Lu Chaoyang, authorCompany=Key Laboratory of New Materials and Equipment for Renewable Energy, Ministry of Agriculture and Rural Affairs, Henan Agricultural University, Zhengzhou 450002, China, correspAuthors=null, authorNote=null, correspAuthorsNote=null, copyrightStatement=null, copyrightOwner=null, extLink=null, articleAbsUrl=null, sourceXml=null, magXml=null, pdfUrl=null, pdf=null, pdfFileSize=null, pdfExtLink=null, richHtmlUrl=null, mobilePdfUrl=null, reviewReport=null, pdfFirstPage=null, abstractGraph=null, abstractGraphContent=null, abstractVideo=null, citation=null, cebUrl=null, magXmlContent=null, mapNumber=null, fund=null), CN=ArticleExt(id=1284794267801469206, articleId=1284794267549810965, tenantId=1146029695717560320, journalId=1283840536528293913, language=CN, title=沸石吸附制氢尾液中NH4+和K+的动力学与热力学分析, columnId=null, journalTitle=太阳能学报, columnName=null, runingTitle=null, highlight=null, articleAbstract=为实现光发酵制氢尾液营养物质的回收利用,以天然沸石为吸附材料,采用动力学和热力学分析方法,研究沸石吸附光发酵制氢尾液中NH4+和K+的能力。研究发现,在吸附时间和温度分别为2 h、35 ℃时,沸石对NH4+的吸附能力较强,吸附量为1.82 mg/g;当吸附时间为3 h、温度为45 ℃时,K+在沸石上的吸附最佳,为7.11 mg/g。准二级动力学更适合描述NH4+和K+在沸石上的吸附,且K+在沸石上的吸附是非自发的吸热熵增反应,而NH4+的吸附是非自发的放热熵减反应。, authors=周小楷, 张凯, 荆艳艳, 张全国, 路朝阳, authorsList=周小楷, 张凯, 荆艳艳, 张全国, 路朝阳, authorCompany=河南农业大学农业农村部可再生能源新材料与装备重点实验室,郑州 450002, correspAuthors=null, authorNote=null, correspAuthorsNote=null, copyrightStatement=null, copyrightOwner=null, extLink=null, articleAbsUrl=null, sourceXml=null, magXml=null, pdfUrl=null, pdf=22453jg0Gro6Cwr6Vs8N2A==, pdfFileSize=1388034, pdfExtLink=null, richHtmlUrl=null, mobilePdfUrl=null, reviewReport=null, pdfFirstPage=null, abstractGraph=null, abstractGraphContent=null, abstractVideo=null, 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[15] ENGLERT A H, RUBIO J.Characterization and environmental application of a Chilean natural zeolite[J]. International journal of mineral processing, 2005, 75(1/2): 21-29.
[16] 鲍慧敏. 粉煤灰基沸石吸附废液中氨氮化物与铜离子的试验研究[J]. 矿冶工程, 2024, 44(4): 253-258.
BAO H M.Experimental study on adsorption of ammonia nitride and copper ions in wastewater by fly ash-based zeolite[J]. Mining and metallurgical engineering, 2024, 44(4): 253-258.
[17] 王建辉, 朱星宇, 李广, 等. 改性天然斜发沸石去除氨氮的工艺[J]. 长春工程学院学报(自然科学版), 2024, 25(3): 96-104.
WANG J H, ZHU X Y, LI G, et al.Technology for removing ammonia nitrogen by modified natural clinoptilolite[J]. Journal of Changchun Institute of Technology (natural sciences edition), 2024, 25(3): 96-104.
[18] 程国斌, 韩梅, 王刃, 等. NH4+型斜发沸石吸附钾离子[J]. 应用化学, 2005, 22(10): 1092-1095.
CHENG G B, HAN M, WANG R, et al.Adsorption of potassium on NH4+-pretreated clinoptilolite[J]. Chinese journal of applied chemistry, 2005, 22(10): 1092-1095.
[19] MITROGIANNIS D, PSYCHOGIOU M, MANTHOS G, et al.Phosphorus and potassium recovery from anaerobically digested olive mill wastewater using modified zeolite, fly ash and zeolitic fly ash: a comparative study[J]. Journal of chemical technology & biotechnology, 2022, 97(7): 1860-1873.
[20] ZHOU X K, LI F, LI C J, et al.Effect of deep eutectic solvent pretreatment on biohydrogen production from corncob: pretreatment temperature and duration[J]. Bioengineered, 2023, 14(1): 2252218.
[21] 胡启立, 何智浩, 张帅, 等. 吸附动力学模型拟合优度的统计评估及模型比较研究[J]. 水处理技术, 2025, 51(3): 23-30.
HU Q L, HE Z H, ZHANG S, et al.Statistical evaluation of adsorption kinetic models: goodness of fit and model comparison[J]. Technology of water treatment, 2025, 51(3): 23-30.
[22] YANG W L, LU C Y, LIANG B, et al.Removal of Pb(Ⅱ) from aqueous solution and adsorption kinetics of corn stalk biochar[J]. Separations, 2023, 10(8): 140894.
[23] WAN C L, DING S, ZHANG C, et al.Simultaneous recovery of nitrogen and phosphorus from sludge fermentation liquid by zeolite adsorption: mechanism and application[J]. Separation and purification technology, 2017, 180: 1-12.
[24] 周传庭, 安莹, 羌佳鑫, 等. 盐改性方法对沸石吸附氨氮性能的影响[J]. 净水技术, 2024, 43(9): 80-86.
ZHOU C T, AN Y, QIANG J X, et al.Effect of salt modification method on performance of ammonia nitrogen adsorption by zeolite[J]. Water purification technology, 2024, 43(9): 80-86.
[25] 刘丽芳, 林子厚, 杨克敏, 等. 改性沸石滤料吸附氨氮性能研究[J]. 给水排水, 2022, 58(S1): 679-686.
LIU L F, LIN Z H, YANG K M, et al.Experimental study on adsorption of ammonia nitrogen by modified zeolite filter material[J]. Water & wastewater engineering, 2022, 58(S1): 679-686.
[26] 石勤, 黄雪莉. 钡十字沸石吸附K+的热力学模拟及动力学实验[J]. 无机盐工业, 2016, 48(11): 12-16.
SHI Q, HUANG X L.Thermodynamic simulation and kinetics experiment of K+ adsorption by merlinoite[J]. Inorganic chemicals industry, 2016, 48(11): 12-16.
[27] ZHANG H, YU X J, CHEN L, et al.Study of 63Ni adsorption on NKF-6 zeolite[J]. Journal of environmental radioactivity, 2010, 101(12): 1061-1069.
[28] KIM J R, HULING S G, KAN E.Effects of temperature on adsorption and oxidative degradation of bisphenol A in an acid-treated iron-amended granular activated carbon[J]. Chemical engineering journal, 2015, 262: 1260-1267.
[29] 邢赜. 沼液营养物的沸石吸附回收与利用[D]. 重庆: 西南大学, 2013.
XING Z.Adsorption and its utilization of nutrient from biogas slurry by zeolite[D]. Chongqing: Southwest University, 2013.
[30] 李佳. 改性沸石对水中氮磷和菲吸附作用及对底泥中氮磷固定作用研究[D]. 上海: 上海海洋大学, 2014.
LI J.Study on adsorption of phosphate, ammonium and phenanthrene from aqueous solution and immobilization of phosphate and ammonium in sediment by modified zeolite[D]. Shanghai: Shanghai Ocean University, 2014.)
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沸石吸附制氢尾液中NH4+和K+的动力学与热力学分析
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太阳能学报 2026 , 47 (6) : 601 -606
沸石吸附制氢尾液中NH4+和K+的动力学与热力学分析
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周小楷, 张凯, 荆艳艳, 张全国, 路朝阳
作者信息
    河南农业大学农业农村部可再生能源新材料与装备重点实验室,郑州 450002
KINETIC AND THERMODYNAMIC ANALYSIS OF NH4+ AND K+ IN TAILING LIQUID OF ZEOLITE ADSORPTION HYDROGEN PRODUCTION
  • Zhou Xiaokai, Zhang Kai, Jing Yanyan, Zhang Quanguo, Lu Chaoyang
  • Affiliations
      Key Laboratory of New Materials and Equipment for Renewable Energy, Ministry of Agriculture and Rural Affairs, Henan Agricultural University, Zhengzhou 450002, China
    doi: 10.19912/j.0254-0096.tynxb.2025-0157
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    为实现光发酵制氢尾液营养物质的回收利用,以天然沸石为吸附材料,采用动力学和热力学分析方法,研究沸石吸附光发酵制氢尾液中NH4+和K+的能力。研究发现,在吸附时间和温度分别为2 h、35 ℃时,沸石对NH4+的吸附能力较强,吸附量为1.82 mg/g;当吸附时间为3 h、温度为45 ℃时,K+在沸石上的吸附最佳,为7.11 mg/g。准二级动力学更适合描述NH4+和K+在沸石上的吸附,且K+在沸石上的吸附是非自发的吸热熵增反应,而NH4+的吸附是非自发的放热熵减反应。
    氢气  /  吸附  /  动力学  /  热力学  /  沸石  /  光发酵制氢尾液
    In order to achieve the recycling of nutrients in photo-fermentation hydrogen production tailing liquid, the adsorption capacity of zeolite on NH4+ and K+ in photo-fermentation hydrogen production tailing liquid was investigated using natural zeolite as adsorbent and kinetic and thermodynamic analyses were carried out. It is found that the adsorption of zeolite on NH4+ and K+ in photo-fermentation hydrogen production tailing liquid exhibites a tendency of accelerated adsorption, then gradually reaches balance, which is attained at 2 h and 3 h of adsorption, respectively. When adsorption time is 2h and adsorption temperature is 35 ℃, zeolite demonstrates stronger adsorption capacity for NH4+ with an adsorption of 1.82 mg/g. When adsorption time is 3 h and adsorption temperature is 45 ℃, zeolite exhibites its maximum adsorption capacity for K+, reaching 7.11 mg/g. The quasi-secondary kinetic model provides a superior description for the adsorption process. The adsorption process of zeolite on NH4+ and K+ in the tailing liquid of photo-fermentation hydrogen production is non-spontaneous. The adsorption of NH4+ by zeolite is characterised as an exothermic entropy reduction reaction, while the adsorption of K+ is identified as an adsorptive entropy increase reaction.
    hydrogen  /  adsorption  /  kinetics  /  thermodynamics  /  zeolite  /  photo-fermentation hydrogen production tailing liquid
    周小楷, 张凯, 荆艳艳, 张全国, 路朝阳. 沸石吸附制氢尾液中NH4+和K+的动力学与热力学分析. 太阳能学报, 2026 , 47 (6) : 601 -606 . DOI: 10.19912/j.0254-0096.tynxb.2025-0157
    Zhou Xiaokai, Zhang Kai, Jing Yanyan, Zhang Quanguo, Lu Chaoyang. KINETIC AND THERMODYNAMIC ANALYSIS OF NH4+ AND K+ IN TAILING LIQUID OF ZEOLITE ADSORPTION HYDROGEN PRODUCTION[J]. Acta Energiae Solaris Sinica, 2026 , 47 (6) : 601 -606 . DOI: 10.19912/j.0254-0096.tynxb.2025-0157

      国家重点研发计划(2018YFE0206600)

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    [17] 王建辉, 朱星宇, 李广, 等. 改性天然斜发沸石去除氨氮的工艺[J]. 长春工程学院学报(自然科学版), 2024, 25(3): 96-104.
    WANG J H, ZHU X Y, LI G, et al.Technology for removing ammonia nitrogen by modified natural clinoptilolite[J]. Journal of Changchun Institute of Technology (natural sciences edition), 2024, 25(3): 96-104.
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    CHENG G B, HAN M, WANG R, et al.Adsorption of potassium on NH4+-pretreated clinoptilolite[J]. Chinese journal of applied chemistry, 2005, 22(10): 1092-1095.
    [19] MITROGIANNIS D, PSYCHOGIOU M, MANTHOS G, et al.Phosphorus and potassium recovery from anaerobically digested olive mill wastewater using modified zeolite, fly ash and zeolitic fly ash: a comparative study[J]. Journal of chemical technology & biotechnology, 2022, 97(7): 1860-1873.
    [20] ZHOU X K, LI F, LI C J, et al.Effect of deep eutectic solvent pretreatment on biohydrogen production from corncob: pretreatment temperature and duration[J]. Bioengineered, 2023, 14(1): 2252218.
    [21] 胡启立, 何智浩, 张帅, 等. 吸附动力学模型拟合优度的统计评估及模型比较研究[J]. 水处理技术, 2025, 51(3): 23-30.
    HU Q L, HE Z H, ZHANG S, et al.Statistical evaluation of adsorption kinetic models: goodness of fit and model comparison[J]. Technology of water treatment, 2025, 51(3): 23-30.
    [22] YANG W L, LU C Y, LIANG B, et al.Removal of Pb(Ⅱ) from aqueous solution and adsorption kinetics of corn stalk biochar[J]. Separations, 2023, 10(8): 140894.
    [23] WAN C L, DING S, ZHANG C, et al.Simultaneous recovery of nitrogen and phosphorus from sludge fermentation liquid by zeolite adsorption: mechanism and application[J]. Separation and purification technology, 2017, 180: 1-12.
    [24] 周传庭, 安莹, 羌佳鑫, 等. 盐改性方法对沸石吸附氨氮性能的影响[J]. 净水技术, 2024, 43(9): 80-86.
    ZHOU C T, AN Y, QIANG J X, et al.Effect of salt modification method on performance of ammonia nitrogen adsorption by zeolite[J]. Water purification technology, 2024, 43(9): 80-86.
    [25] 刘丽芳, 林子厚, 杨克敏, 等. 改性沸石滤料吸附氨氮性能研究[J]. 给水排水, 2022, 58(S1): 679-686.
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    SHI Q, HUANG X L.Thermodynamic simulation and kinetics experiment of K+ adsorption by merlinoite[J]. Inorganic chemicals industry, 2016, 48(11): 12-16.
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    XING Z.Adsorption and its utilization of nutrient from biogas slurry by zeolite[D]. Chongqing: Southwest University, 2013.
    [30] 李佳. 改性沸石对水中氮磷和菲吸附作用及对底泥中氮磷固定作用研究[D]. 上海: 上海海洋大学, 2014.
    LI J.Study on adsorption of phosphate, ammonium and phenanthrene from aqueous solution and immobilization of phosphate and ammonium in sediment by modified zeolite[D]. Shanghai: Shanghai Ocean University, 2014.
    2026年第47卷第6期
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    doi: 10.19912/j.0254-0096.tynxb.2025-0157
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    2种不同金属材料的力学参数

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    鹅膏菌科Amanitaceae 2 11 5.26 鹅膏菌属 Amanita 10 4.78
    小菇科 Mycenaceae 2 12 5.74 丝盖伞属 Inocybe 5 2.39
    多孔菌科 Polyporaceae 8 14 6.70 蜡蘑属 Laccaria 5 2.39
    红菇科 Russulaceae 3 23 11.00 小皮伞属 Marasmius 6 2.87
    小菇属 Mycena 11 5.26
    光柄菇属 Pluteus 5 2.39
    红菇属 Russula 17 8.13
    栓菌属 Trametes 5 2.39
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