Source Jouranl of CSCD
Source Journal of Chinese Scientific and Technical Papers
Included as T2 Level in the High-Quality Science and Technology Journals in the Field of Environmental Science
Core Journal of RCCSE
Included in the CAS Content Collection
Included in the JST China
Indexed in World Journal Clout Index (WJCI) Report
ZHAO Yan, GUO Jia-lin, SHI Yang, WU Zhi-qi, JIANG Bin-hui. A GROUNDWATER INFLOW PREDICTION METHOD FOR FUSHUN WEST OPEN-PIT MINE BASED ON GMS[J]. ENVIRONMENTAL ENGINEERING , 2021, 39(1): 75-79,129. doi: 10.13205/j.hjgc.202101011
Citation: CHU Si-qin, MA Jia-ying, XU Yu-lu, ZHANG Liang-mao, SU Ying-long, XIE Bing. RESEARCH PROCESS ON APPLICATION OF ZERO VALENT IRON IN ANAEROBIC DIGESTION OF ORGANIC SOLID WASTE[J]. ENVIRONMENTAL ENGINEERING , 2021, 39(8): 141-149. doi: 10.13205/j.hjgc.202108020

RESEARCH PROCESS ON APPLICATION OF ZERO VALENT IRON IN ANAEROBIC DIGESTION OF ORGANIC SOLID WASTE

doi: 10.13205/j.hjgc.202108020
  • Received Date: 2020-12-08
    Available Online: 2022-01-18
  • Anaerobic digestion is a kind of biological treatment technology that can realize the recycling of organic solid waste. But there are main problems such as low efficiency of acid production and methane production at present. Studies showed that the addition of zero valent iron (Fe0) could effectively improve the anaerobic digestion performance of organic solid waste. This article reviewed the application of Fe0 in the process of anaerobic digestion of organic solid waste from the aspects of the effect of Fe0 on the acid production, methane production efficiency of organic solid waste, the combined effect of Fe0 and other additives. The mechanism of effect of Fe0 on the anaerobic digestion performance of organic solid waste mainly included reducing the system redox potential, corrosive hydrogen evolution, affecting the microbial community, affecting the activity of key enzymes. In addition, taking sulfide and antibiotic resistance genes (ARGs) as an example, the effect of Fe0 on removal of pollutants in the process of anaerobic digestion of organic solid waste was described. There are many deficiencies and challenges in the application of Fe0 in the anaerobic digestion of organic solid. The future application of Fe0 in the anaerobic digestion of organic solid waste was prospected from multiple perspectives.
  • [1]
    张腾.厌氧消化技术在有机固体废弃物处理中的应用[J].四川化工,2019,22(5):37-40

    ,54.
    [2]
    WAINAINA S,AWASTHI M K,SARSAIYA S,et al.Resource recovery and circular economy from organic solid waste using aerobic and anaerobic digestion technologies[J].Bioresource Technology,2020,301:122778.
    [3]
    戴前进,方先金,黄鸥,等.有机废物处理处置技术与产气利用前景[J].中国沼气,2008,26(6):17-19

    ,32.
    [4]
    石祖梁.中国秸秆资源化利用现状及对策建议[J].世界环境,2018(5):16-18.
    [5]
    WANG G J,LI Q,GAO X,et al.Synergetic promotion of syntrophic methane production from anaerobic digestion of complex organic wastes by biochar:performance and associated mechanisms[J].Bioresource Technology,2018,250:812-820.
    [6]
    WANG X,DUAN X,CHEN J G,et al.Enhancing anaerobic digestion of waste activated sludge by pretreatment:effect of volatile to total solids[J].Environ Technology,2016.
    [7]
    MA J Y,WEI H W,SU Y L,et al.Powdered activated carbon facilitates methane productivity of anaerobic co-digestion via acidification alleviating:microbial and metabolic insights[J].Bioresource Technology,2020,313:123706.
    [8]
    GU J,LIU R,CHENG Y,et al.Anaerobic co-digestion of food waste and sewage sludge under mesophilic and thermophilic conditions:focusing on synergistic effects on methane production[J].Bioresource Technology,2020,301:122765.
    [9]
    XIAO B Y,TANG X Y,YI H,et al.Comparison of two advanced anaerobic digestions of sewage sludge with high-temperature thermal pretreatment and low-temperature thermal-alkaline pretreatment[J].Bioresource Technology,2020,304:122979.
    [10]
    李瑜,侯凤兰,王璇,等.添加剂及抑制剂对餐厨垃圾厌氧消化性能的影响[J].环境卫生工程,2019,27(5):18-21.
    [11]
    XIAO X,SHENG G P,MU Y,et al.A modeling approach to describe ZVI-based anaerobic system[J].Water Research,2013,47(16):6007-6013.
    [12]
    BILARDI S,CALABRO P S,GRECO R,et al.Removal of heavy metals from landfill leachate using zero valent iron and granular activated carbon[J].Environmental Technology,2020,41(1/2/3/4):498-510.
    [13]
    KONG X,WEI Y H,XU S,et al.Inhibiting excessive acidification using zero-valent iron in anaerobic digestion of food waste at high organic load rates[J].Bioresource Technology,2016,211:65-71.
    [14]
    魏桃员,温海东,成家杨.零价铁驯化污泥对餐厨垃圾厌氧消化产甲烷的影响[J].湖北农业科学,2016,55(14):3618-3621.
    [15]
    YANG Y,GUO J L,HU Z Q.Impact of nano zero valent iron (NZVI) on methanogenic activity and population dynamics in anaerobic digestion[J].Water Research,2013,47(17):6790-6800.
    [16]
    任南琪,秦智,李建政.不同产酸发酵菌群产氢能力的对比与分析[J].环境科学,2003,24(1):70-74.
    [17]
    YANG Y,WANG J Y,ZHOU Y B.Enhanced anaerobic digestion of swine manure by the addition of Zero-Valent iron[J].Energ Fuel,2019,33(12):12441-12449.
    [18]
    CHENG J H,ZHU C,ZHU J,et al.Effects of waste rusted iron shavings on enhancing anaerobic digestion of food wastes and municipal sludge[J].Journal of Cleaner Production,2019,242:118195.
    [19]
    何冬伟,牛冬杰,赵由才.铁刨花对餐厨垃圾厌氧发酵产酸的影响研究[J].能源与节能,2014(1):94-96,101.
    [20]
    FENG Y H,ZHANG Y B,QUAN X,et al.Enhanced anaerobic digestion of waste activated sludge digestion by the addition of zero valent iron[J].Water Research,2014,52:242-250.
    [21]
    HUANG C,LIU C C,SUN X Y,et al.Hydrolysis and acidification of waste activated sludge enhanced by zero valent iron-acid pretreatment:effect of pH[J].Desalin Water Treat,2015,57:1-9.
    [22]
    ZHANG Y B,FENG Y H,QUAN X.Zero-valent iron enhanced methanogenic activity in anaerobic digestion of waste activated sludge after heat and alkali pretreatment[J].Waste Management,2015,38:297-302.
    [23]
    JIA T T,WANG Z Z,SHAN H Q,et al.Effect of nanoscale zero-valent iron on sludge anaerobic digestion[J].Resources,Conservation and Recycling,2017,127:190-195.
    [24]
    CAO J S,ZHANG Q,WU S,et al.Enhancing the anaerobic bioconversion of complex organics in food wastes for volatile fatty acids production by zero-valent iron and persulfate stimulation[J].Science of the Total Environment,2019,669:540-546.
    [25]
    HORIUCHI J I,SHIMIZU T,TADA K,et al.Selective production of organic acids in anaerobic acid reactor by pH control[J].Bioresource Technology,2002,82(3):209-213.
    [26]
    LOVLEY,DEREK R.Organic matter mineralization with the reduction of ferric iron:a review[J].Geomicrobiol J.1987,5(3/4):375-399.
    [27]
    ZHANG Y B,FENG Y H,YU Q L,et al.Enhanced high-solids anaerobic digestion of waste activated sludge by the addition of scrap iron[J].Bioresource Technology,2014,159:297-304.
    [28]
    LI S Y,CAO Y,ZHAO Z Q,et al.Regulating secretion of extracellular polymeric substances through dosing magnetite and zerovalent iron nanoparticles to affect anaerobic digestion mode[J].ACS Sustainable Chemistry & Engineering,2019,7(10):9655-9662.
    [29]
    WANG Y Y,WANG D L,FANG H Y.Comparison of enhancement of anaerobic digestion of waste activated sludge through adding nano-zero valent iron and zero valent iron[J].RSC Advances,2018,48(8):27181-27190.
    [30]
    YU B,HUANG X T,ZHANG D L,et al.Response of sludge fermentation liquid and microbial community to nano zero-valent iron exposure in a mesophilic anaerobic digestion system[J].RSC Advances,2016,29(6):24236-24244.
    [31]
    SU L H,ZHEN G Y,ZHANG L J,et al.The use of the core-shell structure of zero-valent iron nanoparticles (NZVI) for long-term removal of sulphide in sludge during anaerobic digestion[J].Environmental Science:Processes & Impacts,2015,17(12):2013-2021.
    [32]
    魏桃员,温海东,成家杨.零价铁对餐厨垃圾厌氧消化产甲烷的影响研究[J].环境污染与防治,2016,38(12):54-58

    ,64.
    [33]
    SU L H,SHI X L,GUO G Z,et al.Stabilization of sewage sludge in the presence of nanoscale zero-valent iron (nZVI):abatement of odor and improvement of biogas production[J].Journal of Material Cycles and Waste Management,2013,15(4):461-468.
    [34]
    HE C S,HE P P,YANG H Y,et al.Impact of zero-valent iron nanoparticles on the activity of anaerobic granular sludge:from macroscopic to microcosmic investigation[J].Water Research,2017,127:32-40.
    [35]
    LIZAMA A,CARRERA F C,ZEPEDA A,et al.Enhancing the performance and stability of the anaerobic digestion of sewage sludge by zero valent iron nanoparticles dosage[J].Bioresource Technology,2018,275:352-359.
    [36]
    ZHAO Z S,ZHANG Y B,LI Y,et al.Comparing the mechanisms of ZVI and Fe3O4 for promoting waste-activated sludge digestion[J].Water Research,2018,144:126-133.
    [37]
    ZHEN G Y,LU X Q,LI Y Y,et al.Novel insights into enhanced dewaterability of waste activated sludge by Fe(Ⅱ)-activated persulfate oxidation[J].Bioresource Technology,2012,119:7-14.
    [38]
    WEI W,CAI Z Q,FU J,et al.Zero valent iron enhances methane production from primary sludge in anaerobic digestion[J].Chem Engineering Journal,2018,351:1159-1165.
    [39]
    ZHOU J,YOU X G,NIU B W,et al.Enhancement of methanogenic activity in anaerobic digestion of high solids sludge by nano zero-valent iron[J].Science of the Total Environment,2020,703:135532.
    [40]
    SUANON F,SUN Q,LI M Y,et al.Application of nanoscale zero valent iron and iron powder during sludge anaerobic digestion:impact on methane yield and pharmaceutical and personal care products degradation[J].Journal of Hazardous Materials,2017,321:47-53.
    [41]
    LIU Y W,WANG Q L,ZHANG Y B,et al.Zero valent iron significantly enhances methane production from waste activated sludge by improving biochemical methane potential rather than hydrolysis rate[M].Sci Rep-Uk,2016.
    [42]
    王攀,杜晓璐,陈锡腾,等.Fe0对污泥接种餐厨垃圾厌氧发酵及抗生素抗性基因的影响[J].环境工程,2019,37(7):178-182.
    [43]
    WANG P,CHEN X T,LIANG X F,et al.Effects of nanoscale zero-valent iron on the performance and the fate of antibiotic resistance genes during thermophilic and mesophilic anaerobic digestion of food waste[J].Bioresource Technology,2019,293:122092.
    [44]
    YANG Y,YANG F,HUANG W W,et al.Enhanced anaerobic digestion of ammonia-rich swine manure by zero-valent iron:with special focus on the enhancement effect on hydrogenotrophic methanogenesis activity[J].Bioresource Technology,2018,270:172-179.
    [45]
    ABDELSALAM E,SAMER M,ATTIA Y-A,et al.Influence of zero valent iron nanoparticles and magnetic iron oxide nanoparticles on biogas and methane production from anaerobic digestion of manure[J].Energy,2017,120:842-853.
    [46]
    ZHOU X,WANG Q L,JIANG G M,et al.A novel conditioning process for enhancing dewaterability of waste activated sludge by combination of zero-valent iron and persulfate[J].Bioresource Technology,2015,185:416-420.
    [47]
    HU Y Q,WANG F,LV G J,et al.Enhancing the biogas production of sludge anaerobic digestion by a combination of Zero-Valent iron foil and persulfate[J].Energ Fuel,2019,33(8):7436-7442.
    [48]
    LI Y,ZHANG Y B,LIU Y W,et al.Enhancement of anaerobic methanogenesis at a short hydraulic retention time via bioelectrochemical enrichment of hydrogenotrophic methanogens[J].Bioresource Technology,2016,218:505-511.
    [49]
    ZHANG G Y,SHI Y H,ZHAO Z S,et al.Enhanced two-phase anaerobic digestion of waste-activated sludge by combining magnetite and zero-valent iron[J].Bioresource Technology,2020,306:123122.
    [50]
    马佳莹,汪冰寒,乔子茹,等.碳基材料对餐厨垃圾厌氧消化效率和微生物群落的影响研究进展[J].应用与环境生物学报,2020,26(3):730-738.
    [51]
    PHENRAT T,SALEH N,SIRK K,et al.Aggregation and sedimentation of aqueous nanoscale zerovalent iron dispersions,environ[J].Environmental Science & Technology,2007,41:284-290.
    [52]
    ZHANG M,LI J H,WANG Y C.Impact of biochar-supported zerovalent iron nanocomposite on the anaerobic digestion of sewage sludge[J].Environmental Science and Pollution Research International,2019,26(10):10292-10365.
    [53]
    WANG T Y,QIN Y J,CAO Y,et al.Simultaneous addition of zero-valent iron and activated carbon on enhanced mesophilic anaerobic digestion of waste-activated sludge[J].Environmental Science and Pollution Research International,2017,24(28):22371-22381.
    [54]
    WANG Y Y,YANG A Q,ZHUAN R,et al.Transformations,inhibition and inhibition control methods of sulfur in sludge anaerobic digestion:a review[J].Curr Org Chem,2016,20(26):2780-2789.
    [55]
    KARRI S,SIERRA-ALVAREZ R,FIELD J.Zero valent iron as an electron-donor for methanogenesis and sulfate reduction in anaerobic sludge[J].Biotechnol Bioeng,2005,92:810-819.
    [56]
    LIU Y W,ZHANG Y B,NI B J.Zero valent iron simultaneously enhances methane production and sulfate reduction in anaerobic granular sludge reactors[J].Water Research,2015,75:292-300.
    [57]
    FARGHALI M,ANDRIAMANOHIARISOAMANANA F J,AHMED M M,et al.Prospects for biogas production and H2S control from the anaerobic digestion of cattle manure:the influence of microscale waste iron powder and iron oxide nanoparticles[J].Waste Management,2020,101:141-149.
    [58]
    许东.废铁屑促进污泥厌氧消化及原位硫化氢控制研究[D].长沙:湖南大学,2018.
    [59]
    YOO K,YOO H,LEE J,et al.Exploring the antibiotic resistome in activated sludge and anaerobic digestion sludge in an urban wastewater treatment plant via metagenomic analysis[J].Journal of Microbiology,2020,58(2):123-130.
    [60]
    BARRIOS R E,KHUNTIA H K,BARTELT-HUNT S L,et al.Fate and transport of antibiotics and antibiotic resistance genes in runoff and soil as affected by the timing of swine manure slurry application[J].Science of the Total Environment,2020,712:136505.
    [61]
    ZHANG J X,MAO F J,LOH K C,et al.Evaluating the effects of activated carbon on methane generation and the fate of antibiotic resistant genes and class I integrons during anaerobic digestion of solid organic wastes[J].Bioresource Technology,2018,249:729-736.
    [62]
    WANG P L,WU D,YOU X X,et al.Antibiotic and metal resistance genes are closely linked with nitrogen-processing functions in municipal solid waste landfills[J].Journal of Hazardous Materials,2021,403:123689.
    [63]
    SUI Q W,ZHANG J Y,CHEN M X,et al.Distribution of antibiotic resistance genes (ARGs) in anaerobic digestion and land application of swine wastewater[J].Environmental Pollution,2016,213:751-759.
    [64]
    GAO P,GU C C,WEI X,et al.The role of zero valent iron on the fate of tetracycline resistance genes and class 1 integrons during thermophilic anaerobic co-digestion of waste sludge and kitchen waste[J].Water Research,2017,111:92-99.
    [65]
    SONG W,WANG X J,GU J,et al.Effects of different swine manure to wheat straw ratios on antibiotic resistance genes and the microbial community structure during anaerobic digestion[J].Bioresource Technology,2017,231:1-8.
    [66]
    YUAN H Y,MILLER J H,ABU-REESH I M,et al.Effects of electron acceptors on removal of antibiotic resistant Escherichia coli,resistance genes and class 1 integrons under anaerobic conditions[J].Science of the Total Environment,2016,569/570:1587-1594.
    [67]
    MA J Y,GU J,WANG X J,et al.Effects of nano-zerovalent iron on antibiotic resistance genes during the anaerobic digestion of cattle manure[J].Bioresource Technology,2019,289:121688.
    [68]
    ZHANG J Y,SUI Q W,ZHONG H,et al.Impacts of zero valent iron,natural zeolite and Dnase on the fate of antibiotic resistance genes during thermophilic and mesophilic anaerobic digestion of swine manure[J].Bioresource Technology,2018,258:135-141.
    [69]
    HU Y S,HAO X D,ZHAO D,et al.Enhancing the CH4 yield of anaerobic digestion via endogenous CO2 fixation by exogenous H2[J].Chemosphere,2015,140:34-39.
    [70]
    WANG L X,ZHOU Q G,LI F T.Avoiding propionic acid accumulation in the anaerobic process for biohydrogen production[J].Biomass and Bioenergy,2006,30(2):177-182.
    [71]
    CHANG C N,MA Y S,LO C W.Application of oxidation-reduction potential as a controlling parameter in waste activated sludge hydrolysis[J].Chemical Engineering Journal,2002,90(3):273-281.
    [72]
    REN N Q,CHUA H,CHAN S Y,et al.Assessing optimal fermentation type for bio-hydrogen production in continuous-flow acidogenic reactors[J].Bioresource Technology,2007,98(9):1774-1780.
    [73]
    LIU Y W,ZHANG Y B,QUAN X,et al.Optimization of anaerobic acidogenesis by adding Fe0 powder to enhance anaerobic wastewater treatment[J].Chemical Engineering Journal,2012,192:179-185.
    [74]
    MENG X S,ZHANG Y B,LI Q,et al.Adding Fe0 powder to enhance the anaerobic conversion of propionate to acetate[J].Biochem Engineering Journal,2013,73:80-85.
    [75]
    THANH P-M,KETHEESAN B,YAN Z,et al.Trace metal speciation and bioavailability in anaerobic digestion:a review[J].Biotechnology Advances,2016,34(2):122-136.
    [76]
    ZHANG J W,GUO L,JU-YING LI,et al.Influences of different initial pH,ORP and shaking rates on anaerobic acidification of excess sludge[J].China Water & Wastewater,2015,11:107-111.
    [77]
    KONG X,YU S Y,XU S,et al.Effect of Fe0 addition on volatile fatty acids evolution on anaerobic digestion at high organic loading rates[J].Waste Management,2018,71:719-727.
    [78]
    FENG Y H,ZHANG Y B,QUAN X,et al.Enhanced anaerobic digestion of waste activated sludge digestion by the addition of zero valent iron[J].Water Research,2014,52:242-250.
    [79]
    MA W C,XIN H M,ZHONG D,et al.Effects of different states of fe on anaerobic digestion:a review[J].Journal of Harbin Institute of Technology,2015,22(6):69-75.
    [80]
    HAO X D,WEI J,van LOOSDRECHT Mark-C-M,et al.Analysing the mechanisms of sludge digestion enhanced by iron[J].Water Research,2017,117:58-67.
    [81]
    PUYOL D,FLORES-ALSINA X,SEGURA Y,et al.Exploring the effects of ZVI addition on resource recovery in the anaerobic digestion process[J].Chemical Engineering Journal,2018,335:703-711.
    [82]
    郝晓地,魏静,曹达啟.废铁屑强化污泥厌氧消化产甲烷可行性分析[J].环境科学学报,2016,36(8):2730-2740.
  • Relative Articles

    [1]ZHANG Qing, ZHAO Liya, GUO Zhiwei, QI Kai. SPATIAL AND TEMPORAL DISTRIBUTION CHARACTERISTICS OF ATMOSPHERIC POLLUTANTS IN WUHAN FROM 2017 TO 2020[J]. ENVIRONMENTAL ENGINEERING , 2023, 41(2): 82-90. doi: 10.13205/j.hjgc.202302012
    [2]GUO Yajun, WANG Hualan, LI Mingxuan, LI Ruohan. ANALYSIS OF AIR POLLUTION CHARACTERISTICS IN EXPRESSWAY AREAS[J]. ENVIRONMENTAL ENGINEERING , 2023, 41(12): 166-171. doi: 10.13205/j.hjgc.202312020
    [3]SHENG Yujia, CHEN Dong, LIU Haibo, CHEN Tianhu, SHU Daobing, ZHANG Bin. EFFECT OF SYNTHESIS METHOD ON PERFORMANCE OF Ce-MnOx FOR SELECTIVE CATALYTIC OXIDATION OF AMMONIA[J]. ENVIRONMENTAL ENGINEERING , 2022, 40(1): 60-68. doi: 10.13205/j.hjgc.202201010
    [4]CAO Qing, ZHANG Han-chen, CHEN Xi, ZHANG Yue-guan. SPATIO-TEMPORAL PATTERNS OF RAINY-SEASON FEATURES AND ANALYSIS OF TELECONNETION IN THE YANGTZE RIVER BASIN[J]. ENVIRONMENTAL ENGINEERING , 2022, 40(9): 101-107. doi: 10.13205/j.hjgc.202209014
    [5]LUO Ya-yue, LI Cui-qing, ZHANG Wei, ZHANG Chen, SONG Yong-ji, WANG Hong. RESEARCH PROGRESS IN CATALYSTS FOR SELECTIVE CATALYTIC OXIDATION OF NITRIC OXIDE[J]. ENVIRONMENTAL ENGINEERING , 2021, 39(1): 101-105,88. doi: 10.13205/j.hjgc.202101015
    [6]GAO Chan-juan, ZHAO Qi-chao, DING Ruo-nan, ZHANG Jin-ming, LI Ying-hua, DONG Chun-xin. VARIATIONS OF ATMOSPHERIC POLLUTANTS CONCENTRATIONS AND THEIR CORRELATION WITH METEOROLOGICAL FACTOR IN JILIN CITY IN 2018[J]. ENVIRONMENTAL ENGINEERING , 2021, 39(5): 71-79. doi: 10.13205/j.hjgc.202105010
    [7]ZHANG Zhi-xuan, SHAN Bao-yan, LIN Qi-kai, CHEN Yan-qiu, YU Xin-wei, ZHU Min. INFLUENCE OF URBAN SPATIAL STRUCTURE ON PM2.5 CONCENTRATION DISTRIBUTION[J]. ENVIRONMENTAL ENGINEERING , 2021, 39(9): 84-91. doi: 10.13205/j.hjgc.202109013
    [8]ZHANG Ru-jie, WANG Fu-mei, BAI Peng-fei, CHEN Xiao-gen, WANG Zhi, SHEN Bo-xiong, WU Chun-fei. NH3-SCR PERFORMANCE OF LOW VANADIUM-BASED CATALYST PREPARED BY BALL MILLING[J]. ENVIRONMENTAL ENGINEERING , 2021, 39(3): 103-110. doi: 10.13205/j.hjgc.202103015
    [9]ZENG Yi-chuan, WANG Hua, QU Hao, HE Xin-chen, YAN Huai-yu, SHEN Yu-han. SPATIO-TEMPERAL DISTRIBUTION CHARACTERISTICS AND CORRELATION ANALYSIS OF CHLOROPHYLL-A IN RIVER NETWORK[J]. ENVIRONMENTAL ENGINEERING , 2020, 38(9): 23-30,153. doi: 10.13205/j.hjgc.202009004
    [10]ZHU Heng, DONG Chang-qing, WANG Xiao-dong, ZHU Yan-jun, SHEN Chen, ZHANG Xu-ming, QIN Wu, HU Xiao-ying, ZHANG Jun-jiao, WANG Xiao-qiang, ZHAO Ying, XUE Jun-jie. PREPARATION AND PROPERTIES OF V-Mo/TiO2 CORDIERITE SUPPORTED DENITRATION CATALYST[J]. ENVIRONMENTAL ENGINEERING , 2020, 38(9): 168-174. doi: 10.13205/j.hjgc.202009027
  • Cited by

    Periodical cited type(6)

    1. 杨浪,龚德鸿,王康,邓传记,方兴蕊,叶宗权,徐圆圆,黄正光. 催化剂结构对SCR脱硝性能影响分析. 科学技术与工程. 2024(04): 1733-1739 .
    2. 陈令强,曹亮,王彬,王晓蒙,牛娜,王哲,李泽锐. 基于大数据挖掘技术的实时在线露点研究. 节能. 2024(03): 108-111 .
    3. 王慧贤. 节能减排背景下火电厂SCR烟气脱硝系统设计与应用. 能源与节能. 2024(10): 56-59 .
    4. 徐圆圆,龚德鸿,邓传记,王康,王健超,叶宗权,黄正光,杨浪. SCR反应器入口参数与反应温度对脱硝性能的交互作用. 环境工程学报. 2023(11): 3721-3729 .
    5. 卢杉. 330MW机组脱硝系统运行优化研究. 中国设备工程. 2022(19): 95-97 .
    6. 马子然,周佳丽,马静,赵春林,林德海,李歌,王宝冬. 燃煤电厂脱硝催化剂宽负荷运行的现状与发展. 中国电机工程学报. 2022(23): 8415-8431 .

    Other cited types(1)

  • Created with Highcharts 5.0.7Amount of accessChart context menuAbstract Views, HTML Views, PDF Downloads StatisticsAbstract ViewsHTML ViewsPDF Downloads2024-052024-062024-072024-082024-092024-102024-112024-122025-012025-022025-032025-0405101520
    Created with Highcharts 5.0.7Chart context menuAccess Class DistributionFULLTEXT: 10.3 %FULLTEXT: 10.3 %META: 87.7 %META: 87.7 %PDF: 2.0 %PDF: 2.0 %FULLTEXTMETAPDF
    Created with Highcharts 5.0.7Chart context menuAccess Area Distribution其他: 13.6 %其他: 13.6 %China: 3.0 %China: 3.0 %[]: 0.3 %[]: 0.3 %上海: 0.7 %上海: 0.7 %东莞: 1.0 %东莞: 1.0 %临汾: 0.3 %临汾: 0.3 %乌鲁木齐: 3.6 %乌鲁木齐: 3.6 %保定: 0.3 %保定: 0.3 %兰州: 0.3 %兰州: 0.3 %北京: 4.0 %北京: 4.0 %十堰: 0.3 %十堰: 0.3 %南京: 1.0 %南京: 1.0 %合肥: 0.3 %合肥: 0.3 %天津: 1.0 %天津: 1.0 %常州: 0.3 %常州: 0.3 %常德: 0.3 %常德: 0.3 %庆阳: 1.0 %庆阳: 1.0 %张家口: 1.7 %张家口: 1.7 %成都: 0.7 %成都: 0.7 %昆明: 0.3 %昆明: 0.3 %晋城: 1.0 %晋城: 1.0 %朝阳: 0.7 %朝阳: 0.7 %杭州: 0.7 %杭州: 0.7 %武汉: 0.3 %武汉: 0.3 %江门: 0.7 %江门: 0.7 %沈阳: 0.3 %沈阳: 0.3 %济源: 0.3 %济源: 0.3 %淮南: 0.3 %淮南: 0.3 %深圳: 0.3 %深圳: 0.3 %温州: 1.0 %温州: 1.0 %湖州: 1.0 %湖州: 1.0 %漯河: 1.0 %漯河: 1.0 %烟台: 0.3 %烟台: 0.3 %石家庄: 0.3 %石家庄: 0.3 %石河子: 1.0 %石河子: 1.0 %芒廷维尤: 9.9 %芒廷维尤: 9.9 %芝加哥: 1.7 %芝加哥: 1.7 %苏州: 0.7 %苏州: 0.7 %西宁: 36.1 %西宁: 36.1 %贵阳: 0.3 %贵阳: 0.3 %运城: 2.6 %运城: 2.6 %遵义: 0.3 %遵义: 0.3 %邯郸: 0.3 %邯郸: 0.3 %郑州: 2.0 %郑州: 2.0 %重庆: 0.3 %重庆: 0.3 %金昌: 1.0 %金昌: 1.0 %长春: 0.3 %长春: 0.3 %长沙: 0.3 %长沙: 0.3 %长治: 0.3 %长治: 0.3 %青岛: 0.3 %青岛: 0.3 %其他China[]上海东莞临汾乌鲁木齐保定兰州北京十堰南京合肥天津常州常德庆阳张家口成都昆明晋城朝阳杭州武汉江门沈阳济源淮南深圳温州湖州漯河烟台石家庄石河子芒廷维尤芝加哥苏州西宁贵阳运城遵义邯郸郑州重庆金昌长春长沙长治青岛

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (262) PDF downloads(6) Cited by(7)
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return