海水养殖生境中硫化物污染及控制技术研究进展Research Progress of Sulfide Pollution and Control Technology in Mariculture Habitat
赵阳国,汤海松,周弋铃,高孟春,郭亮,王君鹏
摘要(Abstract):
在近海集约化养殖过程中,水动力条件的改变、大量饵料的投放以及强烈的生物沉降导致底质生境有机污染严重,形成大面积缺氧区。在此环境中,含硫蛋白质降解和硫酸盐异化还原导致硫化物大量产生并扩散,成为海水养殖生态系统中危害程度仅次于氨氮的污染物,应该引起人们的足够重视。本文分析了近海养殖环境中硫化物产生的驱动力、硫化物在沉积物-水界面的扩散、硫化物污染控制技术及其优缺点,指出以铁氧化物为基础的化学控制技术和以硫氧化菌为基础的生物控制技术在硫化物污染控制持久性、可靠性等方面具有明显优势,在实际工程中具有应用潜力。
关键词(KeyWords): 海水养殖;硫酸盐还原;硫化物;扩散;控制
基金项目(Foundation): 国家自然科学基金面上项目(41977315);; 国家重点基础研究发展计划项目(2018YFC1407602)资助~~
作者(Author): 赵阳国,汤海松,周弋铃,高孟春,郭亮,王君鹏
DOI: 10.16441/j.cnki.hdxb.20190400
参考文献(References):
- [1] 中国渔业协会.2018年全国渔业经济统计公报 [R/OL].www.china-cfa.org/xwzx/xydt/2019/0605/141.html,2019-06-05.China Fisheries Association.2018 National Fisheries Economic Statistics Bulletin[R/OL].www.china-cfa.org/xwzx/xydt/2019/0605/141.html,2019-06-05.
- [2] 郑琳,崔文林,刘艳,等.青岛市近岸海域环境状况及变化趋势研究[J].海洋通报,2013,32(4) :446-451.Zheng L,Cui W L,Liu Y,et al.Study of the trend and state of the marine environmental quality in the inshore waters of Qingdao[J].Marine Science Bulletin,2013,32(4) :446-451.
- [3] 陈敏.胶州湾养殖区硫酸盐还原菌的群落结构与功能特征研究[D].青岛:中国海洋大学,2013.Chen M.The Community structure and Functional Characeterisitics of Sulfate-Reducing Bacteria in Jiaozhou Bay[D].Qingdao :Ocean Univeristy of China,2013.
- [4] 王宗兴,孙丕喜,刘彩霞,等.桑沟湾大型底栖动物生物多样性研究[J].中国海洋大学学报(自然科学版),2011,41(7/8) :79-84.Wang Z X,Sun P X,Liu C X,et al.The species diversity of macrobenthic fauna in Sanggou Bay,China[J].Periodical of Ocean University of China,2011,41(7/8):79-84.
- [5] Reese B K,Anderson M A,Amrhein C.Hydrogen sulfide production and volatilization in a polymictic eutrophic saline lake,Salton Sea,California[J].Science of the Total Environment,2008,406(1-2):205-218.
- [6] Asaoka S,Yamamoto T,Yamamoto H,et al.Estimation of hydrogen sulfide removal efficiency with granulated coal ash applied to eutrophic marine sediment using a simplified simulation model[J].Marine Pollution Bulletin,2015,94(1-2):55-61.
- [7] 史洁,魏皓.半封闭高密度筏式养殖海域水动力场的数值模拟[J].中国海洋大学学报(自然科学版),2009,39(6):1181-1187.ShiJ,Wei H.Simulation of hydrodynamic structures in a semi-enclosed bay with dense raft-culture[J].Periodical of Ocean University of China ,2009,39(6):1181-1187.
- [8] Richards C M,Pallud C.Kinetics of sulfate reduction and sulfide precipitation rates in sediments of a bar-built estuary (Pescadero,California)[J].Water Research,2016,94:86-102.
- [9] Vaquer-Sunyer R,Duarte C M.Sulfide exposure accelerates hypoxia-driven mortalit[J].Limnology and Oceanography,2010,55(3):1075-1082.
- [10] Jorgensen B B.Mineralization of organic matter in the sea bed-the role of sulphate reduction[J].Nature,1982,296:643-645.
- [11] Barts N,Greenway R,Passow CN,et al.Molecular evolution and expression of oxygen transport genes in livebearing fishes (Poeciliidae) from hydrogen sulfide rich springs[J].Genome,2018,61(4):273-286.
- [12] 牛俊翔,蒋玫,李磊,等.滩涂贝类养殖区底质硫化物的去除及修复[J].农业环境科学学报,2013,32(7):1467-1472.Niu J X,Jiang M,Li L,et al.Study on restoration of sulfide in sediment environment of shellfish mudflat culture areas[J].Journal of Agro-environment Science,2013,32(7):1467-1472.
- [13] Yokoyama H.Environmental quality criteria for fish farms in Japan[J].Aquaculture,2003,226:1-4.
- [14] Kiemer M C B,Black K D,Lussot D,et al.The effects of chronic and acute exposure to hydrogen sulphide on Atlantic salmon (Salmo salar L.)[J].Aquaculture,1995,135(4):322-327.
- [15] Suo Y,Li E,Li T,et al.Response of gut health and microbiota to sulfide exposure in Pacific white shrimp Litopenaeus vannamei[J].Fish and Shellfish Immunology,2017,63:87-96.
- [16] Gao X,Li P,Chen C-T A.Assessment of sediment quality in two important areas of mariculture in the Bohai Sea and the northern Yellow Sea based on acid-volatile sulfide and simultaneously extracted metal results[J].Marine Pollution Bulletin,2013,72(1):281-288.
- [17] Ramm A E,Bella D A.Sulfide production in anaerobic microcosms[J].Limnology and Oceanography,1974,19(1):110-118.
- [18] Zheng D,Chang Q,Li Z,et al.Performance and microbial community of a sequencing batch biofilm reactor treating synthetic mariculture wastewater under long-term exposure to norfloxacin[J].Bioresource Technology,2016,222:139-147.
- [19] Luther G W.Pyrite synthesis via polysulfide compounds[J].Geochimica et Cosmochimica Acta,1991,55(10):2839-2849.
- [20] Brüchert V,Bo B J,Neumann K,et al.Regulation of bacterial sulfate reduction and hydrogen sulfide fluxes in the central Namibian coastal upwelling zone[J].Geochimica et Cosmochimica Acta,2003,67(23):4505-4518.
- [21] 王迪红.水产养殖微孔管道曝气增氧技术[J].渔业致富指南,2011,12:36-37.Wang D H.Aeration and oxygenation technology of aquaculture microporous pipe[J].Fishery Guide to Be Rich,2011,12:36-37.
- [22] Asaoka S,Yamamoto T,Kondo S,et al.Removal of hydrogen sulfide using crushed oyster shell from pore water to remediate organically enriched coastal marine sediments[J].Bioresource Technology,2009,100(18):4127-4132.
- [23] Asaoka S,Yamamoto T,Yoshioka I,et al.Remediation of coastal marine sediments using granulated coal ash[J].Journal of Hazardous Materials,2009,172(1):92-98.
- [24] 宋志文,王玮,赵丙辰,等.海水养殖废水的生物处理技术研究进展[J].青岛理工大学学报,2006,27(1):13-17.Song Z W,Wang W,Zhao B C,et al.Development of marine aquaculture wastewater bio-treatment technology[J].Journal of Qingdao University of Technology,2006,27(1):13-17.
- [25] Nielsen A H,Hvitved-Jacobsen T,Vollertsen J.Kinetics and stoichiometry of sulfide oxidation by sewer biofilms[J].Water Research,2005,39(17):4119-4125.
- [26] Yang W,Vollertsen J,Hvitved-Jacobsen T.Anoxic sulfide oxidation in wastewater of sewer networks[J].Water Science and Technology,2005,52(3):191-199.
- [27] Tomar M,Abdullah T H A.Evaluation of chemicals to control the generation of malodorous hydrogen sulfide in waste water[J].Water Research,1994,28(12):2545-2552.
- [28] Poulton S W,Krom M D,Rijn J V,et al.The use of hydrous iron (III) oxides for the removal of hydrogen sulphide in aqueous systems[J].Water Research,2002,36(4):825-834.
- [29] Sun J L,Shang C,Kikkert G A.Hydrogen sulfide removal from sediment and water in box culverts/storm drains by iron-based granules[J].Water Science and Technology,2013,68(12):2626-2631.
- [30] Yin R,Fan C,Sun J,et al.Oxidation of iron sulfide and surface-bound iron to regenerate granular ferric hydroxide for in-situ hydrogen sulfide control by persulfate,chlorine and peroxide[J].Chemical Engineering Journal,2018,336:587-594.
- [31] Kim K,Hibino T,Yamamoto T,et al.Field experiments on remediation of coastal sediments using granulated coal ash[J].Marine Pollution Bulletin,2014,83(1):132-137.
- [32] Nakamoto K,Hibino T,Hino K,et al.Granulated coal ash – used method for remediation of organic matter enriched coastal sediments[J].Procedia Engineering,2015,116:326-333.
- [33] 苗宗成,王蕾,王登武,等.高铁酸钾对水产养殖废水净化作用的研究[J].湖北农业科学,2013,52(7):1518-1521.Miao Z C,Wang L Wang D W,et al.The purification effect of potassium ferrate to aquaculture wastewater[J].Hubei Agricultural Sciences,2013,52(7):1518-1521.
- [34] Zhang L,Schryver P D,Gusseme B D,et al.Chemical and biological technologies for hydrogen sulfide emission control in sewer systems:A review[J].Water Research,2008,42(1):1-12.
- [35] Sun J,Zhou J,Shang C,et al.Removal of aqueous hydrogen sulfide by granular ferric hydroxide—Kinetics,capacity and reuse[J].Chemosphere,2014,117(1):324-329.
- [36] Mulligan C N,Yong R N,Gibbs B F.An evaluation of technologies for the heavy metal remediation of dredged sediments[J].Journal of Hazardous Materials,2001,85(1):145-163.
- [37] Asaoka S,Hayakawa S,Kim K H,et al.Combined adsorption and oxidation mechanisms of hydrogen sulfide on granulated coal ash[J].Journal of Colloid and Interface Science,2012,377(1):284-290.
- [38] Asaoka S,Okamura H,Akita Y,et al.Regeneration of manganese oxide as adsorption sites for hydrogen sulfide on granulated coal ash[J].Chemical Engineering Journal,2014,254(20):531-537.
- [39] Yamamoto T,Kim K H,Shirono K.A pilot study on remediation of sediments enriched by oyster farming wastes using granulated coal ash[J].Marine Pollution Bulletin,2015,90(1):54-59.
- [40] 张晶,杨玉飞,杨金忠,等.造粒飞灰沥青混凝土路面利用的地下水环境风险评估[J].环境污染与防治,2019,41(1):89-94.Zhang J,Yang Y F,Yang J Z,et al.Environmental risk assessment of groundwater of granulated fly ash utilization on asphalt pavement[J].Environmantal Pollution and Control,2019,41(1):89-94.
- [41] Calvert S E,Pedersen T F,Parkes R J,et al.Geochemistry of Recent oxic and anoxic marine sediments:implications for the geological record[J].Marine Geology,1993,113(1-2):67-88.
- [42] Vandenbroucke T R A,Emsbo P,Munnecke A,et al.Metal-induced malformations in early Palaeozoic plankton are harbingers of mass extinction[J].Nature Communications,2015,6:7966.
- [43] Middelburg J J,Levin L A.Coastal hypoxia and sediment biogeochemistry[J].Biogeosciences,2009,6(7):1273-1293.
- [44] Krishnani K K,Kathiravan V,Natarajan M,et al.Diversity of sulfur-oxidizing bacteria in greenwater system of coastal aquaculture[J].Applied Biochemistry and Biotechnology,2010,162(5):1225-1237.
- [45] Petersen J K,Saurel C,Nielsen P,et al.The use of shellfish for eutrophication control[J].Aquaculture International,2016,24(3):857-878.
- [46] Comeau L A,Mallet A L,Carver C E,et al.Impact of high-density suspended oyster culture on benthic sediment characteristics[J].Aquacultural Engineering,2014,58(1):95-102.
- [47] Simpson A G,Tripp L,Shull D H,et al.Effects of Zostera marina rhizosphere and leaf detritus on the concentration and distribution of pore-water sulfide in marine sediments[J].Estuarine,Coastal and Shelf Science,2018,209:160-168.
- [48] Marinho-Soriano E,Azevedo C A A,Trigueiro T G,et al.Bioremediation of aquaculture wastewater using macroalgae and Artemia[J].International Biodeterioration & Biodegradation,2011,65(1):253-257.
- [49] Xiao X,Agusti S,Lin F,et al.Nutrient removal from Chinese coastal waters by large-scale seaweed aquaculture[J].Scientific Reports,2017,7:46613.
- [50] Cytryn E,Minz D,Gelfand I,et al.Sulfide-oxidizing activity and bacterial community structure in a fluidized bed reactor from a zero-discharge mariculture system[J].Environmental Science and Technology,2005,39(6):1802-1810.
- [51] Mustafa Y,Stefan S,W D A Olaf P.Microbial sulfide filter along a benthic redox gradient in the Eastern Gotland Basin,Baltic Sea[J].Frontiers in Microbiology,2017,8:110-119.
- [52] Rios-Del Toro E E,Cervantes F J.Coupling between anammox and autotrophic denitrification for simultaneous removal of ammonium and sulfide by enriched marine sediments[J].Biodegradation,2016,27(2-3):107-118.
- [53] 郑宇,赵阳国,冯巩,等.包埋法固定化对硫氧化微生物菌群结构和功能的影响[J].微生物学报,2016,56(9):1504-1512.Zheng Y,Wang X Q,Zhao Y G,et al.Effects of immobilization on community structure and function of sulfide oxidizing microbiota[J].Acta Microbiologica Sinica,2016,56(9):1504-1512.
- [54] Zhao Y G,Zheng Y,Tian W,et al.Enrichment and immobilization of sulfide removal microbiota applied for environmental biological remediation of aquaculture area[J].Environmental Pollution,2016,214:307-313.
- [55] 杨萌,赵阳国,王晓琼,等.固定化硫氧化菌对海水养殖生境中硫化物的控制效果研究[J].海洋环境科学,2020,39(1):66-74.Yang M,Zhao Y G,Wang X Q,et al.Control of sulfide in aquaculture water by immobilized sulfur oxidizing bacteria[J].Marine Environmental Science ,2020,39(1):66-74.
文章评论(Comment):
|
||||||||||||||||||
|
||||||||||||||||||