Citation: | Kong XK, Zhang ZX, Wang P, et al. 2022. Transformation of ammonium nitrogen and response characteristics of nitrifying functional genes in tannery sludge contaminated soil. Journal of Groundwater Science and Engineering, 10(3): 223-232 doi: 10.19637/j.cnki.2305-7068.2022.03.002 |
An LR, Bian WX, Liu BH, et al. 2021. Advances in the effects of environmental stress on ammonia-oxidizing communities. Chinese Journal of Applied and Environmental Biology, 27(3): 8. (in Chinese) doi: 10.19675/j.cnki.1006-687x.2020.03005
|
Araujo ASF, de Melo WJ, Araujo FF, et al. 2020. Long-term effect of composted tannery sludge on soil chemical and biological parameters. Environmental Science and Pollution Research, 27: 41885−41892. doi: 10.1007/s11356-020-10173-9
|
Daims H, Lebedeva E, Pjevac P, et al. 2015. Complete nitrification by nitrospira bacteria. Nature, 528 (7583): 504−509. doi: 10.1038/nature16461
|
Guo SS, Wu H, Tian YQ, et al. 2021. Migration and fate of characteristic pollutants migration from an abandoned tannery in soil and groundwater by experiment and numerical simulation. Chemosphere, 271(8): 129552. doi: 10.1016/j.chemosphere.2021.129552
|
Han KQ, Duan RS, Jia LL, et al. 2014. Analysis on present status of underground water pollution in Shijiazhuang and its prevention measures. Journal of Groundwater Science and Engineering, 2(1): 44−48.
|
He JZ, Shen JP, Zhang LM, et al. 2012. A review of ammonia-oxidizing bacteria and archaea in Chinese soils. Front Microbiology, 3(296): 296. (in Chinese) doi: 10.3389/fmicb.2012.00296
|
Ke XB, Lu W, Conrad R. 2015. High oxygen concentration increases the abundance and activity of bacterial rather than archaeal nitrifiers in rice field soil. Microb Ecology, 70: 961−970. doi: 10.1007/s00248-015-0633-4
|
Kong XK, Huang GX, Han ZT, et al. 2017. Vertical distribution characteristics of pollutants in a typical soil profile in the tannery sludge landfill site. South-to-North Water Transfers and Water Science & Technology, 15(06): 96-100. (in Chinese)
|
Kong XK, Li CH, Wang P, et al. 2019. Soil pollution characteristics and microbial responses in a vertical profile with long-term tannery sludge contamination in Hebei, China. Int. J. Environ. Res. Public Health, 16(4): 563. doi: 10.3390/ijerph16040563
|
Kong XK, Wang YY, Ma LS, et al. 2020. Leaching behaviors of chromium (III) and ammonium-nitrogen from a tannery sludge in North China: Comparison of batch and column investigations. International Journal of Environmental Research and Public Health, 17(16): 6003-6014.
|
Liu G, Wang J. 2013. Long-term low DO enriches and shifts nitrifier community in activated sludge. Environmental Science & Technology, 47(10): 5109−5117. doi: 10.1021/es304647y
|
Liu GH, Chen Y, Fan Q, et al. 2016. Effects of dissolved oxygen concentration on nitrogen removal and nitrifying bacterial community structure in an activated sludge system. Acta Scientiae Circumstantiae, 36(6): 8. (in Chinese) doi: 10.13671/j.hjkxxb.2015.0709
|
M Barajas-Aceves, JD Rios-Berber, JL Oropeza-Mota, et al. 2014. Assessment of tannery waste in semi-arid soils under a simulated rainfall system. Soil and Sediment Contamination: An International Journal, 8(23): 954−964. doi: 10.1080/15320383.2014.896861
|
Ma H, Zhou J, Hua L, et al. 2017. Chromium recovery from tannery sludge by bioleaching and its reuse in tanning process. Journal of Cleaner Production, 142: 2752-2760.
|
Martines AM, Nogueira MA, Santos CA, et al. 2010. Ammonia volatilization in soil treated with tannery sludge. Bioresource Technology, 101(12): 4690−4696. doi: 10.1016/j.biortech.2010.01.104
|
Mohamad JM, Xi L, Przemyslaw K, et al. 2021. Incorporation of the complete ammonia oxidation (comammox) process for modeling nitrification in suspended growth wastewater treatment systems. Journal of Environmental Management, 11(297): 113−223.
|
Nakatani AS, Martines AM, Nogueira MA, et al. 2011. Changes in the genetic structure of bacteria and microbial activity in an agricultural soil amended with tannery sludge. Soil Biology and Biochemistry, 43(1): 106−114. doi: 10.1016/j.soilbio.2010.09.019
|
Pantazopoulou E, Zouboulis A. 2017. Chemical toxicity and ecotoxicity evaluation of tannery sludge stabilized with ladle furnace slag. Environ Manage, 216(15): 257−262. doi: 10.1016/j.jenvman.2017.03.077
|
Pettridge J, Petersen DG, Nuccio E, et al. 2013. Influence of oxic/anoxic fluctuations on ammonia oxidizers and nitrification potential in a wet tropical soil. FEMS Microbiology Ecology, 85(1): 179−194.
|
Ramírez-Díaz MI, Díaz-Pérez C, Vargas E, et al. 2008. Mechanisms of bacterial resistance to chromium compounds. Biometals, 21(3): 321−332. doi: 10.1007/s10534-007-9121-8
|
Rovita D, Killorn R. 2008. Heavy‐Metal Inhibition of Nitrification in Selected Iowa Soils Treated with Stay‐N 2000. Communications in Soil Science and Plant Analysis, 39(7) : 972−982.
|
Sabey BR, Frederick LR. 1959. The formation of nitrate from ammonium mitrogen in soils: III. Influence of temperature and initial population of nitritying organisms on the maximum rate and delay period. Proceedings - Soil Science Society of America, 23: 462−465.
|
Smolders E, Brans K, Coppens F, et al. 2001. Potential nitrification rate as a tool for screening toxicity in metal-contaminated soils. Environmental Toxicology & Chemistry, 20(11): 2469−2474.
|
Wang PC. 2018. The effect of cadmium levels on nitrogen transformation in the soil—plant system and the microbial mechanism exploration. Wuhan: Huazhong Agricultural University. (in Chinese). DOI:CNKI: CDMD:1.1018.206931
|
Wendeborn S. 2020. The chemistry, biology, and modulation of ammonium nitrification in soil. Angewandte Chemie International Edition, 59(6): 2182−2202. doi: 10.1002/anie.201903014
|
Xu JY, Mao YP. 2019. From canonical nitrite oxidizing bacteria to complete ammonia oxidizer: Discovery and advances. Microbiology China(4): 12. (in Chinese) doi: 10.13344/j.microbiol.china.180194
|
Yu H, An YJ, Jin DC, et al. 2021. Effects of chromium pollution on soil bacterial community structure and assembly processes. Environmental Science, 42(03): 1197−1204. (in Chinese) .
|
Yuan QX, Wu YJ, Ai P, et al. 2007. Effects of moisture, temperature and nitrogen supply rate on NO3−-N accumulation in greenhouse soil. Transactions of the Chinese Society of Agricultural Engineering(10): 192−198. (in Chinese)
|
Zeng J, Gou M, Tang Y, et al. 2016. Effective bioleaching of chromium in tannery sludge with an enriched sulfur-oxidizing bacterial community. Bioresource Technology, 218(12): 859−866. doi: 10.1016/j.biortech.2016.07.051
|
Zheng GY, Zhou LX. 2011. Supplementation of inorganic phosphate enhancing the removal efficiency of tannery sludge-borne Cr through bioleaching. Water Research, 45(16): 5295-5301.
|
Zou DA, Chi Y, Dong J, et al. 2013. Supercritical water oxidation of tannery sludge: Stabilization of chromium and destruction of organics. Chemosphere, 93(12): 1413−1418. doi: 10.1016/j.chemosphere.2013.07.009
|
[1] | Xiu-bo Sun, Chang-lai Guo, Jing Zhang, Jia-quan Sun, Jian Cui, Mao-hua Liu, 2023: Spatial-temporal difference between nitrate in groundwater and nitrogen in soil based on geostatistical analysis, Journal of Groundwater Science and Engineering, 11, 37-46. doi: 10.26599/JGSE.2023.9280004 |
[2] | Hui Li, Zhan-tao Han, Qiang Deng, Chun-xiao Ma, Xiang-ke Kong, 2023: Assessing the effectiveness of nanoscale zero-valent iron particles produced by green tea for Cr(VI)-contaminated groundwater remediation, Journal of Groundwater Science and Engineering, 11, 55-67. doi: 10.26599/JGSE.2023.9280006 |
[3] | Yan-hao Wu, Nian-qing Zhou, Zi-jun Wu, Shuai-shuai Lu, Yi Cai, 2022: Carbon, nitrogen and phosphorus coupling relationships and their influencing factors in the critical zone of Dongting Lake wetlands, China, Journal of Groundwater Science and Engineering, 10, 250-266. doi: 10.19637/j.cnki.2305-7068.2022.03.004 |
[4] | Ya-ci Liu, Zhao-ji Zhang, Xin-yi Zhao, Meng-tuo Wen, Sheng-wei Cao, Ya-song Li, 2021: Arsenic contamination caused by roxarsone transformation with spatiotemporal variation of microbial community structure in a column experiment, Journal of Groundwater Science and Engineering, 9, 304-316. doi: 10.19637/j.cnki.2305-7068.2021.04.004 |
[5] | Qiao-ling YUAN, Zhi-ping LI, Lei-cheng LI, Shu-li WANG, Si-yu YAO, 2020: Pharmaceuticals and personal care products transference-transformation in aquifer system, Journal of Groundwater Science and Engineering, 8, 358-365. doi: 10.19637/j.cnki.2305-7068.2020.04.006 |
[6] | ZHOU Nian-qing, LI Tian-shui, ZHAO Shan, ZHAO Shan, XIA Xue-min, 2019: Characteristics of the main inorganic nitrogen accumulation in surface water and groundwater of wetland succession zones, Journal of Groundwater Science and Engineering, 7, 173-181. doi: 10.19637/j.cnki.2305-7068.2019.02.008 |
[7] | ZHAN Jiang, LI Wu-jin, LI Zhi-ping, ZHAO Gui-zhang, 2018: Indoor experiment and numerical simulation study of ammonia-nitrogen migration rules in soil column, Journal of Groundwater Science and Engineering, 6, 205-219. doi: 10.19637/j.cnki.2305-7068.2018.03.006 |
[8] | Pezhman ROUDGARMI, Ebrahim FARAHANI, 2017: Investigation of groundwater quantitative change, Tehran Province, Iran, Journal of Groundwater Science and Engineering, 5, 278-285. |
[9] | Duo LI, Kang CHEN, 2014: Research on Migration Features of Ammonia-Nitrogen in Shallow Groundwater of Coastal Area of Tangshan Fengnan, Journal of Groundwater Science and Engineering, 2, 39-43. |
[10] | ZHANG Zhi-qiang, LI Hong-chao, WANG Yu-qing, ZHANG li-ye, WANG Ying, 2014: Application of Visual MODFLOW to simulation of migration in Cr6+ contaminated site, Journal of Groundwater Science and Engineering, 2, 28-35. |
[11] | Liang ZHU, Wei-dong KANG, Ji-chao SUN, Jing-tao LIU, 2014: Quantitative Calculation of Groundwater Vulnerability Assessment Based on Quantification Theory III, Journal of Groundwater Science and Engineering, 2, 78-85. |
JGSE-ScholarOne Manuscript Launched on June 1, 2024.