期刊文献+

Surface clogging process modeling of suspended solids during urban stormwater aquifer recharge 被引量:2

Surface clogging process modeling of suspended solids during urban stormwater aquifer recharge
原文传递
导出
摘要 Aquifer recharge, which uses urban stormwater, is an effective technique to control the negative effects of groundwater overexploitation, while clogging problems in infiltration systems remain the key restricting factor in broadening its practice. Quantitative understanding of the clogging process is still very poor. A laboratory study was conducted to understand surface physical clogging processes, with the primary aim of developing a model for predicting suspended solid clogging processes before aquifer recharge projects start. The experiments investigated the clogging characteristics of different suspended solid sizes in recharge water by using a series of one-dimensional fine quartz sand columns. The results showed that the smaller the suspended particles in recharge water, the farther the distance of movement and the larger the scope of clogging in porous media. Clogging extents in fine sand were 1 cm, for suspended particle size ranging from 0.075 to 0.0385 mm, and 2 cm, for particles less than 0.0385 mm. In addition, clogging development occurred more rapidly for smaller suspended solid particles. It took 48, 42, and 36 hr respectively, for large-, medium-, and small-sized particles to reach pre-determined clogging standards. An empirical formula and iteration model for the surface clogging evolution process were derived. The verification results obtained from stormwater recharge into fine sand demonstrated that the model could reflect the real laws of the surface clogging process. Aquifer recharge, which uses urban stormwater, is an effective technique to control the negative effects of groundwater overexploitation, while clogging problems in infiltration systems remain the key restricting factor in broadening its practice. Quantitative understanding of the clogging process is still very poor. A laboratory study was conducted to understand surface physical clogging processes, with the primary aim of developing a model for predicting suspended solid clogging processes before aquifer recharge projects start. The experiments investigated the clogging characteristics of different suspended solid sizes in recharge water by using a series of one-dimensional fine quartz sand columns. The results showed that the smaller the suspended particles in recharge water, the farther the distance of movement and the larger the scope of clogging in porous media. Clogging extents in fine sand were 1 cm, for suspended particle size ranging from 0.075 to 0.0385 mm, and 2 cm, for particles less than 0.0385 mm. In addition, clogging development occurred more rapidly for smaller suspended solid particles. It took 48, 42, and 36 hr respectively, for large-, medium-, and small-sized particles to reach pre-determined clogging standards. An empirical formula and iteration model for the surface clogging evolution process were derived. The verification results obtained from stormwater recharge into fine sand demonstrated that the model could reflect the real laws of the surface clogging process.
出处 《Journal of Environmental Sciences》 SCIE EI CAS CSCD 2012年第8期1418-1424,共7页 环境科学学报(英文版)
基金 supported by the National Natural Science Foundation of China (No. 40902068,41002077) the Science Frontiers and Innovation of Interdisciplinary of Jilin University,China (No. 201103112)
关键词 STORMWATER aquifer recharge suspended solids CLOGGING stormwater aquifer recharge suspended solids clogging
  • 相关文献

参考文献26

  • 1Alfredo P P, 2000. Integrated modelling of clogging processes in artificial groundwater recharge. Ph.D Thesis, Technical University of Catalonia, Spain.
  • 2Bloetscher F, Meeroff D E, Heimlich B N, Randolph B A, Bayler D, Loucraft M, 2010. Improving resilience against the ef- fects of climate change. American Water Works Association, 102(11): 36-46.
  • 3Bouwer H, 2002. Artificial recharge of groundwater: hydro- geology and engineering. Hydrogeology Journal, 10(1): 121-142.
  • 4Caselles O A, Puigagut J, Sege E, Vaelloa N, Granes F, Garcfa D et al., 2007. Solids accumulation in six full-scale subsurface flow constructed wetlands. Water Research, 41(6): 1388- 1398.
  • 5Clark S E, Pitt R, 2009. Solids removal in stormwater filters modeled using a power equation. Journal of Environmental Engineering, 135(9): 896-899.
  • 6Datry T, Malard F, Vitry L, Hervant F, Gibert J, 2003. Solute dynamics in the bed sediments of a stormwater infiltration basin. Journal of Hydrology, 273(1-4): 217-233.
  • 7Deo O, Sumanasooriya M, Neithalath M, 2010. Permeability re- duction in pervious concretes due to clogging: experiments and modeling. Journal of Materials in Civil Engineering, 22(7): 741-751.
  • 8Dillon P J, 2002. Banking of stormwater, reclaimed water and potable water in aquifers. In: Proceedings of the Internation- al Groundwater Conference on Sustainable Development and Management of Groundwater Resources in Semi-arid Region with Special Reference to Hard Rocks. Dindigul, India. 20-22 February. 71-80.
  • 9Dillon P J, Hickinbotbam M R, Pavelic P, 1994. Review of international experience in injecting water into aquifers for storage and reuse. National Conference Publication Institution of Engineers, NSW, Australia. 13-19.
  • 10Dillon P J, Pavelic P, 1996. Guidelines on the quality of stormwa- ter and treated wastewater for injection into aquifers for storage and reuse. In: Research Report No. WSAAI09, Urban Water Research Association of Austrilia, SA.

同被引文献22

  • 1Tufenkji N, Ryan J N, Elimeleeh M. Peer reviewed: The promise of bank filtration[J]. Environmental Science b. Technology, 2002, 36(21) : 422A-428A.
  • 2Grtinheid S, Amy G, Jekel M. Removal of bulk dissolved organic carbon (DOC) and trace organic compounds by bank filtration and artificial Recharge [J]. Water Research, 2005, 39(14): 3219- 3228.
  • 3Hart B E, Fletcher T D, Deletic A. Hydraulic and pollutant re- moval performance of fine media stormwater filtration systems[J]. Environmental Science ~ Technology, 2008, 42(7): 2535-2541.
  • 4Kandra H S, Mccarthy D, Fletcher T D, et al. Assessment of clogging phenomena in granular filter media used for stormwater treatment[J]. Journal of Hydrology, 2014, 512(1): 518-527.
  • 5Siriwardene N R, Deletic A, Fletcher T D. Clogging of stormwater gravel infiltration systems and filters: Insights from a laboratory study[J].Water Research, 2007, 41(7): 1433-1440.
  • 6Dash R R, Prakash E B, Kumar P, et al. River bank filtration in Haridwar, India: removal of turbidity, organics and bacteria[J]. Hydrogeology Journal, 2010, 18(4): 973-983.
  • 7Hatt B E, Fletcher T D, Deletic A. Treatment performance of gravel filter media: Implications [or design and application of stormwater infiltration systems[J].Water Research, 2007, 41 (12) : 2513-2524.
  • 8刘宁.中国水文水资源常态与应急统合管理探析[J].水科学进展,2013,24(2):280-286. 被引量:31
  • 9单蓓蓓,郑西来,乔振基,兰旭世.人工回灌过程中含水介质物理堵塞的试验研究[J].中国海洋大学学报(自然科学版),2013,43(10):97-101. 被引量:12
  • 10夏璐,郑西来,段玉环,彭涛.砂柱微生物堵塞过程及机理分析[J].水利学报,2014,45(6):749-755. 被引量:16

引证文献2

二级引证文献1

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部