References
- M. Webber, B. Crow-Miller, S. Rogers, The South-North water
transfer project: remaking the geography of China, Reg. Stud.,
51 (2017) 370–382.
- S.M. Moore, Modernisation, authoritarianism, and the
environment: the politics of China’s South-North water transfer
project, Environ. Politics, 23 (2014) 947–964.
- M.O. Ribaudo, R. Heimlich, R. Claassen, M. Peters, Least-cost
management of nonpoint source pollution: source reduction
vs. interception strategies for controlling nitrogen loss in the
Mississippi Basin, Ecol. Econ., 37 (2001) 183–197.
- F. Destandau, G. Imfeld, A. Rozan, Regulation of diffuse
pesticide pollution: combining point source reduction and
mitigation in stormwater wetland (Rouffach, France), Ecol.
Eng., 60 (2013) 299–308.
- C. Buckley, P. Carney, The potential to reduce the risk of
diffuse pollution from agriculture while improving economic
performance at farm level, Environ. Sci. Policy, 25 (2013)
118–126.
- M. Hao, C. Gao, D. Sheng, D. Qing, Review of the influence
of low-impact development practices on mitigation of flood
and pollutants in urban areas, Desal. Water Treat., 149 (2019)
323–328.
- K.E. Gustavson, G.A. Burton, N.J. Francingues, D.D. Reible,
D.J. Vorhees, J.R. Wolfe, Evaluating the effectiveness of
contaminated-sediment dredging, Environ. Sci. Technol.,
42 (2008) 5042–5047.
- J. Zhong, C. Fan, L. Zhang, H. Edward, S. Ding, B. Li, G. Liu,
Significance of dredging on sediment denitrification in Meiliang
Bay, China: a year long simulation study, J. Environ. Sci.,
22 (2010) 68–75.
- L.D. Jing, C.X. Wu, J.T. Liu, H.G. Wang, H.Y. Ao, The effects
of dredging on nitrogen balance in sediment-water microcosms
and implications to dredging projects, Ecol. Eng., 52 (2013)
167–174.
- J. Zhao, Y. Zhao, X. Zhao, C. Jiang, Agricultural runoff pollution
control by a grassed swales coupled with wetland detention
ponds system: a case study in Taihu Basin, China, Environ. Sci.
Pollut. Res., 23 (2016) 9093–9104.
- L.H.C. Chua, S.B.K. Tan, C.H. Sim, M.K. Goyal, Treatment
of baseflow from an urban catchment by a floating wetland
system, Ecol. Eng., 49 (2012) 170–180.
- W. Hu, S. Zhai, Z. Zhu, H. Han, Impacts of the Yangtze River
water transfer on the restoration of Lake Taihu, Ecol. Eng.,
34 (2008) 30–49.
- Z. Shang, Y. Zhang, J. Dai, Y. Li, T. Wei, Study on water
environment improvement scheme by water transfer in
Kunshan city and its surrounding areas, Water Resour. Prot.,
33 (2017) 125–131 (in Chinese).
- Y. Li, C. Tang, C. Wang, W. Tian, B. Pan, L. Hua, J. Lau,
Z. Yu, K. Acharya, Assessing and modeling impacts of different
inter-basin water transfer routes on Lake Taihu and the Yangtze
River, China, Ecol. Eng., 60 (2013) 399–413.
- G. Cui, X. Chen, L. Xiang, Q. Zhang, Q. Xu, Evaluation of water
environment improvement by interconnected river network in
plain area, J. Hydraul. Eng., 48 (2017) 1429–1437 (in Chinese).
- W. Song, Y. Pang, Joint effect of pollution source interception
and ecological water replenishment in Qinhuai River Basin,
J. Hydroelectric Eng., 37 (2018) 31–39 (in Chinese).
- L. Hu, W. Hu, S. Zhai, H. Wu, Effects on water quality following
water transfer in Lake Taihu, China, Ecol. Eng., 36 (2010)
471–481.
- R. Fornarelli, J.P. Antenucci, The impact of transfers on water
quality and the disturbance regime in a reservoir, Water Res., 45
(2011) 5873–5885.
- X. Ma, L. Wang, H. Wu, N. Li, L. Ma, C. Zeng, Y. Zhou, J. Yang,
Impact of Yangtze River water transfer on the water quality of
the Lixia River watershed, China, PLoS One, 10 (2015) e119720.
- State Environmental Protection Administration of China,
Monitoring and Analysis Method of Water and Waste Water
(Fourth Edition), China Environmental Science Press, 2002 (in
Chinese).
- Y. Hou, Y. Qu, Z. Zou, Study on determination of chemical
oxygen demand by rapid digestion spectrophotometry,
Environ. Sci. Technol. China, 23 (2010) 58–60 (in Chinese).
- W. Xie, Y. An, G. Gao, Rapid digestion and spectrophotometry
to determine COD in municipal sewage, Environ. Prot. Technol.,
16 (2010) 34–36 (in Chinese).
- Y. Huang, S. Zhang, Analysis of influencing factors of ammonia
nitrogen determination in water by Nessler’s reagent, Sichuan
Environ., 35 (2016) 23–27 (in Chinese).
- Y. Feng, H. Qiu, Z. Sun, Research progress in determination
of ammonia nitrogen in water by Nessler’s reagent
spectrophotometry, Environ. Sci. Technol. China, 39 (2016) 348–
352 (in Chinese).
- Q.M. Zhao, Analysis on experiment of determining precision bias
of total P in molybdenum-antimony anti-spectrophotometric
method, Yunnan Environ. Sci., 23 (2004) 223–226 (in Chinese).
- P. Dong, J. Jiao, X. Zhang, The measurement of total phosphorus
in dewatered sludge with the method of molybdenum-antimony
resolved by Otassium-persulfade and anti-spectrophotometry,
J. Shandong Univ. Sci. Technol., 29 (2010) 67–71 (in Chinese).
- X. Ji, R.A. Dahlgren, M. Zhang, Comparison of seven water
quality assessment methods for the characterization and
management of highly impaired river systems, Environ. Monit.
Assess., 188 (2016) 15.
- Z. Xu, Single factor water quality identification index for
environmental quality assessment of surface water, J. Tongji
Univ. (Natural Sci.), 33 (2005) 482–488 (in Chinese).