Evaluation of the Structure of Urban Stormwater Pipe Network Using Drainage Density
<p>Annual rainfall during the rainy season (June–October) and moving average of meteorological stations in Seoul (<b>a</b>) and Busan (<b>b</b>).</p> "> Figure 2
<p>Study catchments and respective stormwater pipe networks.</p> "> Figure 2 Cont.
<p>Study catchments and respective stormwater pipe networks.</p> "> Figure 3
<p>Regression analysis between peak rainfall and runoff in urban catchments.</p> "> Figure 3 Cont.
<p>Regression analysis between peak rainfall and runoff in urban catchments.</p> "> Figure 4
<p>Changes of 95% confidence interval depending on drainage density.</p> ">
Abstract
:1. Introduction
2. Data Collection
2.1. Weather Data
2.2. Urban Catchments
3. Methods
3.1. EPA-SWMM
3.2. Simple Linear Regression Analysis
3.3. Drainage Density
4. Analysis and Results
4.1. Peak Runoff and Peak Rainfall
4.2. Drainage Density Analysis
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
- Park, C.; Moon, J.Y.; Cha, E.J.; Yun, W.T.; Choi, Y. Recent changes in summer precipitation characteristics over South Korea. J. Korean Geog. Soc. 2008, 43, 324–336. [Google Scholar]
- National Disaster management portal, Disaster Year Book. 2010. Available online: http://www.safekorea.go.kr (accessed on 30 July 2017).
- KMA (Korea Meteorological Administration), Meteorological Technology & Policy Publications. 2009. Available online: http://www.kma.go.kr (accessed on 15 July 2017).
- Kim, B.S.; Kim, B.K.; Kwon, H.H. Evaluation of the uncertainties in rainfall-runoff model using Meta-Gaussian approach. J. Korean Wetlands Soc. 2009, 11, 49–64. [Google Scholar]
- Shim, U.B. Characteristics of the flood damage in Korea and the corresponding task. J. Korea Water Resour. Assoc. 2008, 41, 41–46. [Google Scholar]
- Chung, G.H.; Sim, K.B.; Kim, E.S. Uncertainty Quantification Index of SWMM Model Parameters. J. Korea Water Resour. Assoc. 2015, 48, 105–114. [Google Scholar] [CrossRef] [Green Version]
- Enrique, M.; Pedro, T.; Gabriel, O. Uncertainty in rainfall input data in a conceptual water balance model: effects on outputs and implications for predictability. Earth Sci. Res. J. 2014, 18, 69–75. [Google Scholar] [CrossRef]
- Li, M.; Yang, X.; Sun, B.; Chen, L.; Shen, Z. Parameter uncertainty analysis of SWMM based on the method of GLUE. In Proceedings of the 2016 7th International Conference on Biology, Environment and Chemistry, San Francisco, CA, USA, 26–28 October 2016. [Google Scholar]
- Nasrin, T.; Sharma, A.K.; Muttil, N. Impact of short duration intense rainfall events on sanitary sewer network performance. Water 2017, 9, 225. [Google Scholar] [CrossRef]
- Cimorelli, L.; Cozzolino, L.; Covelli, C.; Mucherino, C.; Palumbo, A.; Pianese, D. Optimal design of rural drainage networks. J. Irrig. Drain. Eng. 2013, 139, 137–144. [Google Scholar] [CrossRef]
- Cimorelli, L.; Morlando, F.; Cozzolino, L.; Covelli, C.; Della Morte, R.; Pianese, D. Optimal positioning and sizing of detention tanks within urban drainage networks. J. Irrig. Drain. Eng. 2016, 142, 04015028. [Google Scholar] [CrossRef]
- Morlando, F.; Cimorelli, L.; Cozzolino, L.; Mancini, G.; Pianese, D.; Garofalo, F. Shot noise modeling of dailystreamflows: A hybrid spectral- andtime-domain calibration approach. Water Resour. Res. 2016, 52, 4730–4744. [Google Scholar] [CrossRef]
- Choi, K.S.; Kyoung, M.S.; Kim, H.S.; Kim, B.S. Evaluation of effects of rainfall errors on Discharge. In Proceedings of the 33rd Annual Meeting of the Korean Society of Civil Engineers CIVIL EXPO, Daegu, Republic of Korea, 10–12 October 2007; pp. 1958–1961. [Google Scholar]
- Lee, H.; Jeon, M.W.; Balin, D.; Rode, M. Application of rainfall runoff model with rainfall uncertainty. J. Korea Water Resour. Assoc. 2009, 42, 773–783. [Google Scholar] [CrossRef]
- Hilary, M.; Bethanna, J.; Martyn, C.; Dmitri, K.; Ross, W. Rainfall uncertainty in hydrological modelling: An evaluation of multiplicative error models. J. Hydrol. 2011, 400, 83–94. [Google Scholar] [CrossRef]
- Kang, N.; Joo, H.; Lee, M.; Kim, H.S. Generation of radar rainfall ensemble using probabilistic approach. J. Korea Water Resour. Assoc. 2017, 50, 155–167. [Google Scholar] [CrossRef]
- Carlston, C.W. Drainage Density and Streamflow; US Govt. Print. Off.: Washington, DC, USA, 1963; 422-C, 1–8.
- Ogden, F.L.; Pradhan, N.R.; Downer, C.W.; Zahner, J.A. Relative importance of impervious area, drainage density, width function, and subsurface storm drainage on flood runoff from an urbanized catchment. Water Resour. Res. 2011, 47, W12503. [Google Scholar] [CrossRef]
- WAMIS. Available online: http://www.wamis.go.kr (accessed on 30 July 2017).
- Park, J.; Lee, S.; Lee, B. Development of Storm Sewer-Network Extraction Tool (SS-NET) for creating pipe network input data of urban rainfall-runoff model. J. Korean Soc. Hazard Mitig. 2017, 17, 79–86. [Google Scholar] [CrossRef]
- Jang, H.C. Basic and Detailed Design for Improvement of Rainwater Pump Station Facilities (Expansion 1 Area) Gasan 1 Rainwater Pump Station Report; River management section: Seoul, Republic of Korea, 2009.
- Jang, H.C. Basic and Detailed Design for Improvement of Rainwater Pump Station Facilities (Extension 3 Area) Daerim 3 Rainwater Pump Station Report; River management section: Seoul, Republic of Korea, 2009.
- Jang, H.C. Basic and Detailed Design for Improvement of Rainwater Pump Station Facilities (Expansion 3 Area) Gaebong 1 Rainwater Pump Station Report; River management section: Seoul, Republic of Korea, 2009.
- Shon, T.S.; Kang, D.H.; Jang, J.K.; Shin, H.S. A study of Assessment for Internal Inundation Vulnerability in Urban Area using SWMM. J. Korean Soc. Hazard Mitig. 2010, 10, 105–117. [Google Scholar]
- Hong, J.B. Assessment of Food Flow Conveyance for Urban Stream Using XP-SWMM. Master’s Thesis, Inha University, Incheon, Republic of Korea, 2005. [Google Scholar]
- Kang, S.H.; Heo, W.M.; Kang, S.H. Water balance estimate of LID technique for circulating urban design. J. Environ. Sci. Int. 2015, 24, 1065–1073. [Google Scholar] [CrossRef]
- KMA, Meteorological Data Link Portal. Available online: https://data.kma.go.kr/cmmn/main.do (accessed on 30 July 2017).
- Lee, J. Estimation of InterEvent Time Definition using in urban areas. J. Korean Soc. Hazard Mitig. 2017, 17, 287–294. [Google Scholar] [CrossRef]
District | Total Amount of Flooding Damage ($) | Number of Flooding Years |
---|---|---|
Yeongdeungpo-gu (Seoul) | 900,000 | 4 |
Guro-gu (Seoul) | 870,000 | 6 |
Geumcheon-gu (Seoul) | 900,000 | 4 |
Yeonje-gu (Busan) | 3,580,000 | 5 |
Catchment | No. of Subcatchments | No. of Nodes | No. of Links | Area (km2) | Total Pipe Length (km) |
---|---|---|---|---|---|
A | 32 | 35 | 35 | 0.48 | 5.22 |
B | 1643 | 1881 | 2053 | 2.48 | 59.98 |
C | 620 | 620 | 632 | 8.92 | 37.59 |
D | 196 | 196 | 236 | 57.24 | 29.13 |
E | 451 | 512 | 526 | 3.56 | 20.12 |
Catchment | Regression Equation | Average Width of 95% Confidence Interval (m/s) | |
---|---|---|---|
A | = 0.1182x – 0.2834 | 0.9787 | 0.6 |
B | = 0.6554x – 0.9070 | 0.9969 | 0.3 |
C | = 1.4049x – 3.0924 | 0.9522 | 2.6 |
D | = 9.7278x – 34.355 | 0.9079 | 20.8 |
E | = 1.0245x – 2.2035 | 0.9610 | 1.6 |
Watersheds | Drainage Density (km/km2) | Average Width of 95% Confidence Interval (m/s) | Coefficient of Variation |
---|---|---|---|
A | 10.77 | 0.6 | 77.8 |
B | 24.13 | 0.3 | 72.7 |
C | 4.21 | 2.6 | 80.0 |
D | 0.51 | 20.8 | 85.6 |
E | 5.65 | 1.6 | 77.4 |
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Lee, J.; Chung, G.; Park, H.; Park, I. Evaluation of the Structure of Urban Stormwater Pipe Network Using Drainage Density. Water 2018, 10, 1444. https://doi.org/10.3390/w10101444
Lee J, Chung G, Park H, Park I. Evaluation of the Structure of Urban Stormwater Pipe Network Using Drainage Density. Water. 2018; 10(10):1444. https://doi.org/10.3390/w10101444
Chicago/Turabian StyleLee, Jinwoo, Gunhui Chung, Heeseong Park, and Innjoon Park. 2018. "Evaluation of the Structure of Urban Stormwater Pipe Network Using Drainage Density" Water 10, no. 10: 1444. https://doi.org/10.3390/w10101444
APA StyleLee, J., Chung, G., Park, H., & Park, I. (2018). Evaluation of the Structure of Urban Stormwater Pipe Network Using Drainage Density. Water, 10(10), 1444. https://doi.org/10.3390/w10101444