Hydraulic Capacity Analysis and Design of Road Culvert Drainage for Spillway Outflow in an Industrial Area in Pekalongan, Central Java, Indonesia
DOI:
https://doi.org/10.70609/g-tech.v10i2.9402Keywords:
Hydraulic capacity, Culvert drainage, Spillway outflow, Industrial drainage, Manning equationAbstract
The development of industrial areas significantly increases surface runoff by expanding impervious surfaces, potentially exceeding the capacity of existing drainage systems and increasing flood risk. In many industrial zones, stormwater management infrastructure must also accommodate additional discharge from retention pond spillways, which can further burden road drainage systems. In the study area, spillway outflow from a retention pond is conveyed into the road drainage network, requiring an adequately designed culvert system to accommodate the flow safely. This study aims to analyze the hydraulic capacity and design an appropriate road culvert drainage system to convey spillway outflow in an industrial area. Secondary data on design flood discharge were obtained from previous studies that conducted rainfall frequency analysis, flood discharge estimation using the Nakayasu Synthetic Unit Hydrograph method, and spillway routing analysis. The results show that the design flood discharge for the 100-year return period (Q100) is 8.68 m³/s. A hydraulic analysis using the Manning equation was performed to determine the culvert dimensions required to convey the design discharge safely. The analysis indicates that the proposed culvert system is hydraulically adequate. A culvert with a diameter of 2.0 m is installed in the upstream section to accommodate concentrated inflow from the spillway outlet. In comparison, two parallel culverts with a diameter of 1.3 m are installed along the middle-to-downstream sections on both sides of the road. This configuration provides a total discharge capacity of 8.752 m³/s, exceeding the design flood discharge. The results demonstrate that the proposed design improves drainage Reliability in industrial areas and contributes to flood mitigation by regulating runoff discharge, thereby reducing potential flood risk in downstream residential areas. These findings provide practical guidance for infrastructure planning and policy strategies to integrate industrial drainage systems with regional flood mitigation efforts.
References
Ahadi, M., Bergstrom, D. J., & Mazurek, K. A. (2020). Computational Fluid-Dynamics Modeling of the Flow and Sediment Transport in Stormwater Retention Ponds: A Review. Journal of Environmental Engineering, 146(9). https://doi.org/10.1061/(asce)ee.1943-7870.0001784
Ansori, M. B., Lasminto, U., & Kartika, A. A. G. (2023). Flood Hydrograph Analysis Using Synthetic Unit Hydrograph, HEC-HMS, and HEC-RAS 2D Unsteady Flow Precipitation On-Grid Model For Disaster Risk Mitigation. International Journal of GEOMATE, 25(107). https://doi.org/10.21660/2023.107.3719
Bathurst, J. C., Li, R. M., & Simons, D. B. (1981). Resistance equation for large-scale roughness. Journal of the Hydraulics Division, ASCE, 107(HY12, Proc. Paper 16743). https://doi.org/10.1061/jyceaj.0005780
Biedenharn, D. S., Elliott, C. M., & Watson, C. C. (1998). WES stream investigation and streambank stabilization handbook. International Water Resources Engineering Conference - Proceedings, 1.
Bonetti, S., Manoli, G., Manes, C., Porporato, A., & Katul, G. G. (2017). Manning’s formula and Strickler’s scaling explained by a co-spectral budget model. Journal of Fluid Mechanics, 812. https://doi.org/10.1017/jfm.2016.863
Brunner, G. W. (2020). HEC-RAS Hydraulic reference manual version 6.0 Beta. US Army Corps of Engineers, Hydrologic Engineering Center.
Castro-Orgaz, O., & Sturm, T. W. (2018). Boris A. Bakhmeteff and the Development of Specific Energy and Momentum Concepts. Journal of Hydraulic Engineering, 144(12). https://doi.org/10.1061/(asce)hy.1943-7900.0001541
Chanson, H. (2004). Environmental Hydraulics for Open Channel Flows. In Environmental Hydraulics for Open Channel Flows. https://doi.org/10.1016/B978-0-7506-6165-2.X5028-0
Cheng, N.-S. (2017). Simple Modification of Manning-Strickler Formula for Large-Scale Roughness. Journal of Hydraulic Engineering, 143(9). https://doi.org/10.1061/(asce)hy.1943-7900.0001345
Chow, V. Te. (1959). Open-Channel Hydraulics. Ven Te Chow. McGraw-Hill, New York, 1959. xviii+ 680 pp. Illus. $17. Science, 131(3408).
Chow, V. Te. (1965). Handbook of applied hydrology. International Association of Scientific Hydrology. Bulletin, 10(1). https://doi.org/10.1080/02626666509493376
Chow, V. Te. (1968). Applied hydrology. Journal of Hydrology, 6(2). https://doi.org/10.1016/0022-1694(68)90169-8
Clark, J., Dunne, T., & Leopold, L. B. (1980). Water in Environmental Planning. The Journal of Wildlife Management, 44(1). https://doi.org/10.2307/3808399
Dingman, S. L. (2023). Introduction to Fluvial Hydraulics. In Fluvial Hydraulics. https://doi.org/10.1093/oso/9780195172867.003.0001
Gribbin, J. (2002). Hydraulics and Hydrology with applications for stormwater management. In Book:
Gribbin, J. E. (2007). Introduction to Hydraulics an Hydrology with Applications for Stormwater Management. In Book:
Haan, C. T., Barfield, B. J., & Hayes, J. C. (1994). Design hydrology and sedimentology for small catchments. Design Hydrology and Sedimentology for Small Catchments. https://doi.org/10.1061/(asce)0733-9429(2000)126:2(171)
Henderson, F. M. (1966). Open Channel Flow (Macmillian).
Hydrology and floodplain analysis. (1990). Choice Reviews Online, 27(05). https://doi.org/10.5860/choice.27-2736
Knighton, D. (2014). Fluvial forms and processes: A new perspective. In Fluvial Forms and Processes: A New Perspective. https://doi.org/10.4324/9780203784662
Kodoatie, R. J., & Sugiyanto. (2010). Banjir Beberapa Penyebab dan Metode Pengendaliannya dalam Perspektif Lingkungan. In Pustaka Bappenas.
Leopold, L. (1968). Hydrology for Urban Land Planning - A Guidebook on the Hydrologic Effects of Urban Land Use. Geological Survey Circular, 554.
Maini, M. (2024a). Estimasi Debit Banjir Rancangan pada Bendungan Bulango Ulu di Provinsi Gorontalo. Jurnal Penelitian Multidisiplin Bangsa, 1(7), 870–880. https://doi.org/10.59837/jpnmb.v1i7.169
Maini, M. (2024b). Pengaruh Transpor Sedimen terhadap Koefisien Kekasaran Manning di Saluran Terbuka [Dissertation, Universitas Gadjah Mada]. https://etd.repository.ugm.ac.id/penelitian/detail/243794
Maini, M., Kironoto, B. A., Istiarto, & Pamudji, A. P. (2024). Evaluating Manning’s Roughness Coefficient for Flows with Equilibrium and Non-equilibrium Sediment Transport. Jordan Journal of Civil Engineering, 18(1), 65–80. https://doi.org/10.14525/JJCE.v18i1.06
Maini, M., Kironoto, B. A., Rahardjo, A. P., & Istiarto. (2024). Effect of equilibrium and non-equilibrium sediment transport flows on the shear velocity in an open channel. IOP Conference Series: Earth and Environmental Science, 1311(1). https://doi.org/10.1088/1755-1315/1311/1/012013
Maini, M., Kironoto, B. A., Rahardjo, A. P., & Istiarto. (2025). Alternative Method for Determining Manning’s Roughness Coefficient Using Two-Point Velocity in Equilibrium and Nonequilibrium Sediment Transport. Civil Engineering Journal, 11(7), 2666–2685. https://doi.org/10.28991/CEJ-2025-011-07-02
Maini, M., & Susanti, J. E. (2019). Kajian Erosi Lahan di Kawasan Air Strip Runway 2600 Bandara Depati Amir (PGK) Berdasarkan Tata Guna Lahan Masterplan Ultimate. FROPIL (Forum Profesional Teknik Sipil), 7(2). https://doi.org/10.33019/fropil.v7i2.1627
Maini, M., & Susanti, J. E. (2025). Study of Spillway Routing in Water Building Construction with Pond Systems to Optimize Flood Control in Industrial Areas. Jurnal Infrastruktur, 11(2), 79–90.
Manning, R. (1891). On the flow of water in open channels and pipes. Trans. Institution Civil Engineering, 20.
Mashuri, Maini, M., & Burhamidar, A. H. (2022). Kajian Hidrograf Banjir Daerah Aliran Sungai Tanjung Parak Pada Pembangunan Embung Pulau Tiga. Jurnal Infrastruktur, 8(1).
McCuen, R. (2004). Hydrologic Analysis and Design. 3rd Edition, Pearson, Upper Saddle River, 888 p. Hydrologic Analysis and Design. 3rd Edition, Pearson, Upper Saddle River, 888 p., 03(10).
Peters, R. W. (2012). Hydrology and floodplain analysis, 5th edition. Environmental Progress & Sustainable Energy, 31(3). https://doi.org/10.1002/ep.11677
Porter, K., Simons, R., & Harris, J. M. (2012). Scour Development in Layered Sediments – A Laboratory Study. Proceedings of the 6th International Conference of Scour and Erosion.
Salmasi, F., & Abraham, J. (2023). Hydraulic characteristics of flow over stepped and chute spillways (case study: Zirdan Dam). Water Supply, 23(2). https://doi.org/10.2166/ws.2023.011
Saputra, C. A., & Maini, M. (2025). Kajian Stabilitas Konstruksi Culvert Bridge dalam Mitigasi Debit Banjir Kala Ulang 50 Tahun di Kawasan Industri Gas Kabupaten Barito Utara. Science Tech: Jurnal Ilmu Pengetahuan Dan Teknologi, 11(1), 77–92. https://doi.org/10.30738/st.vol11.no1.a19190
Simons, D. B., & Sentirk, F. (1976). Sediment transport technology.
Strohmeier, S. M., Nouwakpo, S. K., Huang, C. H., & Klik, A. (2014). Flume experimental evaluation of the effect of rill flow path tortuosity on rill roughness based on the Manning-Strickler equation. Catena, 118. https://doi.org/10.1016/j.catena.2014.01.011
Subramanya, K. (1982). Flow in open channels. Volumes 1 and 2.
Sukerta, I. M., Chen, T. C., Mardizal, J., Salih, S. M., Zulkarnain, I., Islam, M. Z., Majeed, M. S., Mahdi, A. B., Mutlak, D. A., & Aravindhan, S. (2022). Comparison of lateral spillway and morning glory spillway performance in flood control. Journal of Water and Land Development, 53. https://doi.org/10.24425/jwld.2022.140796
US Army Corps of Engineers. (2010). HEC-RAS River Analysis System, User’s Manual. In HEC-RAS River Analysis System, User’s Manual, Version 4.1 (Number January).
USACE. (1995). HEC-1 flood hydrograph package User’s Manual. In Hydrologic Engineering Center (Number June).
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