Scenario-Based Design-Storm Runoff Attenuation by Infiltration Wells in the Tanralili Sub-Watershed

https://doi.org/10.59810/greenplexresearch.v4i1.287

Authors

  • Ilham Amring Universitas Muhammadiyah Makassar
  • Farida Gaffar Universitas Muhammadiyah Makassar
  • Amrullah Mansida

Keywords:

infiltration well, surface runoff, design rainfall, Rational method, tropical watershed

Abstract

This study evaluates design-storm surface runoff and an infiltration-well scenario for the Tanralili Sub-Watershed, South Sulawesi, Indonesia. Annual rainfall records for 1997–2018 from Tanralili, Tompobulu, and Batubassi stations were used to derive regional rainfall, design rainfall with Gumbel and Log-Pearson type III distributions, and short-duration intensity using the Mononobe equation. Peak runoff was estimated with the Rational method for eight land-cover classes. The no-well scenario used an 85.35% runoff factor and the infiltration-well scenario used 27.63%; these factors were treated as scenario assumptions rather than measured field efficiencies. Summed Rational-method discharge increased from 56.90 m³ s⁻¹ for the 2-year event to 95.65 m³ s⁻¹ for the 25-year event. At the 25-year return period, scenario discharge decreased from 82.49 to 26.71 m³ s⁻¹, with the largest absolute reduction assigned to mixed dryland agriculture (23.95 m³ s⁻¹). The results identify high-leverage locations for runoff control, but engineering deployment requires reconciliation of mapped areas, land-cover-specific runoff coefficients, field infiltration measurements, and event-based hydraulic validation before the scenario can be interpreted as operational performance.

Downloads

Download data is not yet available.

References

Abdul Latif, F. A., Khairil Anwar, D. I., Mat Isa, M., Mohamed Ali, S., & Che Zahari, M. R. (2024). Determination of Surface Runoff Using Rational Method at Al-Sultan Abdullah Hospital, Universiti Teknologi MARA, Puncak Alam. Built Environment Journal, 21(2), 92–107. https://doi.org/10.24191/bej.v21i2.478

Ajami, F. M., Bahrun, R. S., Indrayani, A. F., & Ikram, F. (2026). Integrasi analisis kerentanan dan desain bangunan ukur dalam mitigasi banjir skala desa. Jurnal LINEARS, 9(1), 51–59. https://doi.org/10.26618/rytn8428

Anang, N. M., Maricar, M. F., & Agusalim, M. (2026). Permodelan debet aliran Sungai Jeneberang berdasarkan akurasi inflow memprediksi daerah risiko genangan banjir. Journal of Muhammadiyah’s Application Technology, 5(2), 181–195. https://doi.org/10.26618/0t7k8c06

Andayono, T., & Mera, M. (2025). Enhancing Infiltration Capacity in Urban Residential Land Using Artificial Infiltration Device. Civil Engineering and Architecture, 13(1), 95–104. https://doi.org/10.13189/cea.2025.130105

Astariani, N. K., Pamungkas, T. H., & Ardika, I. P. R. (2026). EFFECTIVENESS OF INFILTRATION WELLS IN REDUCING FLOOD DISCHARGE AND VOLUME: A GIS-BASED ASSESSMENT IN DALUNG PERMAI RESIDENTIAL AREA, BALI, INDONESIA. Water Conservation and Management, 10(2), 449–455. https://doi.org/10.26480/wcm.02.2026.449.455

Bah, A., Hongbo, Z., Bah, A., Jufang, H., & Zhumei, L. (2023). Study of the applicability of Sponge City concepts for flood mitigation based on LID (low impact development) measures: A case study in Conakry City, Republic of Guinea. Water Science and Technology, 88(4), 901–921. https://doi.org/10.2166/wst.2023.251

Banjara, M., Bhusal, A., Ghimire, A. B., & Kalra, A. (2024). Impact of Land Use and Land Cover Change on Hydrological Processes in Urban Watersheds: Analysis and Forecasting for Flood Risk Management. Geosciences (Switzerland), 14(2). https://doi.org/10.3390/geosciences14020040

Bastia, J., Mishra, B. K., & Kumar, P. (2021). Integrative assessment of stormwater infiltration practices in rapidly urbanizing cities: A case of Lucknow city, India. Hydrology, 8(2). https://doi.org/10.3390/hydrology8020093

Berhanu, D., Tarkegn, T. G., Haileslassie, A., Alamirew, T., Mekuria, W., Zeleke, G., Lemann, T., Hurni, H., & Feyisa, G. L. (2025). Hydrological dynamics in various agroecological zones and impacts of soil and water conservation measures on runoff and sediment yields in the Bale Eco-Region, Ethiopia. Journal of Water and Climate Change, 16(6), 2032–2052. https://doi.org/10.2166/wcc.2025.755

Chae, S. T., Park, I., Irvine, K. N., & Chung, E.-S. (2025). Influence of budget allocation and design rainfall intensity on cost-effective LID strategy for urban flood mitigation. Journal of Environmental Management, 392. https://doi.org/10.1016/j.jenvman.2025.126839

Chao Guerbatin, A., & Ahammed, F. (2024). Climate Change Impacts on Water Sensitive Urban Design Technologies. Sustainability (Switzerland), 16(4). https://doi.org/10.3390/su16041568

Chica-Osorio, P. A., Carvajal-Serna, L. F., & Ochoa, A. (2022). Comparison of stationary and nonstationary estimation of return period for sewer design in Antioquia (Colombia). Anais Da Academia Brasileira de Ciencias, 94. https://doi.org/10.1590/0001-3765202220200810

de Waal, J., Watson, A., Miller, J., & van Niekerk, A. (2024). Estimating impacts of land cover change on erosion in a data-scarce catchment: Bot River, South Africa. Hydrological Sciences Journal, 69(14), 2071–2089. https://doi.org/10.1080/02626667.2024.2398653

Edokpa, D., Milledge, D., Allott, T., Holden, J., Shuttleworth, E., Kay, M., Johnston, A., Millin-Chalabi, G., Scott-Campbell, M., Chandler, D., Freestone, J., & Evans, M. (2022). Rainfall intensity and catchment size control storm runoff in a gullied blanket peatland. Journal of Hydrology, 609. https://doi.org/10.1016/j.jhydrol.2022.127688

Eshghizadeh, M. (2024). Urban development scenarios on flood peak discharge in an arid urban watershed using the WinTR-55 hydrologic model. International Journal of Human Capital in Urban Management, 9(2), 345–356. https://doi.org/10.22034/IJHCUM.2024.02.11

Eustace, B., & Arenas, A. (2026). Quantifying the Peak Flow Reduction Potential of Prairie Strips Using Integrated Surface-Subsurface Modelling. Journal of Sustainable Agriculture and Environment, 5(1). https://doi.org/10.1002/sae2.70147

Garg, K. K., Akuraju, V., Anantha, K. H., Singh, R., Whitbread, A. M., & Dixit, S. (2022). Identifying potential zones for rainwater harvesting interventions for sustainable intensification in the semi-arid tropics. Scientific Reports, 12(1). https://doi.org/10.1038/s41598-022-07847-4

Gedle, A., Rientjes, T., Haile, A. T., Mekuria, W., Hallett, P., & Smith, J. (2025). Responses of surface runoff and soil water-erosion to changes in seasonal land cover and rainfall intensity; the case of Shilansha watershed, Rift Valley Basin of Ethiopia. Journal of Hydrology: Regional Studies, 58. https://doi.org/10.1016/j.ejrh.2025.102289

Gelebo, A. H., Kasiviswanathan, K. S., & Khare, D. (2022). Assessment of the spatial–temporal distribution of groundwater recharge in data-scarce large-scale African river basin. Environmental Monitoring and Assessment, 194(3). https://doi.org/10.1007/s10661-022-09778-z

Harto, A. B., Virtriana, R., Kusuma, R. J., Reynaldi, I. K. C., Karima, A. Q., & Kuntoro, A. A. (2026). Development of flood hazard model based on land use and land cover change 1973–2023 in Cikapundung watershed, West Java Province. Geomatics, Natural Hazards and Risk, 17(1). https://doi.org/10.1080/19475705.2026.2634202

He, Z., Gu, X., Qiu, F., Wang, M., & Xu, M. (2026). Attributing extreme rainfall–runoff dynamics in karst watersheds: An LSTM-based mechanistic modeling and interpretation framework. Advances in Water Resources, 212. https://doi.org/10.1016/j.advwatres.2026.105293

Hou, C., Yang, Z., & Ouyang, W. (2023). Surface Runoff and Diffuse Nitrogen Loss Dynamics in a Mixed Land Use Watershed with a Subtropical Monsoon Climate. Processes, 11(7). https://doi.org/10.3390/pr11071910

Huq, M. H., Rahman, M. M., & Jahid Hasan, G. M. (2024). Climate-resilient urban drainage planning: An approach using a GIS-based SCS-CN model. Journal of Water and Climate Change, 15(7), 2978–2991. https://doi.org/10.2166/wcc.2024.616

Hussain, S. N., Zwain, H. M., & Nile, B. K. (2022). Modeling the effects of land-use and climate change on the performance of stormwater sewer system using SWMM simulation: Case study. Journal of Water and Climate Change, 13(1), 125–138. https://doi.org/10.2166/wcc.2021.180

Iswati, T. Y., Hardiana, A., Istanabi, T., & Firdaus, K. T. F. (2025). Rainwater control with ArcGIS simulations: Universitas Sebelas Maret campus area mapping. Ecological Engineering and Environmental Technology, 26(12), 76–89. https://doi.org/10.12912/27197050/213725

Komlos, J., Mueller, T., Traver, R., & Wadzuk, B. (2026). Field-Scale Assessment of Surface Filtration Pretreatment to Reduce Sediment Accumulation in a Stormwater Infiltration Trench. Journal of Sustainable Water in the Built Environment, 12(3). https://doi.org/10.1061/JSWBAY.SWENG-697

Kuba, M. S. S., Rumata, N. A., & Amal, C. A. (2024). Dampak perubahan lahan terhadap bencana banjir di Kecamatan Rappocini Kota Makassar. Journal of Green Complex Engineering, 1(2), 99–106. https://doi.org/10.59810/greenplexresearch.v1i2.96

Kupec, P., Deutscher, J., Hemr, O., Zlatuška, K., & Čech, P. (2023). FUNCTIONALITY OF INFILTRATION PITS ON FOREST TRANSPORTATION NETWORK. Zpravy Lesnickeho Vyzkumu, 68(2), 116–125. https://doi.org/10.59269/ZLV/2023/2/696

Mansida, A., Gaffar, F., Zainuddin, M. A., & Syamsuri, A. M. (2025a). The Impact of Land Use Change on Improving Surface Runoff, Peak Flood Discharge, and Sedimentation in the Maros Watershed. Engineering, Technology and Applied Science Research, 15(4), 24875–24884. https://doi.org/10.48084/etasr.10826

Musawwir, M., Azis, I., Marupah, & Gaffar, F. (2026). Analisis laju infiltrasi dan hubungannya dengan aliran permukaan di Kecamatan Panakkukang. Journal of Muhammadiyah’s Application Technology, 5(2), 323–332. https://doi.org/10.26618/mdhnj816

Nanda, A. R., Mansida, A., Gaffar, F., & Bancong, H. (2026a). Enhancing hydrological resilience through infiltration wells and biopore holes on critical lands of sub-watershed areas. Journal of Hydrology: Regional Studies, 64. https://doi.org/10.1016/j.ejrh.2026.103261

Rahman, F. A. (2024). Surface runoff in varying forest cover types in Jangkok Watershed, Lombok Island, Indonesia. Biodiversitas, 25(2), 753–761. https://doi.org/10.13057/biodiv/d250235

Sabzevari, T., Haghighi, A. T., Ghadampour, Z., Petroselli, A., & Namazi, H. (2024). Estimation of Regional Design Runoff Coefficient in the Rational Method. Iranian Journal of Science and Technology - Transactions of Civil Engineering, 48(1), 467–482. https://doi.org/10.1007/s40996-023-01286-5

Sakti, H. H., Radhinal, Y., Isra, M., Fakhruddin, M., & Wahyuni, N. (2024). Pemanfaatan Web-Based Geographic Information System (GIS) dalam penanggulangan bencana banjir Kabupaten Bulukumba. Journal of Green Complex Engineering, 1(2), 59–68. https://doi.org/10.59810/greenplexresearch.v1i2.71

Shahzad, H., Myers, B., Boland, J., Hewa, G., & Johnson, T. (2022). Stormwater runoff reduction benefits of distributed curbside infiltration devices in an urban catchment. Water Research, 215. https://doi.org/10.1016/j.watres.2022.118273

Tamer, M., Adego, E., & Abiyu, A. (2025). Understanding rainfall runoff dynamics across various land uses and landscape positions in North Western Ethiopia. Scientific Reports, 15(1). https://doi.org/10.1038/s41598-025-98437-7

Xu, T., Li, P.-C., & Merwade, V. (2024). Analysis of short- and long-term controls on the variability of event-based runoff coefficient. Journal of Hydrology: Regional Studies, 56. https://doi.org/10.1016/j.ejrh.2024.101993

Zhao, J., Zhang, J., Hu, Y., Li, Y., Tang, P., Gusarov, A. V., & Yu, Y. (2022). Effects of land uses and rainfall regimes on surface runoff and sediment yield in a nested watershed of the Loess Plateau, China. Journal of Hydrology: Regional Studies, 44. https://doi.org/10.1016/j.ejrh.2022.101277

Published

2026-08-27

How to Cite

Amring, I., Gaffar, F., & Mansida, A. (2026). Scenario-Based Design-Storm Runoff Attenuation by Infiltration Wells in the Tanralili Sub-Watershed. Journal of Green Complex Engineering, 4(1). https://doi.org/10.59810/greenplexresearch.v4i1.287

Issue

Section

Articles

Similar Articles

<< < 1 2 3 

You may also start an advanced similarity search for this article.