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Pemodelan Numerik 1-D untuk Analisis Banjir Sungai Tungkal pada DAS Tungkal

*Rian Mantasa Salve Prastica  -  Department of Civil Engineering, Universitas Gadjah Mada, Indonesia
Estu Wijayanti  -  Department of Civil Engineering, Universitas Gadjah Mada, Indonesia

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Abstract

Kuala Tungkal has a stormwater runoff, namely the Pengabuan River which is the primary river flow. Pengabuan River is located in the Tungkal Watershed, Jambi Province. Flood problems occur due to high tide flow (tidal flood) and high rainfall. So, flood prevention planning needs to be done. Drainage planning efforts are expected to reduce the flood discharge from the overflow of the Pengabuan River. The purpose of this research is to identify the occurrence of floods in the Pengabuan River with Q100. This research uses secondary data, from daily rainfall for 10 years (2010-2019) from 3 rain stations (Japura, Muaro Jambi, and Meteorologi Dabo), Tungkal watershed map, as well as transverse and longitudinal images Pengabuan River. Step of calculation starts from the selection of daily rainfall data, the average rainfall with Polygon Thiessen method, frequency analysis, Chi-Square test, Smirnov Kolmogorov test, and planned flood discharge analysis by the HSS Nakayasu method. The discharge plan is used to analyze flood with the HEC-RAS program. The results showed that the planned flood discharge during 100 years was 12432.19 m3/s. the results of analysis of the existing HEC-RAS on the river cross section is overflow or flooding, it is necessary to re-dimension it.

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Funding: Universitas Gadjah Mada

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  1. Ben Khalfallah, C., & Saidi, S. (2018). Spatiotemporal floodplain mapping and prediction using HEC-RAS - GIS tools: Case of the Mejerda river, Tunisia. Journal of African Earth Sciences, 142, 44–51. https://doi.org/10.1016/j.jafrearsci.2018.03.004
  2. Farooq, M., Shafique, M., & Khattak, M. S. (2019). Flood hazard assessment and mapping of River Swat using HEC-RAS 2D model and high-resolution 12-m TanDEM-X DEM (WorldDEM). Natural Hazards, 97(2), 477–492. https://doi.org/10.1007/s11069-019-03638-9
  3. Geravand, F., Hosseini, S. M., & Ataie-Ashtiani, B. (2020). Influence of river cross-section data resolution on flood inundation modeling: Case study of Kashkan river basin in western Iran. Journal of Hydrology, 584(December 2019), 124743. https://doi.org/10.1016/j.jhydrol.2020.124743
  4. Kang, M. S., Koo, J. H., Chun, J. A., Her, Y. G., Park, S. W., & Yoo, K. (2009). Design of drainage culverts considering critical storm duration. Biosystems Engineering, 104(3), 425–434. https://doi.org/10.1016/j.biosystemseng.2009.07.004
  5. Khan, M. S. A. (2008). Disaster preparedness for sustainable development in Bangladesh. Disaster Prevention and Management: An International Journal, 17(5), 662–671. https://doi.org/10.1108/09653560810918667
  6. Kumar, N., Kumar, M., Sherring, A., Suryavanshi, S., Ahmad, A., & Lal, D. (2019). Applicability of HEC ‑ RAS 2D and GFMS for flood extent mapping : a case study of Sangam area , Prayagraj , India. Modeling Earth Systems and Environment, (0123456789). https://doi.org/10.1007/s40808-019-00687-8
  7. Prastica, R. M.S., Maitri, C., Hermawan, A., Nugroho, P. C., Sutjiningsih, D., & Anggraheni, E. (2018). Estimating design flood and HEC-RAS modelling approach for flood analysis in Bojonegoro city. IOP Conference Series: Materials Science and Engineering, 316(1). https://doi.org/10.1088/1757-899X/316/1/012042
  8. Prastica, Rian Mantasa Salve, Adi, D. A. R., & Famila, N. (2020a). Analisis Pendahuluan tentang Pemeliharaan Infrastruktur Keairan di DAS Opak, Kali Code, Yogyakarta (No. (Tidak Dipublikasikan)). Yogyakarta
  9. Prastica, Rian Mantasa Salve, Adi, D. A. R., & Famila, N. (2020b). Mitigasi banjir dan alternatif pemeliharaan infrastruktur keairan pada sub-DAS code Yogyakarta. Teknika: Jurnal Sains Dan Teknologi, 16(1), 25–33. https://doi.org/10.36055/tjst.v16i1.7316
  10. Prastica, Rian Mantasa Salve, Apriatresnayanto, R., & Marthanty, D. R. (2019). Structural and green infrastructure mitigation alternatives prevent Ciliwung River from water-related landslide. International Journal on Advanced Science, Engineering and Information Technology, 9(6), 1825–1832
  11. Prastica, Rian Mantasa Salve, Maitri, C., Nugroho, P. C., & Hermawan, A. (2017). Analisis Banjir dan Perencanaan Desain Transportasi Sungai di Kota Bojonegoro. Media Komunikasi Teknik Sipil, 23(2), 91. https://doi.org/10.14710/mkts.v23i2.15981
  12. Quirogaa, V. M., Kurea, S., Udoa, K., & Manoa, A. (2016). Application of 2D numerical simulation for the analysis of the February 2014 Bolivian Amazonia flood: Application of the new HEC-RAS version 5. Ribagua, 3(1), 25–33. https://doi.org/10.1016/j.riba.2015.12.001
  13. Radcliffe, J. C., Page, D., Naumann, B., & Dillon, P. (2017). Fifty years of water sensitive urban design, Salisbury, South Australia. Frontiers of Environmental Science and Engineering, 11(4), 1–10. https://doi.org/10.1007/s11783-017-0937-3
  14. Rangari, V. A., Umamahesh, N. V., & Bhatt, C. M. (2019). Assessment of inundation risk in urban floods using HEC RAS 2D. Modeling Earth Systems and Environment, 5(4), 1839–1851. https://doi.org/10.1007/s40808-019-00641-8
  15. Setyoasri, Y. P., & Prastica, R. M. S. (2020). Rapid assessment of river watershed health and vulnerability level for restoration strategy: A study of river systems in Indramayu, West Java, Indonesia. IOP Conference Series: Earth and Environmental Science, 423(1). https://doi.org/10.1088/1755-1315/423/1/012016
  16. Sugar, L., Kennedy, C., & Hoornweg, D. (2013). Synergies between climate change adaptation and mitigation in development: Case studies of Amman, Jakarta, and Dar es Salaam. International Journal of Climate Change Strategies and Management, 5(1), 95–111. https://doi.org/10.1108/17568691311299381
  17. Zellou, B., & Rahali, H. (2017). Assessment of reduced-complexity landscape evolution model suitability to adequately simulate flood events in complex flow conditions. Natural Hazards, 86(1), 1–29. https://doi.org/10.1007/s11069-016-2671-8

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