Downstream amplification of suspended-sediment flux outpaces discharge growth in the Mangottong River, Indonesia

https://doi.org/10.59810/greenplexresearch.v4i1.286

Authors

  • Muhammad Scyroth Arianto Universitas Muhammadiyah Makassar
  • Ilfan Muis Universitas Muhammadiyah Makassar
  • Andi Makbul Syamsuri Universitas Muhammadiyah Makassar
  • Fithriyah Arief Wangsa Universitas Muhammadiyah Makassar

Keywords:

suspended sediment, sediment flux, river discharge, discharge-weighted concentration, tropical river

Abstract

Suspended-sediment transport in small tropical rivers can change sharply over short distances because discharge, sediment availability, and cross-sectional mixing vary simultaneously. This study examined longitudinal changes in water discharge, suspended-sediment concentration (SSC), and instantaneous suspended-sediment flux along the Mangottong River, South Sulawesi, Indonesia. Five observations were available at each upstream, midstream, and downstream cross-section. Point discharges were verified from the field calculations, SSC was derived from laboratory dry-mass measurements, and section concentration was evaluated using discharge weighting. Suspended load was calculated as 0.0864CQ, with C in mg L⁻¹ and Q in m³ s⁻¹. Section discharge increased from 5.178 to 7.554 and 8.438 m³ s⁻¹, whereas discharge-weighted SSC changed from 626.5 to 568.3 and 1,829.2 mg L⁻¹. Corresponding suspended loads were 280.3, 370.9, and 1,333.5 t d⁻¹. The downstream section therefore carried 4.76 times the upstream load while water discharge increased only 1.63-fold. The lower-reach amplification was driven primarily by sediment enrichment rather than discharge growth alone, demonstrating the value of discharge-weighted sampling for interpreting sparse river surveys.

Downloads

Download data is not yet available.

References

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

Akmal, A., Munawir, M., Puteh, M. A. F., Syauqi, T. M., & Saputra, H. (2026). Hydrological Assessment of A Water Hyacinth (Eichhornia crassipes) Filtration System for Microplastic and Water Quality Improvement in The Krueng Aceh River. Jurnal Linears, 9(1), 9–18. https://doi.org/10.26618/vyp9c917

Ali, A., Karim, N., Syamsuri, A. M., & Latif, S. (2026). Efektivitas Deflektor Silinder Pori Bertulang dalam Mengendalikan Aliran di Sekitar Pilar Jembatan. Journal of Green Complex Engineering, 3(2), 95–102. https://doi.org/10.59810/greenplexresearch.v3i2.247

Aouiche, I., Sedrati, M., & Anthony, E. J. (2023). Modelling of Sediment Transport and Deposition in Generating River-Mouth Closure: Oum-Errabia River, Morocco. Journal of Marine Science and Engineering, 11(11). https://doi.org/10.3390/jmse11112051

Baharuddin, A., Karim, N., Ali, M. Y., & Latif, S. (2026). Investigasi Eksperimental Pengendalian Gerusan Pilar Jembatan Menggunakan Deflektor Arus Bawah Air Berpori. Journal of Green Complex Engineering, 3(2), 83–94. https://doi.org/10.59810/greenplexresearch.v3i2.246

Battaglin, W. A., & Kisfalusi, Z. D. (2022). Characterization of and Relations Among Precipitation, Streamflow, Suspended-Sediment, and Water-Quality Data at the U.S. Army Garrison Fort Carson and Piñon Canyon Maneuver Site, Colorado, Water Years 2016–18. USGS Scientific Investigations Report, 2022, 1–94. https://doi.org/10.3133/sir20225018

Bezak, N., Lebar, K., Bai, Y., & Rusjan, S. (2025). Using Machine Learning to Predict Suspended Sediment Transport under Climate Change. Water Resources Management, 39(7), 3311–3326. https://doi.org/10.1007/s11269-025-04108-7

Blount, J. D., Lenoch, L. E. K., & Fitzpatrick, F. A. (2022). Stream corridor and upland sources of fluvial sediment and phosphorus from a mixed urban-agricultural tributary to the Great Lakes. Journal of Great Lakes Research, 48(6), 1536–1549. https://doi.org/10.1016/j.jglr.2022.08.024

Borella, D. R., de Souza, A. P., de Almeida, F. T., de Abreu, D. C., Hoshide, A. K., Carvalho, G. A., Pereira, R. R., & da Silva, A. F. (2022). Dynamics of Sediment Transport in the Teles Pires River Basin in the Cerrado-Amazon, Brazil. Sustainability (Switzerland), 14(23). https://doi.org/10.3390/su142316050

Borges, H. D., Martinez, J.-M., Harmel, T., Cicerelli, R. E., Olivetti, D., & Roig, H. L. (2022). Continuous Monitoring of Suspended Particulate Matter in Tropical Inland Waters by High-Frequency, Above-Water Radiometry. Sensors, 22(22). https://doi.org/10.3390/s22228731

Bui, T. T. P., Kantoush, S., Kawamura, A., Du, T. L. T., Bui, N. T., Capell, R., Nguyen, N. T., Du Bui, D., Saber, M., Tetsuya, S., Lee, H., Saleh, A., Lakshmi, V., Bartosova, A., Van Binh, D., Nguyen, B. Q., & Nguyen, T. T. T. (2023). Reservoir operation impacts on streamflow and sediment dynamics in the transboundary river basin, Vietnam. Hydrological Processes, 37(9). https://doi.org/10.1002/hyp.14994

Cancio, N. C. O., & Pierini, J. O. (2023). Suspended sediment transport in Rio Colorado agricultural basin, Argentina. Frontiers in Built Environment, 9. https://doi.org/10.3389/fbuil.2023.1142671

Chalov, S., Denisova, I., Moreido, V., Solonikov, I., Loshkov, O., Botavin, D., Samokhin, M., Chalova, A., & Kasimov, N. (2026). Streamflow and sediment dynamics affected by precipitation events and land use changes in the heavily urbanized small catchment of Moscow megacity. Urban Climate, 65. https://doi.org/10.1016/j.uclim.2025.102745

Chen, W., Ban, H., Mao, C., Liang, H., & Jiang, M. (2024). Sediment Dynamics Subject to Sea Level Rise in the Yangtze River Estuary. Journal of Ocean University of China, 23(6), 1572–1582. https://doi.org/10.1007/s11802-024-5741-7

De Freitas, C.-R., & Grenfell, S. (2024). Event-scale suspended sediment fluxes in a dryland environment valley-bottom wetland: Implications for downstream sediment and phosphorous fluxes. Geomorphology, 452. https://doi.org/10.1016/j.geomorph.2024.109101

Dixit, S., Timbadiya, P. V., & Patel, P. L. (2026). Effective discharge for suspended sediment transport in the pre- and post-dam scenarios in the Upper Narmada River, India. ISH Journal of Hydraulic Engineering, 32(1), 77–96. https://doi.org/10.1080/09715010.2025.2584044

Efthimiou, N. (2025). Suspended Load Estimation in Data Scarce Rivers. Water Resources Management, 39(1), 311–378. https://doi.org/10.1007/s11269-024-03973-y

Erwanto, Z., Lasminto, U., Iranata, D., & Maulana, M. A. (2026). Hydrometric sensor-based monitoring and empirical modeling of sediment transport and river erosion dynamics in a bird feather-type watershed. Journal of Engineering and Applied Science, 73(1). https://doi.org/10.1186/s44147-026-01009-3

Haught, D. R. W., Marineau, M. D., Minear, J. T., Wright, S. A., & Lopez, J. V. (2023). Sediment Transport in Two Tributaries to the San Joaquin River Immediately Below Friant Dam—Cottonwood Creek and Little Dry Creek, California. USGS Scientific Investigations Report, 2023, 1–34. https://doi.org/10.3133/sir20235023

Kramer Stajnko, J., Jecl, R., & Nekrep Perc, M. (2023). Advances in Monitoring and Understanding the Dynamics of Suspended-Sediment Transport in the River Drava, Slovenia: An Analysis More than a Decade-Long. Applied Sciences (Switzerland), 13(15). https://doi.org/10.3390/app13159036

Kwon, S., Seo, I. W., & Lyu, S. (2023). Investigating mixing patterns of suspended sediment in a river confluence using high-resolution hyperspectral imagery. Journal of Hydrology, 620. https://doi.org/10.1016/j.jhydrol.2023.129505

Liu, Z., Fagherazzi, S., Liu, X., Shao, D., Miao, C., Cai, Y., Hou, C., Liu, Y., Li, X., & Cui, B. (2022). Long-term variations in water discharge and sediment load of the Pearl River Estuary: Implications for sustainable development of the Greater Bay Area. Frontiers in Marine Science, 9. https://doi.org/10.3389/fmars.2022.983517

Ouakhir, H., Ennaji, N., Goumih, M., Ghachi, M. E., Barhazi, L., Hilali, A., Mosaid, H., Laaraj, S., Rizki, M., Kader, S., Ali, T., Chakrabortty, R., & Spalevic, V. (2025). Hydrosedimentary Response of the Two River Basins from Middle and High Atlas of Morocco: A Multiscale and Systematic Approach. Earth Systems and Environment. https://doi.org/10.1007/s41748-025-00841-6

Patriadi, A., Pattiraja, A. H., Sukmara, R. B., & Wahab, M. F. (2024). Assessing Flow, Sediment, and Salinity Patterns in Tidal-Affected Meandering Rivers: Insights from Kali Wonokromo. International Journal on Advanced Science, Engineering and Information Technology, 14(4), 1488–1495. https://doi.org/10.18517/ijaseit.14.4.20034

Prajapati, P., Meena, G. K., Swarnkar, S., & Jha, S. K. (2025). Impact of Indira Sagar Dam on Water Discharge and Sediment Flow Regimes of the Narmada Basin. Journal of Hydrologic Engineering, 30(2). https://doi.org/10.1061/JHYEFF.HEENG-6316

Quang, N. H., & Viet, T. Q. (2023). Long-term analysis of sediment load changes in the Red River system (Vietnam) due to dam-reservoirs. Journal of Hydro-Environment Research, 51, 48–66. https://doi.org/10.1016/j.jher.2023.10.002

Rahim, M. A., Liu, S., Hu, K., Li, H., Islam, M., & Hossain, S. (2025). Revealing inconsistency of the sediment-water relationships in the Brahmaputra River: A comparative analysis of upstream and downstream cross-sections. Journal of Mountain Science, 22(8), 2819–2836. https://doi.org/10.1007/s11629-025-9721-1

Rosas, M. A., Viveen, W., & Vanacker, V. (2023). Spatial variation in specific sediment yield along the Peruvian western Andes. Catena, 220. https://doi.org/10.1016/j.catena.2022.106699

Salarijazi, M., Modabber-Azizi, S., Mohammadi, M., Mohammadrezapour, O., & Ghorbani, K. (2025). Temporal Classification to Improve the Precision of Suspended Sediment Rating Curve (Case Study: Gorganrood Basin). Iranian Journal of Science and Technology - Transactions of Civil Engineering, 49(4), 4051–4062. https://doi.org/10.1007/s40996-024-01632-1

Santhikrishnan, S., Jyothibabu, R., Sajeev, R., Vishnu, C. B., Albin, K. J., Alok, K. T., & Pandiya Rajan, R. S. (2024). Impact of river discharge and suspended sediments on the nearshore benthic environment along the Indian southwest coast. Science of the Total Environment, 954. https://doi.org/10.1016/j.scitotenv.2024.176455

Skålevåg, A., Korup, O., & Bronstert, A. (2024). Inferring sediment-discharge event types in an Alpine catchment from sub-daily time series. Hydrology and Earth System Sciences, 28(20), 4771–4796. https://doi.org/10.5194/hess-28-4771-2024

Teng, L., Cheng, H., Zhang, E., & Wang, Y. (2022). Lateral Variation of Tidal Mixing Asymmetry and Its Impact on the Longitudinal Sediment Transport in Turbidity Maximum Zone of Salt Wedge Estuary. Journal of Marine Science and Engineering, 10(7). https://doi.org/10.3390/jmse10070907

Tunas, I. G., Harsanto, P., & Arafat, Y. (2025). Modeling Bed Morphology Evolution in an Alluvial River under Extreme Rainfall Using a 2D Hydrodynamic–Sediment Transport Approach. International Journal of Computational Methods and Experimental Measurements, 13(3), 667–679. https://doi.org/10.56578/ijcmem130315

Vas, L., & Tamás, E. A. (2023). Surrogate Method for Suspended Sediment Concentration Monitoring on the Alluvial Reach of the River Danube (Baja, Hungary). Applied Sciences (Switzerland), 13(10). https://doi.org/10.3390/app13105826

Wolf, S., Stenger, D., Steudtner, F., Esser, V., Lehmkuhl, F., & Schüttrumpf, H. (2023). Modeling anthropogenic affected sediment transport in a mid-sized European river catchment–extension of the sediment rating curve equation. Modeling Earth Systems and Environment, 9(4), 3815–3835. https://doi.org/10.1007/s40808-023-01703-8

Yusuf, M., Tongeng, A. B., Marupah, M., & Latif, S. (2026). Analisis Eksperimental Pengaruh Sabo Dam Tipe Beam terhadap Karakteristik Aliran Debris pada Variasi Kemiringan Saluran. Journal of Green Complex Engineering, 3(2), 67–72. https://doi.org/10.59810/greenplexresearch.v3i2.244

Published

2026-08-27

How to Cite

Arianto, M. S., Muis, I., Syamsuri, A. M., & Wangsa, F. A. (2026). Downstream amplification of suspended-sediment flux outpaces discharge growth in the Mangottong River, Indonesia. Journal of Green Complex Engineering, 4(1). https://doi.org/10.59810/greenplexresearch.v4i1.286

Issue

Section

Articles

Similar Articles

1 2 > >> 

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