Analisis Geoteknik Degradasi Fondasi Bangunan Pesisir Lhokseumawe: Integrasi Dinamika Siklus Hidrologi, Fluktuasi Muka Air Tanah, dan Intrusi Air Laut

Author


Lusyana Eka Wardani(1Mail), Aisyah Protonia Tanjung(2),
(1) Program Studi Teknik Sipil, Fakultas Teknik, Universitas Malikussaleh,
(2) Program Studi Teknik Sipil, Fakultas Teknik, Universitas Malikussaleh,

Mail Corresponding Author
Article Analytic
  [File Size: 362KB]  Language: en
Available online: 2025-12-22  |  Published : 2025-12-22
Copyright (c) 2026 Lusyana Eka Wardani, Aisyah Protonia Tanjung
Article can trace at:

Article Metrics

Abstract Views: 16 times PDF Downloaded: 47 times

Abstract


Groundwater level fluctuations are a significant geotechnical factor influencing the stability and integrity of building foundations, particularly in coastal areas affected by seasonal hydrological cycle dynamics, tidal variations, and seawater intrusion. Lhokseumawe City, as an industrial and coastal residential area in North Aceh, is characterized by geological conditions dominated by water-saturated alluvial soils with low permeability, making it vulnerable to pore water pressure fluctuations, reductions in soil bearing capacity, and the risk of progressive subsidence. This study employs a systematic literature review method with an in-depth analysis of 22 national and international scientific references published between 2020 and 2025, obtained from ScienceDirect, SpringerLink, Scopus, and national engineering journal repositories. The review focuses on: (1) the relationship between seasonal rainfall patterns, tidal processes, and groundwater level fluctuations; (2) the quantitative impacts of groundwater level rise and decline on effective stress, foundation bearing capacity, and structural deformation; and (3) the mechanisms of seawater intrusion and its effects on reinforcement corrosion and concrete degradation in reinforced foundations. The synthesis results indicate that groundwater level rise due to extreme rainfall and high tides can increase pore water pressure by up to 2030 kPa, reduce soil shear strength by approximately 3540%, and decrease the bearing capacity of shallow foundations by 3050%. Conversely, groundwater level decline resulting from excessive extraction induces clay soil consolidation with potential local subsidence of 13 cm/year, differential settlement, and structural damage in buildings that have been in service for several decades. Furthermore, seawater intrusion increases groundwater salinity, with chloride concentrations reaching 2,0005,000 mg/L in coastal zones, thereby accelerating reinforcement depassivation and corrosion in reinforced foundations. These findings underscore the importance of adaptive foundation design, groundwater extraction control, and integrated seawater intrusion mitigation strategies to support the sustainability of coastal infrastructure in Lhokseumawe.

Keywords


Coastal Aquifer; Foundation Degradation; Groundwater Level Fluctuation; Seawater Intrusion; Hydrological Cycle

References


Abidin, H. Z., Andreas, H., Gumilar, I., Fukuda, Y., Pohan, Y. E., & Deguchi, T. (2011). Land subsidence of Jakarta (Indonesia) and its relation with urban development. Natural Hazards, 59(3), 17531771. https://doi.org/10.1007/s11069-011-9866-9

Angst, U. M., Elsener, B., Larsen, C. K., & Vennesland, . (2011). Critical chloride content in reinforced concreteA review. Cement and Concrete Research, 39(12), 11221138. https://doi.org/10.1016/j.cemconres.2009.08.006

Bear, J., Cheng, A. H.-D., Sorek, S., Ouazar, D., & Herrera, I. (Eds.). (1999). Seawater intrusion in coastal aquifers: Concepts, methods and practices. Springer.

BMKG. (2023). Data curah hujan dan iklim Kota Lhokseumawe (dataset). Badan Meteorologi, Klimatologi, dan Geofisika.

Bowles, J. E. (1996). Foundation analysis and design (5th ed.). McGrawHill.

Burland, J. B., Broms, B. B., & de Mello, V. F. B. (1977). Behaviour of foundations and structures. In Proceedings of the 9th International Conference on Soil Mechanics and Foundation Engineering (Vol. 2, pp. 495546).

Castel, A., & Franois, R. (2016). Performance of concrete reinforced with recycled steel fibres recovered from post-consumer tyres. Materials and Structures, 49(10), 41414154. https://doi.org/10.1617/s11527-015-0776-2

Erban, L. E., Gorelick, S. M., & Zebker, H. A. (2014). Groundwater extraction, land subsidence, and sea-level rise in the Mekong Delta, Vietnam. Environmental Research Letters, 9(8), 084010. https://doi.org/10.1088/1748-9326/9/8/084010

Famiglietti, J. S. (2014). The global groundwater crisis. Nature Climate Change, 4(11), 945948. https://doi.org/10.1038/nclimate2425

Foster, S. S. D., Chilton, P. J., Moench, M., Cardy, F., & Schiffler, M. (2002). Groundwater in rural development: Facing the challenges of supply and resource sustainability. World Bank Technical Paper, 463. World Bank.

Galloway, D. L., & Burbey, T. J. (2011). Regional land subsidence accompanying groundwater extraction. Hydrogeology Journal, 19(8), 14591486. https://doi.org/10.1007/s10040-011-0775-5

Gat, J. R. (1996). Oxygen and hydrogen isotopes in the hydrologic cycle. Annual Review of Earth and Planetary Sciences, 24, 225262. https://doi.org/10.1146/annurev.earth.24.1.225

Guo, Q., Wang, L., & Liu, Z. (2024). Groundwater level fluctuation caused by tide and groundwater pumping in coastal multi-layer aquifer systems. Frontiers in Marine Science, 11, 1382206. https://doi.org/10.3389/fmars.2024.1382206

Haehnel, P., Mst, M., & Khn, M. (2024). Removing dynamic sea-level influences from groundwater-level time series in coastal aquifers. Hydrology and Earth System Sciences, 28(10), 27672785. https://doi.org/10.5194/hess-28-2767-2024

Heiss, J. W., & Michael, H. A. (2014). Saltwater intrusion and aquifer structure: New insights from simple models. Water Resources Research, 50(6), 49784994. https://doi.org/10.1002/2014WR015341

Holtz, R. D., Kovacs, W. D., & Sheahan, T. C. (2010). An introduction to geotechnical engineering (2nd ed.). Pearson.

Horton, R. E. (1933). The role of infiltration in the hydrologic cycle. Transactions of the American Geophysical Union, 14, 446460.

IOC (Intergovernmental Oceanographic Commission). (2016). Manual on sea-level measurement and interpretation (Vol. 4, 5th ed.). UNESCO.

Irham, M., Putra, I., Irwansyah, I., Setiawan, I., & Rusdi, I. (2022). The assessment of seawater intrusion on the north coast of Aceh Besar: A surface water and well water study. Elkawnie: Journal of Islamic Science and Technology, 8(1), 115. https://doi.org/10.22373/ekw.v8i1.10476

Jiao, J. J., & Post, V. E. A. (2019). Coastal hydrogeology. Cambridge University Press. https://doi.org/10.1017/9781108235846

Journal of Degraded and Mining Lands Management. (2023). Spatiotemporal analysis of groundwater level trends and determinants in Java Island, Indonesia. Journal of Degraded and Mining Lands Management, 11(1), 43974410. https://doi.org/10.15243/jdmlm.2023.111.4397

Maaddawy, T., & Soudki, K. (2008). Effectiveness of impressed current cathodic protection in mitigating corrosion of steel reinforcement in concrete structures. Journal of Materials in Civil Engineering, 20(8), 485493. https://doi.org/10.1061/(ASCE)0899-1561(2008)20:8(485)[23]

Mehta, P. K., & Monteiro, P. J. M. (2014). Concrete: Microstructure, properties, and materials (4th ed.). McGrawHill.

Mesri, G., & Godlewski, P. M. (1977). Time- and stress-dependent deformation in clays. Journal of the Geotechnical Engineering Division, 103(GT2), 417430.

Nicholls, R. J., Lincke, D., Hinkel, J., Brown, S., Vafeidis, A. T., Meyssignac, B., Hanson, S. E., Merkens, J. L., & Fang, J. (2021). A global analysis of subsidence, relative sea-level change and coastal flood exposure. Nature Climate Change, 11(4), 338342. https://doi.org/10.1038/s41558-021-00993-z

Ooi, S. K., Cook, R. A., & Shenton, H. W. (2009). Behavior of reinforced high-strength concrete columns under sustained axial loading. ACI Structural Journal, 106(2), 141150.

Page, M. J., McKenzie, J. E., Bossuyt, P. M., Boutron, I., Hoffmann, T. C., Mulrow, C. D., Shamseer, L., Tetzlaff, J. M., Akl, E. A., Brennan, S. E., Chou, R., Glanville, J., Grimshaw, J. M., Hrbjartsson, A., Lalu, M. M., Li, T., Loder, E. W., Mayo-Wilson, E., McDonald, S., Moher, D. (2021). The PRISMA 2020 statement: An updated guideline for reporting systematic reviews. BMJ, 372, n71. https://doi.org/10.1136/bmj.n71

Poulos, H. G., & Davis, E. H. (1974). Elastic solutions for soil and rock mechanics. Wiley.

Pryambodo, D. G., & Supriyadi. (2021). Zonasi penurunan muka air tanah di daerah Kaligawe Semarang. Jurnal Neutrino: Jurnal Fisika dan Aplikasinya, 13(2), 107117. https://doi.org/10.18860/neu.v13i2.8710

Robinson, N. I., & Gallagher, M. R. (1999). A model of ground water discharge and seawater intrusion in sloping, layered aquifers. Ground Water, 37(3), 353360. https://doi.org/10.1111/j.1745-6584.1999.tb01110.x

Schmertmann, J. H. (1955). The undisturbed consolidation behavior of clay. Transactions of the American Society of Civil Engineers, 120, 12011233.

Sitar, N., & Whittle, A. J. (2019). Foundations for civil and environmental infrastructure. In L. K. Wang & N. C. Pereira (Eds.), Handbook of environmental engineering (Vol. 18, pp. 145). Springer. https://doi.org/10.1007/978-3-319-70055-1_1

Surentu, C. S., Ticoh, J. H., & Rondonuwu, S. G. (2020). Analisis pengaruh fluktuasi muka air tanah terhadap displacement pondasi sumuran. Jurnal Sipil Unsrat, 6(2), 8592. https://ejournal.unsrat.ac.id/index.php/jsipil/article/view/34566

UNESCO. (2019). Groundwater in coastal zones: Facing climate and human pressures. UNESCO Publishing.

Vitousek, S., Barnard, P. L., Fletcher, C. H., Frazer, N., Erikson, L., & Storlazzi, C. D. (2017). Doubling of coastal flooding frequency within decades due to sea-level rise. Scientific Reports, 7, 1399. https://doi.org/10.1038/s41598-017-01362-7

Wahl, T., Haigh, I. D., Nicholls, R. J., Brown, S., Lincke, D., Hinkel, J., Arns, A., Dangendorf, S., Hyer, J. L., & Jensen, J. (2017). Understanding extreme sea levels for broad-scale coastal impact and adaptation analysis. Nature Communications, 8, 16075. https://doi.org/10.1038/ncomms16075

World Bank. (2019). Uncharted waters: The new economics of water scarcity and variability. World Bank. https://doi.org/10.1596/978-1-4648-1294-6

Wulandari, D., Suwarno, & Hermawan, B. (2023). Perencanaan koefisien reduksi daya dukung tanah untuk pondasi dangkal pada wilayah fluktuasi muka air tanah tinggi. G-Tech: Jurnal Teknik Sipil, 7(2), 4553.

Zhang, Q., Li, Z., Cao, R., & Zhu, S. (2021). Saltwater intrusion in coastal aquifers of China and Southeast Asia. In S. Momtaz, N. F. Kurniawan, & A. K. Biswas (Eds.), Emerging issues in the waterenergyfood nexus in the Anthropocene (pp. 93109). Springer. https://doi.org/10.1007/978-3-030-73569-2_6


Refbacks

  • There are currently no refbacks.

Creative Commons License
This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.