Landslide Inventory and Relationship to Geological Conditions (Case Study: Trenggalek Regency, East Java

Kurnia Dewi Mulyani, Joel Maruba Manurung, Utari Retno Sulistyo Rini, Emanuel Grace Manek, Fanteri Aji Dharma Suparno

Abstract


Inventarisasi kejadian longsoran penting dilakukan sebagai upaya mitigasi kejadian longsoran dimasa depan. Lokasi yang sering terjadi longsoran mempunyai kerentanan untuk terjadi bencana longsoran. Penelitian ini bertujuan untuk memetakan kejadian longsoran terdahulu dan menganalisis hubungan antara lokasi longsoran dan kondisi geologi serta kemiringan lereng. Inventarisasi longsoran menggunakan foto-foto kejadian longsoran yang terdapat keterangan koordinat lokasi. Peta kemiringan lereng menggunakan penggabungan 7 data demnas. Peta geologi menggunakan penggabungan peta geologi lembar Madiun, Pacitan dan Tulungagung. Hasil analisis menunjukkan jumlah kejadian longsoran pada Kabupaten Trenggalek antara tahun 2024 dan Juni 2025 sebanyak 51 longsoran tersebar di Kecamatan Munjungan, Panggul, Tugu, Bendungan, Dongko, Suruh, Watulimo, Pule, Gandusari, dan Kampak. Jenis longsoran di lokasi penelitian adalah longsoran rotasional dan aliran debris dengan material longsoran berupa campuran tanah dan batuan yang merupakan hasil pelapukan tinggi dari batuan dasar yang sebagian besar berumur tersier. Longsoran paling banyak terjadi pada Formasi Mandalika dengan jumlah 36 kejadian. Lokasi longsoran sebanyak 34 longsoran berada pada lereng berbukit tersayat tajam/terjal dengan kemiringan 21% - 55%. 10 lokasi longsoran berada pada lereng berbukit bergelombang, 4 lokasi longsoran berada pada lereng bergelombang, dan 2 longsoran berada pada lereng miring landai.

 

Kata-kata kunci: debris, inventarisasi, Mandalika, longsoran, Trenggalek

 

 

ABSTRACT

Inventory landslide is essential to mitigate future landslide events. Locations that are prone to landslides are vulnerable to landslide disasters. This study aims to map previous landslide events and analyze the relationship between landslide locations, geological conditions, and slope gradients. The landslide inventory uses photographs of landslide events with location coordinates. The slope gradient map uses a combination of 7 national survey datasets. The geological map uses a combination of Madiun, Pacitan, and Tulungagung geological maps. The analysis results show that the number of landslide events in Trenggalek Regency between 2024 and June 2025 was 51 landslides spread across the districts of Munjungan, Panggul, Tugu, Bendungan, Dongko, Suruh, Watulimo, Pule, Gandusari, and Kampak. The landslides at the study site are rotational landslides and debris flows, with landslide material consisting of soil and rocks resulting from highly weathered bedrock, most of which is tertiary in age. The most landslides occurred in the Mandalika Formation, with 36 incidents. Thirty-four of the landslides were on steep, hilly slopes with gradients ranging from 21% to 55%. Ten of the landslides were on undulating hilly slopes, four on undulating slopes, and two on gently sloping slopes.

 

Keywords: debris, inventory, Mandalika, landslide, Trenggalek


Keywords


debris; inventory; Mandalika; landslide; Trenggalek

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References


D. M. Cruden, “A simple definition of a landslide,” Bulletin of the International Association of Engineering Geology - Bulletin de l’Association Internationale de Géologie de l’Ingénieur, vol. 43, no. 1, 1991, doi: 10.1007/BF02590167.

L. M. Highland and P. Bobrowsky, “The landslide Handbook - A guide to understanding landslides,” US Geological Survey Circular, no. 1325, 2008.

J. IWAHASHI and H. YAMAGISHI, “A reinvestigation on spatial distribution of shallow landslides induced by the August 1961 and the July 2004 heavy-rainfalls in Izumozaki area, Niigata-GIS analyses using high resolution ortho images and a 2-m DEM-,” Journal of the Japan Landslide Society, vol. 47, no. 5, 2010, doi: 10.3313/jls.47.274.

H. Rahardjo, T. H. Ong, R. B. Rezaur, and E. C. Leong, “Factors Controlling Instability of Homogeneous Soil Slopes under Rainfall,” Journal of Geotechnical and Geoenvironmental Engineering, vol. 133, no. 12, 2007, doi: 10.1061/(asce)1090-0241(2007)133:12(1532).

H. S. Naryanto, H. Soewandita, D. Ganesha, F. Prawiradisastra, and A. Kristijono, “Analisis Penyebab Kejadian dan Evaluasi Bencana Tanah Longsor di Desa Banaran, Kecamatan Pulung, Kabupaten Ponorogo, Provinsi Jawa Timur Tanggal 1 April 2017,” Jurnal Ilmu Lingkungan, vol. 17, no. 2, 2019, doi: 10.14710/jil.17.2.272-282.

I. N. Hamdhan and D. S. Pratiwi, “Analisis Stabilitas Lereng dalam Penanganan Longsoran di Jalan Tol Cipularang Km. 91+200 dan Km. 92+600 Menggunakan Metode Elemen Hingga (FEM),” Jurnal Rekayasa Hijau, vol. 1, no. 2, 2017, doi: 10.26760/jrh.v1i2.1631.

D. Dian Kusuma and T. Tono, “Kajian kestabilan lereng menggunakan metode kesetimbangan batas di pit C5 area bidadari blok mayang Study of slope stability using bidadari boundaries method In pit C5 area of bidadari blok mayang,” JURNAL HIMASAPTA, vol. 9, no. 01, pp. 29–36, 2024.

H. Yamagishi and R. Moncada, “TXT-tool 1.081-3.1 Landslide recognition and mapping using aerial photographs and google earth,” in Landslide Dynamics: ISDR-ICL Landslide Interactive Teaching Tools: Volume 1: Fundamentals, Mapping and Monitoring, 2017. doi: 10.1007/978-3-319-57774-6_4.

E. N. C. Perera, A. M. C. T. Gunaratne, and S. B. D. Samarasinghe, “Participatory Landslide Inventory (PLI): An Online Tool for the Development of a Landslide Inventory,” Complexity, vol. 2022, 2022, doi: 10.1155/2022/2659203.

Sukristiyanti, K. Wikantika, I. A. Sadisun, L. F. Yayusman, and J. A. Telaumbanua, “Polygon-based landslide inventory for bandung basin using google earth,” Indonesian Journal of Geography, vol. 53, no. 2, 2021, doi: 10.22146/IJG.58014.

Y. W. Rabby and Y. Li, “Landslide inventory (2001–2017) of Chittagong hilly areas, Bangladesh,” Data (Basel), vol. 5, no. 1, Mar. 2020, doi: 10.3390/data5010004.

P. Niyokwiringirwa et al., “Event-based rainfall-induced landslide inventories and rainfall thresholds for Malawi,” Landslides, vol. 21, no. 6, pp. 1403–1424, Jun. 2024, doi: 10.1007/s10346-023-02203-7.

I. A. Sadisun, J. A. Telaumbanua, R. D. Kartiko, I. A. Dinata, and Pamela, “Weight of Evidence Method for Landslide Susceptibility Mapping in Sigi Biromaru, Central Sulawesi,” in IOP Conference Series: Earth and Environmental Science, 2021. doi: 10.1088/1755-1315/830/1/012029.

A. Rosi et al., “The new landslide inventory of Tuscany (Italy) updated with PS-InSAR: geomorphological features and landslide distribution,” Landslides, vol. 15, no. 1, 2018, doi: 10.1007/s10346-017-0861-4.

P. Confuorto et al., “Sentinel-1 P-SBAS data for the update of the state of activity of national landslide inventory maps,” Landslides, vol. 20, no. 5, pp. 1083–1097, May 2023, doi: 10.1007/s10346-022-02024-0.

R. A. Van Zuidam, “Considerations on systematic medium-scale geomorphological mapping.,” Zeitschrift fur Geomorphologie, vol. 26, no. 4, 1982, doi: 10.1127/zfg/26/1982/473.

D. M. Cruden and D. J. Varnes, “Landslide types and processes,” Special Report - National Research Council, Transportation Research Board, vol. 247, 1996.

BPBD Kabupaten Trenggalek, (2025, Mei 19) “Terjadi tanah longsor di beberapa titik di Desa Depok Kecamatan Bendungan.” [Online]. Available: https://bpbd.trenggalekkab.go.id/senin-19-mei-2025-terjadi-tanah-longsor-di-beberapa-titik-di-desa-depok-kecamatan-bendungan/




DOI: https://doi.org/10.20527/jhs.v10i2.16249

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