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Anda, M., Ritung, S., Suryani, E., Sukarman, Hikmat, M., Yatno, E., Mulyani, A., Subandiono, R.E., Suratman, Husnain., 2021. Revisiting tropical peatlands in Indonesia: Semi-detailed mapping and depth distribution assessment. Geoderma 402: 115235.
Bu, G.J., He, X.S., LI, TT.., Wang, Z.X., 2019. Insight into indicators related to the humification and distribution of humic substances in sphagnum and peat at different depths in the Qi Zimei Mountains. Ecological Indicators 98: 430-441.
Chapman, S. J., Farmer, J., Main, A., Smith, J., 2017. Refining pedotransfer functions for estimating peat bulk density. Mires and Peat 19(23): 1-11.
Clymo, A., Turunen, J., Tolonen, K., 2019. Carbon accumulation in peatland. Oikos 81(2): 368-388.
Crnobrna, B., Llanqui, I. B., Cardenas, A. D., Panduro Pisco, G., 2022. Relationships between organic matter and BD in Amazonian peatland soils. Sustainability, 14(19), 12070.
Dommain, R., Couwenberg, J,. Glaser, P.H., Joosten, H., Suryadiputra, I.N.N., 2014. Carbon storage and release in Indonesian peatlands since the last deglaciation. Quaternary Science Reviews 97: 1–32.
Dommain, R., Couwenberg, J., Joosten, H., 2010. Hydrological self-regulation of domed peatlands in Southeast Asia and consequences for conservation and restoration. Mires and Peat 6(5): 1–17.
Gaffney, P.P.J., Tang, Q., Wang, J., Zhang, C., Xu, X., Xu, X., Li, Y., Pap, S., Ratcliffe, J.L., Li, Q., Niu, S., 2025. The high-altitude peatland carbon cycle: A review of the impacts of climate change, human disturbance and manag. Geo. and Sustainability 6: 1-17.
Hooijer, A., Page, S., Jauhiainen, J., Lee, W.A., Lu, X.X., Idris, A., Anshari., G. 2012. Subsidence and carbon loss in drained tropical peatlands. Biogeosciences 9: 1053–1071.
Järveoja, J., Peichl, M., Maddison, M., Soosaar, K., Vellak, K., Karofeld, E., Teemusk, A., Mander, U., 2016. Impact of water table level on annual carbon and greenhouse gas balances of a restored peat extraction area. Biogeosciences 13: 2637–2651.
Könönen, M., Jauhiainen, J., Laiho, R., Kusin, K., Vasander, H., 2015. Physical and chemical properties of tropical peat under stabilised land uses. Mires and Peat 16 (8): 1-13.
Nasrul, B., Maas, A., Utami, S.N.H., Nurudin, M., 2020. The relationship between surface topography and peat thickness on Tebing Tinggi. Mires and Peat 26(8): 1-21.
Nasrul, B., Puspitasari, D.J., Umami, I.M., Idwar, Silvina, F., Lubis, N., Hamzah, A., Yusa, M., Nurhayati, 2024. Study on the vertical distribution of carbon and ash content and its relationship with ombrogenous peat depth. The International Conference on Agriculture, Food, and Environmental Sciences (ICAFES 2023). Bıo Web of Conferences 99: 05001.
Page, S.E., Rieley, J.O., Wüst, R., 2006. Lowland tropical peatlands of Southeast Asia. In: Peatlands: Evolution and Records of Environmental and Climate Changes. Martini, I.P., Cortizas, A. M., Chesworth, W. (Ed.). Elsevier B.V. pp. 145-170.
Radjagukguk, B., 2000. Changes in physical and chemical properties of peat soil due to peatland reclamation for agriculture. Journal of Soil Science and Environment 2(1): 1-15 [in Indonesian].
Shi, G., Shangguan, W., Zhang, Y., Li, Q., Wang, W., Li, L., 2024. Reducing location error of legacy soil profiles leads to improvement in DSM. Geoderma 447: 116-912.
Supardi, Subekty, A.D., Neuzil, S.G., 1993. General geology and peat resources of the Siak Kanan and Bengkalis Island peat deposits. Spec. Pap. Geol. Soc. Am. 286: 45–61.
Szajdak, L.W., Jezierski, A., Wegner, K., Meysner, T., Szczepański, M., 2020. Influence of drainage on peat organic matter: implications for development, stability, and transformation. Molecules 25, 2587.
Taufik, M, Veldhuizen, A.A., Wösten, J.H.M., van Lanen, H.A.J., 2019. Exploration of the importance of physical properties of peatlands to assess critical groundwater table depths, associated drought, and fire hazard. Geoderma 347: 160–169.
Tian, J, Liu, L., Chen, H., Zhong, L., Zhou, X., Jiang, L., Zhan, W., Wang, Y., 2022. Aerobic environments in combination with substrate additions to soil significantly reshape depth-dependent microbial distribution patterns in Zoige peatlands, China. Applied Soil Ecology 170: 104252.
Wang, M., Liu, H., Rezanezhad, F., Zak, D., Lennartz, B., 2023. The influence of microtopography on soil carbon accumulation and nutrient release from a rewetted coastal peatland. Geoderma 438: 116637.
Webster, R., Oliver, M.A., 1990. Statistical methods in soil and land resources surveys. Oxford University Press. 328p.
Wösten, J.H.M., Clymans, E., Page, S.E., Rieley, J.O., Limin, S., 2008. Peat–water interrelationships in a tropical peatland ecosystem in Southeast Asia. Catena 73(2): 212–224.
Abstract
Peat depth reflects the humification process and the diversity of physical properties. The study examined vertical physical properties and their dynamic relationship with peat depth in an ombrogenous peat dome system. Observations were made on five profiles representing a variety of land elevations. These profiles are arranged sequentially from the edge of the dome to its peak. Profile locations were extracted from DTM LiDAR, while thickness was measured using an Eijkelkamp drill. Profile descriptions were made at every 20 cm interval above the drill bit, totaling 123 layers. Laboratory analysis included moisture content (gravimetric), bulk density/BD (ring), and fiber content (syringe). Statistical analysis employed Pearson correlation and simple linear regression at a 5% significance level. Vertical autocorrelation of peat properties is expected to be evident in adjacent peat depth layers. Profile P3 at the top of the dome I showed the strongest and most significant relationship, with the distributions of fiber content, moisture content, and BD strongly influenced by depth. A relatively deeper groundwater table promotes greater surface aeration and enhanced humification. Profile P4 in dome II also shows a significant relationship, indicating the role of BD in shaping the vertical distribution of peat. In contrast, the low coefficients of determination for P1, P2, and P5 indicate that variations in moisture content and BD are influenced more by groundwater-level fluctuations than by depth alone, whereas fiber content remains strongly correlated with depth. Although Profiles P4 and P5 are located within the same dome, they display different vertical patterns. At Profile P4, moisture content and fiber content do not vary systematically with depth. This deviation is attributed to intensive mixed-crop cultivation, which disrupts the peat dome structure and weakens the natural relationship between depth and peat physical properties.
Keywords: Ombrogenous, peat depth, physical characteristics, tropical peat profile.
References
Anda, M., Ritung, S., Suryani, E., Sukarman, Hikmat, M., Yatno, E., Mulyani, A., Subandiono, R.E., Suratman, Husnain., 2021. Revisiting tropical peatlands in Indonesia: Semi-detailed mapping and depth distribution assessment. Geoderma 402: 115235.
Bu, G.J., He, X.S., LI, TT.., Wang, Z.X., 2019. Insight into indicators related to the humification and distribution of humic substances in sphagnum and peat at different depths in the Qi Zimei Mountains. Ecological Indicators 98: 430-441.
Chapman, S. J., Farmer, J., Main, A., Smith, J., 2017. Refining pedotransfer functions for estimating peat bulk density. Mires and Peat 19(23): 1-11.
Clymo, A., Turunen, J., Tolonen, K., 2019. Carbon accumulation in peatland. Oikos 81(2): 368-388.
Crnobrna, B., Llanqui, I. B., Cardenas, A. D., Panduro Pisco, G., 2022. Relationships between organic matter and BD in Amazonian peatland soils. Sustainability, 14(19), 12070.
Dommain, R., Couwenberg, J,. Glaser, P.H., Joosten, H., Suryadiputra, I.N.N., 2014. Carbon storage and release in Indonesian peatlands since the last deglaciation. Quaternary Science Reviews 97: 1–32.
Dommain, R., Couwenberg, J., Joosten, H., 2010. Hydrological self-regulation of domed peatlands in Southeast Asia and consequences for conservation and restoration. Mires and Peat 6(5): 1–17.
Gaffney, P.P.J., Tang, Q., Wang, J., Zhang, C., Xu, X., Xu, X., Li, Y., Pap, S., Ratcliffe, J.L., Li, Q., Niu, S., 2025. The high-altitude peatland carbon cycle: A review of the impacts of climate change, human disturbance and manag. Geo. and Sustainability 6: 1-17.
Hooijer, A., Page, S., Jauhiainen, J., Lee, W.A., Lu, X.X., Idris, A., Anshari., G. 2012. Subsidence and carbon loss in drained tropical peatlands. Biogeosciences 9: 1053–1071.
Järveoja, J., Peichl, M., Maddison, M., Soosaar, K., Vellak, K., Karofeld, E., Teemusk, A., Mander, U., 2016. Impact of water table level on annual carbon and greenhouse gas balances of a restored peat extraction area. Biogeosciences 13: 2637–2651.
Könönen, M., Jauhiainen, J., Laiho, R., Kusin, K., Vasander, H., 2015. Physical and chemical properties of tropical peat under stabilised land uses. Mires and Peat 16 (8): 1-13.
Nasrul, B., Maas, A., Utami, S.N.H., Nurudin, M., 2020. The relationship between surface topography and peat thickness on Tebing Tinggi. Mires and Peat 26(8): 1-21.
Nasrul, B., Puspitasari, D.J., Umami, I.M., Idwar, Silvina, F., Lubis, N., Hamzah, A., Yusa, M., Nurhayati, 2024. Study on the vertical distribution of carbon and ash content and its relationship with ombrogenous peat depth. The International Conference on Agriculture, Food, and Environmental Sciences (ICAFES 2023). Bıo Web of Conferences 99: 05001.
Page, S.E., Rieley, J.O., Wüst, R., 2006. Lowland tropical peatlands of Southeast Asia. In: Peatlands: Evolution and Records of Environmental and Climate Changes. Martini, I.P., Cortizas, A. M., Chesworth, W. (Ed.). Elsevier B.V. pp. 145-170.
Radjagukguk, B., 2000. Changes in physical and chemical properties of peat soil due to peatland reclamation for agriculture. Journal of Soil Science and Environment 2(1): 1-15 [in Indonesian].
Shi, G., Shangguan, W., Zhang, Y., Li, Q., Wang, W., Li, L., 2024. Reducing location error of legacy soil profiles leads to improvement in DSM. Geoderma 447: 116-912.
Supardi, Subekty, A.D., Neuzil, S.G., 1993. General geology and peat resources of the Siak Kanan and Bengkalis Island peat deposits. Spec. Pap. Geol. Soc. Am. 286: 45–61.
Szajdak, L.W., Jezierski, A., Wegner, K., Meysner, T., Szczepański, M., 2020. Influence of drainage on peat organic matter: implications for development, stability, and transformation. Molecules 25, 2587.
Taufik, M, Veldhuizen, A.A., Wösten, J.H.M., van Lanen, H.A.J., 2019. Exploration of the importance of physical properties of peatlands to assess critical groundwater table depths, associated drought, and fire hazard. Geoderma 347: 160–169.
Tian, J, Liu, L., Chen, H., Zhong, L., Zhou, X., Jiang, L., Zhan, W., Wang, Y., 2022. Aerobic environments in combination with substrate additions to soil significantly reshape depth-dependent microbial distribution patterns in Zoige peatlands, China. Applied Soil Ecology 170: 104252.
Wang, M., Liu, H., Rezanezhad, F., Zak, D., Lennartz, B., 2023. The influence of microtopography on soil carbon accumulation and nutrient release from a rewetted coastal peatland. Geoderma 438: 116637.
Webster, R., Oliver, M.A., 1990. Statistical methods in soil and land resources surveys. Oxford University Press. 328p.
Wösten, J.H.M., Clymans, E., Page, S.E., Rieley, J.O., Limin, S., 2008. Peat–water interrelationships in a tropical peatland ecosystem in Southeast Asia. Catena 73(2): 212–224.