Hydrogeochemical characteristics of groundwater in Baleendah - Soreang, South Bandung, West Java Province

Hilman Nabil Shidiq Rahmatulloh, Mohamad Sapari Dwi Hadian, Bombom Rachmat Suganda, Rizka Maria

Abstract


The Baleendah – Soreang area is part of the southern part of the Bandung Soreang Groundwater Basin, constructed by volcanic activity. Regional development in the Baleendah – Soreang area can decrease groundwater quality, influenced by natural and anthropogenic factors. Groundwater hydrogeochemical analysis is important in environmental management studies. This study aims to determine groundwater’s physical properties and hydrogeochemical facies in this area. The groundwater hydrochemistry analysis, determined by analysis of Stiff diagrams and Piper diagrams, shows that the groundwater in the area is classified as freshwater and has intermediate groundwater flow. In addition, the groundwater quality is affected by some anthropogenic activities.


Keywords


groundwater, hydrogeochemistry, facies, piper diagram, stiff diagram, evolution

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Abidi, J.H., Farhat, B., Ben Mammou, A., Oueslati, N., 2017. Characterization of recharge mechanisms and sources of groundwater salinization in Ras Jbel coastal aquifer (Northeast Tunisia) using hydrogeochemical tools, environmental isotopes, GIS, and statistics, J. Chem., 8610894.

Agniy, R.F., Cahyadi, A. 2015., Analisis Evolusi Hidrogeokimia Airtanah di Sebagian Mataair Karst Kabupaten Rembang Bagian Selatan. Prosiding Seminar Nasional Innovation in Environmental Management. Semarang: Program Pascasarjana Universitas Diponegoro.

Alzwar, M., Akbar, N., and Bachri S., 1992. Peta geologi lembar Garut dan Pemeungpeuk, Skala 1 : 250.000, Jawa, Pusat Penelitian dan Pengembangan Geologi, Bandung.

Aris, A.Z.; Praveena, S.M., Isa, N.M., 2013. ‘Groundwater Composition and Geochemical Controls in Small Tropical Island of Malaysia: A Comparative Study’. dalam Wetzelhuetter, C. 2013. Groundwater in The Coastal Zones of AsiaPacific. Dordrecht: Springer.

Cahyadi, A., 2015. Analisis Potensi Sumberdaya Air Pulau Koral Sangat Kecil (Studi Kasus di Pulau Koral Pramuka, Kabupaten Kepulauan Seribu, DKI Jakarta). Tesis.Yogyakarta: Magister Perencanaan Pengelolaan Pesisir dan Daerah Aliran Sungai (MPPDAS), Fakultas Geografi, Universitas Gadjah Mada.

Chidambaram, S., Anandhan, P., Prasanna, M. V., Srinivasamoorthy, K., Vasanthavigar, M., 2013. Major ion chemistry and identification of hydrogeochemical processes controlling groundwater in and around Neyveli Lignite Mines, Tamil Nadu, South India, Arabian Journal of Geosciences, 6(9), 3451-3467.

Davis, S. N., De Wiest, R. J. M., Ferris, J. G., Knowles, B., Brown, R. H., Stallman, R. W., 1966. Groundwater in fractured rocks. New York, Hydrogeology, 318.

Emenike, C.P., Tenebe, I.T., Jarvis, P, 2018. Fluoride contamination in groundwater sources in Southwestern Nigeria: Assessment using multivariate statistical approach and human health risk. Ecotoxicol. Environ. Saf., 156, 391–402.

Gilli, E.; Mangan, C., Mudry, J., 2012. Hydrogeology: Objectives, Methods, Applications, diterjemahkan dari Bahasa Perancis oleh Chloe Fandel. Boca Raton: CRC Press.

Hem, J.D., 1970. Study and Interpretation of the Chemical Characteristic of Natural Water. United State Government Printing Office. Washington D.C.

Hendarmawan, Satrio, 2011. Recharge area on the slopes of volcano based on geological setting, content of deuterium and oxygen isotopes of groundwater chemistry: Case study on the slopes of Salak mountain, West Java, J. Trop. Soils, Vol. 16. No. 3., pp.245–256.

Hiscock, K.M., Bense, V.F., 2014. Hydrogeology: Principles and Practice, Edisi Kedua. Chichester: John Wiley and Sons Ltd.

Kloosterman, F. H., 1983. Reconnaissance Study of Groundwater Resources in the Kabupaten Cirebon. Provincial Health Service Irectorate CDC, Bandung.

Krishnaraj, S., Vijayaraghavan, K., Murugesan, V., Rajivgandhi, R., Sarma, V. S., 2011. Integrated techniques to identify groundwater vulnerability to pollution in a highly industrialized terrain, Tamilnadu, India. Environmental Monitoring and Assessment, Vol. 182. No. 1 dan 4., pp.47-60.

Kumaresan, M., Riyazuddin, P., 2006. Major ion chemistry of environmental samples around sub-urban of Chennai city. Current science, pp.1668-1677.

Maria, R., Satrio, S., Iskandarsyah, T. Y. W. M., Suganda, B. R., Delinom, R. M., Marganingrum, D., Purwoko, W., Sukmayadi, D., Hendarmawan, H., 2021. Groundwater Recharge Area Based on Hydrochemical and Environmental Isotopes Analysis in the South Bandung Volcanic Area. Indonesian Journal of Chemistry, Vol. 21. No.3., pp.609-625.

Muchamad, A. N., Alam, B. Y. C. S., Yuningsih, E. T., 2017. Hidrogeokimia Airtanah Pada Daerah Pantai: Studi Kasus Dataran Rendah Katak, Desa Sumber Agung, Kabupaten Banyuwangi. RISET Geologi dan Pertambangan, Vol. 27. No. 1., pp.39-46.

Piper, A. M., 1944. A graphic procedure in the geochemical interpretation of water‐analyses. Eos, Transactions American Geophysical Union, Vol. 25. No. 6., pp.914-928.

Ramesh, K., Jagadeeswari, P. B., 2013. ‘Contamination of Groundwater Due to Solid Waste Disposal and Textile Effluent in and Around Erode City, Tamil Nadu’. International Journal of Research in Chemistry and Environment, 3, pp. 262–271.

Resubun, M.L., Wahjunie, E.D., Tarigan, S.D., 2018. Analisis potensi ketersediaan dan kebutuhan air di Daerah Aliran Sungai Cisangkuy, JITL, Vol. 20. No. 2., pp.57–62.

Santosa, L. W., 2010. Pengaruh genesis bentuklahan terhadap hidrostratigrafi akuifer dan hidrogeokimia dalam evolusi airtanah bebas:: Kasus pada bentanglahan kepesisiran Kabupaten Kulonprogo, Daerah Istimewa Yogyakarta (Doctoral dissertation, Universitas Gadjah Mada).

Satrio, Hendarmawan, Hadian, M.S.D., Pujiindiyati, E.R., 2016. Karakteristik air tanah dangkal kota Semarang pada musim penghujan berdasarkan pendekatan isotop stabil (18O, 2 H) dan kimia air, J. Ilm. Apl. Isot. Radiasi, Vol. 11. No. 1., pp.73–86.

Siftianida, I. I., Wijatna, A. B., Pratikno, B., 2016. Aplikasi isotop alam untuk pendugaan daerah resapan air mata air di kecamatan cijeruk, kabupaten bogor, jawa barat. Jurnal Ilmiah Aplikasi Isotop dan Radiasi Vol. 12. No. 2., pp.97-105.

Singh, P., Thakur, J. K., Kumar, S., 2013. Delineating groundwater potential zones in a hard-rock terrain using geospatial tool. Hydrological Sciences Journal, Vol. 58. No. 1., pp.213-223.

Soetrisno, S., 1983. Peta Hidrogeologi Indonesia Skala 1:250.000. Direktorat Geologi Tata Lingkungan.

Šráček, O., Zeman, J., 2004. Introduction to Environmental Hydrogeochemistry. Brno: Faculty of Science, Masaryk University.

Sreedevi, P.D., Sreekanth, P.D., Ahmed, S., Reddy, D.V, 2018. Appraisal of groundwater quality in a crystalline aquifer: A chemometric approach. Arab. J. Geosci., 11, 211.

Stiff, H. A., 1951. The interpretation of chemical water analysis by means of patterns. Journal of petroleum technology, Vol. 3. No. 10., pp.15-3.

Tikhomirov, V. V., 2016. Hydrogeochemistry Fundamentals and Advances, Groundwater Composition and Chemistry (Vol. 1). John Wiley & Sons.

Toulier, A., Baud, B., de Montety, V., Lachassagne, P., Leonardi, V., Pistre, V., Dautria, J.M., Hendrayana, H., Fajar, M.H.M., Muhammad, A.S., Beon, O., Jourde, H., 2019. Multidisciplinary study with quantitative analysis of isotopic data for the assessment of recharge and functioning of volcanic aquifers: Case of Bromo-Tengger volcano, Indonesia, J. Hydrol.: Reg. Stud., 26, 100634.




DOI: http://dx.doi.org/10.55981/risetgeotam.2023.1235

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