IDENTIFIKASI AIR TANAH DI PERUMAHAN GRAHA MUSTAMINDO PERMAI 3 MENGGUNAKAN METODE GEOLISTRIK RESISTIVITAS KONFIGURASI SCHLUMBERGER

Teta Emi Sapitri, Usman Malik

Abstract


Identification of groundwater at Graha Mustamindo Permai 3 Housing Complex, Rimba Panjang Village, District Tambang, Kampar Regency, Riau Province has been done. The method used in this study is the geoelectric method with Schlumberger configuration. Identification of the aquifer layer was carried out on 2 tracking lines with a length of 100 meters. Measurement data were processed using software Progress. The results of data processing of track 1 and 2 show a maximum depth of 35 meters. The results of aquifer interpretation on track 1 are at depth of (3.90–11,13) meters with a resistivity value of 246.51 Ω.m. Track 2 is at a depth of (7.43–14.66) meters with a resistivity value of 142.15 Ω.m. Soil water samples were tested for pH parameters. All water samples have acid levels with an average pH of 5. So that it can cause rust an inner surface of water pipe resulting smelly water therefore the water cannot be consumed by the people.

Keywords


Groundwater; Geoelectric method; Configuration Schlumberger; pH parameter; Rimba Panjang

Full Text:

PDF (INDONESIA)

References


1. Hidayat, K. A. & Empung. (2016). Analisis curah hujan efektif dan curah hujan dengan berbagai periode ulang untuk wilayah Kota Tasikmalaya dan Kabupaten Garut. Jurnal Siliwangi, 2, 121–126.

2. Budiman, A., Delhasni, & Widjojo, S. (2013). Pendugaan potensi air tanah dengan metode geolistrik tahanan jenis konfigurasi Schlumberger. Jurnal Ilmu Fisika, 5, 72–78.

3. Manelsa, A. A. & Syech, R. Analisis distribusi tingkat resapan air tanah di Kecamatan Bukit Raya Kota Pekanbaru. Komunikasi Fisika Indonesia, 14(1), 951–954.

4. Sudadi, P. 2003. Penentuan Kualitas Air Tanah Melalui Analisis Unsur Kimia Terpilih. Bandung: Sub direktorat Pendayagunaaan Air Tanah DTLGP.

5. Putri, C. S. & Malik, U. Analisa kedalaman air panas menggunakan metode geolistrik konfigurasi schlumberger di objek wisata air panas Pawan. Komunikasi Fisika Indonesia, 17(2), 87–91.

6. Supriyadi, Khumaedi, & Putro, P. S. A. (2017). Geophysical and hydrochemical approach for seawater inutrusionin North Semarang, Central Java, Indonesia. International Journal of GEOMATE, 12, 134–140.

7. Syech, R., Agung, R., & Rajagukguk, A. pengaruh material penyusun bumi daerah rawan longsor di Sibiru-Biru Kabupaten Deli Serdang menggunakan metode resistivitas 2D konfigurasi Wenner Dan Schlumberger. Komunikasi Fisika Indonesia, 12(11), 739–744.

8. Juandi, M., Malik, U., & Leonardo, M. (2018). Analisa tingkat pencemaran air bawah tanah dengan metode geolistrik konfigurasi Schlumberger di Kecamatan Tampan Kota Pekanbaru. Komunikasi Fisika Indonesia, 15(1), 23–27.

9. Yeza, F. & Sohibun. (2019). Aplikasi metode geolistrik Schlumberger untuk mengidentifikasi lapisan air tanah di Desa Ulak Patian Rokan Hulu Riau. Jurnal Fisika Flux, 16, 54–60.

10. Fitrianto, N. T., Supriyadi, Taufiq, A. U., Mukromin, M. T., & Wardana, P. A. (2018). Identifikasi potensi air tanah menggunakan metode geolistrik resistivitas konfigurasi Schlumberger di Kelurahan Bapangsari Kecamatan Bagelan Kabupaten Purworejo. Jurnal Fisika Flux, 15, 100–104.




DOI: http://dx.doi.org/10.31258/jkfi.17.3.150-154

Refbacks

  • There are currently no refbacks.


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

Indexing by:

  

 

Image