Association between Lineaments and Groundwater Intrusion into Tunnel Built in Granitic Rock Mass

  • Authors

    • H. Hussin
    • M. H. Arifin
    • T. A. Jamaluddin
    • M. F. A. Ghani
    • N. Ismail
    https://doi.org/10.14419/ijet.v7i3.28.23430
  • satellite image, lineament, groundwater intrusion, granitic rock mass.
  • Groundwater flow is controlled by geological structures such as lineaments. Lineaments existing in and around major infrastructures can cause problems because they commonly control the flow of groundwater. A tunnel built in granitic rock mass was chosen for this study with the objective of identifying and correlating the connection(s) between existent lineaments and groundwater intrusion.  Two methods are applied in this study, i.e. lineament interpretation and groundwater intrusion mapping along tunnels. Lineaments are interpreted manually using satellite image before being digitized in ArcGIS software. Four sets of lineaments are identified in the study area and are oriented in NW-SE, NE-SW, E-W and N-S directions. Existence of lineaments around a tunnel constructed in granitic rock mass is identified and cross-checked with location of groundwater intrusion inside the tunnel. Comparison between these outputs show that the location of groundwater intrusion is related to existent lineament(s). The groundwater flow is mostly uncontrolled and excessive.

     

     
     
  • References

    1. [1] L. Surinaidu, V. V. S. G. Rao, M. J. Nandan, C. S. Khokher, Y. Verma, and S. K. Choudhary. (2015). “Application of MODFLOW for groundwater seepage problems in the subsurface tunnels,†J. Ind. Geophys. Union, 19(4), 422–432.

      [2] M. F. Ramli, N. Yusof, M. K. Yusoff, H. Juahir, and H. Z. M. Shafri. (2010). “Lineament mapping and its application in landslide hazard assessment: A review,†Bull. Eng. Geol. Environ., 69(2), 215–233.

      [3] M. Marghany. (2012). “Fuzzy B-spline algorithm for 3-D lineament reconstruction,†Int. J. Phys. Sci., 7(15), 2294–2301.

      [4] M. E. Mostafa and A. Z. Bishta. (2005). “Significance of lineament patterns in rock unit classification and designation: A pilot study on the Gharibâ€Dara area, northern Eastern Desert, Egypt,†Int. J. Remote Sens., 26(7), 1463–1475.

      [5] I. Basson, P. Lourens, H. D. Paetzold, S. Thomas, R. Brazier, and P. Molabe. (2017). “Structural analysis and 3D modelling of major mineralizing structures at the Phalaborwa copper deposit,†Ore Geol. Rev., 83, 30–42.

      [6] R. Boyer and J. McQueen. (1964). “Comparison of mapped rock fractures and airphoto linear features,†Photogramm. Eng. Remote Sensing, 30(4), 630–635.

      [7] F. F. Sabins. (2000). Remote sensing – Principles and interpretation. W. H. Freeman and Company.

      [8] H. Hussin, M. H. Ariffin, M. A. A. Sulaiman, and N. Fauzi. (2017). “Effectiveness of 2-D resistivity survey to identify lineament (fault) from photolineament interpretation – Case study at Kampung Dato’ Mufti, Ampang, Selangor,†J. Trop. Resour. Sustain. Sci., 5, 1–8.

      [9] H. D. Tjia. (1971). “Lineament pattern of Penang Island, West Malaysia,†J. Trop. Geogr., 1, 24–29.

      [10] [10] A. B. Pour and M. Hashim. (2017). “Application of Landsat-8 and ALOS-2 data for structural and landslide hazard mapping in Kelantan, Malaysia,†Nat. Hazards Earth Syst. Sci., 17(7), 1285–1303.

      [11] M. Heidari, M. Sharafi, and S. Khazaei. (2016). “Study of morphology fractures in prediction of high local groundwater flow into tunnels using ASTER satellite images,†J. Indian Soc. Remote Sens., 44(2), 253–268.

      [12] B. O. Gabriel, O. M. Olusola, A. F. Omowonuola, and A. O. Lawrence. (2014). “A preliminary assessment of the groundwater potential of Ekiti State, Southwestern Nigeria, using terrain and satellite imagery analyses,†J. Environ. Earth Sci., 4(18), 33-42.

      [13] P. Sander. (2007). “Lineaments in groundwater exploration: A review of applications and limitations,†Hydrogeol. J., 15(1), 71–74.

      [14] M. Koch and P. M. Mather. (1997). “Lineament mapping for groundwater resource assessment: A comparison of digital Synthetic Aperture Radar (SAR) imagery and stereoscopic Large Format Camera (LFC) photographs in the Red Sea Hills, Sudan,†Int. J. Remote Sens., 18(7), 1465–1482.

      [15] A. A. Fenta, A. Kifle, T. Gebreyohannes, and G. Hailu. (2014). “Spatial analysis of groundwater potential using remote sensing and GIS-based multi-criteria evaluation in Raya Valley, northern Ethiopia,†Hydrogeol. J., 23(1), 195–206.

      [16] Jabatan Mineral dan Geosains. (2014). “Peta Geologi Semenanjung Malaysia Edisi ke 9,†Skala 1:500,000, Edisi Ke-14.

      [17] The Malaysian and Thai Working Groups. (2006). “Geology of the Batu Melintang-Sungai Kolok Transect Area along the Malaysia-Thailand Border,†Minerals and Geoscience Department, Malaysia, and Department of Mineral Resources, Thailand.

      [18] N. Rana, C. P. Chakravarthy, R. Nair, and L. G. Kannan. (2016). “Identification of lineaments using Google tools,†in Recent Advances in Rock Engineering, 2016, pp. 124–132.

      [19] L. Yu and P. Gong. (2012). “Google Earth as a virtual globe tool for Earth science applications at the global scale: Progress and perspectives,†Int. J. Remote Sens., 33(12), 3966–3986.

      [20] DIPS, “Version 6.017.†Rocscience Inc., 2015.

      [21] H. Hussin, N. Fauzi, T. A. Jamaluddin, and M. H. Arifin. (2017). “Rock Mass Quality Effected by Lineament Using Rock Mass Rating (RMR) – Case Study from Former Quarry Site,†Earth Sci. Malaysia, 1(2), 13–16.

      [22] F. Arikan and N. Aydin. (2012). “Influence of weathering on the engineering properties of dacites in Northeastern Turkey,†ISRN Soil Sci., 2012, 1-15.

      [23] A. S. Gupta and K. Seshagiri Rao. (2000). “Weathering effects on the strength and deformational behaviour of crystalline rocks under uniaxial compression state,†Eng. Geol., 56(3), 257–274.

      [24] F. Tating, R. Hack, and V. Jetten. (2015). “Weathering effects on discontinuity properties in sandstone in a tropical environment: Case study at Kota Kinabalu, Sabah Malaysia,†Bull. Eng. Geol. Environ., 74(2), 427–441.

  • Downloads

  • How to Cite

    Hussin, H., H. Arifin, M., A. Jamaluddin, T., F. A. Ghani, M., & Ismail, N. (2018). Association between Lineaments and Groundwater Intrusion into Tunnel Built in Granitic Rock Mass. International Journal of Engineering & Technology, 7(3.28), 244-251. https://doi.org/10.14419/ijet.v7i3.28.23430