Borehole Logging and Slug Tests for Evaluating the Applicability of Electrical Resistivity Tomography for Groundwater Exploration in Nampula Complex, Mozambique
Abstract
:1. Introduction
- i.
- Estimate the thickness of the productive zone
- ii.
- Identify possible fractures that were not detected by ERT
- iii.
- Correlate ERT models with hydraulic properties of the aquifer.
2. The Study Area
3. Methodology
3.1. Selection of the Investigated Boreholes
3.2. Electrical Resistivity Tomography
3.3. Borehole Geophysical Logging
3.4. Slug Test
3.5. Additional Information
4. Results
4.1. Electrical Resistivity Tomography
4.2. Geophysical Logging
4.3. Slug Test
5. Discussion
6. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Soil | Description of Typical Lithology | Resistivity (Ωm) |
---|---|---|
Soil ‘A’ | Generally less than 0.5 m thick. Generally red sandy soil, high porosity, well drained and leached. Laterite seldom present in areas of active erosion | 160–200 (wet) 2000–4000 (dry) |
Soil ‘a’ | Few meters thick sand and clay or clay sand, often concretionary | 100–200 |
Soil ‘b’ | Massive accumulation of secondary minerals (clay) in which some stable primary minerals remain. Low permeability and high porosity. Usually damp but yields little water. | 10–90 |
Soil ‘c’ | 1 to 30 m thick. Rock which is progressively altered upward to a granular friable layer of disintegrated crystal aggregates and rock fragments. Intermediate porosity and permeability. This zone frequently contains sub-artesian water, confined by upper clay rich material. | 60–300 |
Soil ‘d’ | 1 to 20 m thick. Fractured and fissured rock. Low porosity but moderate to high permeability in fissures. | 300–600 |
Fresh rock | Unweathered migmatite and granite | 2000–6000 |
Borehole | Layer 1 (m) | Layer 2 (m) | Layer 3 (m) | Basement (m) | Depth (m) | Specific Capacity (m2/day) [22] |
---|---|---|---|---|---|---|
Cuhare B | 5 | 15 | 5 | 4 | 34 | 2.67 |
Incomate | 7 | 20 | 11 | 0 | 38 | 2.27 |
Matibane | 12 | 9 | 0 | 26 | 47 | 0.60 |
Muriaze | 10 | 18 | 9 | 0 | 37 | 2.21 |
Murothone | 0 | 10 | 0 | 28 | 38 | 1.05 |
Naholoco C | 5 | 25 | 8 | 0 | 38 | 1.14 |
Naholoco EP1 | 2 | 5 | 20 | 18 | 45 | 3.33 |
Camaculo | 5 | 25 | 15 | 0 | 45 | 3.57 |
Namiraca | 3 | 10 | 2 | 28 | 43 | 0.83 |
Nampawa | 0 | 15 | 18 | 0 | 33 | 1.71 |
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Chirindja, F.; Rosberg, J.-E.; Dahlin, T. Borehole Logging and Slug Tests for Evaluating the Applicability of Electrical Resistivity Tomography for Groundwater Exploration in Nampula Complex, Mozambique. Water 2017, 9, 95. https://doi.org/10.3390/w9020095
Chirindja F, Rosberg J-E, Dahlin T. Borehole Logging and Slug Tests for Evaluating the Applicability of Electrical Resistivity Tomography for Groundwater Exploration in Nampula Complex, Mozambique. Water. 2017; 9(2):95. https://doi.org/10.3390/w9020095
Chicago/Turabian StyleChirindja, Farisse, Jan-Erik Rosberg, and Torleif Dahlin. 2017. "Borehole Logging and Slug Tests for Evaluating the Applicability of Electrical Resistivity Tomography for Groundwater Exploration in Nampula Complex, Mozambique" Water 9, no. 2: 95. https://doi.org/10.3390/w9020095
APA StyleChirindja, F., Rosberg, J. -E., & Dahlin, T. (2017). Borehole Logging and Slug Tests for Evaluating the Applicability of Electrical Resistivity Tomography for Groundwater Exploration in Nampula Complex, Mozambique. Water, 9(2), 95. https://doi.org/10.3390/w9020095