An Integrated Approach for Saturation Modeling Using Hydraulic Flow Units: Examples from the Upper Messinian Reservoir
Abstract
:1. Introduction
2. Geological Setting
3. Materials and Methods
3.1. Reservoir Hydraulic Flow Units (HFUs)
- Øz = the normalized porosity in a fraction, and
- Φ = porosity in a fraction, K = permeability in milli Darcy (mD).
3.2. Well Log Analysis
3.3. Neural Log Analysis
3.4. Free Water Level (FWL) and Fluid Contacts
3.5. Mercury Injection Capillary Pressure (MICP)
- r = pore radius, σ = the interfacial tension, θ = contact angle,
- Pc = capillary pressure (absolute applied pressure).
- Pc = capillary pressure (absolute applied pressure), σ = the interfacial tension,
- ρ = the density of water and hydrocarbon (gas or oil), g = the gravitational acceleration,
- h = the height above FWL, = specific gravity of brine,
- = specific gravity of hydrocarbons, 0.434 psi/ft = gradient of water.
3.6. Reservoir Capillary Pressure and Saturation Height Function
3.7. Leverett J-Function
- J = Leverett J-function, Pc = capillary pressure, σ = the interfacial tension, θ = contact angle,
- Φ = porosity in a fraction, K = permeability in mile Darcie’s (mD).
4. Results
4.1. Facies Evaluation
4.1.1. Flood Plain Environment
4.1.2. Tidally Influenced Fluvial Channel Environment
4.1.3. Fluvial Channel Environment
4.1.4. Tidal Channel Environment
4.2. Hydraulic Flow Units (HFU)
4.3. Formation Evaluation
4.4. Neural Log FZI and Permeability Prediction
4.5. Saturation Height Model
- a = 1.4863, b = (−0.432) for HFU#1
- a = 1.3103, b = (−0.391) for HFU#2
- a = 1.2406, b = (−0.275) for HFU#3 and 4
- SW = water saturation (v/v); h = height above free water level (ft).
4.6. Water Saturation Using J-Function
- a = 0.4618, b = (−2.127) for HFU#1
- a = 0.1465, b = (−2.8) for HFU#2
- a = 0.100, b = (−3.12) for HFU#3 and 4
- where SW = water saturation (v/v); J = Leverett J-function.
5. Discussion
5.1. Depositional Environments, Flow Units, and Control upon Reservoir Quality
5.2. Flow Unit Identification and Validation of Irreducible Water Saturation and SW Estimation
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameter | Contact Angles (°) | Parameter Description |
---|---|---|
σ Res | 50 | interfacial tension in the reservoir (gas–water) |
θ Res | 0 | contact angle in the reservoir (gas–water) |
σ Lab | 70 | interfacial tension in lab (air–water) |
θ Lab | 0 | contact angle in lab (air–water) |
σ Lab | 485 | interfacial tension in the lab (mercury–air) |
θ Lab | 140 | contact angle in the lab (mercury–air) |
Hydraulic Flow Unit | FZI (µm) | Porosity (%) | Permeability (mD) | Reservoir Quality |
---|---|---|---|---|
HFU# 1 | 4.5 to 10 | 25–33 | >900 | Excellent |
HFU# 2 | 1.7 to 4.5 | 17–33 | 70–1000 | Good–Very Good |
HFU# 3 | 0.6 to 1.7 | 12–33 | 4–100 | Moderate–Good |
HFU# 4 | 0.2 to 0.6 | 15–30 | 0.6–8 | Low |
Well | Zone | Top (m) | Bottom (m) | Gross (m) | Net (m) | Shale (%) | PHIE (%) | SW (%) | FZI (µm) | KH (mD) |
---|---|---|---|---|---|---|---|---|---|---|
Salma-2 | Estuarine | 2014 | 2025 | 11 | 2.3 | 24.5 | 18.9 | 35.9 | 3.9 | 357 |
Fluvial | 2025 | 2088 | 63 | 23.3 | 18.9 | 21.5 | 43.0 | 4.5 | 636 | |
Salma-4 | Tidally influenced Fluvial | 2088 | 2100 | 12 | 9.8 | 21.4 | 23.9 | 38.9 | 3.7 | 677 |
Estuarine | 2100 | 2181 | 67 | 10.8 | 25.2 | 18.8 | 89.9 | 2.2 | 171 | |
Bayhead Delta | 2124 | 2138 | 14 | 10.2 | 24.4 | 18.4 | 99.4 | 1.9 | 84 | |
Fluvial | 2181 | 2291 | 110 | 64.9 | 21.0 | 19.7 | 99.8 | 3.5 | 684 |
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El-Gendy, N.H.; Mabrouk, W.M.; Waziry, M.A.; Dodd, T.J.; Abdalla, F.A.; Alexakis, D.E.; Barakat, M.K. An Integrated Approach for Saturation Modeling Using Hydraulic Flow Units: Examples from the Upper Messinian Reservoir. Water 2023, 15, 4204. https://doi.org/10.3390/w15244204
El-Gendy NH, Mabrouk WM, Waziry MA, Dodd TJ, Abdalla FA, Alexakis DE, Barakat MK. An Integrated Approach for Saturation Modeling Using Hydraulic Flow Units: Examples from the Upper Messinian Reservoir. Water. 2023; 15(24):4204. https://doi.org/10.3390/w15244204
Chicago/Turabian StyleEl-Gendy, Nader H., Walid M. Mabrouk, Mohamed A. Waziry, Thomas J. Dodd, Fathy A. Abdalla, Dimitrios E. Alexakis, and Moataz Khairy Barakat. 2023. "An Integrated Approach for Saturation Modeling Using Hydraulic Flow Units: Examples from the Upper Messinian Reservoir" Water 15, no. 24: 4204. https://doi.org/10.3390/w15244204