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Erschienen in: Environmental Earth Sciences 5/2012

01.07.2012 | Original Article

Incorporation of fracture directions into 3D geostatistical methods for a rock fracture system

verfasst von: Katsuaki Koike, Chunxue Liu, Tomoji Sanga

Erschienen in: Environmental Earth Sciences | Ausgabe 5/2012

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Abstract

Simulating a rock fracture distribution is an important problem common to various fields in geosciences. This paper presents GEOFRAC, a geostatistical method to simulate a fracture distribution by incorporating the directions (strikes and dips) of the sampled fracture data into the simulation. Fracture locations are generated randomly following fracture densities assigned by a sequential Gaussian simulation. Fracture directions are transformed into an indicator set consisting of several binary (0 and 1) variables and the variables are compressed using the principal component analysis. Ordinary kriging is then employed to estimate the distributions of these principal values and the results are back-transformed into the coordinate system of the original indicator set. Fracture directions are generated randomly using their histograms within the defined directional interval. Finally, facets (fracture elements) are determined from the simulated locations and directions, and the fractures within the angle and distance tolerances are connected to form a fracture plane. From a case study of applying GEOFRAC to the fracture data in Kikuma granite, southwest Japan, GEOFRAC was shown to be able to depict a plausible fracture system because the simulated directions corresponded well to those measured. Furthermore, the simulated fracture system was available to estimate the hydraulic conductivity of the study site, which was roughly in agreement with the average of hydraulic test results.

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Literatur
Zurück zum Zitat Acuna J, Yortsos Y (1995) Application of fractal geometry to the study of networks of fractures and their pressure transient. Water Resour Res 31:527–540CrossRef Acuna J, Yortsos Y (1995) Application of fractal geometry to the study of networks of fractures and their pressure transient. Water Resour Res 31:527–540CrossRef
Zurück zum Zitat Andersson J, Dverstrop B (1987) Conditional simulations of fluid flow in three-dimensional network of discrete fractures. Water Resour Res 23:1876–1886CrossRef Andersson J, Dverstrop B (1987) Conditional simulations of fluid flow in three-dimensional network of discrete fractures. Water Resour Res 23:1876–1886CrossRef
Zurück zum Zitat Andersson J, Thunvik R (1986) Predicting mass transport in discrete fracture networks with the aid of geometrical filed data. Water Resour Res 22:1941–1950CrossRef Andersson J, Thunvik R (1986) Predicting mass transport in discrete fracture networks with the aid of geometrical filed data. Water Resour Res 22:1941–1950CrossRef
Zurück zum Zitat Andersson J, Shapiro AM, Bear J (1984) A stochastic model of a fractured rock conditioned by measured information. Water Resour Res 20:79–88CrossRef Andersson J, Shapiro AM, Bear J (1984) A stochastic model of a fractured rock conditioned by measured information. Water Resour Res 20:79–88CrossRef
Zurück zum Zitat Billaux D, Chilès JP, Hestir K, Long J (1989) Three-dimensional statistical modelling of a fractured rock mass—an example from the Fanay-Augères mine. Int J Rock Mech Miner Sci and Geomech Abstr 26:281–299CrossRef Billaux D, Chilès JP, Hestir K, Long J (1989) Three-dimensional statistical modelling of a fractured rock mass—an example from the Fanay-Augères mine. Int J Rock Mech Miner Sci and Geomech Abstr 26:281–299CrossRef
Zurück zum Zitat Cacas MC, Ledoux E, DeMarsily G, Tille B, Barbreau A, Durand E, Feuga B, Peaudecerf P (1990) Modelling fracture flow with a stochastic discrete fracture network: calibration and validation: 1. The flow model. Water Resour Res 26:479–489 Cacas MC, Ledoux E, DeMarsily G, Tille B, Barbreau A, Durand E, Feuga B, Peaudecerf P (1990) Modelling fracture flow with a stochastic discrete fracture network: calibration and validation: 1. The flow model. Water Resour Res 26:479–489
Zurück zum Zitat Chilès JP (1988) Fractal and geostatistical methods for modeling of a fracture network. Math Geol 20:631–654CrossRef Chilès JP (1988) Fractal and geostatistical methods for modeling of a fracture network. Math Geol 20:631–654CrossRef
Zurück zum Zitat Clemo T, Smith L (1997) A hierarchical model for solute transport in fractured media. Water Resour Res 33:1763–1783CrossRef Clemo T, Smith L (1997) A hierarchical model for solute transport in fractured media. Water Resour Res 33:1763–1783CrossRef
Zurück zum Zitat Dershowitz WS, Einstein HH (1988) Characterizing rock joint geometry with joint system models. Rock Mech and Rock Eng 21:21–51CrossRef Dershowitz WS, Einstein HH (1988) Characterizing rock joint geometry with joint system models. Rock Mech and Rock Eng 21:21–51CrossRef
Zurück zum Zitat Deutsch CV, Journel AG (1998) GSLIB: Geostatistical software library and user’s guide. Oxford University Press, London Deutsch CV, Journel AG (1998) GSLIB: Geostatistical software library and user’s guide. Oxford University Press, London
Zurück zum Zitat Heffer KJ, Bevan TG (1990) Scaling relationships in natural fractures: data, theory, and application. In: Proceedings of the 2nd European Petroleum Conference, pp 367–376 Heffer KJ, Bevan TG (1990) Scaling relationships in natural fractures: data, theory, and application. In: Proceedings of the 2nd European Petroleum Conference, pp 367–376
Zurück zum Zitat Hewett TA (1994) Fractal methods for fracture characterization. In: Yarus JM, Chambers RL (eds) Stochastic modeling and geostatistics: principles, methods, and case studies. AAPG Compute Applications in Geology 3, AAPG, pp 249–260 Hewett TA (1994) Fractal methods for fracture characterization. In: Yarus JM, Chambers RL (eds) Stochastic modeling and geostatistics: principles, methods, and case studies. AAPG Compute Applications in Geology 3, AAPG, pp 249–260
Zurück zum Zitat Japan Underground Oil Storage Co. Ltd. (1991) Report on Enforcement Management Work of the Kikuma Station Construction-Geological Series (in Japanese) Japan Underground Oil Storage Co. Ltd. (1991) Report on Enforcement Management Work of the Kikuma Station Construction-Geological Series (in Japanese)
Zurück zum Zitat Koike K, Ichikawa Y (2006) Spatial correlation structures of fracture systems for identifying a scaling law and modeling fracture distributions. Comput Geosci 32:1079–1095CrossRef Koike K, Ichikawa Y (2006) Spatial correlation structures of fracture systems for identifying a scaling law and modeling fracture distributions. Comput Geosci 32:1079–1095CrossRef
Zurück zum Zitat Koike K, Nagano S, Kawaba K (1998) Construction and analysis of interpreted fracture planes through combination of satellite-image derived lineaments and digital elevation model data. Comput Geosci 24:573–583CrossRef Koike K, Nagano S, Kawaba K (1998) Construction and analysis of interpreted fracture planes through combination of satellite-image derived lineaments and digital elevation model data. Comput Geosci 24:573–583CrossRef
Zurück zum Zitat Koike K, Komorida K, Ichikawa Y (2001) Fracture-distribution modeling in rock mass using borehole data and geostatistical simulation. In: Proceedings of International Association for Mathematical Geology Conference (Cancun 2001), CD-ROM Koike K, Komorida K, Ichikawa Y (2001) Fracture-distribution modeling in rock mass using borehole data and geostatistical simulation. In: Proceedings of International Association for Mathematical Geology Conference (Cancun 2001), CD-ROM
Zurück zum Zitat Laslett GM (1982) Censoring and edge effects in areal and line transect sampling of rock joint traces. Math Geol 14:125–140CrossRef Laslett GM (1982) Censoring and edge effects in areal and line transect sampling of rock joint traces. Math Geol 14:125–140CrossRef
Zurück zum Zitat Long JCS, Billaux DM (1987) From field data to fracture network modeling: an example incorporating spatial structure. Water Resour Res 23:1201–1216CrossRef Long JCS, Billaux DM (1987) From field data to fracture network modeling: an example incorporating spatial structure. Water Resour Res 23:1201–1216CrossRef
Zurück zum Zitat Long JCS, Gilmour P, Witherspoon PA (1985) A model for steady fluid flow in random three-dimensional networks of disc-shaped fractures. Water Resour Res 21:1105–1115CrossRef Long JCS, Gilmour P, Witherspoon PA (1985) A model for steady fluid flow in random three-dimensional networks of disc-shaped fractures. Water Resour Res 21:1105–1115CrossRef
Zurück zum Zitat Mauldon M, Dunne WM, Rohrbaugh MB Jr (2001) Circular scanlines and circular windows: new tools for characterizing the geometry of fracture traces. J Struct Geol 23:247–258CrossRef Mauldon M, Dunne WM, Rohrbaugh MB Jr (2001) Circular scanlines and circular windows: new tools for characterizing the geometry of fracture traces. J Struct Geol 23:247–258CrossRef
Zurück zum Zitat Nureki T (1958) On the structure of granite complex in the northern part of the Takanawa Peninsula, Ehime prefecture. J Sci of the Hiroshima Univ (Ser. C, Geol and Mineral) 2:109–127 Nureki T (1958) On the structure of granite complex in the northern part of the Takanawa Peninsula, Ehime prefecture. J Sci of the Hiroshima Univ (Ser. C, Geol and Mineral) 2:109–127
Zurück zum Zitat Oda M, Hatsuyama Y, Ohnishi Y (1987) Numerical experiments on permeability tensor and its application to jointed granite at Stripa mine, Sweden. J Geophys Res 92B:8037–8048CrossRef Oda M, Hatsuyama Y, Ohnishi Y (1987) Numerical experiments on permeability tensor and its application to jointed granite at Stripa mine, Sweden. J Geophys Res 92B:8037–8048CrossRef
Zurück zum Zitat Odling NE (1997) Scaling and connectivity of joint systems in sandstones from western Norway. J Struct Geol 19:1257–1271CrossRef Odling NE (1997) Scaling and connectivity of joint systems in sandstones from western Norway. J Struct Geol 19:1257–1271CrossRef
Zurück zum Zitat Priest SD, Hudson JA (1976) Discontinuity spacings in rock. Int J Rock Mech Min Sci and Geomech Abst 13:135–148CrossRef Priest SD, Hudson JA (1976) Discontinuity spacings in rock. Int J Rock Mech Min Sci and Geomech Abst 13:135–148CrossRef
Zurück zum Zitat Riley MS (2004) An algorithm for generating rock fracture patterns: mathematical analysis. Math Geol 36:683–702CrossRef Riley MS (2004) An algorithm for generating rock fracture patterns: mathematical analysis. Math Geol 36:683–702CrossRef
Zurück zum Zitat Rouleau A, Gale JE (1985) Statistical characterization of the fracture system in the Stripa granite, Sweden. Int J Rock Mech Min Sci and Geomech Abst 22:353–367CrossRef Rouleau A, Gale JE (1985) Statistical characterization of the fracture system in the Stripa granite, Sweden. Int J Rock Mech Min Sci and Geomech Abst 22:353–367CrossRef
Zurück zum Zitat Rouleau A, Gale JE (1987) Stochastic discrete fracture simulation of groundwater flow into an underground excavation in granite. Int J Rock Mech Min Sci and Geomech Abst 24:99–112CrossRef Rouleau A, Gale JE (1987) Stochastic discrete fracture simulation of groundwater flow into an underground excavation in granite. Int J Rock Mech Min Sci and Geomech Abst 24:99–112CrossRef
Zurück zum Zitat Snow DT (1969) Anisotropic permeability of fractured media. Water Resour Res 5:1273–1289CrossRef Snow DT (1969) Anisotropic permeability of fractured media. Water Resour Res 5:1273–1289CrossRef
Zurück zum Zitat Suro-Pérez V, Journel AG (1991) Indicator principal component kriging. Math Geol 23:759–788CrossRef Suro-Pérez V, Journel AG (1991) Indicator principal component kriging. Math Geol 23:759–788CrossRef
Zurück zum Zitat Terzaghi RD (1965) Sources of error in joint surveys. Geotech 15:287–304CrossRef Terzaghi RD (1965) Sources of error in joint surveys. Geotech 15:287–304CrossRef
Zurück zum Zitat Tran NH, Chen Z, Rahman SS (2006) Integrated conditional global optimisation for discrete fracture network modeling. Comput Geosci 32:17–27CrossRef Tran NH, Chen Z, Rahman SS (2006) Integrated conditional global optimisation for discrete fracture network modeling. Comput Geosci 32:17–27CrossRef
Metadaten
Titel
Incorporation of fracture directions into 3D geostatistical methods for a rock fracture system
verfasst von
Katsuaki Koike
Chunxue Liu
Tomoji Sanga
Publikationsdatum
01.07.2012
Verlag
Springer-Verlag
Erschienen in
Environmental Earth Sciences / Ausgabe 5/2012
Print ISSN: 1866-6280
Elektronische ISSN: 1866-6299
DOI
https://doi.org/10.1007/s12665-011-1350-z

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