1-20 OF 5328 RESULTS FOR

Bull Run Fault

Results shown limited to content with bounding coordinates.
Follow your search
Access your saved searches in your account

Would you like to receive an alert when new items match your search?
Close Modal
Sort by
Journal Article
Published: 01 December 1979
Journal of Sedimentary Research (1979) 49 (4): 1245–1261.
...R. C. Lindholm; J. M. Hazlett; S. W. Fagin Abstract Major conglomeratic units of the Culpeper Basin occur in four members of the Bull Run Formation (Leesburg, Goose Creek, Cedar Mountain, and Barboursville Members) and in the Waterfall Formation. These rocks are for the most part muddy/sandy pebble...
Series: GSA Field Guide
Published: 29 March 2018
DOI: 10.1130/2018.0050(03)
EISBN: 9780813756509
... fluorescent dyes, and seepage runs. Stage and water-quality instrumentation was installed in two caves in GRSM, the main stream of Bull Cave, and in a sump pool in Whiteoak Blowhole, at 173 m and 70 m below land surface, respectively. Following setup of the cave sites, dye injections were conducted...
FIGURES | View All (13)
Image
Published: 01 September 2013
Fig. 3 Geologic map of the Butte district, showing enlargements of the Bull Run Creek, Big Butte vent complex, the Continental area, and the central part of the district (Fig. 3A–D; Sales, 1914 ; Smedes et al., 1962 ; Smedes et al., 1988 ; Smedes, 1967 , 1968 ; Meyer et al., 1968
Image
Published: 01 September 2013
Fig. 3 Geologic map of the Butte district, showing enlargements of the Bull Run Creek, Big Butte vent complex, the Continental area, and the central part of the district (Fig. 3A–D; Sales, 1914 ; Smedes et al., 1962 ; Smedes et al., 1988 ; Smedes, 1967 , 1968 ; Meyer et al., 1968
Image
Published: 01 September 2013
Fig. 3 Geologic map of the Butte district, showing enlargements of the Bull Run Creek, Big Butte vent complex, the Continental area, and the central part of the district (Fig. 3A–D; Sales, 1914 ; Smedes et al., 1962 ; Smedes et al., 1988 ; Smedes, 1967 , 1968 ; Meyer et al., 1968
Image
Published: 01 September 2013
Fig. 3 Geologic map of the Butte district, showing enlargements of the Bull Run Creek, Big Butte vent complex, the Continental area, and the central part of the district (Fig. 3A–D; Sales, 1914 ; Smedes et al., 1962 ; Smedes et al., 1988 ; Smedes, 1967 , 1968 ; Meyer et al., 1968
Journal Article
Journal: AAPG Bulletin
Published: 01 March 1955
AAPG Bulletin (1955) 39 (3): 317–328.
... Run anticline the “Oriskany” was encountered in wells at a depth of approximately 3,000 feet. The major structural elements of the area are complex folds; no mappable faults were recognized in the area west of the North Mountain fault, which lies about 11 miles southeast of the Bergton-Crab Run...
FIGURES | View All (4)
Journal Article
Published: 19 November 2019
Bulletin of the Seismological Society of America (2020) 110 (1): 83–109.
... of iterations, very fast cooling function, and 10 runs). Figure 13. Diagram of the logic tree used in this work. The reference model is shown in bold. Our results may be most useful for fault systems in which geologic evidence suggests that rupture propagation is influenced by fault geometry...
FIGURES | View All (26)
Journal Article
Published: 01 June 1974
Bulletin of the Seismological Society of America (1974) 64 (3-1): 687–698.
... , Bull. Seism. Soc. Am. 47 , 349 - 362 . Savage J. C. Hastie L. M. (1966) . Surface deformation associated with dip-slip faulting , J. Geophys. Res. 71 , 4897 - 4904...
Journal Article
Published: 03 December 2024
Seismological Research Letters (2024)
.... , and Roecker S. W. 1990 . The effect of S‐wave arrival times on the accuracy of hypocenter estimation , Bull. Seismol. Soc. Am. 80 , no.  6A , 1605 – 1628 . Got J.‐L. Fréchet J. , and Klein F. W. 1994 . Deep fault plane geometry inferred from multiplet relative relocation beneath...
FIGURES | View All (7)
Journal Article
Published: 16 October 2024
Bulletin of the Seismological Society of America (2025) 115 (1): 54–68.
... Geo 8 30.1 6.5 5.82 195 14.38 5.84 0.76 212 Geo 9 30.1 6.5 5.82 195 16.98 8.34 0.32 237 In this study, we run 54 simulations to investigate the rupture path on branch faults where we vary the dipping angles (nine geometries), the stressing angle (three inclinations...
FIGURES | View All (14)
Journal Article
Published: 26 March 2025
The Seismic Record (2025) 5 (1): 127–135.
.... 2023 . Performance and next‐generation development of the finite‐fault rupture detector (FinDer) within the United States West Coast ShakeAlert warning system , Bull. Seismol. Soc. Am. 113 , no.  2 , 648 – 663 , doi: 10.1785/0120220183 . Böse M. Felizardo C. , and Heaton T. H...
FIGURES | View All (5)
Journal Article
Published: 08 July 2024
Seismological Research Letters (2024) 95 (6): 3709–3721.
... geometry pattern of seismicity distribution has been shown. To the first order, we noted that there is not a single extensive linear geometry running through our study area; rather, it appears to be a fault system having a combination of several segmented seismogenic structures. The overall depth range...
FIGURES | View All (8)
Journal Article
Published: 06 September 2023
Bulletin of the Seismological Society of America (2023) 113 (6): 2519–2542.
... damage zone; GG, geotechnical gradient; and T, topography. We directly simulated Tacoma fault earthquakes via spectral element method modeling. Simulations were run using the code SPECFEM3D, which was chosen for its efficiency in parallel computing settings and its handling of fine‐scale, near...
FIGURES | View All (17)
Journal Article
Published: 01 June 1974
Bulletin of the Seismological Society of America (1974) 64 (3-1): 657–669.
... the eastern part of the Anatolian Fault, thus showing this area of the fault zone as seismically active. The 4 and 5 contours of this seismic high toward the south run almost parallel to and enclose the eastern part of the Taurus Mountains. These contours extend further southwestward as far as Cyprus. The b...
Journal Article
Published: 27 December 2023
Bulletin of the Seismological Society of America (2024) 114 (2): 775–793.
...: 10.1193/070113EQS184M . Böse M. Andrews J. Hartog R. , and Felizardo C. 2023 . Performance and next‐generation development of the finite‐fault rupture detector (FinDer) within the United States West Coast ShakeAlert warning system , Bull. Seismol. Soc. Am. doi: 10.1785/0120220183...
FIGURES | View All (8)
Journal Article
Published: 13 May 2024
Seismological Research Letters (2024) 95 (5): 2859–2873.
... by shifting the nucleation location within the rupturable area, near the fault edge away from the SSAF, to produce higher directivity effects. For example, if the triggering model is 7 × 7 km, we run new experiments starting from a 6 × 6 km model with nucleation location near the opposite edge...
FIGURES | View All (5)
Journal Article
Published: 01 March 1921
Bulletin of the Seismological Society of America (1921) 11 (1): 89–90.
..., Bull. o[ the Depart~ne~tt of ~eology, 12, No. 7 pp 431-473. 1921 Without going into a discussion of the possible number of shearing planes which may be produced by a defimte pressure in an ideal ease, it may be said that in a case like that of the San Andreas fault three sets of planes may develop...
Journal Article
Published: 15 May 2019
Seismological Research Letters (2019) 90 (4): 1678–1688.
... used to perform PSHA. Figure 2. Flowchart of the overall SHERIFS methodology. BG, Backgorund; FtF, fault‐to‐fault; NMS, non‐mainshock. Once the necessary information are in the input files and the python file1_SHERIFS.py has been filled with information concerning the run, SHERIFS opens...
FIGURES | View All (9)
Journal Article
Published: 19 March 2025
Seismological Research Letters (2025)
... . Day S. , and Ely G. 2002 . Effect of a shallow weak zone on fault rupture: Numerical simulation of scale‐model experiments , Bull. Seismol. Soc. Am. 92 , no.  8 , 3022 – 3041 , doi: 10.1785/0120010273 . Dieterich J. H. , and Richards‐Dinger K. B. 2010 . Earthquake...
FIGURES | View All (11)