Subsurface Investigation of the Neogene Mygdonian Basin, Greece Using Magnetic Data

被引:23
作者
Ibraheem, Ismael M. [1 ]
Gurk, Marcus [1 ]
Tougiannidis, Nikolaos [2 ]
Tezkan, Buelent [1 ]
机构
[1] Univ Cologne, Inst Geophys & Meteorol, Pohligstrsse 3,Off 3-235, D-50969 Cologne, Germany
[2] Univ Cologne, Inst Geol & Mineral, Zulpicher Str 49a, D-50674 Cologne, Germany
关键词
Mygdonian Basin; magnetic data; edge detection; TDR; AS; SPI; ETHDR; 2D forward modeling; GRAVITY; GRADIENT; MODELS; DESERT; BODIES; RANGE; DEPTH; FAULT; TILT; AREA;
D O I
10.1007/s00024-018-1809-x
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
A high-resolution ground and marine magnetic survey was executed to determine the structure of the subsurface and the thickness of the sedimentary cover in the Mygdonian Basin. A spacing of approximately 250 m or 500 m between measurement stations was selected to cover an area of 15 km x 22 km. Edge detectors such as total horizontal derivative (THDR), analytic signal (AS), tilt derivative (TDR), enhanced total horizontal gradient of tilt derivative (ETHDR) were applied to map the subsurface structure. Depth was estimated by power spectrum analysis, tilt derivative, source parameter imaging (SPI), and 2D-forward modeling techniques. Spectral analysis and SPI suggest a depth to the basement ranging from near surface to 600 m. For some selected locations, depth was also calculated using the TDR technique suggesting depths from 160 to 400 m. 2D forward magnetic modeling using existing boreholes as constraints was carried out along four selected profiles and confirmed the presence of alternative horsts and grabens formed by parallel normal faults. The dominant structural trends inferred from THDR, AS, TDR, and ETHDR are N-S, NW-SE, NE-SW and E-W. This corresponds with the known structural trends in the area. Finally, a detailed structural map showing the magnetic blocks and the structural architecture of the Mygdonian Basin was drawn up by collating all of the results.
引用
收藏
页码:2955 / 2973
页数:19
相关论文
共 53 条
[41]  
Salem Ahmed, 2007, Leading Edge, V26, P1502, DOI 10.1190/1.2821934
[42]   STATISTICAL MODELS FOR INTERPRETING AEROMAGNETIC DATA [J].
SPECTOR, A ;
GRANT, FS .
GEOPHYSICS, 1970, 35 (02) :293-&
[43]   Curie point depths of Macedonia and Thrace, N. Greece [J].
Stampolidis, A ;
Tsokas, GN .
PURE AND APPLIED GEOPHYSICS, 2002, 159 (11-12) :2659-2671
[44]   RAPID GRAVITY COMPUTATIONS FOR 2-DIMENSIONAL BODIES WITH APPLICATION TO THE MENDOCINO SUBMARINE FRACTURE ZONE [J].
TALWANI, M ;
WORZEL, JL ;
LANDISMAN, M .
JOURNAL OF GEOPHYSICAL RESEARCH, 1959, 64 (01) :49-59
[45]  
Talwani M., 1964, School of Earth Sciences, P464
[46]   A PRELIMINARY RESISTIVITY INVESTIGATION (VES) OF THE LANGADA HOT-SPRINGS AREA IN NORTHERN GREECE [J].
THANASSOULAS, C ;
TSELENTIS, GA ;
TRAGANOS, G .
GEOTHERMICS, 1987, 16 (03) :227-238
[47]   Automatic conversion of magnetic data to depth, dip, and susceptibility contrast using the SPI (TM) method [J].
Thurston, JB ;
Smith, RS .
GEOPHYSICS, 1997, 62 (03) :807-813
[48]  
Tournas D., 2005, THESIS
[49]   Thessaloniki-Gerakarou Fault Zone (TGFZ): the western extension of the 1978 Thessaloniki earthquake fault (Northern Greece) and seismic hazard assessment [J].
Tranos, MD ;
Papadimitriou, EE ;
Kilias, AA .
JOURNAL OF STRUCTURAL GEOLOGY, 2003, 25 (12) :2109-2123
[50]  
Veranis N., 2010, HYDROGEOLOGICAL STUD