Downhole seismic logging for high-resolution reflection surveying in unconsolidated overburden

被引:27
|
作者
Hunter, JA
Pullan, SE
Burns, RA
Good, RL
Harris, JB
Pugin, A
Skvortsov, A
Goriainov, NN
机构
[1] Geol Survey Canada, Ottawa, ON K1A 0E8, Canada
[2] Millsaps Coll, Dept Geol, Jackson, MS 39210 USA
[3] Univ Geneva, Dept Geol & Paleontol, CH-1211 Geneva 4, Switzerland
[4] Russian Acad Sci, Inst Earth Cryosphere, Siberian Branch, Novosibirsk, Russia
[5] Russian Comm Geol, Res Inst Hydrogeol & Engn Geol, Zeleny Village 142452, Moscow Region, Russia
关键词
D O I
10.1190/1.1444439
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
Downhole seismic velocity logging techniques have been developed and applied in support of high-resolution reflection seismic surveys. For shallow high-resolution reflection surveying within unconsolidated overburden, velocity-depth control can sometimes be difficult to achieve; as well, unambiguous correlation of reflections with overburden stratigraphy is often problematic. Data obtained from downhole seismic logging can provide accurate velocity-depth functions and directly correlate seismic reflections to depth. The methodologies described in this paper are designed for slim-hole applications in plastic-cased boreholes (minimum ID of 50 mm) and with source and detector arrays that yield similar frequency ranges and vertical depth resolutions as the surface reflection surveys. Compressional- (P-) wave logging uses a multichannel hydrophone array with 0.5-m detector spacings in a fluid-filled borehole and a high-frequency, in-hole shotgun source at the surface. Overlapping array positions downhole results in redundant first-arrival data (picked using interactive computer techniques), which can be processed to provide accurate interval velocities. The data also can be displayed as a record suite, showing reflections and directly correlating reflection events with depths. Example applications include identification of gas zones, lithological boundaries within unconsolidated sediments, and the overburden-bedrock interface. Shear- (S-) wave logging uses a slimhole, well-locked, three-component (3-C) geophone pod and a horizontally polarized, hammer-and-loaded-plate source at ground surface. The pod is moved in successive 0.5- or l-m intervals downhole with no redundancy of overlapping data as in the P-wave method. First-arrival data can be obtained by picking the crossover onset of polarized energy or by closely examining particle-motion plots using all three components of motion. In unconsolidated sediments, shear-wave Velocity contrasts can be associated with changes in material density or dynamic shear modulus, which in turn can be related to consolidation. Example applications include identification of a lithological boundary for earthquake hazard applications and mapping massive ice within permafrost materials.
引用
收藏
页码:1371 / 1384
页数:14
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