High-resolution offshore reflection seismic investigation of the Stockholm Bypass tunnel

Boat-towed high-frequency, short source and receiver spacing, reflection seismic data, 16 profiles and in total 3884 m long, were acquired in 2008 for the planning of the Stockholm Bypass multilane (3 lanes in each direction in two different tubes) underground motorway tunnel designed to ease the ev...

Full description

Bibliographic Details
Main Author: Liu, Fengyi
Format: Others
Language:English
Published: Uppsala universitet, Institutionen för geovetenskaper 2017
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-335969
id ndltd-UPSALLA1-oai-DiVA.org-uu-335969
record_format oai_dc
spelling ndltd-UPSALLA1-oai-DiVA.org-uu-3359692017-12-23T05:36:58ZHigh-resolution offshore reflection seismic investigation of the Stockholm Bypass tunnelengLiu, FengyiUppsala universitet, Institutionen för geovetenskaper2017infrastructuretunnelseismicreflectionmultipleengineeringGeophysicsGeofysikBoat-towed high-frequency, short source and receiver spacing, reflection seismic data, 16 profiles and in total 3884 m long, were acquired in 2008 for the planning of the Stockholm Bypass multilane (3 lanes in each direction in two different tubes) underground motorway tunnel designed to ease the ever increasing car traffic on the city and neighbouring regions. The planned bypass will be about 21 km long of which 18 km will be in the form of bedrock tunnel. The planned tunnel will intersect three water passages at where the tunnel will be at around 40-50 m depth. In this study, the seismic data along two of three water passages have been processed and interpreted. Due to the relatively shallow water depth (< 10 m), the main challenge for the reflection data processing was the interferences of strong multiples from lake sediments and bedrock. After a number of tests, it was found that conventional processing methods could not attenuate multiples effectively. Therefore, an optimized workflow based on predictive deconvolution de-multiple method was developed. The new workflow proved to be effective at suppressing multiple reflections, while primary reflections as well as diffraction signals could be well preserved. After carefully attenuating the multiples in the pre-stack and post-stack domains, processing continued with time-to-depth conversion for data interpretations. To reduce uncertainty with time-to-depth conversion errors, bathymetry data available from the study area were used to match the water-sediment interface that also generated a clear reflection in the data. Bedrock surface shows strong undulations, which is typical for the Scandinavian geology from steep valleys to sometimes sub-horizontal at some parts of the water passages. Nevertheless, a dominant bedrock valley-type direction can be recognized striking in the same direction as the water passages. The planned tunnel at the nearest point is estimated to locate approximately 19 m below bedrock surface, which is important factor for the excavation planning of the tunnel and its reinforcements. The steep valley-shaped bedrock may also imply a zone of weakness, fault and/or fracture zone, where the water passages were formed and the reflection seismic data clearly depict this shape under the overlying saucer-shaped unconsolidated sediments. Student thesisinfo:eu-repo/semantics/bachelorThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-335969Examensarbete vid Institutionen för geovetenskaper, 1650-6553 ; 420application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Others
sources NDLTD
topic infrastructure
tunnel
seismic
reflection
multiple
engineering
Geophysics
Geofysik
spellingShingle infrastructure
tunnel
seismic
reflection
multiple
engineering
Geophysics
Geofysik
Liu, Fengyi
High-resolution offshore reflection seismic investigation of the Stockholm Bypass tunnel
description Boat-towed high-frequency, short source and receiver spacing, reflection seismic data, 16 profiles and in total 3884 m long, were acquired in 2008 for the planning of the Stockholm Bypass multilane (3 lanes in each direction in two different tubes) underground motorway tunnel designed to ease the ever increasing car traffic on the city and neighbouring regions. The planned bypass will be about 21 km long of which 18 km will be in the form of bedrock tunnel. The planned tunnel will intersect three water passages at where the tunnel will be at around 40-50 m depth. In this study, the seismic data along two of three water passages have been processed and interpreted. Due to the relatively shallow water depth (< 10 m), the main challenge for the reflection data processing was the interferences of strong multiples from lake sediments and bedrock. After a number of tests, it was found that conventional processing methods could not attenuate multiples effectively. Therefore, an optimized workflow based on predictive deconvolution de-multiple method was developed. The new workflow proved to be effective at suppressing multiple reflections, while primary reflections as well as diffraction signals could be well preserved. After carefully attenuating the multiples in the pre-stack and post-stack domains, processing continued with time-to-depth conversion for data interpretations. To reduce uncertainty with time-to-depth conversion errors, bathymetry data available from the study area were used to match the water-sediment interface that also generated a clear reflection in the data. Bedrock surface shows strong undulations, which is typical for the Scandinavian geology from steep valleys to sometimes sub-horizontal at some parts of the water passages. Nevertheless, a dominant bedrock valley-type direction can be recognized striking in the same direction as the water passages. The planned tunnel at the nearest point is estimated to locate approximately 19 m below bedrock surface, which is important factor for the excavation planning of the tunnel and its reinforcements. The steep valley-shaped bedrock may also imply a zone of weakness, fault and/or fracture zone, where the water passages were formed and the reflection seismic data clearly depict this shape under the overlying saucer-shaped unconsolidated sediments.
author Liu, Fengyi
author_facet Liu, Fengyi
author_sort Liu, Fengyi
title High-resolution offshore reflection seismic investigation of the Stockholm Bypass tunnel
title_short High-resolution offshore reflection seismic investigation of the Stockholm Bypass tunnel
title_full High-resolution offshore reflection seismic investigation of the Stockholm Bypass tunnel
title_fullStr High-resolution offshore reflection seismic investigation of the Stockholm Bypass tunnel
title_full_unstemmed High-resolution offshore reflection seismic investigation of the Stockholm Bypass tunnel
title_sort high-resolution offshore reflection seismic investigation of the stockholm bypass tunnel
publisher Uppsala universitet, Institutionen för geovetenskaper
publishDate 2017
url http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-335969
work_keys_str_mv AT liufengyi highresolutionoffshorereflectionseismicinvestigationofthestockholmbypasstunnel
_version_ 1718566090797219840