Combining geophysical data sets to study the dynamics of shallow evaporites in urban environments: application to Hamburg, Germany
Shallowly situated evaporites in built-up areas are of relevance for urban and cultural development and hydrological regulation. The hazard of sinkholes, subrosion depressions and gypsum karst is often difficult to evaluate and may quickly change with anthropogenic influence. The geophysical explora...
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| Published in | Geophysical journal international Vol. 181; no. 1; pp. 154 - 172 |
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| Main Authors | , , , , , , , |
| Format | Journal Article |
| Language | English |
| Published |
Oxford, UK
Blackwell Publishing Ltd
01.04.2010
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| Subjects | |
| Online Access | Get full text |
| ISSN | 0956-540X 1365-246X 1365-246X |
| DOI | 10.1111/j.1365-246X.2010.04521.x |
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| Abstract | Shallowly situated evaporites in built-up areas are of relevance for urban and cultural development and hydrological regulation. The hazard of sinkholes, subrosion depressions and gypsum karst is often difficult to evaluate and may quickly change with anthropogenic influence. The geophysical exploration of evaporites in metropolitan areas is often not feasible with active industrial techniques. We collect and combine different passive geophysical data as microgravity, ambient vibrations, deformation and hydrological information to study the roof morphology of shallow evaporites beneath Hamburg, Northern Germany. The application of a novel gravity inversion technique leads to a 3-D depth model of the salt diapir under study. We compare the gravity-based depth model to pseudo-depths from H/V measurements and depth estimates from small-scale seismological array data. While the general range and trend of the diapir roof is consistent, a few anomalous regions are identified where H/V pseudo-depths indicate shallower structures not observed in gravity or array data. These are interpreted by shallow residual caprock floaters and zones of increased porosity. The shallow salt structure clearly correlates with a relative subsidence in the order of 2 mm yr −1. The combined interpretation of roof morphology, yearly subsidence rates, chemical analyses of groundwater and of hydraulic head in aquifers indicates that the salt diapir beneath Hamburg is subject to significant ongoing dissolution that may possibly affect subrosion depressions, sinkhole distribution and land usage. The combined analysis of passive geophysical data may be exemplary for the study of shallow evaporites beneath other urban areas. |
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| AbstractList | SUMMARY
Shallowly situated evaporites in built‐up areas are of relevance for urban and cultural development and hydrological regulation. The hazard of sinkholes, subrosion depressions and gypsum karst is often difficult to evaluate and may quickly change with anthropogenic influence. The geophysical exploration of evaporites in metropolitan areas is often not feasible with active industrial techniques.
We collect and combine different passive geophysical data as microgravity, ambient vibrations, deformation and hydrological information to study the roof morphology of shallow evaporites beneath Hamburg, Northern Germany. The application of a novel gravity inversion technique leads to a 3‐D depth model of the salt diapir under study. We compare the gravity‐based depth model to pseudo‐depths from H/V measurements and depth estimates from small‐scale seismological array data. While the general range and trend of the diapir roof is consistent, a few anomalous regions are identified where H/V pseudo‐depths indicate shallower structures not observed in gravity or array data. These are interpreted by shallow residual caprock floaters and zones of increased porosity.
The shallow salt structure clearly correlates with a relative subsidence in the order of 2 mm yr −1. The combined interpretation of roof morphology, yearly subsidence rates, chemical analyses of groundwater and of hydraulic head in aquifers indicates that the salt diapir beneath Hamburg is subject to significant ongoing dissolution that may possibly affect subrosion depressions, sinkhole distribution and land usage.
The combined analysis of passive geophysical data may be exemplary for the study of shallow evaporites beneath other urban areas. Shallowly situated evaporites in built-up areas are of relevance for urban and cultural development and hydrological regulation. The hazard of sinkholes, subrosion depressions and gypsum karst is often difficult to evaluate and may quickly change with anthropogenic influence. The geophysical exploration of evaporites in metropolitan areas is often not feasible with active industrial techniques.We collect and combine different passive geophysical data as microgravity, ambient vibrations, deformation and hydrological information to study the roof morphology of shallow evaporites beneath Hamburg, Northern Germany. The application of a novel gravity inversion technique leads to a 3-D depth model of the salt diapir under study. We compare the gravity-based depth model to pseudo-depths from H-V measurements and depth estimates from small-scale seismological array data. While the general range and trend of the diapir roof is consistent, a few anomalous regions are identified where H-V pseudo-depths indicate shallower structures not observed in gravity or array data. These are interpreted by shallow residual caprock floaters and zones of increased porosity.The shallow salt structure clearly correlates with a relative subsidence in the order of 2 mm yr -1. The combined interpretation of roof morphology, yearly subsidence rates, chemical analyses of groundwater and of hydraulic head in aquifers indicates that the salt diapir beneath Hamburg is subject to significant ongoing dissolution that may possibly affect subrosion depressions, sinkhole distribution and land usage.The combined analysis of passive geophysical data may be exemplary for the study of shallow evaporites beneath other urban areas. Shallowly situated evaporites in built-up areas are of relevance for urban and cultural development and hydrological regulation. The hazard of sinkholes, subrosion depressions and gypsum karst is often difficult to evaluate and may quickly change with anthropogenic influence. The geophysical exploration of evaporites in metropolitan areas is often not feasible with active industrial techniques. We collect and combine different passive geophysical data as microgravity, ambient vibrations, deformation and hydrological information to study the roof morphology of shallow evaporites beneath Hamburg, Northern Germany. The application of a novel gravity inversion technique leads to a 3-D depth model of the salt diapir under study. We compare the gravity-based depth model to pseudo-depths from H/V measurements and depth estimates from small-scale seismological array data. While the general range and trend of the diapir roof is consistent, a few anomalous regions are identified where H/V pseudo-depths indicate shallower structures not observed in gravity or array data. These are interpreted by shallow residual caprock floaters and zones of increased porosity. The shallow salt structure clearly correlates with a relative subsidence in the order of 2 mm yr −1. The combined interpretation of roof morphology, yearly subsidence rates, chemical analyses of groundwater and of hydraulic head in aquifers indicates that the salt diapir beneath Hamburg is subject to significant ongoing dissolution that may possibly affect subrosion depressions, sinkhole distribution and land usage. The combined analysis of passive geophysical data may be exemplary for the study of shallow evaporites beneath other urban areas. |
| Author | Ohrnberger, Matthias Scherbaum, Frank Reuther, Claus-Dieter Dehghani, Ali Kühn, Daniela Dahm, Torsten Kröger, Jens Wiederhold, Helga |
| Author_xml | – sequence: 1 givenname: Torsten surname: Dahm fullname: Dahm, Torsten email: Institut für Geophysik, University of Hamburg, Hamburg, Germany. torsten.dahm@zmaw.de, torsten.dahm@zmaw.de organization: Institut für Geophysik, University of Hamburg, Hamburg, Germany. E-mail: torsten.dahm@zmaw.de – sequence: 2 givenname: Daniela surname: Kühn fullname: Kühn, Daniela organization: NORSAR PO Box 53 2027 Kjeller, Norway – sequence: 3 givenname: Matthias surname: Ohrnberger fullname: Ohrnberger, Matthias organization: Institut für Erd- und Umweltwissenschaften, Universität Potsdam, Potsdam, Germany – sequence: 4 givenname: Jens surname: Kröger fullname: Kröger, Jens organization: Geologisches Landesamt Hamburg, Hamburg, Germany – sequence: 5 givenname: Helga surname: Wiederhold fullname: Wiederhold, Helga organization: Leibniz-Institut für Angewandte Geophysik, Hannover, Germany – sequence: 6 givenname: Claus-Dieter surname: Reuther fullname: Reuther, Claus-Dieter organization: Inst. für Geol. & Paläont., Universität Hamburg, Hamburg, Germany – sequence: 7 givenname: Ali surname: Dehghani fullname: Dehghani, Ali organization: Institut für Geophysik, Universität Hamburg, Hamburg, Germany – sequence: 8 givenname: Frank surname: Scherbaum fullname: Scherbaum, Frank organization: Institut für Erd- und Umweltwissenschaften, Universität Potsdam, Potsdam, Germany |
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| SubjectTerms | Diapir and diapirism Gravity anomalies and Earth structure Hydrogeophysics Sedimentary basin processes Surface waves and free oscillations |
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| Title | Combining geophysical data sets to study the dynamics of shallow evaporites in urban environments: application to Hamburg, Germany |
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