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Abbasiverki, RoghayehORCID iD iconorcid.org/0000-0002-0197-8225
Publications (9 of 9) Show all publications
Enzell, J., Malm, R. & Abbasiverki, R. (2022). Implementation of endurance time analysis for seismic push-over analysis of a concrete gravity dam. In: : . Paper presented at XXIV Nordic Concrete Research Symposium, August 16-19, 2022, Stockholm..
Open this publication in new window or tab >>Implementation of endurance time analysis for seismic push-over analysis of a concrete gravity dam
2022 (English)Conference paper, Published paper (Refereed)
National Category
Infrastructure Engineering
Identifiers
urn:nbn:se:kth:diva-320080 (URN)
Conference
XXIV Nordic Concrete Research Symposium, August 16-19, 2022, Stockholm.
Note

QC 20221025

Available from: 2022-10-13 Created: 2022-10-13 Last updated: 2022-11-28Bibliographically approved
Enzell, J., Malm, R., Abbasiverki, R. & Ahmed, L. (2021). Non-linear Behavior of a Concrete Gravity Dam During Seismic Excitation: A Case Study of the Pine Flat Dam. In: Numerical Analysis of Dams: Proceedings of the 15th ICOLD International Benchmark Workshop. Paper presented at ICOLD International Benchmark Workshop on Numerical Analysis of Dams, ICOLD-BW, 9-11 September, Milan, Italy (pp. 99-112). Springer Nature
Open this publication in new window or tab >>Non-linear Behavior of a Concrete Gravity Dam During Seismic Excitation: A Case Study of the Pine Flat Dam
2021 (English)In: Numerical Analysis of Dams: Proceedings of the 15th ICOLD International Benchmark Workshop, Springer Nature , 2021, p. 99-112Conference paper, Published paper (Refereed)
Abstract [en]

In this paper, seismic analyses of Pine Flat Concrete dam performed as part of theme A in the 15th benchmark workshop are presented. The results presented focuses on differences between mass and massless foundation and the influence from non-linear material behavior. The analyses performed with mass foundation using analytical free field input records and infinite boundary elements corresponded with the expected free surface results, for lower frequencies. For higher frequencies some discrepancies caused by the influence from the dam and the reservoir as expected. The corresponding analyses with massless foundation showed significantly higher accelerations but good agreement with the expected free surface displacement at the dam toe. To consider the influence from nonlinear material behavior, a dynamic push-over analysis (endurance time acceleration function, ETAF) was performed. It was possible to perform the analysis for the full duration of the record, despite significant non-linear material behavior. The initial damage occurred at the upstream toe and then showed significant induced damage as the level of excitation successively increased. In the end of the analysis, the top of the dam is cracked through which would cause an instability failure of the top of the dam.

Place, publisher, year, edition, pages
Springer Nature, 2021
Series
Lecture Notes in Civil Engineering, ISSN 2366-2557 ; 91
Keywords
Concrete dam, Cracking, Free field boundary conditions, Non-linear analyses, Seismic analyses, Concrete dams, Concretes, Gravity dams, Numerical analysis, Seismology, Concrete gravity dams, Higher frequencies, Infinite boundary element, Lower frequencies, Nonlinear behavior, Nonlinear material behavior, Push-over analysis, Seismic excitations, Reservoirs (water)
National Category
Geotechnical Engineering and Engineering Geology
Identifiers
urn:nbn:se:kth:diva-291372 (URN)10.1007/978-3-030-51085-5_2 (DOI)2-s2.0-85096565004 (Scopus ID)
Conference
ICOLD International Benchmark Workshop on Numerical Analysis of Dams, ICOLD-BW, 9-11 September, Milan, Italy
Note

QC 20210409

Available from: 2021-04-09 Created: 2021-04-09 Last updated: 2025-02-07Bibliographically approved
Abbasiverki, R., Malm, R., Ansell, A. & Nordström, E. (2021). Nonlinear Behaviour of Concrete Buttress Dams under High-Frequency Excitations Taking into Account Topographical Amplifications. Shock and Vibration, 2021, 1-22
Open this publication in new window or tab >>Nonlinear Behaviour of Concrete Buttress Dams under High-Frequency Excitations Taking into Account Topographical Amplifications
2021 (English)In: Shock and Vibration, ISSN 1070-9622, E-ISSN 1875-9203, Vol. 2021, p. 1-22Article in journal (Refereed) Published
Abstract [en]

Concrete buttress dams could potentially be susceptible to high-frequency vibrations, especially in the cross-stream direction, due to their slender design. Previous studies have mainly focused on low-frequency vibrations in stream direction using a simplified foundation model with the massless method, which does not consider topographic amplifications. This paper therefore investigates the nonlinear behaviour of concrete buttress dams subjected to high-frequency excitations, considering cross-stream vibrations. For comparison, the effect of low-frequency excitations is also investigated. The influence of the irregular topography of the foundation surface on the amplification of seismic waves at the foundation surface and thus in the dam is considered by a rigorous method based on the domain-reduction method using the direct finite element method. The sensitivity of the calculated response of the dam to the free-field modelling approach is investigated by comparing the result with analyses using an analytical method based on one-dimensional wave propagation theory and a massless approach. Available deconvolution software is based on the one-dimensional shear wave propagation to transform the earthquake motion from the foundation surface to the corresponding input motion at depth. Here, a new deconvolution method for both shear and pressure wave propagation is developed based on an iterative time-domain procedure using a one-dimensional finite element column. The examples presented showed that topographic amplifications of high-frequency excitations have a significant impact on the response of this type of dam. Cross-stream vibrations reduced the safety of the dam due to the opening of the joints and the increasing stresses. The foundation modelling approach had a significant impact on the calculated response of the dam. The massless method produced unreliable results, especially for high-frequency excitations. The free-field modelling with the analytical method led to unreliable joint openings. It is therefore recommended to use an accurate approach for foundation modelling, especially in cases where nonlinearity is considered.

Place, publisher, year, edition, pages
Hindawi Limited, 2021
National Category
Infrastructure Engineering
Research subject
Civil and Architectural Engineering, Concrete Structures
Identifiers
urn:nbn:se:kth:diva-307532 (URN)10.1155/2021/4944682 (DOI)000781908400006 ()2-s2.0-85119926651 (Scopus ID)
Note

QC 20220502

Available from: 2022-01-28 Created: 2022-01-28 Last updated: 2023-02-17Bibliographically approved
Abbasiverki, R. & Ansell, A. (2020). Seismic response of large diameter buried concrete pipelines subjected to high frequency earthquake excitations. Int. J. Structural Engineering, 10(4), 307-329
Open this publication in new window or tab >>Seismic response of large diameter buried concrete pipelines subjected to high frequency earthquake excitations
2020 (English)In: Int. J. Structural Engineering, ISSN 1758-7328, Vol. 10, no 4, p. 307-329Article in journal (Refereed) Published
Abstract [en]

Buried pipelines are tubular structures that cross large areas with different geological conditions. During an earthquake, imposed loads from soil deformations on pipelines may cause drastic damages. In this study two dimensional finite element models of pipelines and surrounding soils are usedfor simulation of seismic waves that propagate from the bedrock through thesoil. The models describe both longitudinal and transverse cross-sections ofpipelines and the soil-pipe interaction is described as a nonlinear behaviour.The effects of uniform ground with different burial depth and soil layer thickness, soil stiffness and non-uniform ground on the seismic response of reinforced concrete pipelines is studied. Two earthquakes, with high and low frequency contents, are employed for the dynamic analysis. The results show asignificant effect on the response due to non-uniform ground caused by inclined bedrock, especially for high frequency earthquake excitations.

Keywords
buried pipelines; high frequency; finite element; seismic analysis; non-uniform ground; soil stiffness
National Category
Infrastructure Engineering
Identifiers
urn:nbn:se:kth:diva-282856 (URN)10.1504/IJSTRUCTE.2020.109854 (DOI)000937868000002 ()2-s2.0-85092276421 (Scopus ID)
Note

QC 20201019

Available from: 2020-10-01 Created: 2020-10-01 Last updated: 2023-09-21Bibliographically approved
Abbasiverki, R., Ahmed, L. & Nordström, E. (2019). Analysis of load and response on large hydropower draft tube structures. Energiforsk AB
Open this publication in new window or tab >>Analysis of load and response on large hydropower draft tube structures
2019 (English)Report (Refereed)
Abstract [en]

In a reaction turbine, the runner outlet is connected to a diffuser which is called the draft tube. Large hydropower units with large effect and large discharge normally require large dimensions on the waterways. In some large-scale facilities, the total width of the draft tube is so large there is a need for a supporting centre wall in the draft tube. In the Swedish hydropower business, there are several cases where damages or cracks have been reported in the contact between the roof and the supporting centre wall. The most likely reason for cracking between wall and roof is when refilling the draft tube after it has been drained for inspection. A too quick refilling will give an upwards lifting force on the roof that can be larger than the capacity in the joint. There are still uncertainties regarding the risk for a long-term scenario where any operational pattern could give continued crack propagation.

Vattenfall Hydropower has made an installation with pressure and strain sensors in one of their facilities with a centre wall supported draft tube and a cavity between the roof and the rock cavern. The aim of the project is to get a better understanding on the behaviour of the roof and centre wall during different operational events by evaluating measurements from the draft tube and investigating possible load cases that can create continued crack propagation during operation. In this regard, in this project, the measurements are analysed to discover the different operational patterns and the corresponding effect on applied pressure on draft tube central wall and roof and structure response. A simplified finite element model of the draft tube is demonstrated and the response from the structure due to extracted load patterns is compared with the measurements.

One-year measurements of the unit operation indicated that unit operates over the whole range with many start/stops. Three major types of operation were: normal operation (working in daytime and downtime at night), continuous operation with no stop and start-stop events with sharp start/stop in the morning and afternoon. The analysis of pressure measurements indicated that the fluid motion in the straight diffuser is turbulent and possibly influenced by vortex formation under the runner. Therefore, the pressure on the right side of the central wall was higher than on the left side.

The quality of the strain measurements showed to be of insufficient quality and lack of information regarding the set-up. This has given questions on the possibility to get reliable results in the evaluation. Nevertheless, an evaluation has been performed. The evaluation of strain measurements demonstrated higher strain values at the upstream side of the central wall and roof. Moreover, the strain on underside of the roof was higher than on the central wall. Sudden fluctuation during continuous operation and sequence of start/stop were the cases that in long-term may cause damage to the structure due to fatigue problems. The results from finite element model indicated high tensile strength at the upstream side of the straight diffuser, in contact between the roof and the central wall where a crack has been detected in the real structure.

Place, publisher, year, edition, pages
Energiforsk AB, 2019. p. 78
National Category
Civil Engineering
Identifiers
urn:nbn:se:kth:diva-261088 (URN)978-91-7673-567-1 (ISBN)
Note

QC 20191002

Available from: 2019-10-01 Created: 2019-10-01 Last updated: 2024-03-18Bibliographically approved
Abbasiverki, R. (2017). Initial study on seismic analyses of concrete and embankment dams in Sweden. Stockholm
Open this publication in new window or tab >>Initial study on seismic analyses of concrete and embankment dams in Sweden
2017 (English)Report (Other academic)
Place, publisher, year, edition, pages
Stockholm: , 2017. p. 39
Series
TRITA-BKN. Report, ISSN 1103-4289 ; 164
National Category
Other Civil Engineering
Research subject
Civil and Architectural Engineering
Identifiers
urn:nbn:se:kth:diva-208313 (URN)KTH/BKN/R-164-SE (ISRN)
Note

QC 20170609

Available from: 2017-06-02 Created: 2017-06-02 Last updated: 2024-03-18Bibliographically approved
Abbasiverki, R. & Ansell, A. (2014). Analysis of buried reinforced concrete pipelines subjected to seismic waves. In: : . Paper presented at XXII Symposium on Nordic Concrete Research & Development, Reykjavik, 2014 (pp. 461-464).
Open this publication in new window or tab >>Analysis of buried reinforced concrete pipelines subjected to seismic waves
2014 (English)Conference paper, Published paper (Refereed)
National Category
Infrastructure Engineering
Identifiers
urn:nbn:se:kth:diva-182571 (URN)
Conference
XXII Symposium on Nordic Concrete Research & Development, Reykjavik, 2014
Note

QC 20160226

Available from: 2016-02-19 Created: 2016-02-19 Last updated: 2024-03-15Bibliographically approved
Abbasiverki, R., Ansell, A. & Malm, R. (2014). Analysis of shallowly buried reinforced concrete pipelines subjected to earthquake loads. Nordic Concrete Research (51), 111-130
Open this publication in new window or tab >>Analysis of shallowly buried reinforced concrete pipelines subjected to earthquake loads
2014 (English)In: Nordic Concrete Research, ISSN 0800-6377, no 51, p. 111-130Article in journal (Refereed) Published
Abstract [en]

Buried reinforced concrete pipelines are widelyused in e.g. water and wastewater systems. Failure of these infrastructures mayresult in drastic effects and recently they have been brought into focus asvital components in safety systems for nuclear power installations. The highlevel of safety has here lead to a demand for reliable earthquake risk analyses.In this paper, methods are compared and the use of seismic design loadsdemonstrated. FE analysis in 2D of soil-pipe interaction under seismic wavepropagation is performed. The performance of concrete pipes subjected toseismic waves with different frequency content is evaluated with respect todifferent soil condition but also water mass effect.

National Category
Infrastructure Engineering
Identifiers
urn:nbn:se:kth:diva-159224 (URN)
Note

QC 20150128

Available from: 2015-01-26 Created: 2015-01-26 Last updated: 2024-03-15Bibliographically approved
Abbasiverki, R., Malm, R. & Ansell, A. Implementation of free-field modelling of foundations for large dam structures exposed to high-frequency vibrations.
Open this publication in new window or tab >>Implementation of free-field modelling of foundations for large dam structures exposed to high-frequency vibrations
(English)In: Article in journal (Refereed) Submitted
National Category
Civil Engineering
Identifiers
urn:nbn:se:kth:diva-323971 (URN)
Note

QC 20230221

Available from: 2023-02-17 Created: 2023-02-17 Last updated: 2023-02-21Bibliographically approved
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ORCID iD: ORCID iD iconorcid.org/0000-0002-0197-8225

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