A model test study on the parameters affecting the cyclic lateral response of monopile foundations for offshore wind turbines embedded in non-cohesive soils
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Published:2022-07-11
Issue:4
Volume:7
Page:1399-1419
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ISSN:2366-7451
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Container-title:Wind Energy Science
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language:en
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Short-container-title:Wind Energ. Sci.
Author:
Frick DennisORCID, Achmus Martin
Abstract
Abstract. During their service life, monopiles supporting offshore wind turbines are
subjected to a large number of lateral cyclic loads resulting from complex
environmental conditions such as wind and waves varying in amplitude,
direction, load eccentricity and frequency. The consequential accumulation
of displacements and rotations of the foundation structure with cyclic
loading is one key concern in the design of monopiles. Nevertheless, the
relevant offshore guidelines do not provide suitable procedures for
predicting such deformations. Although there are several methods for this
purpose in the literature, some of them produce very different or even
contradictory results, which prevents a consistent approach to dimensioning.
This paper briefly summarizes the current standardization regarding design
of monopiles for cyclic lateral loading and provides some examples of
possible prediction models from the literature. To highlight the need for
further research, the predictions according to different approaches are
compared and evaluated by a calculation example and a parameter study.
Further, the results of a small-scale 1 g model test campaign on the
load-displacement behaviour of monopile foundations subjected to lateral
cyclic loading and the influencing parameters are presented, evaluated and
compared with the findings of other research groups. In this way the test
results can help to support or improve model development and provide insight
into key issues relevant to monopile design. The parameters that have been
assessed include the cyclic load magnitude, cyclic load ratio, load
eccentricity, soil relative density, the grain size distribution of the
non-cohesive bedding material and the pile embedment length.
Funder
Deutsche Forschungsgemeinschaft
Publisher
Copernicus GmbH
Subject
Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment
Reference30 articles.
1. API: Recommended practice 2A-WSD – Planning, Designing, and Constructing
Fixed Offshore Platforms – Working Stress Design, American Petroleum
Institute, Version November 2014. 2. API RP 2GEO: Recommended practice 2GEO – Geotechnical Foundation Design
Considerations, American Petroleum Institute, Version July 2014. 3. Bhattacharya, S., Lombardi, D., Amani, S., Aleem, M., Prakhya, G., Adhikari,
S. Abdullahi, A., Alexander, N., Wang, Y., Cui, L., Jalbi, S., Pakrashi, V.,
Li, W., Mendoza, J., and Vimalan, N.: Physical modelling of offshore wind
turbine Foundations for TLR (Technology Readiness Level) studies, J. Mar. Sci. Eng., 9, 589, https://doi.org/10.3390/jmse9060589, 2021. 4. Byrne, B. W., Burd, H., McAdam, R. A., and Houlsby, G. T.: PISA: New design
methods for offshore wind turbine monopiles, Proceedings of the 8th
International Conference for Offshore Site Investigation and Geotechnics
(OSIG), 12–14 September 2017, Royal Geographical Society, United Kingdom, London, 142–161, 2017. 5. Byrne, B. W., Burd, H. J., Zdravkovic, L., Abadie, C. N., Houlsby, G. T.,
Jardine, R. J., Martin, C. M., McAdam, R. A., Pacheco Andrade, M. Pedro, A.
M. G., Potts, D. M., and Taborda, D. M. G.: PISA design methods for offshore
wind turbine monopiles, Proceedings of the Offshore Technology Conference, 6–9 May 2019, Houston, Texas, Paper No. OTC-29371-MS, https://doi.org/10.4043/29373-MS, 2019.
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