Filtern
Erscheinungsjahr
Dokumenttyp
Referierte Publikation
- ja (30) (entfernen)
Schlagworte
- Value of information (6)
- Structural reliability (5)
- Fatigue (4)
- Structural health monitoring (4)
- Wind turbine (4)
- Automated operational modal analysis (3)
- Resonance (3)
- Structural integrity management (3)
- Condition monitoring (2)
- Damage detection (2)
- Decision theory (2)
- Ermüdung (2)
- Finite element analysis (2)
- Lebenszyklus (2)
- Life cycle (2)
- Measurement uncertainty (2)
- Messunsicherheit (2)
- Monitoring (2)
- Offshore wind (2)
- Offshore wind turbine (2)
- Risk assessment (2)
- Sommerfeld effect (2)
- Tragwerkszuverlässigkeit (2)
- Vibration (2)
- Wind power (2)
- Bauwerkserhaltung/Sanierung - Maintenance and Repair (1)
- Bauwerksüberwachung (1)
- Bayes'sche Aktualisierung (1)
- Bayesian analysis (1)
- Bayesian probability (1)
- Bayesian updating (1)
- Bayesian updating of stress ranges (1)
- Berechnungs- und Bemessungsverfahren (1)
- Bestandssicherung und Erhaltung (1)
- Bewertung (1)
- Blade (1)
- Bridge resistance model (1)
- Cast steel tube connection (1)
- Consequence (1)
- Continuous dynamic monitoring (1)
- Cost (1)
- Cost benefit analysis (1)
- Cost-benefit analysis (1)
- Damage (1)
- Damage Identification (1)
- Damage detection systems (1)
- Damage detection uncertainty (1)
- Damage indicators (1)
- Data management (1)
- Decision analysis (1)
- Decision optimality (1)
- Decision tree (1)
- Deteriorating structures (1)
- Deterioration (1)
- Direct (1)
- Direkt (1)
- Dynamic Bayesian Network (1)
- Dynamic loads (1)
- Entwurf und Konstruktion (1)
- Environmental/operational effects (1)
- Failure (1)
- Failure analysis (1)
- Fracture mechanics (1)
- Gussknoten (1)
- Hängebrücke (1)
- Icing conditions (1)
- Indirect (1)
- Indirekt (1)
- Inspection (1)
- Integrated Monitoring System (1)
- Integrated monitoring system (1)
- Integrity management (1)
- Konsequenz (1)
- Kosten-Nutzen-Analyse (1)
- Lebensdauerverlängerung (1)
- Life cycle extension (1)
- Life-cycle (1)
- Load Monitoring (1)
- Management der Tragwerksintegrität (1)
- Meerestechnik (1)
- Meerestechnik - Offshore engineering (1)
- Modal properties (1)
- Model approach (1)
- Model basis (1)
- Modellansatz (1)
- Monitoring strategy (1)
- Monopile support structure (1)
- Neue Verfahren/Versuchstechnik (1)
- New Processes/Experimental Techniques (1)
- Novelty analysis (1)
- Offshore engineering (1)
- Offshore installations (1)
- Offshore wind turbines (1)
- Offshore-Windenergie (1)
- Operation (1)
- Operation management (1)
- Optimierung (1)
- Optimisation (1)
- Orthotropic steel deck (1)
- Posterior fatigue reliability (1)
- Predictive maintenance (1)
- Pre‐construction proof loading (1)
- Pre‐posterior decision analysis (1)
- Principal Component Analysis (1)
- Probabilistic decision analysis (1)
- Probability (1)
- Probability of damage indication (1)
- Proof load testing (1)
- Proof loading (1)
- Quality (1)
- Qualität (1)
- Reliability (1)
- Risikoanalyse (1)
- Risk (1)
- Risk analysis (1)
- Risk and decision analysis (1)
- Risk mitigation strategies (1)
- Rotors (1)
- Rskbased inspection (1)
- SHM (1)
- Schaden (1)
- Schadensindikatoren (1)
- Sensitivity (1)
- Shells (structures) (1)
- Significance and effectiveness (1)
- Stahlbau (1)
- Stahlbau - Steel construction (1)
- Steel construction (1)
- Strain measurements of wind turbine support structures (1)
- Structural Integrity and Risk Management (1)
- Structural assessment (1)
- Structural design optimization (1)
- Structural engineering (1)
- Structural health monitoring information model (1)
- Structural health monitoring systems arrangement strategy (1)
- Structural monitoring (1)
- Structural systems (1)
- Strukturspannungskonzept (1)
- Subset simulation (1)
- Support structure (1)
- Suspension bridge (1)
- Terrorist attacks (1)
- Tower-nacelle system (1)
- Traglast (1)
- Ultimate capacity (1)
- Ultimate limit state (1)
- Utility and decision theory (1)
- Value of Information (1)
- Value of action analysis (1)
- Value of information and action (1)
- Versagen (1)
- Weld fatigue (1)
- Wind turbine support structure (1)
- Wind turbines (1)
- Zuverlässigkeit (1)
Organisationseinheit der BAM
Paper des Monats
- ja (1)
Das Bauwerk einer Windenergieanlage dient der Sicherstellung der Energieproduktion. Eine entsprechende Zuverlässigkeit der Struktur und deren permanente Bewertung und Unterhaltung ist dazu notwendig. In diesem Beitrag werden Möglichkeiten der Bewertung des für die Struktur wichtigen Schädigungsmechanismus Ermüdung sowie dessen Überwachung in Zusammenhang mit Schädigungsindikatoren aufgezeigt. Dabei wird auf strukturmechanische, werkstoffmechanische und probabilistische Modelle sowie auf Messdaten eines Prototyps einer OWEA zurückgegriffen. Ausgehend von der gesamtdynamischen Berechnung wird die Zuverlässigkeit gemäß der Auslegung für den Schädigungsmechanismus Ermüdung durch ein Wöhlerlinienmodell berechnet. Damit werden ermüdungssensible Komponenten der Struktur identifiziert. Schädigungsindikatoren zur Überwachung der Ermüdungsfestigkeit werden auf Grundlage schädigungs-äquivalenter Dehnungen vorgestellt.
Fatigue assessment of support structures for offshore wind energy converters.
The structure of wind energy converters secures a reliable energy production. Hence an adequate reliability of the structure and additionally permanent assessment and maintenance is required. Within this paper methods for the assessment of the important damage mechanism fatigue in combination with monitoring of the fatigue reliability utilizing damage indicators are proposed. These methods comprise structural system, material degradation and probabilistic models as well as monitoring data of an offshore wind energy converter prototype. The structural reliability of the structure as designed is calculated based on an overall dynamic analysis using a SN-approach. Herewith fatigue sensitive components are identified. Damage indicators for monitoring the fatigue reliability based on damage equivalent strains are presented.
Reclassification of bridges, i.e., a change in load rating, using reliability-based methods and a direct update with proof load information has been presented by many authors. However, bridge reclassification has hardly been studied from a decision analytic perspective, i.e., with quantification of the risks and benefits of different classification choices, and the expected benefit gain from proof loading. We derive, explain and exemplify a decision analytic approach for bridge reclassification along with models for (1) elastic and ultimate capacity and their adaptation with proof load information, (2) proof load information with classification outcomes accounting for target reliabilities and, (3) utilities including socio-economic benefits from reclassification. The approach and models are exemplified with a case study based on reclassification of bridges with a low existing classification. Decision rules, for practical use by a highway authority to find the optimal classification, are identified and documented based on: (1) the measurement of the capacity at elastic limit by proof loading, (2) the bridge reclassification benefits, and, (3) the required annual reliability level. From a Value of Information analysis, it is concluded that the proof load information is highly valuable for reclassification in cases of high socio-economic benefits and high reliability requirements.
Proof load testing may be performed to confirm the reliability of the bridge for an existing classification or to prove the reliability for a higher classification. In this paper, a probabilistic decision analysis approach is applied to the scenario for the evaluation of target proof load in the situation where information on the bridge resistance model is lacking. In this case, the resistance model is established by proof loading and taking very basic prior knowledge into account. The decision scenario is modelled in the context of the proof load test planner who shall choose the required load level for assessment of a bridge. The choice of the load level depends on the risks due to the testing and the expected benefit gain from the test. Information acquired about the loading response from monitoring during the proof load testing is modelled by taking basis in the model uncertainty formulation. The optimal proof load level for classification of a single lane, simply supported bridge of 8m span subjected to live load from very heavy (gross weight > 80 tons) transport vehicles was calculated. The optimal proof load level was identified as leading to a positive expected benefit gain to the decision maker while also satisfying target reliability criteria for remaining service life. The analysis was performed for the evaluation of bridge performance with respect to five classifications of very heavy transport vehicles with different vehicle weights and configurations.
A method to determine the influencing parameters of a structural and damage detection system is proposed based on the value of Information analysis. The value of information analysis utilizes the Bayesian pre-posterior decision theory to quantify the value of damage detection system for the structural integrity management during service life. First, the influencing parameters of the structural system, such as deterioration type and rate are introduced for the performance of the prior probabilistic system model. Then the influencing parameters on the damage detection system performance, including number of sensors, sensor locations, measurement noise, and the Type-I error are investigated. The preposterior probabilistic model is computed utilizing the Bayes’ theorem to update the prior system model with the damage indication information. Finally, the value of damage detection system is quantified as the difference between the maximum utility obtained in pre-posterior and prior analysis based on the decision tree analysis, comprising structural probabilistic models, consequences, as well as benefit and costs analysis associated with and without monitoring. With the developed approach, a case study on a statically determinate Pratt truss bridge girder is carried out to validate the method. The analysis shows that the deterioration rate is the most sensitive parameter on the effect of relative value of information over the whole service life. Furthermore, it shows that more sensors do not necessarily lead to a higher relative value of information; only specific sensor locations near the highest utilized components lead to a high relative value of information; measurement noise and the Type-I error should be controlled and be as small as possible. An optimal sensor employment with highest relative value of information is found. Moreover, it is found that the proposed method can be a powerful tool to develop optimal service life maintenance strategies—before implementation—for similar bridges and to optimize the damage detection system settings and sensor configuration for minimum expected Costs and risks.
Fatigue and serviceability limit state model basis for assessment of offshore wind energy converters
(2012)
This paper develops the models for the structural performance of the loading and probabilistic characterization for the fatigue and the serviceability limit states for the support structure of offshore wind energy converters. These models and a sensitivity study are part of a risk based assessment and monitoring framework and will be applied for establishing the 'as designed and constructed' reliability as prior information for the assessment and the design of monitoring systems. The constitutive physical equations are introduced in combination with the fatigue and serviceability limit state requirements as the starting point for the development of the structural performance and loading models. With these models introduced in detail, several modeling aspects for both limit states are analyzed. This includes analyses of the influence on the hot spot stresses by applying a contact formulation for the pile guide brace connection and the application of a finite element formulation using solid elements. Further, the comparison of the natural frequencies of a discrete rotor model with a continuous rotor model is documented. To account for uncertainties associated with the structural and loading models, a probabilistic model is derived on the basis of literature review and measurement data from a prototype Multibrid M5000 support structure. The sensitivity study is based on the calculation of a nonlinear coefficient of correlation in conjunction with predetermined designs of experiments. This is conducted by a systematic analysis of the influence of the random variables on limit state responses and hence on the structural reliability. Integrating the analyses and sensitivity studies of the fatigue and serviceability limit state models developed in this paper as well as the ultimate limit state models in Thöns et al. ('Ultimate Limit State Model Basis for Assessment of Offshore Wind Energy Converters,' ASME J. Offshore Mech. Arct. Eng.), the model basis for the assessment is completed. The process of establishing and analyzing such a model basis contributes to a detailed understanding of the deterministic and probabilistic characteristics of the structure and provides valuable insights in regard to the significance of available data.
In the present paper, an approach for updating the continuous stress range distribution of a welded connection of a wind turbine support structure with predicted information from strain measurements is presented. Environmental conditions, such as wind or, in offshore fields, waves and currents, in combination with rotor excitations generate cyclic stresses affecting the reliability of welded joints of the support structure over the service life. Using strain measurements, these conditions can be monitored, and the resulting stress ranges, under consideration of measurement, mechanical and material uncertainties, can be reconstructed. These stress ranges can be used as an input for updating the prior probability density function (PDF) of the stress ranges predicted by the overall dynamics and a detailed design analysis. Applying Bayesian probability theory and decision theoretical implications, the predicted posterior probability density of the stress ranges is calculated based on the design information and uncertainties. This approach is exemplified, and it is shown how the predicted stress ranges and the design stress ranges are distributed. The prior and the predicted posterior stress ranges are used for a reliability calculation for potentially entering a pre-posterior decision analysis
The use of load and structural performance measurement information is vital for efficient structural integrity management and for the cost of energy production with Offshore Wind Turbines (OWTs). OWTs are dynamically sensitive structures subject to an interaction with a control unit exposed to repeated cyclic wind and wave loads causing deterioration and fatigue. This study focuses on the quantification of the value of structural and environmental information on the integrity management of OWT structures, with the focus on fatigue of welded joints. By utilizing decision analysis, structural reliability methods, measurement data, as well as the cost-benefit models, a Value of Information (VoI) analysis can be performed to quantify the most beneficial measurement strategy. The VoI assessment is demonstrated for the integrity management of a butt welded joint of a monopile support structure for a 3 MW OWT with a hub height of approximately 71m. The conditional value of three-year measured oceanographic information and one-year strain monitoring information is quantified posteriori in conjunction with an inspection and repair planning. This paper provides insights on how much benefits can be achieved through structural and environmental information, with practical relevance on reliability-based maintenance of OWT structures.
Wind turbines on offshore sites (OWECs) are subjected to combined loads from wind and waves. These dynamic loads, with a frequency content within the range of the natural frequencies of the structures, cause fatigue-effective stresses in the substructures of wind turbines. Therefore, the examination of natural frequencies is an important part within the design process of wind turbines. The quality of the numerical models for such calculations is of great importance, since the certification guidelines permit only small uncertainties in modal analysis results. The accuracy of the parameters of the numerical model can only be achieved through a comparison of simulation results with corresponding test results. Therefore, it is necessary to measure the dynamic behaviour of all components of the wind turbines simultaneously. This is true not only for the design verification, but also for monitoring the OWECs in operation. The potential of integrated systems for monitoring-based maintenance optimisation should thus be used.
Damage detection systems (DDS) provide information of the structural system integrity in contrast to e.g. local information by inspections or non-destructive testing techniques. In this paper, an approach is developed and demonstrated to utilize DDS information to update the structural system reliability and to integrate this information in structural system risk and utility analyses. For this aim, a novel performance modelling of DDS building upon their system characteristics and non-destructive testing reliability is introduced. The DDS performance modelling accounts for a measurement system in combination with a damage detection algorithm attached to a structural system in the reference and damage states and is modelled with the probability of indication accounting for type I and II errors. In this way, the basis for DDS performance comparison and assessment is provided accounting for the dependencies between the damage states in a structure. For updating of the structural system reliability, an approach is developed based on Bayesian updating facilitating the use of DDS information on structural system level and thus for a structural system risk analysis. The structural system risk analysis encompasses the static, dynamic, deterioration, reliability and consequence models, which provide the basis for the system model for calculating the direct risks due to component failure and the indirect risks due to system failure. Two case studies with the developed approach demonstrate a high Value of DDS Information due to risk and expected cost reduction.