8 results on '"Javier Naranjo-Pérez"'
Search Results
2. Parameter identification of the dynamic Winkler soil–structure interaction model using a hybrid unscented Kalman filter–multi-objective harmony search algorithm
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Javier Fernando Jiménez-Alonso, Andrés Sáez, and Javier Naranjo-Pérez
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Computer science ,business.industry ,media_common.quotation_subject ,0211 other engineering and technologies ,020101 civil engineering ,Control engineering ,02 engineering and technology ,Building and Construction ,Kalman filter ,Structural engineering ,0201 civil engineering ,Operational Modal Analysis ,Identification (information) ,Soil structure interaction ,021105 building & construction ,Key (cryptography) ,Harmony search ,Simplicity ,business ,Civil and Structural Engineering ,media_common - Abstract
Soil–structure interaction is a key aspect to take into account when simulating the response of civil engineering structures subjected to dynamic actions. To this end, and due to its simplicity and ease of implementation, the dynamic Winkler model has been widely used in practical engineering applications. In this model, soil–structure interaction is simulated by means of spring–damper elements. A crucial point to guarantee the adequate performance of the approach is to accurately estimate the constitutive parameters of these elements. To this aim, this article proposes the application of a recently developed parameter identification method to address such problem. In essence, the parameter identification problem is transformed into an optimization problem, so that the parameters of the dynamic Winkler model are estimated by minimizing the relative differences between the numerical and experimental modal properties of the overall soil–structure system. A recent and efficient hybrid algorithm, based on the combination of the unscented Kalman filter and multi-objective harmony search algorithms, is satisfactorily implemented to solve the optimization problem. The performance of this proposal is then validated via its implementation in a real case-study involving an integral footbridge.
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- 2020
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3. Modal parameter identification of a spectator–grandstand interaction model under different rhythmic activities
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Andrés Sáez, Felipe García-Sánchez, Javier Fernando Jiménez-Alonso, and Javier Naranjo-Pérez
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business.industry ,Computer science ,0211 other engineering and technologies ,020101 civil engineering ,Interaction model ,02 engineering and technology ,Building and Construction ,Structural engineering ,Stadium ,0201 civil engineering ,Operational Modal Analysis ,Identification (information) ,Modal ,Rhythm ,Order (business) ,021105 building & construction ,business ,Civil and Structural Engineering - Abstract
Stadium grandstands are designed to support high dynamic loads due to the presence of spectators attending both sport and music events. In order to assess accurately the dynamic response of these s...
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- 2019
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4. Identification of a Human-Structure Interaction Model on an Ultra-Lightweight FRP Footbridge
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Iván M. Díaz, Christian Gallegos-Calderón, José M. Goicolea, and Javier Naranjo-Pérez
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Damping ratio ,Technology ,Computer science ,human-structure interaction ,QH301-705.5 ,QC1-999 ,0211 other engineering and technologies ,020101 civil engineering ,02 engineering and technology ,Bending ,0201 civil engineering ,FRP structures ,021105 building & construction ,General Materials Science ,Biology (General) ,Instrumentation ,QD1-999 ,Fluid Flow and Transfer Processes ,business.industry ,human-induced vibrations ,Process Chemistry and Technology ,Physics ,General Engineering ,Mode (statistics) ,Interaction model ,Structural engineering ,Fundamental frequency ,Engineering (General). Civil engineering (General) ,Load factor ,Computer Science Applications ,Vibration ,Chemistry ,Harmonics ,lightweight structures ,TA1-2040 ,business ,footbridge vibrations - Abstract
Due to the high strength-to-weight ratio of fibre reinforced polymers (FRPs), human-induced vibration problematic remains as a subject to be fully comprehended in order to extend the use of composites in Bridge Engineering. Thus, this paper studies an ultra-lightweight FRP footbridge, which presents excessive vertical vibrations when the fourth harmonic of a walking pedestrian is synchronised with the structure’s fundamental frequency. Focusing on the vertical bending mode, at 7.66 Hz, the bridge dynamic behaviour was assessed under the action of a single pedestrian crossing the facility at a step frequency of 1.9 Hz. As an over prediction of the footbridge response was computed using a moving force (MF) model available in a design guideline, a mass-spring-damper-actuator (MSDA) system was adopted to depict a walker. Hence, Human-Structure Interaction (HSI) phenomenon was considered. Employing the experimental results, parameters of the MSDA system were identified, leading to a HSI model that considers the first fourth harmonics of a walking human. Additionally, a parametric analysis was carried out, determining that the damping ratio of the human body and the load factor associated to the fourth harmonic are the most relevant parameters on the estimation of the response. The identified HSI model may be used as a first approximation to accurately predict the dynamic response of ultra-lightweight composite structures and should be extended to account for crowd-induced loads.
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- 2021
5. Motion-Based Design of Passive Damping Systems to Reduce Wind-Induced Vibrations of Stay Cables under Uncertainty Conditions
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Iván M. Díaz, Giuseppe Quaranta, Andrés Sáez, Javier Naranjo-Pérez, Javier Fernando Jiménez-Alonso, Universidad de Sevilla. Departamento de Mecánica de Medios Continuos y Teoría de Estructuras, Ministerio de Ciencia, Innovación y Universidades (MICINN). España, and Universidad de Sevilla
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Optimization problem ,Serviceability (structure) ,Computer science ,Structural system ,020101 civil engineering ,02 engineering and technology ,Motion-based design ,lcsh:Technology ,7. Clean energy ,0201 civil engineering ,Damper ,lcsh:Chemistry ,Cable-stayed bridges ,0203 mechanical engineering ,Control theory ,constrained multi-objective optimization ,reliability analysis ,General Materials Science ,Limit state design ,lcsh:QH301-705.5 ,Instrumentation ,uncertainty conditions ,Fluid Flow and Transfer Processes ,lcsh:T ,passive structural control ,Process Chemistry and Technology ,Uncertainty conditions ,motion-based design ,General Engineering ,lcsh:QC1-999 ,Computer Science Applications ,Vibration ,020303 mechanical engineering & transports ,lcsh:Biology (General) ,lcsh:QD1-999 ,Passive structural control ,lcsh:TA1-2040 ,Benchmark (computing) ,lcsh:Engineering (General). Civil engineering (General) ,Reduction (mathematics) ,Reliability analysis ,cable-stayed bridges ,lcsh:Physics ,Constrained multi-objective optimization ,Mecánica - Abstract
Stay cables exhibit both great slenderness and low damping, which make them sensitive to resonant phenomena induced by the dynamic character of external actions. Furthermore, for these same reasons, their modal properties may vary significantly while in service due to the modification of the operational and environmental conditions. In order to cope with these two limitations, passive damping devices are usually installed at these structural systems. Robust design methods are thus mandatory in order to ensure the adequate behavior of the stay cables without compromising the budget of the passive control systems. To this end, a motion-based design method under uncertainty conditions is proposed and further implemented in this paper. In particular, the proposal focuses on the robust design of different passive damping devices when they are employed to control the response of stay cables under wind-induced vibrations. The proposed method transforms the design problem into a constrained multi-objective optimization problem, where the objective function is defined in terms of the characteristic parameters of the passive damping device, together with an inequality constraint aimed at guaranteeing the serviceability limit state of the structure. The performance of the proposed method was validated via its application to a benchmark structure with vibratory problems: The longest stay cable of the Alamillo bridge (Seville, Spain) was adopted for this purpose. Three different passive damping devices are considered herein, namely: (i) viscous, (ii) elastomeric, and (iii) frictions dampers. The results obtained by the proposed approach are analyzed and further compared with those provided by a conventional method adopted in the Standards. This comparison illustrates how the newly proposed method allows reduction of the cost of the three types of passive damping devices considered in this study without compromising the performance of the structure.
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- 2020
6. Evaluación del comportamiento sísmico de la estructura original y modificada del Mercado de Verónicas en Murcia (España)
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Javier Fernando Jiménez Alonso, R. Ruiz, Alejandro Mateo Hernández Díaz, and Javier Naranjo Pérez
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Environmental Engineering ,Capacity spectrum method ,Nonlinear finite element model ,finite element method ,0211 other engineering and technologies ,Structure (category theory) ,Truss ,020101 civil engineering ,02 engineering and technology ,capacity spectrum method ,seismic vulnerability ,NA1-9428 ,0201 civil engineering ,021105 building & construction ,Architecture ,Civil and Structural Engineering ,Building construction ,historic masonry structure ,business.industry ,Seismic loading ,análisis no-lineal ,Building and Construction ,Structural engineering ,Masonry ,Reinforced concrete ,estructura histórica de fábrica ,non-linear analysis ,vulnerabilidad sísmica ,método de los elementos finitos ,business ,TH1-9745 ,Geology ,método del espectro de capacidad - Abstract
In this manuscript, it is presented, a case-study about the assessment of the seismic behaviour of Veronicas Market. Its structure, initially constituted by steel trusses supported on masonry walls, was subsequently modified by the addition of a mezzanine supported on reinforced concrete piers. Applying the capacity spectrum method, based on an updated nonlinear finite element model, the performance levels of both the original and modified structure have been compared to assess the effects originated by the change in the transmission mechanism of the seismic loads., En este artículo, se presenta, un caso en estudio sobre la evaluación del comportamiento sísmico del Mercado de Verónicas. Su estructura, originalmente constituida por cerchas metálica apoyadas sobre muros de fábrica fue posteriormente modificada por la incorporación de una entreplanta con pilares de hormigón armado. Aplicando el método del espectro de capacidad, con base en un modelo calibrado no-lineal de elementos finitos, se han comparado los niveles de desempeño de la estructura original y modificada para valorar los efectos originados por el cambio en el mecanismo de transmisión de las cargas sísmicas.
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- 2019
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7. A collaborative machine learning-optimization algorithm to improve the finite element model updating of civil engineering structures
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María Infantes, Javier Fernando Jiménez-Alonso, Andrés Sáez, and Javier Naranjo-Pérez
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Structure (mathematical logic) ,Optimization problem ,Artificial neural network ,business.industry ,Computer science ,0211 other engineering and technologies ,020101 civil engineering ,02 engineering and technology ,Machine learning ,computer.software_genre ,Civil engineering ,Finite element method ,0201 civil engineering ,Reduction (complexity) ,Nonlinear system ,021105 building & construction ,Key (cryptography) ,Harmony search ,Artificial intelligence ,business ,computer ,Civil and Structural Engineering - Abstract
Finite element model updating has become a key tool to improve the numerical modelling of existing civil engineering structures, by adjusting the numerical response to the observed experimental behaviour of the structure. At present, model updating is mostly conducted using the maximum likelihood method. Following this approach, the updating problem can be transformed into a multi-objective optimization problem. Due to the complex nonlinear behaviour of the resulting objective functions, metaheuristic optimization algorithms are normally employed to solve such optimization problem. However, and although this is nowadays a well-established technique, there are still two main drawbacks that need to be addressed for practical engineering applications, namely: (i) the high simulation time required to compute the problem; and (ii) the uncertainty associated with the selection of the best updated model among all the Pareto optimal solutions. In order to overcome these limitations, a new collaborative algorithm is proposed herein, which takes advantage of the collaborative coupling among two optimization algorithms (harmony search and active-set algorithms), a machine learning technique (artificial neural networks) and a statistical tool (principal component analysis). The implementation details of our proposal are discussed in detail throughout the paper and its performance is illustrated with a case study addressing the model updating of a real steel footbridge. Two are the main advantages of the newly proposed algorithm: (i) it leads to a clear reduction of the simulation time; and (ii) it further permits a robust selection of the best updated model.
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- 2020
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8. Motion-Based Design of Passive Damping Devices to Mitigate Wind-Induced Vibrations in Stay Cables
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Javier Fernando Jiménez-Alonso, Javier Jiménez-Manfredi, Andrés Sáez, Javier Naranjo-Pérez, Universidad de Sevilla. Departamento de Estructuras de Edificación e Ingeniería del Terreno, and Universidad de Sevilla. Departamento de Mecánica de Medios Continuos y Teoría de Estructuras
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Optimization problem ,Computer science ,wind-induced vibrations ,stay cables ,motion-based design ,020101 civil engineering ,02 engineering and technology ,Function (mathematics) ,Motion-based design ,Bridge (nautical) ,Action (physics) ,0201 civil engineering ,Damper ,passive damping devices ,Vibration ,020303 mechanical engineering & transports ,0203 mechanical engineering ,Control theory ,Benchmark (computing) ,Global optimization - Abstract
Wind action can induce large amplitude vibrations in the stay cables of bridges. To reduce the vibration level of these structural elements, different types of passive damping devices are usually installed. In this paper, a motion-based design method is proposed and implemented in order to achieve the optimum design of different passive damping devices for stay cables under wind action. According to this method, the design problem is transformed into an optimization problem. Thus, its main aim is to minimize the different terms of a multi-objective function, considering as design variables the characteristic parameters of each considered passive damping device. The multi-objective function is defined in terms of the scaled characteristic parameters, one single-function for each parameter, and an additional function that checks the compliance of the considered design criterion. Genetic algorithms are considered as a global optimization method. Three passive damping devices have been studied herein: viscous, elastomeric and friction dampers. As a benchmark structure, the Alamillo bridge (Seville, Spain), is considered in order to validate the performance of the proposed method. Finally, the parameters of the damping devices designed according to this proposal are successfully compared with the results provided by a conventional design method.
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- 2018
- Full Text
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