996 resultados para Parametric roll resonance


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Parametric roll is a critical phenomenon for ships, whose onset may cause roll oscillations up to +-40 degrees, leading to very dangerous situations and possibly capsizing. Container ships have been shown to be particularly prone to parametric roll resonance when they are sailing in moderate to heavy head seas. A Matlab/Simulink parametric roll benchmark model for a large container ship has been implemented and validated against a wide set of experimental data. The model is a part of a Matlab/Simulink Toolbox (MSS, 2007). The benchmark implements a 3rd-order nonlinear model where the dynamics of roll is strongly coupled with the heave and pitch dynamics. The implemented model has shown good accuracy in predicting the container ship motions, both in the vertical plane and in the transversal one. Parametric roll has been reproduced for all the data sets in which it happened, and the model provides realistic results which are in good agreement with the model tank experiments.

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Parametric ship roll resonance is a phenomenon where a ship can rapidly develop high roll motion while sailing in longitudinal waves. This effect can be described mathematically by periodic changes of the parameters of the equations of motion, which lead to a bifurcation. In this paper, the control design of an active u-tank stabilizer is carried out using Lyapunov theory. A nonlinear backstepping controller is developed to provide global exponential stability of roll. An extension of commonly used u-tank models is presented to account for large roll angles, and the control design is tested via simulation on a high-fidelity model of a vessel under parametric roll resonance.

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This work deals with estimators for predicting when parametric roll resonance is going to occur in surface vessels. The roll angle of the vessel is modeled as a second-order linear oscillatory system with unknown parameters. Several algorithms are used to estimate the parameters and eigenvalues of the system based on data gathered experimentally on a 1:45 scale model of a tanker. Based on the estimated eigenvalues, the system predicts whether or not parametric roll occurred. A prediction accuracy of 100% is achieved for regular waves, and up to 87.5% for irregular waves.

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The objective of this work is to formulate a nonlinear, coupled model of a container ship during parametric roll resonance, and to validate the model using experimental data.

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El fenómeno de balance paramétrico se ha convertido en un tema de actualidad en los últimos años debido al aumento de accidentes relacionados y las discusiones en OMI debido a su indiscutible importancia en la seguridad del buque, su carga y tripulación. Por esta razón, su estudio ha atraído el interés de universidades, administraciones y sociedades de clasificación. Esta tesis trata el fenómeno de balance paramétrico desde diferentes puntos de vista. Primero, se estudiaran los diferentes escenarios donde el fenómeno de balance paramétrico ha ocurrido para entender cómo se desarrolla el fenómeno en la vida real, así como sus implicaciones en la seguridad de las personas y carga abordo. Un modelo matemático no lineal de movimiento de balance desacoplado es propuesto. Este modelo se basa en la aproximación cuadrática del momento de amortiguamiento junto con un brazo adrizante dependiente del tiempo. Este modelo es validado con datos experimentales del Canal de Ensayos de la ETSI Navales (UPM) relativos a un buque de pesca de 34.5m de eslora y dos cubiertas para diferentes casos de olas longitudinales. Se encuentra una correspondencia muy satisfactoria en términos de fase y amplitud entre el modelo teórico y los datos de canal para el caso en particular. El modelo es comparado con el estado del arte de la tecnología disponible actualmente, así como con los requisitos mínimos que están siendo discutidos en OMI relativos a los Criterios de Estabilidad de Segunda Generación. Finalmente, el fenómeno es revisado desde los puntos de vista de diseño y operacional para entender los parámetros relevantes detrás del fenómeno y conocer/aplicar las herramientas disponibles y medios para afrontar/mitigar este fenómeno. ABSTRACT A parametric roll resonance phenomenon has become a very relevant technical issue in recent years due the increasing number of accidents related and the ongoing discussions at the IMO due to its undisputed importance in the safety of the ship, its cargo and crew. For this reason, its study has attracted the interest of universities, regulatory bodies and classification societies. This thesis deals with this phenomenon of parametric roll resonance from different points of view. First, we will look at different real scenarios where parametric roll resonance phenomena has occurred in order to further understand how it is developed in real life and its implications for the safety of the people and cargo onboard. A non-linear mathematical model of the uncoupled roll motion is also presented. This model is based on a classic quadratic approximation of the damping momentum together with a time-varying restoring arm. This model is validated with real data taken from experimental results of the E.T.S.I. Navales Towing Tank on a trawler of two decks of 34.5 m. length for different cases of longitudinal waves. A very satisfactory correspondence, in terms of phase and amplitude, is found between the theoretical model presented and the real data on this particular case. The model is compare with the state-of-the-art technology currently available as well as with the minimum requirements currently being discussed as part of the IMO SGISC. Finally, the phenomenon is reviewed from design and operational aspects to understand the underlying parameters and know the available tools and ways to tackle/mitigate this phenomenon.

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Localised prostate cancer is a heterogenous disease and a multi-modal approach is required to accurately diagnose and stage the disease. Whilst the use of magnetic resonance imaging (MRI) has become more common, small volume and multi-focal disease are oft en diffi cult to characterise. Prostate specifi c membrane antigen is a cell surface protein, which is expressed in nearly all prostate cancer cells. Its expression is signifi cantly higher in high grade prostate cancer cells. In this study, we compare multi-parametric magnetic resonance imaging and 68-Gallinium-PSMA PET with whole-mount pathology of the prostate to evaluate the applicability of multiparameteric (MP) MRI and 68Ga-PSMA PET in detecting and locating tumour foci in patients with localised prostate cancer.

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This paper presents an analysis of solar radiation pressure induced coupled librations of gravity stabilized cylindrical spacecraft with a special reference to geostationary communication satellites. The Lagrangian approach is used to obtain the corresponding equations of motion. The solar induced torques are assumed to be free of librational angles and are represented by their Fourier expansion. The response and periodic solutions are obtained through linear and nonlinear analyses, using the method of harmonic balance in the latter case. The stability conditions are obtained using Routh-Hurwitz criteria. To establish the ranges of validity the analytic response is compared with the numerical solution. Finally, values of the system parameters are suggested to make the satellite behave as desired. Among these is a possible approach to subdue the solar induced roll resonance. It is felt that the approximate analysis presented here should significantly reduce the computational efforts involved in the design and stability analysis of the systems.

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Multi-parametric magnetic resonance imaging (mp-MRI) has become an increasingly important method for detecting and treating prostate cancer. Transrectal ultrasound (TRUS) is the most commonly used method for guiding prostate needle biopsy and remains the gold standard for diagnosis of prostate cancer. MRI-to-TRUS image reg- istration is an important technology for enabling computer-assisted targeting of the majority of prostate lesions that are visible in MRI but not independently distinguishable in TRUS images. The aim of this study was to estimate the needle placement accuracy of an image guidance system (SmartTargetÒ), developed by our research group, using a surgical training phantom.

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Prostate cancer is the most common non-dermatological cancer amongst men in the developed world. The current definitive diagnosis is core needle biopsy guided by transrectal ultrasound. However, this method suffers from low sensitivity and specificity in detecting cancer. Recently, a new ultrasound based tissue typing approach has been proposed, known as temporal enhanced ultrasound (TeUS). In this approach, a set of temporal ultrasound frames is collected from a stationary tissue location without any intentional mechanical excitation. The main aim of this thesis is to implement a deep learning-based solution for prostate cancer detection and grading using TeUS data. In the proposed solution, convolutional neural networks are trained to extract high-level features from time domain TeUS data in temporally and spatially adjacent frames in nine in vivo prostatectomy cases. This approach avoids information loss due to feature extraction and also improves cancer detection rate. The output likelihoods of two TeUS arrangements are then combined to form our novel decision support system. This deep learning-based approach results in the area under the receiver operating characteristic curve (AUC) of 0.80 and 0.73 for prostate cancer detection and grading, respectively, in leave-one-patient-out cross-validation. Recently, multi-parametric magnetic resonance imaging (mp-MRI) has been utilized to improve detection rate of aggressive prostate cancer. In this thesis, for the first time, we present the fusion of mp-MRI and TeUS for characterization of prostate cancer to compensates the deficiencies of each image modalities and improve cancer detection rate. The results obtained using TeUS are fused with those attained using consolidated mp-MRI maps from multiple MR modalities and cancer delineations on those by multiple clinicians. The proposed fusion approach yields the AUC of 0.86 in prostate cancer detection. The outcomes of this thesis emphasize the viable potential of TeUS as a tissue typing method. Employing this ultrasound-based intervention, which is non-invasive and inexpensive, can be a valuable and practical addition to enhance the current prostate cancer detection.

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We demonstrate that the parametric resonance in a magnetic quadrupole trap can be exploited to cool atoms by using Bird's method. In our programme the parametric resonance was realized by anisotropically modulating the trap potential. The modulation frequency dependences of temperature and fraction of the trapped atoms are explored. Furthermore, the temperature after the modulation as functions of the modulation amplitude and the mean elastic collision time are also studied. These results are valuable for the experiment of parametric resonance in a quadrupole trap.