Salvador, FJ.; Carreres, M.; Garcia Tiscar, J.; Belmar-Gil, M. (2021). Modal decomposition of the unsteady non-reactive flow field in a swirl-stabilized combustor operated by a Lean Premixed injection system. Aerospace Science and Technology. 112:1-13. https://doi.org/10.1016/j.ast.2021.106622
Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10251/182764
[EN] This work is focused on the numerical study of low-order coherent structures of a high-swirled laboratory-scaled combustor operated by a Lean Premixed (LP) injection system in non-reacting conditions through different ...[+]
[EN] This work is focused on the numerical study of low-order coherent structures of a high-swirled laboratory-scaled combustor operated by a Lean Premixed (LP) injection system in non-reacting conditions through different flow modal decomposition techniques. This will provide valuable insight into the time-spatial modal structure detecting coherent spatial patterns. Experiments suggest the appearance of a self-excited hydrodynamic instability characterized by a single dominant frequency. On the one hand, the dominant pulsating energy components associated with the Precessing Vortex Core (PVC) are identified through the application of a Proper Orthogonal Decomposition (POD) to the instantaneous velocity field. On the other hand, Dynamic Mode Decomposition (DMD) is proven to effectively highlight the relation between the frequency of the most dominant unsteady vortex structures and their spatial distribution within the combustor. Since DMD analysis generates a global frequency spectrum in which each mode corresponds to a specific discrete frequency, its application has been demonstrated to be more efficient than POD when dealing with temporally coherent problems. In this way, the DMD technique has proved to be a robust and systematic method that can give accurate and consistent interpretations of the periodic physics underlying hydrodynamic instabilities in the combustor studied in the present investigation.[-]
info:eu-repo/grantAgreement/UC//RES FI-2018-3-0033/ info:eu-repo/grantAgreement/UC//FI-2019-1-0009/ info:eu-repo/grantAgreement/UPV//PAID-06-18/ info:eu-repo/grantAgreement/UPV//PAID-01-18//Programa de Ayudas de Investigación y Desarrollo (PAID-01-18)/ info:eu-repo/grantAgreement/UPV-VIN//SP20180178//Modelado computacional de los fenómenos de atomización y evaporación en quemadores LDI de
turbinas de gas/
Thanks:
This work was partly sponsored by the program "Ayuda a Primeros Proyectos de Investigacion (PAID-06-18), Vicerrectorado de Investigacion, Innovacion y Transferencia de la Universitat Politecnica de Valencia (UPV), Spain". ...[+]
This work was partly sponsored by the program "Ayuda a Primeros Proyectos de Investigacion (PAID-06-18), Vicerrectorado de Investigacion, Innovacion y Transferencia de la Universitat Politecnica de Valencia (UPV), Spain". We thankfully acknowledge the computer resources at Altamira Supercomputer and the technical support provided by Universidad de Cantabria (RES FI-2018-3-0033 and FI-2019-1-0009) in the frame of the Spanish Supercomputing Network. On the other hand, the support given to Mr. Mario Belmar by Universitat Politecnica de Valencia through the "FPI-Subprograma 2" grant within the "Programa de Apoyo para la Investigacion y Desarrollo (PAID-01-18)" is gratefully acknowledged.[-]