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YOSHIZUMI, Victor Hideki et al. BI interface for power transmission insulators health monitoring. 2022, Anais.. Rio de Janeiro: ABCM, 2022. Disponível em: https://doi.org/10.29327/547386. Acesso em: 10 dez. 2025.
APA
Yoshizumi, V. H., Lopes, S. M. de A., Tavares, B., Moreira, W. H., Barquete, A. C. C., Spatti, D. H., et al. (2022). BI interface for power transmission insulators health monitoring. In Proceedings. Rio de Janeiro: ABCM. doi:10.29327/547386
NLM
Yoshizumi VH, Lopes SM de A, Tavares B, Moreira WH, Barquete ACC, Spatti DH, Flauzino RA, Silva IN da. BI interface for power transmission insulators health monitoring [Internet]. Proceedings. 2022 ;[citado 2025 dez. 10 ] Available from: https://doi.org/10.29327/547386
Vancouver
Yoshizumi VH, Lopes SM de A, Tavares B, Moreira WH, Barquete ACC, Spatti DH, Flauzino RA, Silva IN da. BI interface for power transmission insulators health monitoring [Internet]. Proceedings. 2022 ;[citado 2025 dez. 10 ] Available from: https://doi.org/10.29327/547386
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TAVARES, Beatriz et al. Impact of winds on the pollutant deposition in insulators of electric power transmission systems. 2022, Anais.. Rio de Janeiro: ABCM, 2022. Disponível em: https://doi.org/10.29327/547386. Acesso em: 10 dez. 2025.
APA
Tavares, B., Silva, I. N. da, Flauzino, R. A., Lopes, S. M. de A., Spatti, D. H., Yoshizumi, V. H., et al. (2022). Impact of winds on the pollutant deposition in insulators of electric power transmission systems. In Proceedings. Rio de Janeiro: ABCM. doi:10.29327/547386
NLM
Tavares B, Silva IN da, Flauzino RA, Lopes SM de A, Spatti DH, Yoshizumi VH, Moreira WH, Barquete ACC. Impact of winds on the pollutant deposition in insulators of electric power transmission systems [Internet]. Proceedings. 2022 ;[citado 2025 dez. 10 ] Available from: https://doi.org/10.29327/547386
Vancouver
Tavares B, Silva IN da, Flauzino RA, Lopes SM de A, Spatti DH, Yoshizumi VH, Moreira WH, Barquete ACC. Impact of winds on the pollutant deposition in insulators of electric power transmission systems [Internet]. Proceedings. 2022 ;[citado 2025 dez. 10 ] Available from: https://doi.org/10.29327/547386
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LOPES, Sofia Moreira de Andrade et al. Overhead line insulators performance degradation analysis Due to environmental pollution. 2022, Anais.. Rio de Janeiro: ABCM, 2022. Disponível em: https://doi.org/10.29327/547386. Acesso em: 10 dez. 2025.
APA
Lopes, S. M. de A., Yoshizumi, V. H., Tavares, B., Moreira, W. H., Barquete, A. C. C., Flauzino, R. A., et al. (2022). Overhead line insulators performance degradation analysis Due to environmental pollution. In Proceedings. Rio de Janeiro: ABCM. doi:10.29327/547386
NLM
Lopes SM de A, Yoshizumi VH, Tavares B, Moreira WH, Barquete ACC, Flauzino RA, Spatti DH, Silva IN da. Overhead line insulators performance degradation analysis Due to environmental pollution [Internet]. Proceedings. 2022 ;[citado 2025 dez. 10 ] Available from: https://doi.org/10.29327/547386
Vancouver
Lopes SM de A, Yoshizumi VH, Tavares B, Moreira WH, Barquete ACC, Flauzino RA, Spatti DH, Silva IN da. Overhead line insulators performance degradation analysis Due to environmental pollution [Internet]. Proceedings. 2022 ;[citado 2025 dez. 10 ] Available from: https://doi.org/10.29327/547386
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FURLAN, Laison Junio da Silva et al. Matrix method for a stability analysis of non-newtonian fluid flow. 2021, Anais.. Rio de Janeiro: ABCM, 2021. Disponível em: https://doi.org/10.26678/ABCM.COBEM2021.COB2021-1376. Acesso em: 10 dez. 2025.
APA
Furlan, L. J. da S., Araujo, M. T. de, Souza, L. F. de, Mendonça, M. T. de, & Brandi, A. C. (2021). Matrix method for a stability analysis of non-newtonian fluid flow. In Proceedings. Rio de Janeiro: ABCM. doi:10.26678/ABCM.COBEM2021.COB2021-1376
NLM
Furlan LJ da S, Araujo MT de, Souza LF de, Mendonça MT de, Brandi AC. Matrix method for a stability analysis of non-newtonian fluid flow [Internet]. Proceedings. 2021 ;[citado 2025 dez. 10 ] Available from: https://doi.org/10.26678/ABCM.COBEM2021.COB2021-1376
Vancouver
Furlan LJ da S, Araujo MT de, Souza LF de, Mendonça MT de, Brandi AC. Matrix method for a stability analysis of non-newtonian fluid flow [Internet]. Proceedings. 2021 ;[citado 2025 dez. 10 ] Available from: https://doi.org/10.26678/ABCM.COBEM2021.COB2021-1376
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RIBEIRO, Mateus Paranaiba e FREIRE, Lívia Souza e SOUZA, Leandro Franco de. A new direct numerical simulation code of boundary layer flows verified by the method of manufactured solutions. 2021, Anais.. Rio de Janeiro: ABCM, 2021. Disponível em: https://repositorio.usp.br/directbitstream/ee3d7a80-4410-43e7-985f-edc91a70495f/3067079.pdf. Acesso em: 10 dez. 2025.
APA
Ribeiro, M. P., Freire, L. S., & Souza, L. F. de. (2021). A new direct numerical simulation code of boundary layer flows verified by the method of manufactured solutions. In Proceedings. Rio de Janeiro: ABCM. Recuperado de https://repositorio.usp.br/directbitstream/ee3d7a80-4410-43e7-985f-edc91a70495f/3067079.pdf
NLM
Ribeiro MP, Freire LS, Souza LF de. A new direct numerical simulation code of boundary layer flows verified by the method of manufactured solutions [Internet]. Proceedings. 2021 ;[citado 2025 dez. 10 ] Available from: https://repositorio.usp.br/directbitstream/ee3d7a80-4410-43e7-985f-edc91a70495f/3067079.pdf
Vancouver
Ribeiro MP, Freire LS, Souza LF de. A new direct numerical simulation code of boundary layer flows verified by the method of manufactured solutions [Internet]. Proceedings. 2021 ;[citado 2025 dez. 10 ] Available from: https://repositorio.usp.br/directbitstream/ee3d7a80-4410-43e7-985f-edc91a70495f/3067079.pdf
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FREIRE, Lívia Souza. Large-eddy simulation of turbulent incompressible round jet flow. 2021, Anais.. Rio de Janeiro: ABCM, 2021. Disponível em: https://repositorio.usp.br/directbitstream/78ce25fb-e896-48f5-b263-6c54466e72f4/3067065.pdf. Acesso em: 10 dez. 2025.
APA
Freire, L. S. (2021). Large-eddy simulation of turbulent incompressible round jet flow. In Proceedings. Rio de Janeiro: ABCM. Recuperado de https://repositorio.usp.br/directbitstream/78ce25fb-e896-48f5-b263-6c54466e72f4/3067065.pdf
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BOSSE, Rúbia Mara e BECK, André Teófilo. Simplified finite elements model to represent mass-spring structures in dynamic simulation. 2018, Anais.. Rio de Janeiro, RJ: ABCM, 2018. Disponível em: http://icvramisuma2018.org/cd/web/PDF/ICVRAMISUMA2018-0157.PDF. Acesso em: 10 dez. 2025.
APA
Bosse, R. M., & Beck, A. T. (2018). Simplified finite elements model to represent mass-spring structures in dynamic simulation. In Proceedings. Rio de Janeiro, RJ: ABCM. Recuperado de http://icvramisuma2018.org/cd/web/PDF/ICVRAMISUMA2018-0157.PDF
NLM
Bosse RM, Beck AT. Simplified finite elements model to represent mass-spring structures in dynamic simulation [Internet]. Proceedings. 2018 ;[citado 2025 dez. 10 ] Available from: http://icvramisuma2018.org/cd/web/PDF/ICVRAMISUMA2018-0157.PDF
Vancouver
Bosse RM, Beck AT. Simplified finite elements model to represent mass-spring structures in dynamic simulation [Internet]. Proceedings. 2018 ;[citado 2025 dez. 10 ] Available from: http://icvramisuma2018.org/cd/web/PDF/ICVRAMISUMA2018-0157.PDF
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SILVA, Gustavo Assis da e CARDOSO, Eduardo Lenz e BECK, André Teófilo. Stress-based robust topology optimization under non-probabilistic uncertainty in applied loads. 2018, Anais.. Rio de Janeiro, RJ: ABCM, 2018. Disponível em: http://icvramisuma2018.org/cd/web/PDF/ICVRAMISUMA2018-0041.PDF. Acesso em: 10 dez. 2025.
APA
Silva, G. A. da, Cardoso, E. L., & Beck, A. T. (2018). Stress-based robust topology optimization under non-probabilistic uncertainty in applied loads. In Proceedings. Rio de Janeiro, RJ: ABCM. Recuperado de http://icvramisuma2018.org/cd/web/PDF/ICVRAMISUMA2018-0041.PDF
NLM
Silva GA da, Cardoso EL, Beck AT. Stress-based robust topology optimization under non-probabilistic uncertainty in applied loads [Internet]. Proceedings. 2018 ;[citado 2025 dez. 10 ] Available from: http://icvramisuma2018.org/cd/web/PDF/ICVRAMISUMA2018-0041.PDF
Vancouver
Silva GA da, Cardoso EL, Beck AT. Stress-based robust topology optimization under non-probabilistic uncertainty in applied loads [Internet]. Proceedings. 2018 ;[citado 2025 dez. 10 ] Available from: http://icvramisuma2018.org/cd/web/PDF/ICVRAMISUMA2018-0041.PDF
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CAMINADA NETTO, Adherbal et al. Petri Net based reliability analysis of thermoelectric plant cooling tower system: effect of operational strategies on system realiability and availability. 2018, Anais.. Rio de Janeiro, RJ: ABCM, 2018. Disponível em: https://www.researchgate.net/profile/Arthur-Melani/publication/324531183_Petri_Net_Based_Reliability_Analysis_of_Thermoelectric_Plant_Cooling_Tower_System_Effects_of_Operational_Strategies_on_System_Reliability_and_Availability/links/5b1c6b9aaca272021cf4758b/Petri-Net-Based-Reliability-Analysis-of-Thermoelectric-Plant-Cooling-Tower-System-Effects-of-Operational-Strategies-on-System-Reliability-and-Availability.pdf. Acesso em: 10 dez. 2025.
APA
Caminada Netto, A., Melani, R. F. H., Murad, C. A., Nabeta, S. I., & Souza, G. F. M. de. (2018). Petri Net based reliability analysis of thermoelectric plant cooling tower system: effect of operational strategies on system realiability and availability. In Proceedings. Rio de Janeiro, RJ: ABCM. Recuperado de https://www.researchgate.net/profile/Arthur-Melani/publication/324531183_Petri_Net_Based_Reliability_Analysis_of_Thermoelectric_Plant_Cooling_Tower_System_Effects_of_Operational_Strategies_on_System_Reliability_and_Availability/links/5b1c6b9aaca272021cf4758b/Petri-Net-Based-Reliability-Analysis-of-Thermoelectric-Plant-Cooling-Tower-System-Effects-of-Operational-Strategies-on-System-Reliability-and-Availability.pdf
NLM
Caminada Netto A, Melani RFH, Murad CA, Nabeta SI, Souza GFM de. Petri Net based reliability analysis of thermoelectric plant cooling tower system: effect of operational strategies on system realiability and availability [Internet]. Proceedings. 2018 ;[citado 2025 dez. 10 ] Available from: https://www.researchgate.net/profile/Arthur-Melani/publication/324531183_Petri_Net_Based_Reliability_Analysis_of_Thermoelectric_Plant_Cooling_Tower_System_Effects_of_Operational_Strategies_on_System_Reliability_and_Availability/links/5b1c6b9aaca272021cf4758b/Petri-Net-Based-Reliability-Analysis-of-Thermoelectric-Plant-Cooling-Tower-System-Effects-of-Operational-Strategies-on-System-Reliability-and-Availability.pdf
Vancouver
Caminada Netto A, Melani RFH, Murad CA, Nabeta SI, Souza GFM de. Petri Net based reliability analysis of thermoelectric plant cooling tower system: effect of operational strategies on system realiability and availability [Internet]. Proceedings. 2018 ;[citado 2025 dez. 10 ] Available from: https://www.researchgate.net/profile/Arthur-Melani/publication/324531183_Petri_Net_Based_Reliability_Analysis_of_Thermoelectric_Plant_Cooling_Tower_System_Effects_of_Operational_Strategies_on_System_Reliability_and_Availability/links/5b1c6b9aaca272021cf4758b/Petri-Net-Based-Reliability-Analysis-of-Thermoelectric-Plant-Cooling-Tower-System-Effects-of-Operational-Strategies-on-System-Reliability-and-Availability.pdf
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PEDROSA, Thaís Gomes e BECK, André Teófilo. Progressive collapse on risk topology optimization. 2018, Anais.. Rio de Janeiro, RJ: ABCM, 2018. Disponível em: http://icvramisuma2018.org/cd/web/PDF/ICVRAMISUMA2018-0088.PDF. Acesso em: 10 dez. 2025.
APA
Pedrosa, T. G., & Beck, A. T. (2018). Progressive collapse on risk topology optimization. In Proceedings. Rio de Janeiro, RJ: ABCM. Recuperado de http://icvramisuma2018.org/cd/web/PDF/ICVRAMISUMA2018-0088.PDF
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BEZERRA, Wesley de Souza e CASTELO, Antonio e AFONSO, A. M. Numerical solutions of electro-osmotic newtonian/non-newtonian fluid flows. 2017, Anais.. Rio de Janeiro: ABCM, 2017. Disponível em: https://doi.org/10.26678/ABCM.COBEM2017.COB17-0937. Acesso em: 10 dez. 2025.
APA
Bezerra, W. de S., Castelo, A., & Afonso, A. M. (2017). Numerical solutions of electro-osmotic newtonian/non-newtonian fluid flows. In Proceedings. Rio de Janeiro: ABCM. doi:10.26678/ABCM.COBEM2017.COB17-0937
NLM
Bezerra W de S, Castelo A, Afonso AM. Numerical solutions of electro-osmotic newtonian/non-newtonian fluid flows [Internet]. Proceedings. 2017 ;[citado 2025 dez. 10 ] Available from: https://doi.org/10.26678/ABCM.COBEM2017.COB17-0937
Vancouver
Bezerra W de S, Castelo A, Afonso AM. Numerical solutions of electro-osmotic newtonian/non-newtonian fluid flows [Internet]. Proceedings. 2017 ;[citado 2025 dez. 10 ] Available from: https://doi.org/10.26678/ABCM.COBEM2017.COB17-0937
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SOUSA, Vagner Candido de e DE MARQUI JÚNIOR, Carlos e ELAHINIA, Mohammad H. Effects of geometric nonlinearities of shape memory alloy springs on the aeroelastic behavior of a typical airfoil section. 2017, Anais.. Rio de Janeiro, RJ: ABCM, 2017. Disponível em: https://repositorio.usp.br/directbitstream/07ce36ee-020b-4349-85b4-ffecd3e18b47/trabalho%2016%20-%20Effects%20of%20geometric%20nonlinearities%20of%20shape%20memory%20alloy%20springs%20on%20the%20aeroelastic%20behavior%20of%20a%20typical%20airfoil%20section%20%28diname%202017%29_removed.pdf. Acesso em: 10 dez. 2025.
APA
Sousa, V. C. de, De Marqui Júnior, C., & Elahinia, M. H. (2017). Effects of geometric nonlinearities of shape memory alloy springs on the aeroelastic behavior of a typical airfoil section. In Proceedings. Rio de Janeiro, RJ: ABCM. Recuperado de https://repositorio.usp.br/directbitstream/07ce36ee-020b-4349-85b4-ffecd3e18b47/trabalho%2016%20-%20Effects%20of%20geometric%20nonlinearities%20of%20shape%20memory%20alloy%20springs%20on%20the%20aeroelastic%20behavior%20of%20a%20typical%20airfoil%20section%20%28diname%202017%29_removed.pdf
NLM
Sousa VC de, De Marqui Júnior C, Elahinia MH. Effects of geometric nonlinearities of shape memory alloy springs on the aeroelastic behavior of a typical airfoil section [Internet]. Proceedings. 2017 ;[citado 2025 dez. 10 ] Available from: https://repositorio.usp.br/directbitstream/07ce36ee-020b-4349-85b4-ffecd3e18b47/trabalho%2016%20-%20Effects%20of%20geometric%20nonlinearities%20of%20shape%20memory%20alloy%20springs%20on%20the%20aeroelastic%20behavior%20of%20a%20typical%20airfoil%20section%20%28diname%202017%29_removed.pdf
Vancouver
Sousa VC de, De Marqui Júnior C, Elahinia MH. Effects of geometric nonlinearities of shape memory alloy springs on the aeroelastic behavior of a typical airfoil section [Internet]. Proceedings. 2017 ;[citado 2025 dez. 10 ] Available from: https://repositorio.usp.br/directbitstream/07ce36ee-020b-4349-85b4-ffecd3e18b47/trabalho%2016%20-%20Effects%20of%20geometric%20nonlinearities%20of%20shape%20memory%20alloy%20springs%20on%20the%20aeroelastic%20behavior%20of%20a%20typical%20airfoil%20section%20%28diname%202017%29_removed.pdf
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BOSSE, Rúbia Mara e BECK, André Teófilo. Evaluation of the dynamic response of buildings with TMDs under earthquakes. 2017, Anais.. Rio de Janeiro, RJ: ABCM, 2017. . Acesso em: 10 dez. 2025.
APA
Bosse, R. M., & Beck, A. T. (2017). Evaluation of the dynamic response of buildings with TMDs under earthquakes. In Proceedings. Rio de Janeiro, RJ: ABCM.
NLM
Bosse RM, Beck AT. Evaluation of the dynamic response of buildings with TMDs under earthquakes. Proceedings. 2017 ;[citado 2025 dez. 10 ]
Vancouver
Bosse RM, Beck AT. Evaluation of the dynamic response of buildings with TMDs under earthquakes. Proceedings. 2017 ;[citado 2025 dez. 10 ]
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PEÑA, Guido Gomez et al. Adaptative variable impedance applied to robotic rehabilitation of walking. 2017, Anais.. Rio de Janeiro: ABCM, 2017. Disponível em: https://repositorio.usp.br/directbitstream/f8d64f5e-b767-4334-a3d3-bcb960433c53/prod_022442_sysno_2999751.pdf. Acesso em: 10 dez. 2025.
APA
Peña, G. G., Nogueira, S. L., Consoni, L. J., Santos, W. M. dos, Pérez Ibarra, J. C., & Siqueira, A. A. G. (2017). Adaptative variable impedance applied to robotic rehabilitation of walking. In Proceedings. Rio de Janeiro: ABCM. Recuperado de https://repositorio.usp.br/directbitstream/f8d64f5e-b767-4334-a3d3-bcb960433c53/prod_022442_sysno_2999751.pdf
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RODRIGUES, Kleber dos Santos e TRINDADE, Marcelo Areias. Coupled finite element model for an AFM cantilever beam including a piezoceramic base actuator. 2017, Anais.. Rio de Janeiro, RJ: ABCM, 2017. Disponível em: https://repositorio.usp.br/directbitstream/95c67b0f-e81c-41a8-b402-70ea0733090a/OK___trabalho%2014%20-%20Coupled%20finite%20element%20model%20for%20an%20AFM%20cantilever%20beam%20including%20a%20piezoceramic%20base%20actuator%20%28DINAME%202017%29.pdf. Acesso em: 10 dez. 2025.
APA
Rodrigues, K. dos S., & Trindade, M. A. (2017). Coupled finite element model for an AFM cantilever beam including a piezoceramic base actuator. In Proceedings. Rio de Janeiro, RJ: ABCM. Recuperado de https://repositorio.usp.br/directbitstream/95c67b0f-e81c-41a8-b402-70ea0733090a/OK___trabalho%2014%20-%20Coupled%20finite%20element%20model%20for%20an%20AFM%20cantilever%20beam%20including%20a%20piezoceramic%20base%20actuator%20%28DINAME%202017%29.pdf
NLM
Rodrigues K dos S, Trindade MA. Coupled finite element model for an AFM cantilever beam including a piezoceramic base actuator [Internet]. Proceedings. 2017 ;[citado 2025 dez. 10 ] Available from: https://repositorio.usp.br/directbitstream/95c67b0f-e81c-41a8-b402-70ea0733090a/OK___trabalho%2014%20-%20Coupled%20finite%20element%20model%20for%20an%20AFM%20cantilever%20beam%20including%20a%20piezoceramic%20base%20actuator%20%28DINAME%202017%29.pdf
Vancouver
Rodrigues K dos S, Trindade MA. Coupled finite element model for an AFM cantilever beam including a piezoceramic base actuator [Internet]. Proceedings. 2017 ;[citado 2025 dez. 10 ] Available from: https://repositorio.usp.br/directbitstream/95c67b0f-e81c-41a8-b402-70ea0733090a/OK___trabalho%2014%20-%20Coupled%20finite%20element%20model%20for%20an%20AFM%20cantilever%20beam%20including%20a%20piezoceramic%20base%20actuator%20%28DINAME%202017%29.pdf
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BECK, André Teófilo et al. Robust, risk and robust risk optimization under uncertainties. 2016, Anais.. Rio de Janeiro, RJ: ABCM, 2016. . Acesso em: 10 dez. 2025.
APA
Beck, A. T., Gomes, W. J. de S., Lopez, R. H., & Miguel, L. F. (2016). Robust, risk and robust risk optimization under uncertainties. In Proceedings. Rio de Janeiro, RJ: ABCM.
NLM
Beck AT, Gomes WJ de S, Lopez RH, Miguel LF. Robust, risk and robust risk optimization under uncertainties. Proceedings. 2016 ;[citado 2025 dez. 10 ]
Vancouver
Beck AT, Gomes WJ de S, Lopez RH, Miguel LF. Robust, risk and robust risk optimization under uncertainties. Proceedings. 2016 ;[citado 2025 dez. 10 ]
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FARIA, Regis Rossi Alves e GASCO, Aline Domingues Carneiro e MONTICELLI, Patrícia Ferreira. Entre notas e alaridos: perspectivas na bioacústica de mamíferos terrestres. 2015, Anais.. Campinas: ABCM, 2015. . Acesso em: 10 dez. 2025.
APA
Faria, R. R. A., Gasco, A. D. C., & Monticelli, P. F. (2015). Entre notas e alaridos: perspectivas na bioacústica de mamíferos terrestres. In Proceedings. Campinas: ABCM.
NLM
Faria RRA, Gasco ADC, Monticelli PF. Entre notas e alaridos: perspectivas na bioacústica de mamíferos terrestres. Proceedings. 2015 ;[citado 2025 dez. 10 ]
Vancouver
Faria RRA, Gasco ADC, Monticelli PF. Entre notas e alaridos: perspectivas na bioacústica de mamíferos terrestres. Proceedings. 2015 ;[citado 2025 dez. 10 ]
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MACHADO, Marcus Venicius Tavares et al. Microstructural and mechanical characterization of the thixocasted ZK60-T6 magnesium alloy with rare earth elements. 2015, Anais.. Rio de Janeiro: ABCM, 2015. Disponível em: https://repositorio.usp.br/directbitstream/e039e639-8166-4128-ba30-f186c872d8fd/sysno3004910_trabalho%20em%20congresso%203%20%281%29.pdf. Acesso em: 10 dez. 2025.
APA
Machado, M. V. T., Duarte, H. P., Silva, V. E. P. da, Silva, E. P. da, Sabariz, A. L. R., & Pinto, H. C. (2015). Microstructural and mechanical characterization of the thixocasted ZK60-T6 magnesium alloy with rare earth elements. In Proceedings. Rio de Janeiro: ABCM. Recuperado de https://repositorio.usp.br/directbitstream/e039e639-8166-4128-ba30-f186c872d8fd/sysno3004910_trabalho%20em%20congresso%203%20%281%29.pdf
NLM
Machado MVT, Duarte HP, Silva VEP da, Silva EP da, Sabariz ALR, Pinto HC. Microstructural and mechanical characterization of the thixocasted ZK60-T6 magnesium alloy with rare earth elements [Internet]. Proceedings. 2015 ;[citado 2025 dez. 10 ] Available from: https://repositorio.usp.br/directbitstream/e039e639-8166-4128-ba30-f186c872d8fd/sysno3004910_trabalho%20em%20congresso%203%20%281%29.pdf
Vancouver
Machado MVT, Duarte HP, Silva VEP da, Silva EP da, Sabariz ALR, Pinto HC. Microstructural and mechanical characterization of the thixocasted ZK60-T6 magnesium alloy with rare earth elements [Internet]. Proceedings. 2015 ;[citado 2025 dez. 10 ] Available from: https://repositorio.usp.br/directbitstream/e039e639-8166-4128-ba30-f186c872d8fd/sysno3004910_trabalho%20em%20congresso%203%20%281%29.pdf
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ALTEA, Claudinei de Moura e YANAGIHARA, Jurandir Itizo. Validation of a numerical method applied to the calculation of a hydrogenerator ventilation system. 2014, Anais.. Rio de Janeiro: ABCM, 2014. Disponível em: https://repositorio.usp.br/directbitstream/4425a66e-4153-4557-8d37-bbb42c39f039/Yanagihara-2014-Validation%20of%20a%20numerical%20method%20applied%20to%20the%20calculation%20of%20a%20hydrogenerator%20ventilation%20system.pdf. Acesso em: 10 dez. 2025.
APA
Altea, C. de M., & Yanagihara, J. I. (2014). Validation of a numerical method applied to the calculation of a hydrogenerator ventilation system. In Proceedings. Rio de Janeiro: ABCM. Recuperado de https://repositorio.usp.br/directbitstream/4425a66e-4153-4557-8d37-bbb42c39f039/Yanagihara-2014-Validation%20of%20a%20numerical%20method%20applied%20to%20the%20calculation%20of%20a%20hydrogenerator%20ventilation%20system.pdf
NLM
Altea C de M, Yanagihara JI. Validation of a numerical method applied to the calculation of a hydrogenerator ventilation system [Internet]. Proceedings. 2014 ;[citado 2025 dez. 10 ] Available from: https://repositorio.usp.br/directbitstream/4425a66e-4153-4557-8d37-bbb42c39f039/Yanagihara-2014-Validation%20of%20a%20numerical%20method%20applied%20to%20the%20calculation%20of%20a%20hydrogenerator%20ventilation%20system.pdf
Vancouver
Altea C de M, Yanagihara JI. Validation of a numerical method applied to the calculation of a hydrogenerator ventilation system [Internet]. Proceedings. 2014 ;[citado 2025 dez. 10 ] Available from: https://repositorio.usp.br/directbitstream/4425a66e-4153-4557-8d37-bbb42c39f039/Yanagihara-2014-Validation%20of%20a%20numerical%20method%20applied%20to%20the%20calculation%20of%20a%20hydrogenerator%20ventilation%20system.pdf
A citação é gerada automaticamente e pode não estar totalmente de acordo com as normas
ABNT
PACIFICO, Antonio Luiz e YANAGIHARA, Jurandir Itizo. Measurement of interfacial wave velocity and liquid film thickness inside y-jet atomizers. 2014, Anais.. Rio de Janeiro: ABCM, 2014. Disponível em: https://www.researchgate.net/profile/Antonio-Pacifico-2/publication/269697171_MEASUREMENT_OF_INTERFACIAL_WAVE_VELOCITY_AND_LIQUID_FILM_THICKNESS_INSIDE_Y-JET_ATOMIZERS/links/5492cb830cf225673b3e0ba8/MEASUREMENT-OF-INTERFACIAL-WAVE-VELOCITY-AND-LIQUID-FILM-THICKNESS-INSIDE-Y-JET-ATOMIZERS.pdf. Acesso em: 10 dez. 2025.
APA
Pacifico, A. L., & Yanagihara, J. I. (2014). Measurement of interfacial wave velocity and liquid film thickness inside y-jet atomizers. In Proceedings. Rio de Janeiro: ABCM. Recuperado de https://www.researchgate.net/profile/Antonio-Pacifico-2/publication/269697171_MEASUREMENT_OF_INTERFACIAL_WAVE_VELOCITY_AND_LIQUID_FILM_THICKNESS_INSIDE_Y-JET_ATOMIZERS/links/5492cb830cf225673b3e0ba8/MEASUREMENT-OF-INTERFACIAL-WAVE-VELOCITY-AND-LIQUID-FILM-THICKNESS-INSIDE-Y-JET-ATOMIZERS.pdf
NLM
Pacifico AL, Yanagihara JI. Measurement of interfacial wave velocity and liquid film thickness inside y-jet atomizers [Internet]. Proceedings. 2014 ;[citado 2025 dez. 10 ] Available from: https://www.researchgate.net/profile/Antonio-Pacifico-2/publication/269697171_MEASUREMENT_OF_INTERFACIAL_WAVE_VELOCITY_AND_LIQUID_FILM_THICKNESS_INSIDE_Y-JET_ATOMIZERS/links/5492cb830cf225673b3e0ba8/MEASUREMENT-OF-INTERFACIAL-WAVE-VELOCITY-AND-LIQUID-FILM-THICKNESS-INSIDE-Y-JET-ATOMIZERS.pdf
Vancouver
Pacifico AL, Yanagihara JI. Measurement of interfacial wave velocity and liquid film thickness inside y-jet atomizers [Internet]. Proceedings. 2014 ;[citado 2025 dez. 10 ] Available from: https://www.researchgate.net/profile/Antonio-Pacifico-2/publication/269697171_MEASUREMENT_OF_INTERFACIAL_WAVE_VELOCITY_AND_LIQUID_FILM_THICKNESS_INSIDE_Y-JET_ATOMIZERS/links/5492cb830cf225673b3e0ba8/MEASUREMENT-OF-INTERFACIAL-WAVE-VELOCITY-AND-LIQUID-FILM-THICKNESS-INSIDE-Y-JET-ATOMIZERS.pdf