Fatigue lifetime analysis of POM gears for generalized tooth root shapes

The current calculation methods for determining the tooth root load capacity of polymer gears (e.g., VDI 2736) are based on the same assumptions as those for steel gears. However, due to the non-linear material behavior, temperature, and rate dependency of polymers, these predictions are often inacc...

Full description

Autores:
Eberlein, Robert
Düzel, Sven
Tipo de recurso:
Conferencia (Ponencia)
Fecha de publicación:
2024
Institución:
Universidad de los Andes
Repositorio:
Séneca: repositorio Uniandes
Idioma:
eng
OAI Identifier:
oai:repositorio.uniandes.edu.co:1992/76051
Acceso en línea:
https://hdl.handle.net/1992/76051
https://doi.org/10.51573/Andes.PPS39.GS.MS.1
https://repositorio.uniandes.edu.co/
Palabra clave:
Lifetime modelling
Polymer gears
Tooth root fracture
Viscoplastic material modelling
Finite element analysis
Local damage criterion
Ingeniería
Rights
openAccess
License
https://repositorio.uniandes.edu.co/static/pdf/aceptacion_uso_es.pdf
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dc.title.eng.fl_str_mv Fatigue lifetime analysis of POM gears for generalized tooth root shapes
title Fatigue lifetime analysis of POM gears for generalized tooth root shapes
spellingShingle Fatigue lifetime analysis of POM gears for generalized tooth root shapes
Lifetime modelling
Polymer gears
Tooth root fracture
Viscoplastic material modelling
Finite element analysis
Local damage criterion
Ingeniería
title_short Fatigue lifetime analysis of POM gears for generalized tooth root shapes
title_full Fatigue lifetime analysis of POM gears for generalized tooth root shapes
title_fullStr Fatigue lifetime analysis of POM gears for generalized tooth root shapes
title_full_unstemmed Fatigue lifetime analysis of POM gears for generalized tooth root shapes
title_sort Fatigue lifetime analysis of POM gears for generalized tooth root shapes
dc.creator.fl_str_mv Eberlein, Robert
Düzel, Sven
dc.contributor.author.none.fl_str_mv Eberlein, Robert
Düzel, Sven
dc.contributor.editor.none.fl_str_mv Salcedo, Felipe
Perilla, Jairo Ernesto
Sierra, Cesar
Medina, Jorge Alberto
dc.subject.keyword.none.fl_str_mv Lifetime modelling
Polymer gears
Tooth root fracture
Viscoplastic material modelling
Finite element analysis
Local damage criterion
topic Lifetime modelling
Polymer gears
Tooth root fracture
Viscoplastic material modelling
Finite element analysis
Local damage criterion
Ingeniería
dc.subject.themes.none.fl_str_mv Ingeniería
description The current calculation methods for determining the tooth root load capacity of polymer gears (e.g., VDI 2736) are based on the same assumptions as those for steel gears. However, due to the non-linear material behavior, temperature, and rate dependency of polymers, these predictions are often inaccurate. A previous study employed rate-dependent nonlinear viscoplastic finite element (FE) modelling of polyoxymethylene (POM) to quantify material influences not considered in standard metal gear assumptions. A lifetime model was developed and validated to predict tooth root fracture based on rotational speed for a constant tooth root geometry. In this study, the existing damage model is adapted and validated to include the dependency on notch (tooth root) geometry. The extension of the model to two damage parameters allows for a geometry-independent representation of the nonlinear speed dependency of tooth root breakage. This correlative modelling approach incorporates two independent damage mechanisms inside the material which lead to tooth root breakage failure of the gear. To map these mechanisms, local material states at the crack initiation point are used as damage parameters. Calibration of the bi-parametric damage model with experimental data shows that model predictions fall within the experimental scatter. Further research is ongoing to extend the damage model regarding generalized torque loading conditions.
publishDate 2024
dc.date.issued.none.fl_str_mv 2024-12
dc.date.accessioned.none.fl_str_mv 2025-02-07T16:51:32Z
dc.date.available.none.fl_str_mv 2025-02-07T16:51:32Z
dc.type.none.fl_str_mv Documento de Conferencia
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dc.identifier.isbn.none.fl_str_mv 978-958-798-779-9
dc.identifier.uri.none.fl_str_mv https://hdl.handle.net/1992/76051
dc.identifier.doi.none.fl_str_mv https://doi.org/10.51573/Andes.PPS39.GS.MS.1
dc.identifier.instname.none.fl_str_mv Universidad de los Andes
dc.identifier.reponame.none.fl_str_mv Repositorio Institucional Séneca
dc.identifier.repourl.none.fl_str_mv https://repositorio.uniandes.edu.co/
identifier_str_mv 978-958-798-779-9
Universidad de los Andes
Repositorio Institucional Séneca
url https://hdl.handle.net/1992/76051
https://doi.org/10.51573/Andes.PPS39.GS.MS.1
https://repositorio.uniandes.edu.co/
dc.language.iso.none.fl_str_mv eng
language eng
dc.relation.conferencedate.none.fl_str_mv 05-19-2024/05-23-2024
dc.relation.conferenceplace.none.fl_str_mv Cartagena de Indias, Colombia
dc.relation.ispartofconference.none.fl_str_mv Proceedings of the 39th International Conference of the Polymer Processing Society (PPS-39)
dc.rights.uri.none.fl_str_mv https://repositorio.uniandes.edu.co/static/pdf/aceptacion_uso_es.pdf
dc.rights.accessrights.none.fl_str_mv info:eu-repo/semantics/openAccess
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eu_rights_str_mv openAccess
dc.format.extent.none.fl_str_mv 10 páginas
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dc.publisher.none.fl_str_mv Ediciones Uniandes
dc.publisher.faculty.none.fl_str_mv Facultad de Ingeniería
dc.publisher.place.none.fl_str_mv Bogotá
publisher.none.fl_str_mv Ediciones Uniandes
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spelling Eberlein, RobertDüzel, SvenSalcedo, FelipePerilla, Jairo ErnestoSierra, CesarMedina, Jorge Alberto2025-02-07T16:51:32Z2025-02-07T16:51:32Z2024-12978-958-798-779-9https://hdl.handle.net/1992/76051https://doi.org/10.51573/Andes.PPS39.GS.MS.1Universidad de los AndesRepositorio Institucional Sénecahttps://repositorio.uniandes.edu.co/The current calculation methods for determining the tooth root load capacity of polymer gears (e.g., VDI 2736) are based on the same assumptions as those for steel gears. However, due to the non-linear material behavior, temperature, and rate dependency of polymers, these predictions are often inaccurate. A previous study employed rate-dependent nonlinear viscoplastic finite element (FE) modelling of polyoxymethylene (POM) to quantify material influences not considered in standard metal gear assumptions. A lifetime model was developed and validated to predict tooth root fracture based on rotational speed for a constant tooth root geometry. In this study, the existing damage model is adapted and validated to include the dependency on notch (tooth root) geometry. The extension of the model to two damage parameters allows for a geometry-independent representation of the nonlinear speed dependency of tooth root breakage. This correlative modelling approach incorporates two independent damage mechanisms inside the material which lead to tooth root breakage failure of the gear. To map these mechanisms, local material states at the crack initiation point are used as damage parameters. Calibration of the bi-parametric damage model with experimental data shows that model predictions fall within the experimental scatter. Further research is ongoing to extend the damage model regarding generalized torque loading conditions.10 páginasapplication/pdfengEdiciones UniandesFacultad de IngenieríaBogotáhttps://repositorio.uniandes.edu.co/static/pdf/aceptacion_uso_es.pdfinfo:eu-repo/semantics/openAccesshttp://purl.org/coar/access_right/c_abf2Fatigue lifetime analysis of POM gears for generalized tooth root shapesDocumento de Conferenciainfo:eu-repo/semantics/conferenceObjectinfo:eu-repo/semantics/publishedVersionhttp://purl.org/coar/resource_type/c_8544http://purl.org/coar/resource_type/c_c94fhttp://purl.org/coar/version/c_970fb48d4fbd8a85TextLifetime modellingPolymer gearsTooth root fractureViscoplastic material modellingFinite element analysisLocal damage criterionIngeniería05-19-2024/05-23-2024Cartagena de Indias, ColombiaProceedings of the 39th International Conference of the Polymer Processing Society (PPS-39)ORIGINALPPS-39 - Fatigue Lifetime Analysis of POM Gears for Generalized Tooth Root Shapes.pdfPPS-39 - 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