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Adiabatic self-heating determination for Ti6Al4V at different temperatures

Article dans une revue avec comité de lecture
Auteur
SELA, Andrés
366133 Mondragon Unibertsitatea
ORTIZ-DE-ZARATE, Gorka
366133 Mondragon Unibertsitatea
SOLER, Daniel
366133 Mondragon Unibertsitatea
ccGERMAIN, Guénaël
211916 Laboratoire Angevin de Mécanique, Procédés et InnovAtion [LAMPA]
ccGALLEGOS MAYORGA, Linamaria
211916 Laboratoire Angevin de Mécanique, Procédés et InnovAtion [LAMPA]
ARRAZOLA, Pedro José
366133 Mondragon Unibertsitatea

URI
http://hdl.handle.net/10985/23161
DOI
10.1016/j.ijheatmasstransfer.2022.123747
Date
2023-01-12
Journal
International Journal of Heat and Mass Transfer

Résumé

Nowadays, numerical models are one of the most widely used techniques to predict material performance subjected to different manufacturing processes. However, to obtain accurate predictions, these models require reliable input data from thermomechanical tests. Nevertheless, during the test performance the material is self-heated due to a phenomenon known as adiabatic self-heating. Despite the proven relevance of a proper characterization, adiabatic self-heating is not properly taken into account during thermomechanical tests. In addition, in the literature, two different definitions were found under the umbrella of adiabatic-self heating. On the one hand, it could be defined as the ratio between the heat spent to heat the sample to the plastic work, value commonly taken as 0.9. On the other hand, many authors define the adiabatic heating as the ratio between the heat experimentally measured to the total plastic work. This second approach, although seems easier, is neglecting heat losses. These two different approaches could lead to misunderstandings once this parameter is implemented in the models. This paper aims to clarify this issue. Moreover, the techniques found in literature aiming to measure this parameter are usu ally based on 2D approaches at low temperatures. In this paper, a 3D methodology to measure adiabatic self-heating is presented which considers all possible heat losses (conduction, convection, radiation and mass flux) through infrared measurements and Digital Image Correlation (DIC) technique. The adiabatic self-heating was measured for a widely used alloy (Ti6Al4V) obtaining promising results.

Fichier(s) constituant cette publication

Nom:
LAMPA_IJHMT_2023_GERMAIN.pdf
Taille:
3.200Mo
Format:
PDF
Fin d'embargo:
2023-08-01
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  • Laboratoire Angevin de Mécanique, Procédés et InnovAtion (LAMPA)

Documents liés

Visualiser des documents liés par titre, auteur, créateur et sujet.

  • Surface drag analysis after Ti-6Al-4V orthogonal cutting using grid distortion 
    Communication avec acte
    SELA, Andres; ORTIZ-DE-ZARATE, Gorka; SOLER, Daniel; ARISTIMUÑO, Patxi; SORIANO, Denis; ccGERMAIN, Guénaël; DUCOBU, François; ARRAZOLA, Pedro José (Elsevier BV, 2020)
    Surface integrity directly affects the mechanical behavior of the workpiece, which is especially relevant on fatigue behavior. To characterize the quality of the machined surface, aspects such as material damage, roughness ...
  • Measurement of plastic strain and plastic strain rate during orthogonal cutting for Ti-6Al-4V 
    Article dans une revue avec comité de lecture
    SELA, Andres; ORTIZ-DE-ZARATE, Gorka; SOLER, Daniel; ccGERMAIN, Guénaël; ARISTIMUÑO, Patxi; ARRAZOLA, Pedro José (Elsevier BV, 2021)
    Finite Element Modelling used to predict machining outcomes needs to be supplied with the appropriate material thermomechanical properties which are obtained by specific testing devices and methodologies. However, these ...
  • Inverse Identification of the Ductile Failure Law for Ti6Al4V Based on Orthogonal Cutting Experimental Outcomes 
    Article dans une revue avec comité de lecture
    SELA, Andres; SOLER, Daniel; ORTIZ-DE-ZARATE, Gorka; ccGERMAIN, Guénaël; DUCOBU, François; ARRAZOLA, Pedro José (MDPI AG, 2021)
    Despite the prevalence of machining, tools and cutting conditions are often chosen based on empirical databases, which are hard to be made, and they are only valid in the range of conditions tested to develop it. Predictive ...
  • Influence of the microstructure of a Ti5553 titanium alloy on chip morphology and cutting forces during orthogonal cutting 
    Article dans une revue avec comité de lecture
    ccPOULIQUEN, Antoine; ccCHANFREAU, Nicolas; ccGALLEGOS MAYORGA, Linamaria; ccMAREAU, Charles; ccAYED, Yessine; ccGERMAIN, Guénaël; ccDEHMAS, Moukrane (Elsevier BV, 2023-07-06)
    Titanium alloys, largely used for aeronautical applications, are difficult to machine. High cutting forces, chip serration and important tool wear reflect this poor machinability, limiting productivity. One way of improving ...
  • Corrigendum to “Mechanical characterization and modelling of Inconel 718 material behavior for machining process assessment” [Mater. Sci. Eng. A 682 (2017) 441–453] 
    Article dans une revue avec comité de lecture
    ITURBE, Ariane; GIRAUD, Eliane; HORMAETXE, Exabier; GARAY, Ainhara; ccGERMAIN, Guénaël; OSTOLAZA, Koldo; ARRAZOLA, Pedro José (Elsevier, 2019)
    Corrigendum to “Mechanical characterization and modelling of Inconel 718 material behavior for machining process assessment” [Mater. Sci. Eng. A 682 (2017) 441–453]

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