Asset Details
MbrlCatalogueTitleDetail
Do you wish to reserve the book?
A novel physics-based and data-supported microstructure model for part-scale simulation of laser powder bed fusion of Ti-6Al-4V
by
Wall, Wolfgang A.
, Meier, Christoph
, Nitzler, Jonas
, Müller, Kei W.
, Hodge, N. E.
in
Beta phase
/ Classical and Continuum Physics
/ Computational Science and Engineering
/ Cooling
/ Cooling rate
/ Criteria
/ Engineering
/ Engineering Sciences
/ Evolution
/ Failure modes
/ Heat sources
/ Heating
/ Heuristic
/ Inverse parameter identification
/ Laser beam melting
/ Laser cooling
/ Laser powder bed fusion (LPBF) of metals
/ Laser powder bed fusion (LPBF) of metals
/ Lasers
/ Martensite
/ Metal additive manufacturing
/ Metastable phases
/ Microstructure
/ Parameter identification
/ Part-scale simulations
/ Powder beds
/ Quenching
/ Research Article
/ Selective laser melting
/ Temperature dependence
/ Temperature distribution
/ Temperature profiles
/ Theoretical and Applied Mechanics
/ Ti-6Al-4V microstructure model
/ Time dependence
/ Titanium base alloys
/ Transformations (mathematics)
2021
Hey, we have placed the reservation for you!
By the way, why not check out events that you can attend while you pick your title.
You are currently in the queue to collect this book. You will be notified once it is your turn to collect the book.
Oops! Something went wrong.
Looks like we were not able to place the reservation. Kindly try again later.
Are you sure you want to remove the book from the shelf?
A novel physics-based and data-supported microstructure model for part-scale simulation of laser powder bed fusion of Ti-6Al-4V
by
Wall, Wolfgang A.
, Meier, Christoph
, Nitzler, Jonas
, Müller, Kei W.
, Hodge, N. E.
in
Beta phase
/ Classical and Continuum Physics
/ Computational Science and Engineering
/ Cooling
/ Cooling rate
/ Criteria
/ Engineering
/ Engineering Sciences
/ Evolution
/ Failure modes
/ Heat sources
/ Heating
/ Heuristic
/ Inverse parameter identification
/ Laser beam melting
/ Laser cooling
/ Laser powder bed fusion (LPBF) of metals
/ Laser powder bed fusion (LPBF) of metals
/ Lasers
/ Martensite
/ Metal additive manufacturing
/ Metastable phases
/ Microstructure
/ Parameter identification
/ Part-scale simulations
/ Powder beds
/ Quenching
/ Research Article
/ Selective laser melting
/ Temperature dependence
/ Temperature distribution
/ Temperature profiles
/ Theoretical and Applied Mechanics
/ Ti-6Al-4V microstructure model
/ Time dependence
/ Titanium base alloys
/ Transformations (mathematics)
2021
Oops! Something went wrong.
While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
A novel physics-based and data-supported microstructure model for part-scale simulation of laser powder bed fusion of Ti-6Al-4V
by
Wall, Wolfgang A.
, Meier, Christoph
, Nitzler, Jonas
, Müller, Kei W.
, Hodge, N. E.
in
Beta phase
/ Classical and Continuum Physics
/ Computational Science and Engineering
/ Cooling
/ Cooling rate
/ Criteria
/ Engineering
/ Engineering Sciences
/ Evolution
/ Failure modes
/ Heat sources
/ Heating
/ Heuristic
/ Inverse parameter identification
/ Laser beam melting
/ Laser cooling
/ Laser powder bed fusion (LPBF) of metals
/ Laser powder bed fusion (LPBF) of metals
/ Lasers
/ Martensite
/ Metal additive manufacturing
/ Metastable phases
/ Microstructure
/ Parameter identification
/ Part-scale simulations
/ Powder beds
/ Quenching
/ Research Article
/ Selective laser melting
/ Temperature dependence
/ Temperature distribution
/ Temperature profiles
/ Theoretical and Applied Mechanics
/ Ti-6Al-4V microstructure model
/ Time dependence
/ Titanium base alloys
/ Transformations (mathematics)
2021
Please be aware that the book you have requested cannot be checked out. If you would like to checkout this book, you can reserve another copy
We have requested the book for you!
Your request is successful and it will be processed during the Library working hours. Please check the status of your request in My Requests.
Oops! Something went wrong.
Looks like we were not able to place your request. Kindly try again later.
A novel physics-based and data-supported microstructure model for part-scale simulation of laser powder bed fusion of Ti-6Al-4V
Journal Article
A novel physics-based and data-supported microstructure model for part-scale simulation of laser powder bed fusion of Ti-6Al-4V
2021
Request Book From Autostore
and Choose the Collection Method
Overview
The elasto-plastic material behavior, material strength and failure modes of metals fabricated by additive manufacturing technologies are significantly determined by the underlying process-specific microstructure evolution. In this work a novel physics-based and data-supported phenomenological microstructure model for Ti-6Al-4V is proposed that is suitable for the part-scale simulation of laser powder bed fusion processes. The model predicts spatially homogenized phase fractions of the most relevant microstructural species, namely the stable
β
-phase, the stable
α
s
-phase as well as the metastable Martensite
α
m
-phase, in a physically consistent manner. In particular, the modeled microstructure evolution, in form of diffusion-based and non-diffusional transformations, is a pure consequence of energy and mobility competitions among the different species, without the need for heuristic transformation criteria as often applied in existing models. The mathematically consistent formulation of the evolution equations in rate form renders the model suitable for the practically relevant scenario of temperature- or time-dependent diffusion coefficients, arbitrary temperature profiles, and multiple coexisting phases. Due to its physically motivated foundation, the proposed model requires only a minimal number of free parameters, which are determined in an inverse identification process considering a broad experimental data basis in form of time-temperature transformation diagrams. Subsequently, the predictive ability of the model is demonstrated by means of continuous cooling transformation diagrams, showing that experimentally observed characteristics such as critical cooling rates emerge naturally from the proposed microstructure model, instead of being enforced as heuristic transformation criteria. Eventually, the proposed model is exploited to predict the microstructure evolution for a realistic selective laser melting application scenario and for the cooling/quenching process of a Ti-6Al-4V cube of practically relevant size. Numerical results confirm experimental observations that Martensite is the dominating microstructure species in regimes of high cooling rates, e.g., due to highly localized heat sources or in near-surface domains, while a proper manipulation of the temperature field, e.g., by preheating the base-plate in selective laser melting, can suppress the formation of this metastable phase.
Publisher
Springer International Publishing,Springer Nature B.V,Springer,Springer Science and Business Media LLC,SpringerOpen
Subject
/ Classical and Continuum Physics
/ Computational Science and Engineering
/ Cooling
/ Criteria
/ Heating
/ Inverse parameter identification
/ Laser powder bed fusion (LPBF) of metals
/ Laser powder bed fusion (LPBF) of metals
/ Lasers
/ Metal additive manufacturing
/ Theoretical and Applied Mechanics
This website uses cookies to ensure you get the best experience on our website.