Erica Liverani
University of Bologna
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Featured researches published by Erica Liverani.
Journal of Manufacturing Science and Engineering-transactions of The Asme | 2013
Alessandro Fortunato; Alessandro Ascari; Erica Liverani; Leonardo Orazi; Gabriele Cuccolini
This article illustrates the development of a complete and exhaustive mathematical model for the simulation of laser transformation hardening of hypo-eutectoid carbon steels. The authors propose an integrated approach aimed at taking into consideration all the the phenomena involved in this manufacturing process, with particular attention to implementing easy mathematical models in order to optimize the trade-off between the accuracy of the predicted results and the computational times. The proposed models involve the calculation of the 3D thermal field occurring into the workpiece and predict the microstructural evolution of the target material exploiting an original approach based on the definition of thermodynamic thresholds which can be considered as a physical constant of the material itself. Several parameters and phenomena are taken into consideration in order to accurately simulate the process: laser beam characteristics, fast austenization of the steel and tempering effect due to mutually interacting beam trajectories.Copyright
Journal of Thermal Analysis and Calorimetry | 2018
Eriel Pérez Zapico; Adrian H. A. Lutey; Alessandro Ascari; Carlos R. Gómez Pérez; Erica Liverani; Alessandro Fortunato
An improved model is proposed for automated cold metal transfer (CMT) welding based on a time-dependent double-ellipsoidal volumetric heat flux distribution. Equations are evaluated numerically within COMSOL Multiphysics for CMT welding of a 3-mm-thick AA5754 Al–Mg alloy plate. The simulation calculates transient and steady-state temperature distributions within the weld seam and heat-affected zone (HAZ). Validation of the model is achieved by comparing simulated temperatures with measured values from thermocouples in the HAZ during welding experiments, as well as through comparison of the calculated fusion zone and microscope images of the weld seam. Under steady-state conditions, large differences between the peak and average calculated temperatures in the weld pool highlight the underlying phenomenon responsible for improvements in weld quality for thin sheets with CMT compared to conventional joining processes. The developed simulation provides opportunities for process optimisation and sensitivity analysis in many applications.
ASME 2015 International Manufacturing Science and Engineering Conference | 2015
Erica Liverani; Alessandro Fortunato; Alessandro Ascari; Donato Sorgente; Leonardo Daniele Scintilla; G. Palumbo
Laser hardening is a very flexible and useful process for surface treatment of medium carbon steels, capable of processing varied and complex geometries. In order to enlarge the range of industrial applications to which this process can be applied, a suitable model is necessary in order to reduce the setup time requested for the optimization of new components. The process model presented is based on the Arrhenius-like equation for estimation of the thermally induced process reaction time for microstructural transformations. By means of experiments, all unknown parameters in the equations have been determined, highlighting the accuracy and low computation time of the simulator.Copyright
ASME 2017 12th International Manufacturing Science and Engineering Conference collocated with the JSME/ASME 2017 6th International Conference on Materials and Processing | 2017
Erica Liverani; Adrian H. A. Lutey; Alessandro Fortunato; Alessandro Ascari
Tensile and compression test specimens comprising lattice structures with simple cubic, crossing-rod and body-centered cubic (BCC) unit cells are produced via SLM additive manufacturing (AM) of AISI 316L stainless steel and CoCr powder. Equivalent stress-elongation curves are obtained, with equivalent strength, specific strength, stiffness modulus and specific stiffness calculated based on specimen density and sample cross-section. The obtained results highlight the fact that analogous structures can behave very differently depending on the chosen material. While large differences are obtained in strength and stiffness between the different unit cell types, specific strength and specific stiffness vary to a lesser extent. Two case studies are presented, including a porous structure suitable for bone implants in the field of biomedical engineering and an AISI 316L food packaging machine component. The results obtained in this study provide useful guidelines and equivalent properties for designers wishing to exploit the advantages of internal lattice structures in AM.Copyright
Proceedings of SPIE | 2014
Erica Liverani; Nadine Battiato; Alessandro Ascari; Alessandro Fortunato
A new process, based on ring spot geometry, is presented for laser surface hardening of large cylindrical com-ponents. The proposed technique leads to a very hard, deep and uniform treated area along the entire work piece surface without introducing a tempered zone, making the process very attractive compared to conventional induction hardening that exhibits both low energy efficiency and poor flexibility. A complete physical model is presented for the process, together with a study of the influence of process parameters on the final outcome. The results of an extensive validation campaign, carried out following the AISI1040 standard, are also reported.
ASME 2014 International Manufacturing Science and Engineering Conference collocated with the JSME 2014 International Conference on Materials and Processing and the 42nd North American Manufacturing Research Conference | 2014
Erica Liverani; Alessandro Ascari; Alessandro Fortunato; Adrian H. A. Lutey
This paper presents the feasibility of an innovative application of laser-assisted bending process. The high strength steel sheets bending, carried out after a laser heat treatment, is studied. Several strategies aimed at obtaining a ductile structure along the bending line, suitable for cold forming, are investigated. The influence of laser processing parameters on the microstructure, hardness and strength of the sheets are discussed and analyzed. In order to predict the temperature and ensure the repeatability and reliability of the process, a model for heat treatment simulation is developed. The study of the experimental data and the integration with the simulation of the heating phase lead to the definition of specific process parameters suitable for achieving a crack-free cold bending of high strength steels.Copyright
Journal of Materials Processing Technology | 2017
Erica Liverani; Stefania Toschi; Lorella Ceschini; Alessandro Fortunato
Materials & Design | 2016
Erica Liverani; Alessandro Fortunato; Alberto Leardini; Claudio Belvedere; S. Siegler; Lorella Ceschini; Alessandro Ascari
Surface & Coatings Technology | 2016
Alistair Speidel; Adrian H. A. Lutey; Jonathon Mitchell-Smith; Graham A. Rance; Erica Liverani; Alessandro Ascari; Alessandro Fortunato; Adam T. Clare
Surface & Coatings Technology | 2016
Erica Liverani; Adrian H. A. Lutey; Alessandro Ascari; Alessandro Fortunato; Luca Tomesani