990 resultados para Selective laser melting
Resumo:
The design of plastics profile extrusion dies becomes increasingly more complex so that conventional manufacture processes reach their limit in the die manufacture. A feasible manufacture of arbitrarily designed dies is only possible by additive manufacturing. An especially promising process is hereby the Selective Laser Melting with which metal parts with series identical mechanical properties can be produced without the need for part specific tooling or downstream sintering processes. Disadvantegeous is, however, the relatively rough surface of additively manufactured parts. Against this background, the manufacturing of an profile extrusion die by Selective Laser Melting and the plastics profile surface quality, that can be achieved with such dies, is investigated. For this purpose, profiles are extruded both with an additively manufactured die and a conventionally milled sample of the same die geometry. In case of the additively manufactured die a concept for the surface finishing of the flow channel is required, which can be applied to arbitrarily shaped geometries. Therefore, two different reworking processes are applied only to the die land of the flow channel. The comparison of the surface roughnesses shows that the additively manufactured die with a polished die land delivers the same surface quality as the conventional die.
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The aim of this work was to perform a detailed investigation of the use of Selective Laser Melting (SLM) technology to process eutectic silver-copper alloy Ag 28 wt. % Cu (also called AgCu28). The processing occurred with a Realizer SLM 50 desktop machine. The powder analysis (SEM-topography, EDX, particle distribution) was reported as well as the absorption rates for the near-infrared (NIR) spectrum. Microscope imaging showed the surface topography of the manufactured parts. Furthermore, microsections were conducted for the analysis of porosity. The Design of Experiments approach used the response surface method in order to model the statistical relationship between laser power, spot distance and pulse time.
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Il Selective Laser Melting è un processo di additive manufacturing che consiste nella realizzazione di componenti metallici tridimensionali, sovrapponendo strati di polvere, che viene via via fusa mediante una sorgente controllata di energia (laser). È una tecnica produttiva che viene utilizzata da più di 20 anni ma solo ora sta assumendo un ruolo rilevante nell’industria. È un processo versatile ma complesso che ad oggi permette di processare solo un numero limitato di leghe. Il presente lavoro di tesi riguarda in particolare lo studio, dal punto di vista microstrutturale, di componenti in acciaio inossidabile austenitico AISI-316L processato mediante Selective Laser Melting, attività svolta in collaborazione con il Gruppo di Tecnologia – Laser del Dipartimento di Ingegneria Industriale. Alla base dell’attività sperimentale è stata svolta anche un’ampia ricerca bibliografica per chiarire lo stato dell’arte sul processo e sulla lega in questione, la microstruttura, i difetti, le proprietà meccaniche e l’effetto dei parametri di processo sul componente finito. Le attività sperimentali hanno previsto una prima fase di caratterizzazione delle polveri di 316L, successivamente la caratterizzazione dei campioni prodotti tramite selective laser melting, in termini di microstruttura e difetti correlati al processo. Le analisi hanno rivelato la presenza di una microstruttura “gerarchica” costituita da melt pool, grani e celle submicrometriche. I difetti rinvenuti sono pori, delaminazione degli strati, particelle di polvere non fuse. Infine è stata eseguita la caratterizzazione frattografica dei campioni sottoposti a prove di trazione e di fatica a flessione rotante (attività condotte dal gruppo Laser) per identificare la morfologia di frattura e i siti di innesco della cricca di fatica.
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Dissertação de mestrado integrado em Engenharia Mecânica
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Additive manufacturing is a fast growing manufacturing technology capable of producing complex objects without the need for conventional manufacturing process planning. During the process the work piece is built by adding material one layer at a time according to a digital 3D CAD model. At first additive manufacturing was mainly used to make prototypes but the development of the technology has made it possible to also make final products. Welding is the most common joining method for metallic materials. As the maximum part size of additive manufacturing is often limited, it may sometimes be required to join two or more additively manufactured parts together. However there has been almost no research on the welding of additively manufactured parts so far, which means that there has been very little information available on the possible differences compared to the welding of sheet metal parts. The aim of this study was to compare the weld joint properties of additively manufactured parts to those of sheet metal parts. The welding process that was used was TIG welding and the test material was 316L austenitic stainless steel. Weld joint properties were studied by making tensile, bend and hardness tests and by studying the weld microstructures with a microscope. Results show that there are certain characteristics in the welds of additively manufactured parts. The building direction of the test pieces has some impact on the mechanical properties of the weld. Nevertheless all the welds exhibited higher yield strength than the sheet metal welds but at the same time elongation at break was lower. It was concluded that TIG welding is a feasible process for welding additively manufactured parts.
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Ameloblastoma is a benign locally aggressive infiltrative odontogenic lesion. It is characterized by slow growth and painless swelling. The treatment for ameloblastoma varies from curettage to en bloc resection, and the reported recurrence rates after treatment are high; the safety margin of resection is important to avoid recurrence. Advances in technology brought about great benefits in dentistry; a new generation of computed tomography scanners and 3-dimensional images enhance the surgical planning and management of maxillofacial tumors. The development of new prototyping systems provides accurate 3D biomodels on which surgery can be simulated, especially in cases of ameloblastoma, in which the safety margin is important for treatment success. A case of mandibular follicular ameloblastoma is reported where a 3D biomodel was used before and during surgery.
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[EN]The continuous evolution of materials and technologies of Additive Manufacturing (AM) has led to a competitive production process even for functional parts. The capabilities of these technologies for manufacturing complex geometries allow the definition of new designs that cannot be obtained with any other manufacturing processes. An application where this capability can be exploited is the lightening of parts using internal structures. This allows to obtain more efficient parts and, at the same time, reduce the costs of material and manufacturing time. A new lightweight optimization method to optimize the design of these structures and minimize weight while keeping the minimal mechanical properties is presented in this paper.
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In the framework of the third generation of photovoltaic devices, the intermediate band solar cell is one of the possible candidates to reach higher efficiencies with a lower processing cost. In this work, we introduce a novel processing method based on a double ion implantation and, subsequently, a pulsed laser melting (PLM) process to obtain thicker layers of Ti supersaturated Si. We perform ab initio theoretical calculations of Si impurified with Ti showing that Ti in Si is a good candidate to theoretically form an intermediate band material in the Ti supersaturated Si. From time-of-flight secondary ion mass spectroscopy measurements, we confirm that we have obtained a Ti implanted and PLM thicker layer of 135 nm. Transmission electron microscopy reveals a single crystalline structure whilst the electrical characterization confirms the transport properties of an intermediate band material/Si substrate junction. High subbandgap absorption has been measured, obtaining an approximate value of 104 cm−1 in the photons energy range from 1.1 to 0.6 eV.
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La tesi in oggetto ha lo scopo di determinare l’effetto della sabbiatura sul comportamento a fatica della lega AlSi10Mg prodotta mediante Laser Powder Bed Fusion e trattata termicamente. I parametri di processo e di trattamento termico (T5 e T6) sono stati precedentemente ottimizzati. Al fine di determinare l’effetto della sabbiatura su topografia superficiale e microstruttura dei campioni, si sono condotte molteplici analisi avvalendosi di strumenti quali profilometria, microscopia ottica ed in scansione, analisi di tensioni residue con diffrazione a raggi X e prove di durezza. Attraverso prove di fatica per flessione rotante, eseguite secondo il metodo Stair-Case per la determinazione della resistenza a fatica, e successiva caratterizzazione delle superfici di frattura si vuole correlare il difetto killer, ossia quello responsabile del cedimento per fatica, alle caratteristiche morfologiche e microstrutturali. Il difetto killer viene caratterizzato in termini di dimensione e distanza dalla superficie e per mostrare la relazione fra la dimensione del difetto killer e la resistenza a fatica si adotta il diagramma di Kitagawa-Takahashi con modellazione di Murakami ed EL Haddad. Si è evidenziato che tutti i difetti killer sono riconducibili a lack-of-fusion con dimensione superiore ai 100 μm ad una profondità compresa fra i 150 e i 200 μm, indipendentemente dal trattamento termico o meccanico applicato. In termini di fatica si osserva che il trattamento T6 conferisce al materiale migliori proprietà rispetto a quello T5. Il processo di sabbiatura, confrontato con quello di lucidatura superficiale, ha portato a miglioramenti in termini di durezza e tensioni residue di compressione, ma si è rivelato quasi ininfluente sulla resistenza a fatica. Sulla base di quanto sopra, si conferma la possibilità di applicazione della sabbiatura in ambito industriale a componenti meccanici, anche in sostituzione della lucidatura, ottenendo un beneficio anche economico.
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This thesis studies the advantages, disadvantages and possibilities of additive manufacturing in making components with internal flow channels. These include hydraulic components, components with cooling channels and heat exchangers. Processes studied in this work are selective laser sintering and selective laser melting of metallic materials. The basic principles of processes and parameters involved in the process are presented and different possibilities of internal channel manufacturing and flow improvement are introduced
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Rapid Manufacturing (RM) wurde als Schlagwort in der letzten Zeit insbesondere aus dem Bereich des Selective Laser Sintering (SLS) bekannt. In dieser inzwischen über 15-jährigen Technologieentwicklung wurden in den vergangenen Jahren bedeutende Fortschritte erzielt, die die Bauteileigenschaften nahe an die Anforderungen für End-Teile heran brachten. So ist das RM denn auch weniger aus der Sicht grösserer Losgrösse zu verstehen. Viel mehr bedeutet Rapid Manufacturing, dass die Bauteile nach einer generativen Fertigung direkt im Endprodukt resp. der Endanwendung zum Einsatz kommt. Das Selective Laser Melting, mit welchem aus metallischen Pulvermaterialien direkt Metallteile in Standardmaterialien hergestellt werden können, ist aufgrund der guten Materialeigenschaften für RM prädestiniert. In den ersten Anwendungsfeldern des SLM–Verfahrens standen die Herstellung von Werkzeugeinsätzen mit konturnaher Kühlung (Conformal Cooling) im Vordergrund, wobei diese Werkzeuge unter dem Begriff RM verstanden werden müssen, da die Werkzeuge direkt für die Endanwendung - den Spritzgussprozess - verwendet werden. Aktuelle Trends gehen jedoch in Richtung der Fertigung von Funktionsteilen z.B. für den Maschinenbau. Obwohl sich in der Fertigung komplexer Funktionsteile noch Probleme, z.B. mit in Bezug auf die generative Baurichtung überhängender Bauteilstrukturen ergeben, zeigen sich trotzdem erhebliche Vorteile eines RM mittels SLM. Neben klaren Vorteilen durch das mögliche Customizing von Bauteilen können bei kleineren Bauteilgrössen auch erhebliche Kostenvorteile erzielt werden. Allerdings zeigen die Grenzen der aktuellen Möglichkeiten, in welchen Bereichen das SLM-Verfahren weiterer Entwicklung bedarf. Themen wie Produktivität, die Problematik der nach wie vor notwendigen Supportstrukturen wie auch Qualitätssicherung müssen in den nächsten Jahren angegangen werden, wenn dieses Verfahren den Schritt hin zu einem etablierten Produktionsverfahren und damit zu breiterer Akzeptanz und Anwendung finden soll
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Rapid Manufacturing von individuellen Implantaten mittels Selective Laser Melting (SLM) wurde für metallische Standardwerkstoffe in der Medizintechnik (Titanlegierungen, Kobalt-Chrom-Legierungen, Stahl) realisiert. Dies sind permanente Implantate, die entweder dauerhaft im Körper verbleiben oder in einer zweiten Operation entfernt werden. Eine vom ILT mittels SLM hergestellte Hüftpfanne aus TiAl6V4 konnte bereits erfolgreich im Patienten implantiert werden. Die regenerative Therapie ist jedoch die klinisch bevorzugte Strategie. Das bedeutet, dass der Selbstheilungsprozess des menschlichen Körpers für die Heilung von großen Knochendefekten genutzt wird. Ein neuer Ansatz zur Implantatfertigung folgt dieser Strategie. Der SLM-Prozess wird für die Verarbeitung von bioresorbierbaren Werkstoffen entwickelt um individuelle Implantate zu fertigen, die im Körper abgebaut und durch körpereigenes Knochengewebe ersetzt werden. Diese Arbeit beschreibt die Qualifizierung des SLM Verfahrens für die Verarbeitung von einem Kompositmaterial aus Polylactid / β-Tricalciumphosphat (PDLLA/β-TCP).