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3D Printing of Metals
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Metals 2016,6, 280 The comparison between the stress distribution density of the traditional (Figure 14a) and optimized parts (Figure 14c) is shown in Figure 15. As can be seen fromFigure 15, the average stressof theoptimizedstructurebecamelarger. Thus, theefficiencyof thestructurewas improved. Figure15.Stressdistributiondensityof traditionalandoptimizedrings. Togetcomponentswithdifferentperformances, thenumberofstiffenersNandthe thicknessof theframeηweretakenasdesignparameters. Figure16showsthefiniteelementanalysis resultswhich illustrate the influenceof thenumberof stiffenersN and the thicknessof frameηon the structure stress. Theperformanceof thestructure improvedwith these twoparameters. Figure16. Influenceofdesignparametersonthestructural stressof ring. 3.2.4. L-ShapeFramewithBendingMoment TheL-shapestructureoftenbears thebendingmoment. Theoptimizationconditionsaredefined as follows. (1) Objective function:minimumstructuremass (2) Condition1: oneendisfixedandtheotherendisappliedto thevertical load; (3) Condition2: oneendisfixedandtheotherendisappliedto thehorizontal load (4) Boundarycondition: therightboundaryisfixedandthe left surface isappliedtothesurfaceforce (5) Designspace: brownregion ingraph (6) Minimumthickness: 0.006m (7) Designconstraints:meetingthestrengthrequirementswithminimummass 97
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3D Printing of Metals
Titel
3D Printing of Metals
Autor
Manoj Gupta
Herausgeber
MDPI
Ort
Basel
Datum
2017
Sprache
englisch
Lizenz
CC BY-NC-ND 4.0
ISBN
978-3-03842-592-2
Abmessungen
17.0 x 24.4 cm
Seiten
170
Schlagwörter
3D printing, additive manufacturing, electron beam melting, selective laser melting, laser metal deposition, aluminum, titanium, magnesium, composites
Kategorien
Naturwissenschaften Chemie
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3D Printing of Metals