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Vpliv poti orodja na geometrijo izdelka pri enotočkovnem inkrementalnem preoblikovanju
ID Kunstelj, Luka (Author), ID Pepelnjak, Tomaž (Mentor) More about this mentor... This link opens in a new window

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Abstract
Enotočkovno inkrementalno preoblikovanje pločevine (SPIF) se sooča s problemom nizke geometrijske natančnosti, ki je povezan z izbrano potjo orodja. Za analizo vpliva poti smo z lastnim programom generirali sedem različnih strategij poti. Izvedli smo eksplicitne MKEsimulacije preoblikovanja jekla DC04 v okolju Abaqus ter ovrednotili odstopanja končne oblike in zasukanost dna. Ugotovili smo, da dvosmerne strategije poti izrazito izboljšajo kot zasukanosti dna izdelka. Najmanjše odstopanje geometrije pri izotropnem in anizotropnem materialu ter najmanjši zasuk dna pri anizotropnem materialu omogoča dvosmerna profilna pot z diagonalno razporejenimi inkrementi, ki hkrati zahteva najdaljši čas obdelave. Najmanjši kot zasukanosti dna pri izotropnem materialu pa omogoča dvosmerna profilna pot z ravnim korakom navzdol.

Language:Slovenian
Keywords:inkrementalno preoblikovanje, vpliv poti, simulacija, geometrijska natančnost, Abaqus, anizotropija
Work type:Master's thesis/paper
Typology:2.09 - Master's Thesis
Organization:FS - Faculty of Mechanical Engineering
Place of publishing:Ljubljana
Publisher:[L. Kunstelj]
Year:2026
Number of pages:XX, 74 str.
PID:20.500.12556/RUL-187476 This link opens in a new window
UDC:621.7:519.6(043.2)
COBISS.SI-ID:291471619 This link opens in a new window
Publication date in RUL:11.09.2026
Views:94
Downloads:25
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Secondary language

Language:English
Title:Influence of tool path on product geometry in single-point incremental forming
Abstract:
Single point incremental sheet forming (SPIF) faces the problem of low geometric accuracy, which is related to the selected tool path. To analyze the influence of the tool path, seven different path strategies were generated using a custom-developed program. Explicit FEM simulations of forming DC04 steel were performed in the Abaqus environment, evaluating the final shape deviations and bottom twist. We found that bi-directional path strategies significantly improve the bottom twist angle of the part. The lowest geometric deviation for isotropic and anisotropic materials, as well as the lowest bottom twist for anisotropic material, is achieved by the bi-directional profile path with diagonally distributed increments, which simultaneously requires the longest processing time. The lowest bottom twist angle for isotropic material, however, is achieved by the bi-directional profile path with a straight downward step.

Keywords:incremental forming, tool path influence, simulations, geometric accuracy, Abaqus, anisotropy

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