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Razvoj tiskalnega ohišja in sistema za nadzor mikroklime za izboljšanje kakovosti FDM 3D tiskanja
ID Janež, Žan (Author), ID Kitanovski, Andrej (Mentor) More about this mentor... This link opens in a new window, ID Tomc, Urban (Comentor)

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Abstract
Modeliranje s taljenjem (FDM) je ena najpogosteje uporabljenih aditivnih tehnologij 3D-tiskanja. Kakovost izdelkov je pri tej tehnologiji močno odvisna od okoljskih pogojev, kot sta temperatura in relativna vlažnost v tiskalnem prostoru. V diplomski nalogi smo razvili zaprto tiskalno ohišje z integriranim sistemom za nadzor mikroklime, ki temelji na platformi Arduino GIGA R1 WiFi. Sistem omogoča aktivni nadzor temperature in vlažnosti znotraj komore s pomočjo zaznaval, grelnikov in ventilatorjev. Izvedli smo eksperimentalne meritve ter primerjalno tiskanje z in brez mikroklimatske regulacije. Rezultati so pokazali bistveno izboljšano kakovost tiska, boljši oprijem med plastmi, višjo dimenzijsko natančnost ter manj napak v izdelkih. Razvita rešitev potrjuje hipotezo, da nadzor mikroklime pomembno prispeva k večji zanesljivosti in kakovosti FDM-tiskanja.

Language:Slovenian
Keywords:FDM 3D-tiskanje, nadzor mikroklime, Arduino, ohišje tiskalnika, relativna vlažnost, temperatura komore, kakovost tiska
Work type:Bachelor thesis/paper
Typology:2.11 - Undergraduate Thesis
Organization:FS - Faculty of Mechanical Engineering
Year:2025
Number of pages:XX, 59 str., [10] f. pril.
PID:20.500.12556/RUL-171468 This link opens in a new window
UDC:681.536.5:681.625.9:004.925.8(043.2)
COBISS.SI-ID:247208963 This link opens in a new window
Publication date in RUL:27.08.2025
Views:476
Downloads:211
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Secondary language

Language:English
Title:Design and development of a printer enclosure with integrated microclimate control to enhance the quality of FDM 3D printing
Abstract:
Fused Deposition Modeling (FDM) is one of the most commonly used additive manufacturing technologies. The print quality in this process significantly depends on environmental conditions, such as ambient temperature and relative humidity. This thesis presents the development of a closed printer enclosure equipped with an integrated microclimate control system based on the Arduino GIGA R1 WiFi platform. The system enables active control of temperature and humidity within the chamber using sensors, heaters, and fans. Experimental measurements and comparative prints with and without environmental control were conducted. Results indicate significantly improved print quality, better layer adhesion, higher dimensional accuracy, and fewer defects in the printed objects. The developed solution confirms the hypothesis that microclimate control substantially contributes to the reliability and quality of FDM printing.

Keywords:FDM 3D printing, microclimate control, Arduino, printer enclosure, relative humidity, chamber temperature, print quality

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