Open-source licenties
Deze dienst maakt gebruik van de volgende open-sourceprojecten. Wij zijn de auteurs en hun gemeenschappen dankbaar.
OrcaSlicer
OrcaSlicer is een G-code-generator voor 3D-printers, die door deze dienst wordt gebruikt om geüploade modellen te slicen en printparameters te berekenen.
- Licentie: GNU Affero General Public License v3 (AGPL-3.0)
- Bron: github.com/SoftFever/OrcaSlicer
Gmsh
Gmsh is een eindige-elementenmeshgenerator die wordt gebruikt om STEP/STP CAD-bestanden om te zetten naar STL-meshes voor 3D printen.
- Licentie: GNU General Public License v2+ (GPL-2.0-or-later)
- Bron: gmsh.info
- Citaat: C. Geuzaine and J.-F. Remacle, “Gmsh: a three-dimensional finite element mesh generator with built-in pre- and post-processing facilities”, International Journal for Numerical Methods in Engineering, 79(11), pp. 1309–1331, 2009.
Three.js
Three.js is een JavaScript 3D-bibliotheek die wordt gebruikt om de interactieve modelpreview in uw browser weer te geven.
- Licentie: MIT License
- Bron: threejs.org
PrusaSlicer
PrusaSlicer is a G-code and SL1 generator for 3D printers, used by this service to slice resin (mSLA) models and extract layer data for quoting.
- Licentie: GNU Affero General Public License v3 (AGPL-3.0)
- Bron: github.com/prusa3d/PrusaSlicer
UVtools
UVtools is a tool for MSLA/DLP resin print file analysis, used by this service to validate sliced SL1 output and extract volume data.
- Licentie: MIT License
- Bron: github.com/sn4k3/UVtools
Trimesh
Trimesh is a Python library for loading and processing triangular meshes, used by this service for geometric risk assessment and mesh analysis.
- Licentie: MIT License
- Bron: trimesh.org
Next.js
Next.js is a React framework for server-rendered web applications, used to build the front-end of this service.
- Licentie: MIT License
- Bron: nextjs.org
React
React is a JavaScript library for building user interfaces, used as the core UI framework for this service.
- Licentie: MIT License
- Bron: react.dev
Fastify
Fastify is a high-performance Node.js web framework, used to power the mSLA slicing API.
- Licentie: MIT License
- Bron: fastify.dev
Flask
Flask is a lightweight Python web framework, used to power the FDM slicing and risk assessment APIs.
- Licentie: BSD 3-Clause License
- Bron: flask.palletsprojects.com
NumPy
NumPy is a Python library for numerical computing, used for mesh geometry calculations in the slicing and risk assessment engines.
- Licentie: BSD 3-Clause License
- Bron: numpy.org
SciPy
SciPy is a Python library for scientific and technical computing, used for spatial analysis in the risk assessment engine.
- Licentie: BSD 3-Clause License
- Bron: scipy.org
Caddy
Caddy is a web server with automatic HTTPS, used as the reverse proxy and TLS termination layer for this service.
- Licentie: Apache License 2.0
- Bron: caddyserver.com
ClamAV
ClamAV is an open-source antivirus engine, used to scan uploaded files for malware before processing.
- Licentie: GNU General Public License v2 (GPL-2.0)
- Bron: clamav.net
Grafana Loki
Grafana Loki is a log aggregation system (with Promtail as the log shipper), used for centralised logging and diagnostics.
- Licentie: GNU Affero General Public License v3 (AGPL-3.0)
- Bron: grafana.com/oss/loki
Alle bovenstaande tools worden als zelfstandige processen of clientzijde bibliotheken aangeroepen en zijn niet gewijzigd. De bijbehorende broncode is beschikbaar via de bovenstaande links.
Onderzoeksbibliografie
Onze geautomatiseerde risicoanalyse-algoritmen zijn gebaseerd op het volgende peer-reviewed onderzoek. Wij erkennen met dankbaarheid de auteurs wier werk ten grondslag ligt aan onze geometrische analyse-engines.
SLS-risicoanalyse
Ontpoederbaarheid, dunne-wanddetectie, vervormingsvoorspelling en scancomplexiteitsscore voor Selective Laser Sintering.
Josupeit, S., Ordia, L., & Schmid, H.-J. (2016). “Modelling of Temperatures and Heat Flow within Laser Sintered Part Cakes.” Additive Manufacturing. doi:10.1016/j.addma.2016.06.002
Gebruikt voor: warpage risk prediction — position-dependent thermal gradients and height-based cooling risk
Li, J., Yuan, S., Zhu, J., Li, S., & Zhang, W. (2020). “Numerical Model and Experimental Validation for Laser Sinterable Semi-Crystalline Polymer: Shrinkage and Warping.” Polymers, 12, 1373. doi:10.3390/polym12061373
Gebruikt voor: warpage risk prediction — cross-section analysis for PA12 shrinkage and crystallization-induced strain
Häfele, T., Schneberger, J.-H., Buchholz, S., Vielhaber, M., & Griebsch, J. (2025). “Evaluation of Productivity in Laser Sintering by Measure and Assessment of Geometrical Complexity.” Rapid Prototyping Journal. doi:10.1108/RPJ-07-2024-0289
Gebruikt voor: scan complexity scoring — SA/V ratio and topological genus as proxy for contour/hatch complexity
Tedia, S., & Williams, C. B. (2016). “Manufacturability Analysis Tool for Additive Manufacturing Using Voxel-Based Geometric Modeling.” Proceedings of the 27th Annual International Solid Freeform Fabrication Symposium, Austin, TX. (no DOI assigned — SFF Symposium proceedings paper)
Gebruikt voor: depowderability analysis — trapped powder detection via voxel void connectivity
mSLA-complexiteitsanalyse (AMCI)
Additive Manufacturing Complexity Index aangepast voor masked stereolithography harsprinten.
Matoc, D. A., Maheta, N., Kanabar, B. K., & Sata, A. (2025). “Quantifying Manufacturability Complexity Index: A Case Study of VAT Photopolymerization Additive Manufacturing.” 3D Printing and Additive Manufacturing, 12(6), 670–685. doi:10.1089/3dp.2024.0059
Gebruikt voor: AMCI complexity scoring — geometry, feature, and manufacturability sub-indices (0–100 scale)
FDM-risicoanalyse
Overhangdetectie, hechtvlakanalyse, kromtrekkingsvoorspelling en fragiliteitsscore voor Fused Deposition Modeling.
Budinoff, H. D., & McMains, S. (2021). “Will It Print: a Manufacturability Toolbox for 3D Printing.” International Journal on Interactive Design and Manufacturing (IJIDeM), 15, 613–630. doi:10.1007/s12008-021-00786-w
Gebruikt voor: overhang and warping methodology — face-normal dot product with build direction, cross-section area analysis
Henn, J., Hauptmannl, A., & Gardi, H. A. A. (2025). “Evaluating the Printability of STL Files with ML.” arXiv preprint. doi:10.48550/arXiv.2509.12392
Gebruikt voor: FDM risk scoring — ML-based printability evaluation of STL geometry (overhangs, thin walls, bridging, warping)
Algemene AM-maakbaarheid
Technologieoverstijgende overzichten en meta-reviews over geautomatiseerde printbaarheidsanalyse.
Parry, L. (software). “PySLM (Python Library for SLM/DMLS/SLS Toolpath Generation).” (no DOI assigned — cite as software/repository)
Adam, G. A. O., & Zimmer, D. (2015). “On Design for Additive Manufacturing: Evaluating Geometrical Limitations.” Rapid Prototyping Journal, 21(6), 662–670. doi:10.1108/RPJ-06-2013-0060
Gebruikt voor: design rule thresholds — minimum wall thickness, hole diameter, and overhang angle limits per technology