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Article

Simulation-Based Prediction of Milling-Induced Shape Errors on Compliant, Additively Manufactured Components

by
Berend Denkena
1,
Klaas Maximilian Heide
1,
Roland Lachmayer
2,
Jens Niedermeyer
2 and
Fabian Schlenker
1,*
1
Institute of Production Engineering and Machine Tools, Leibniz Universität Hannover, 30823 Garbsen, Germany
2
Institute of Product Development, Leibniz Universität Hannover, 30823 Garbsen, Germany
*
Author to whom correspondence should be addressed.
J. Manuf. Mater. Process. 2026, 10(8), 310; https://doi.org/10.3390/jmmp10080310
Submission received: 21 July 2026 / Revised: 16 August 2026 / Accepted: 20 August 2026 / Published: 21 August 2026

Abstract

Additively manufactured components require machining of functional surfaces to meet geometric requirements. Due to low stiffness and non-nominal as-built geometry, they are susceptible to milling-induced shape deviations. This paper presents a geometric–numerical milling process simulation for predicting shape errors in compliant metallic laser powder bed fusion components. The method combines real-geometry-based technological numerical control simulation, quasi-static force prediction, finite element-based structural response simulation, and surface reconstruction between roughing and finishing to enable multistage operation. The approach is validated for linear and non-linear toolpaths with varying immersion angles and compliance conditions. The results show reproduced force profiles, while magnitude deviations highlight the relevance of deformation-dependent engagement feedback in high-compliance regions. An analytical back-calculation based on the effective engagement cross-section reveals that accounting for deflection-induced engagement reduction reduces force deviations. During roughing, maximum shape errors for linear and non-linear toolpaths are overestimated by 4–5%, and critical high-error regions are identified. The reconstructed intermediate geometry after roughing is essential for finishing, since neglecting geometry feedback underestimates finishing forces. With geometry feedback, the maximum finishing shape error is predicted as 0.090 mm, while the measured value is 0.086 mm. The simulation captures dominant quasi-static shape-error regimes and supports process-chain-oriented prediction in additive–subtractive manufacturing.
Keywords: hybrid manufacturing; simulation; additive manufacturing (AM); milling; deformation hybrid manufacturing; simulation; additive manufacturing (AM); milling; deformation

Share and Cite

MDPI and ACS Style

Denkena, B.; Heide, K.M.; Lachmayer, R.; Niedermeyer, J.; Schlenker, F. Simulation-Based Prediction of Milling-Induced Shape Errors on Compliant, Additively Manufactured Components. J. Manuf. Mater. Process. 2026, 10, 310. https://doi.org/10.3390/jmmp10080310

AMA Style

Denkena B, Heide KM, Lachmayer R, Niedermeyer J, Schlenker F. Simulation-Based Prediction of Milling-Induced Shape Errors on Compliant, Additively Manufactured Components. Journal of Manufacturing and Materials Processing. 2026; 10(8):310. https://doi.org/10.3390/jmmp10080310

Chicago/Turabian Style

Denkena, Berend, Klaas Maximilian Heide, Roland Lachmayer, Jens Niedermeyer, and Fabian Schlenker. 2026. "Simulation-Based Prediction of Milling-Induced Shape Errors on Compliant, Additively Manufactured Components" Journal of Manufacturing and Materials Processing 10, no. 8: 310. https://doi.org/10.3390/jmmp10080310

APA Style

Denkena, B., Heide, K. M., Lachmayer, R., Niedermeyer, J., & Schlenker, F. (2026). Simulation-Based Prediction of Milling-Induced Shape Errors on Compliant, Additively Manufactured Components. Journal of Manufacturing and Materials Processing, 10(8), 310. https://doi.org/10.3390/jmmp10080310

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