The integration of automation into the Compression Molding process for mass production of automotive components using Carbon Fiber Sheet Molding Compound (CF-SMC) represents a significant improvement in the sector. It improves efficiency, precision, and safety while reducing production costs and allowing product customization. A review of current technologies highlights the limitations of manual lay-up and the potential of automated pick-and-place systems to transfer uncured charges from the preform stage to the mold. Needle grippers have emerged as the most suitable solution to minimize the retention time of composite material in the heated mold, reducing the risk of premature curing. This study proposes a validation model to analyze the needle insertion process, which includes the piercing, detachment, transfer, and release phases, with the goal of developing a numerical model capable of accurately replicating real physical behavior. Focusing on the piercing phase, the analytical model identifies key design parameters that correlate the insertion force, the tilt angle, and the geometry of the needle and the CF–SMC. Subsequently, a hybrid FEM–SPH numerical model, known for its suitability to simulate large-deformation problems, was then implemented in Abaqus. Finally, custom experimental setups and a dedicated picking layout were developed to conduct a preliminary validation of the model, allowing correlations between interaction forces and design parameters.

Needle Design for Piercing Uncured CF-SMC: Numerical Model and Experimental Validation / Galati, N.; Pini, F.; Dalpadulo, E.; Leali, F.; Serradimigni, D.. - (2026), pp. 436-446. ( 5th International Conference on Design Tools and Methods in Industrial Engineering, ADM 2025 ita 2025) [10.1007/978-3-032-14953-4_37].

Needle Design for Piercing Uncured CF-SMC: Numerical Model and Experimental Validation

Galati N.;Pini F.;Dalpadulo E.;Leali F.;Serradimigni D.
2026

Abstract

The integration of automation into the Compression Molding process for mass production of automotive components using Carbon Fiber Sheet Molding Compound (CF-SMC) represents a significant improvement in the sector. It improves efficiency, precision, and safety while reducing production costs and allowing product customization. A review of current technologies highlights the limitations of manual lay-up and the potential of automated pick-and-place systems to transfer uncured charges from the preform stage to the mold. Needle grippers have emerged as the most suitable solution to minimize the retention time of composite material in the heated mold, reducing the risk of premature curing. This study proposes a validation model to analyze the needle insertion process, which includes the piercing, detachment, transfer, and release phases, with the goal of developing a numerical model capable of accurately replicating real physical behavior. Focusing on the piercing phase, the analytical model identifies key design parameters that correlate the insertion force, the tilt angle, and the geometry of the needle and the CF–SMC. Subsequently, a hybrid FEM–SPH numerical model, known for its suitability to simulate large-deformation problems, was then implemented in Abaqus. Finally, custom experimental setups and a dedicated picking layout were developed to conduct a preliminary validation of the model, allowing correlations between interaction forces and design parameters.
2026
no
Inglese
5th International Conference on Design Tools and Methods in Industrial Engineering, ADM 2025
ita
2025
Lecture Notes in Mechanical Engineering
436
446
9783032149527
9783032149534
Springer Science and Business Media Deutschland GmbH
Carbon Fiber Sheet Molding Compound (CF-SMC); Compression molding; Integrated design; Robotic Grippers
Galati, N.; Pini, F.; Dalpadulo, E.; Leali, F.; Serradimigni, D.
Atti di CONVEGNO::Relazione in Atti di Convegno
273
5
Needle Design for Piercing Uncured CF-SMC: Numerical Model and Experimental Validation / Galati, N.; Pini, F.; Dalpadulo, E.; Leali, F.; Serradimigni, D.. - (2026), pp. 436-446. ( 5th International Conference on Design Tools and Methods in Industrial Engineering, ADM 2025 ita 2025) [10.1007/978-3-032-14953-4_37].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11380/1398517
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