Abstract
As the flexibility and reliability of additive manufacturing (AM) and its corresponding design tools increases, it is becoming a viable option for more industries. One application area that could benefit from AM is composite component manufacture. The layup and molding of composite materials face significant challenges presented by tight design timescales, growing demand for productivity, and the complexity of components and end products. Therefore, there is an immediate potential to save energy by reducing the mass of the curing equipment and tooling to enhance process heat transmission. The goal of this paper is to demonstrate the reduction of embodied energy within mold tools that are printed using an AM process. Using an AM approach, it is possible to design lightweight curing tools to increase the curing rate and quality of heat distribution in the mold. The viability of additively producing these cure tools was assessed by analyzing the geometrical precision of the composite mold outputs, material utilization, and heat transmission qualities of each sample. In this study, 14 cure tools were designed and manufactured with a 100 mm2 curing surface area, top plate thickness of 1–2 mm, and stiffening lattices behind the curing surface with a depth of 10 mm. Four lattice geometries, gyroid, dual-wall gyroid, planar diamond, and stochastic, were tested based on their overall geometrical accuracy and thermal responsiveness. While the stochastic lattice had the best single tool properties, the planar diamond and gyroid lattice tools had better potential for future use in the design of additively manufactured composite tooling.
| Original language | English |
|---|---|
| Title of host publication | Proceedings of 2022 International Additive Manufacturing Conference, IAM 2022 |
| Publisher | American Society of Mechanical Engineers (ASME) |
| ISBN (Print) | 9780791886601 |
| DOIs | |
| Publication status | Published - 18 Jan 2023 |
| Event | 1st International Additive Manufacturing Conference, IAM 2022 - Lisbon, Portugal Duration: 19 Oct 2022 → 20 Oct 2022 |
Publication series
| Name | Proceedings of 2022 International Additive Manufacturing Conference, IAM 2022 |
|---|
Conference
| Conference | 1st International Additive Manufacturing Conference, IAM 2022 |
|---|---|
| Country/Territory | Portugal |
| City | Lisbon |
| Period | 19/10/22 → 20/10/22 |
Bibliographical note
Funding Information:The work was supported by the EPSRC Future Composites Manufacturing Hub (EP/P006701/1) project titled Additively Manufactured Cure Tooling.
Publisher Copyright:
Copyright © 2022 by ASME.
Keywords
- composite tooling
- curing
- design for AM
- Lattice structure
- lightweight structures
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Additively manufactured cure tools for composites manufacture
Valentine, M. D. A., Radhakrishnan, A., Maes, V. K., Pegg, E. C., Valero, M. D. R., Kratz, J. & Dhokia, V., 24 Jun 2023, In: International Journal of Advanced Manufacturing Technology. 127, 9-10, p. 4237-4251 15 p.Research output: Contribution to journal › Article (Academic Journal) › peer-review
Open Access3 Citations (Scopus) -
Additively manufactured metal tooling for cure optimisation in composite manufacturing
Radhakrishnan, A., Maes, V. K., Valentine, M., Valero, M. D. R., Pegg, E., Dhokia, V. & Kratz, J., 30 Jun 2022, Proceedings of the 20th European Conference on Composite Materials: Composites Meet Sustainability (Vol 1-6). Vassilopoulos, A. & Michaud, V. (eds.). Composite Construction Laboratory (CCLab), Ecole Polytechnique Federale de Lausanne (EPFL), Vol. 2. p. 197-204 8 p.Research output: Chapter in Book/Report/Conference proceeding › Conference Contribution (Conference Proceeding)
Open AccessFile87 Downloads (Pure)
Projects
- 1 Finished
-
ADDCUR: Additively Manufactured Cure Tooling
Kratz, J. (Principal Investigator), Valero, M. D. R. (Co-Investigator), Radhakrishnan, A. (Researcher) & Maes, V. K. (Researcher)
1/11/21 → 30/09/22
Project: Research
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