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Publications (10 of 10) Show all publications
Werke, M., Semere, D., Ottosson, P., Holmberg, J., Wendel, J., Lindkvist, B. & Carlsson, A. (2024). Analysis of tool wear after hot forging. RISE Research Institutes of Sweden
Open this publication in new window or tab >>Analysis of tool wear after hot forging
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2024 (English)Report (Other academic)
Abstract [en]

When hot forging components, wear can occur in the tool after a period of use, leading to incorrect geometry in the final component. This necessitates replacing the worn tool with a new one, which is costly. The current approach is to repair the tool using machining that removes the worn surface which is less efficient from a circularity standpoint. A more sustainable approach is to maximize the tool life by carefully adjusting the material and process parameters to slow the wearing process and repair without removing material as much as the cost is justified. Factors such as sliding distance, normal forces between the billet and forging tool, and the hardness of the tool all influence wear during forging. This study focuses on analytics of the process using measurements of the tool conditions and wear simulation based on Archard's law. The tool was analysed using stress, geometry, and hardness measurements. Several strategies to maintain or increase hardness, thereby extending tool life, are proposed. These include adjusting heat treatment before forging, modifying machining parameters, extending cooling time during hot forging, and replacing the current coolant with a more effective one.

Place, publisher, year, edition, pages
RISE Research Institutes of Sweden, 2024. p. 18
Series
RISE Rapport ; 2024:59
Keywords
Forging tools, Hammer forging, Wear, FE simulation, Archards Law
National Category
Mechanical Engineering
Identifiers
urn:nbn:se:ri:diva-74973 (URN)978-91-89971-19-6 (ISBN)
Note

This publication describes the research carried out in the FFI project "Effective Remanufacturing of Forging Tools – Reforging" (Vinnova, ref. no. 2023-02618). The investigation was carried out in collaboration between Forgex, RISE, KTH and Dibo.

Available from: 2024-09-02 Created: 2024-09-02 Last updated: 2025-09-23Bibliographically approved
Ottosson, P., Westman, E.-L., Nygren, I., Pettersson, T., Niklasson, F. & Brattström, L.-E. (2024). Design of a sustainable Flexforming procedure for aero engine components in alloy 718. In: ICAS Proceedings: . Paper presented at 34th Congress of the International Council of the Aeronautical Sciences, ICAS 2024. Florence, Italy. 9 September 2024 through 13 September 2024. International Council of the Aeronautical Sciences
Open this publication in new window or tab >>Design of a sustainable Flexforming procedure for aero engine components in alloy 718
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2024 (English)In: ICAS Proceedings, International Council of the Aeronautical Sciences , 2024Conference paper, Published paper (Refereed)
Abstract [en]

In this work, a forming procedure for a geometry of interest to the aero engine industry was studied and proposed. The development work was performed according to the principle “first time right” in which careful material model calibration and FE-analyses of the anisotropic superalloy 718 and the FlexformTM procedure resulted in high correlation between predicted and measured responses. The influence from different process parameters such as friction coefficient, material property variations and blank design to the material thinning, spring back behavior and shape accuracy was investigated thorough a parameter study. By forming a suitable geometry from the metal sheet and subsequently machine to the desired component shape, the work was able to demonstrate the sustainability potential. A simplified life cycle analysis indicates that a decrease in energy consumption of 50% was reached, compared to the production method currently applied. 

Place, publisher, year, edition, pages
International Council of the Aeronautical Sciences, 2024
Series
ICAS Proceedings, ISSN 10259090
Keywords
Bending (forming); Metal forming; Aero-engine; Aero-engine components; Alloy 718; Experimental validations; FE modeling; FE-modelling; Forming process; Material modeling; Model calibration; Parameter studies; Aircraft engine manufacture
National Category
Mechanical Engineering
Identifiers
urn:nbn:se:ri:diva-76216 (URN)2-s2.0-85208788159 (Scopus ID)
Conference
34th Congress of the International Council of the Aeronautical Sciences, ICAS 2024. Florence, Italy. 9 September 2024 through 13 September 2024
Note

The project funding by Vinnova grant no. 2022-01260, and the collaboration with GKN Aerospace Engine Systems Sweden AB, Quintus Technologies AB, SpeedTool AB, Trestad Laser AB and LaserTool AB are gratefully acknowledged.

Available from: 2024-11-27 Created: 2024-11-27 Last updated: 2025-09-23Bibliographically approved
Ottosson, P., Westman, E.-L., Nygren, I., Pettersson, T., Niklasson, F. & Brattström, L.-E. (2024). Design of a sustainable Flexforming procedure for aero engine components in alloy 718. In: ICAS Proceedings: . Paper presented at 34th Congress of the International Council of the Aeronautical Sciences, ICAS 2024. Florence, Italy. 9 September 2024 through 13 September 2024. International Council of the Aeronautical Sciences
Open this publication in new window or tab >>Design of a sustainable Flexforming procedure for aero engine components in alloy 718
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2024 (English)In: ICAS Proceedings, International Council of the Aeronautical Sciences , 2024Conference paper, Published paper (Refereed)
Abstract [en]

In this work, a forming procedure for a geometry of interest to the aero engine industry was studied and proposed. The development work was performed according to the principle “first time right” in which careful material model calibration and FE-analyses of the anisotropic superalloy 718 and the FlexformTM procedure resulted in high correlation between predicted and measured responses. The influence from different process parameters such as friction coefficient, material property variations and blank design to the material thinning, spring back behavior and shape accuracy was investigated thorough a parameter study. By forming a suitable geometry from the metal sheet and subsequently machine to the desired component shape, the work was able to demonstrate the sustainability potential. A simplified life cycle analysis indicates that a decrease in energy consumption of 50% was reached, compared to the production method currently applied. 

Place, publisher, year, edition, pages
International Council of the Aeronautical Sciences, 2024
Keywords
Bending (forming); Metal forming; Aero-engine; Aero-engine components; Alloy 718; Experimental validations; FE modeling; FE-modelling; Forming process; Material modeling; Model calibration; Parameter studies; Aircraft engine manufacture
National Category
Mechanical Engineering
Identifiers
urn:nbn:se:ri:diva-76151 (URN)2-s2.0-85208788159 (Scopus ID)
Conference
34th Congress of the International Council of the Aeronautical Sciences, ICAS 2024. Florence, Italy. 9 September 2024 through 13 September 2024
Note

The project funding by Vinnova grant no. 2022-01260, and the collaboration with GKN Aerospace Engine Systems Sweden AB, Quintus Technologies AB, SpeedTool AB, Trestad Laser AB and LaserTool AB are gratefully acknowledged.

Available from: 2025-01-07 Created: 2025-01-07 Last updated: 2025-09-23Bibliographically approved
Ottosson, P., Lindell, H. & Gretarsson, S. (2023). Fingertip Model for Analysis of High-Frequency Vibrations. Paper presented at 15th International Conference on Hand-Arm Vibration, Nancy, France, 6–9 June 2023.. Proceedings, 88(1), Article ID 6.
Open this publication in new window or tab >>Fingertip Model for Analysis of High-Frequency Vibrations
2023 (English)In: Proceedings, E-ISSN 2504-3900, Vol. 88, no 1, article id 6Article in journal (Refereed) Published
Abstract [en]

High-frequency shock-type vibrations (HFVs) from, e.g., impact wrenches with a frequency content mainly above 1250 Hz have long been suspected to cause a significant number of vibration injuries, HAVS. These vibrations are unregulated in the current standard for risk estimation, ISO 5349-1; thereby, the risk of injury is suspected to be underestimated. The objective of this study was to investigate the effects on finger tissue subjected to HFVs similar to those from impact wrenches by using a 2D finite element model of a fingertip. The model was validated through experiments. Using the input acceleration from the experiments, the model predicted high pressure variation and particular negative pressures at levels close to 0.1 MPa (1 Bar) or more, which are levels where cavitation in liquid can occur, with a detrimental effect on biological systems.

Place, publisher, year, edition, pages
MDPI, 2023
Keywords
high-frequency vibration; ultravibration; HAVS; vibration injury; impact wrench; shock vibration; numerical model; experimental validation; negative pressures; material properties
National Category
Engineering and Technology
Identifiers
urn:nbn:se:ri:diva-67016 (URN)10.3390/proceedings2023086023 (DOI)
Conference
15th International Conference on Hand-Arm Vibration, Nancy, France, 6–9 June 2023.
Note

This research was funded by DGUV Forschungsförderung, FP-415

Available from: 2023-09-21 Created: 2023-09-21 Last updated: 2025-09-23Bibliographically approved
Ottosson, P., Pilthammar, J., Wiklund, D., Skåre, T. & Sigvant, M. (2023). Substitutive models of press deflections for efficient numerical die cambering. Paper presented at 42nd Conference of the International Deep Drawing Research Group 19/06/2023 - 22/06/2023 Luleå, Sweden. IOP Conference Series: Materials Science and Engineering, 1284(1), 012060-012060
Open this publication in new window or tab >>Substitutive models of press deflections for efficient numerical die cambering
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2023 (English)In: IOP Conference Series: Materials Science and Engineering, ISSN 1757-8981, E-ISSN 1757-899X, Vol. 1284, no 1, p. 012060-012060Article in journal (Refereed) Published
Abstract [en]

Cost and time for stamping die tryouts are significant within the car industry. A major contributing factor is that elastic deflections of stamping dies and presses are usually not considered during the virtual die design and forming simulation phase. Active surfaces of stamping dies are only cambered based on previous experiences of tool types and stamping presses. However, almost all stamping dies and presses are unique, and available experiences are not valid for new sheet materials. This leads to component deviations and often several loops of tool adjustments are needed. Previously partners within the SMART Advanced Manufacturing research project CAMBER have developed advanced deflection measuring devices to quantify the elastic deformations of stamping presses. Using these measurements, cambering methodologies can be utilized in sheet metal forming simulations. In this paper numerical substitutive stamping press models are described which are capable of compensating for measured stamping press dynamics. The result show that a numerical compensated tool can improve the contact by over 80% compared to the corresponding contact without compensation.

National Category
Applied Mechanics
Identifiers
urn:nbn:se:ri:diva-66073 (URN)10.1088/1757-899x/1284/1/012060 (DOI)
Conference
42nd Conference of the International Deep Drawing Research Group 19/06/2023 - 22/06/2023 Luleå, Sweden
Note

This work has been conducted under the CAMBER European research project; a project funded under the SMART EUREKA CLUSTER on Advanced Manufacturing programme.

Available from: 2023-08-22 Created: 2023-08-22 Last updated: 2025-09-23Bibliographically approved
Werke, M., Ottosson, P., Semere, D. & Yacob, F. (2022). Prediction of Residual Stresses in Components Using the Contour Method. In: Advances in Transdisciplinary Engineering: . Paper presented at 10th Swedish Production Symposium, SPS 2022, 26 April 2022 through 29 April 2022 (pp. 159-169). IOS Press BV, 21
Open this publication in new window or tab >>Prediction of Residual Stresses in Components Using the Contour Method
2022 (English)In: Advances in Transdisciplinary Engineering, IOS Press BV , 2022, Vol. 21, p. 159-169Conference paper, Published paper (Refereed)
Abstract [en]

During machining the accumulated bulk stresses induced by previous shape forming process steps, such as forging, casting or additive manufacturing and subsequent heat treatment, will be released and cause undesirable geometry errors on the final component. By considering the residual stresses during process planning a significant improvement in dimensional accuracy can be achieved. This paper presents experiences for prediction of residual stresses for components with complex geometries using the Contour method. Three sectioning procedures have been tested and a cutting strategi using Electric Discharge Machining with slow feed rate and cutting from two sides with final cut in the middle is proposed. Two Finite Element modelling strategies for 3D-models have been tested and a meshing strategy based on extrusion of the geometry from the cut plane is recommended. Further, a procedure to automate the Finite Element meshing of complex structures using the Alpha Shape algorithm is proposed. The ambition is to integrate this algorithm in procedures for automatization of the entire analysis. © 2022 The authors 

Place, publisher, year, edition, pages
IOS Press BV, 2022
Keywords
Complex geometries, Contour method, machining distortions, Residual stress prediction, 3D modeling, 3D printers, Casting, Electric discharge machining, Electric discharges, Forecasting, Geometry, Three dimensional computer graphics, Bulk stress, Dimensional accuracy, Geometry errors, Machining distortion, Process steps, Shape forming, Stress-induced, Residual stresses
National Category
Production Engineering, Human Work Science and Ergonomics
Identifiers
urn:nbn:se:ri:diva-59850 (URN)10.3233/ATDE220135 (DOI)2-s2.0-85132832566 (Scopus ID)9781614994398 (ISBN)
Conference
10th Swedish Production Symposium, SPS 2022, 26 April 2022 through 29 April 2022
Note

Correspondence Address: Werke, M.; Rise Ivf Ab, Box 104, Sweden; email: mats.werke@ri.se; Funding details: VINNOVA; Funding text 1: The authors acknowledge Vinnova that funded this research via Research Program for Metalliska material (MIND-project), Produktion 2030 (CUBE-project) and Innovair SMF Flyg. The companies Forgex Sweden AB and Leax Falun AB are acknowledged for contribution with test cases. Trådgnist Blekinge AB is greatfully acknowledged for contribution with EDM.

Available from: 2022-08-02 Created: 2022-08-02 Last updated: 2025-09-23Bibliographically approved
Pilthammar, J., Skåre, T., Galdos, L., Frojdh, K., Ottosson, P., Wiklund, D., . . . Rutgersson, W. (2021). New press deflection measuring methods for the creation of substitutive models for efficient die cambering. Paper presented at 40th International Deep-Drawing Research Group Conference (IDDRG 2021). IOP Conference Series: Materials Science and Engineering, 1157, Article ID 012076.
Open this publication in new window or tab >>New press deflection measuring methods for the creation of substitutive models for efficient die cambering
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2021 (English)In: IOP Conference Series: Materials Science and Engineering, ISSN 1757-8981, E-ISSN 1757-899X, Vol. 1157, article id 012076Article in journal (Refereed) Published
Abstract [en]

Cost and time for die tryout are significant within the car industry, and elastic deflections of dies and presses are most commonly not considered during the virtual die design and forming simulation phase. Because of this, active surfaces of stamping dies are only cambered based on previous experiences of tool types and presses. However, almost all stamping dies and presses are unique, and available experiences are not valid for new materials. Partners within the Eureka SMART Advanced Manufacturing research project CAMBER have developed advanced deflection measuring devices to quantify the elastic deformations of presses. Using these measurements, cambering methodologies can be utilized in sheet metal forming simulations. Important breakthroughs in recent years enabling the cambering methodology consists of efficient simulation strategies for full scale simulations with elastic dies and optimization techniques for creating substitutive press structures based on measurements. Furthermore, modern press deflection measurement methods are beneficial in applications such as Industry 4.0, predictive maintenance, product quality control, etc. through a more advanced understanding and live monitoring of the press system.

Place, publisher, year, edition, pages
IOP Publishing, 2021
National Category
Applied Mechanics
Identifiers
urn:nbn:se:ri:diva-56622 (URN)10.1088/1757-899x/1157/1/012076 (DOI)
Conference
40th International Deep-Drawing Research Group Conference (IDDRG 2021)
Available from: 2021-09-20 Created: 2021-09-20 Last updated: 2025-09-23Bibliographically approved
Werke, M., Wretland, A., Ottosson, P., Holmberg, J., Machens, M. & Semere, D. (2018). Geometric distortion analysis using a combination of the contour method and machining simulation. In: Procedia CIRP: . Paper presented at 51st CIRP Conference on Manufacturing Systems, CIRP CMS 2018, 16 May 2018 through 18 May 2018 (pp. 1481-1486).
Open this publication in new window or tab >>Geometric distortion analysis using a combination of the contour method and machining simulation
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2018 (English)In: Procedia CIRP, 2018, p. 1481-1486Conference paper, Published paper (Refereed)
Abstract [en]

During machining the material removal releases residual stresses introduced by previous process steps. This causes geometric machining distortions and thereby high rejection rates and costs. By simulating the process chain it is possible to predict this type of distortions. However, this requires advanced material models and accurate process- and material data for the individual processes. In order to simplify the modelling efforts a methodology that combines the contour method with machining simulation is proposed. The methodology is validated for an aerospace component using deep layer removal X-ray diffraction and CMM measurements. The methodology will improve possibilities to reduce machining distortions. © 2018 The Authors.

Keywords
Contour method, Finite Element Analysis, GOM measurements, Machining distortions, Modelling methodology, residual stresses, XRD measurements, Coordinate measuring machines, Finite element method, Advanced materials, Aerospace components, Geometric distortion, Machining distortion, Machining simulation, Manufacture
National Category
Other Natural Sciences
Identifiers
urn:nbn:se:ri:diva-34545 (URN)10.1016/j.procir.2018.03.213 (DOI)2-s2.0-85049577513 (Scopus ID)
Conference
51st CIRP Conference on Manufacturing Systems, CIRP CMS 2018, 16 May 2018 through 18 May 2018
Available from: 2018-08-09 Created: 2018-08-09 Last updated: 2025-09-23Bibliographically approved
Wärmefjord, K., Söderberg, R., Ottosson, P., Werke, M., Lorin, S., Lindkvist, L. & Wandebäck, F. (2013). Prediction of geometrical variation of forged and stamped parts for assembly variation simulation.. In: : . Paper presented at International Deep Drawing Research Group Conference 2013, IDDRG2013, Zurich, Switzerland, June 2-5..
Open this publication in new window or tab >>Prediction of geometrical variation of forged and stamped parts for assembly variation simulation.
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2013 (English)Conference paper, Oral presentation with published abstract (Other academic)
National Category
Materials Engineering
Identifiers
urn:nbn:se:ri:diva-31873 (URN)
Conference
International Deep Drawing Research Group Conference 2013, IDDRG2013, Zurich, Switzerland, June 2-5.
Available from: 2017-10-17 Created: 2017-10-17 Last updated: 2025-09-23Bibliographically approved
Wadman, B., Ottosson, P., Holmberg, J., Ingemarsson, L.-O. & Sagström, E. (2013). Time-dependent residual stress and geometry analysis of UHSS deep drawn components,. In: Proceedings of International Deep Drawing Research Group Conference, Zurich, Switzerland, June 2-5.: . Paper presented at International Deep Drawing Research Group Conference, Zurich, Switzerland, June 2-5..
Open this publication in new window or tab >>Time-dependent residual stress and geometry analysis of UHSS deep drawn components,
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2013 (English)In: Proceedings of International Deep Drawing Research Group Conference, Zurich, Switzerland, June 2-5., 2013Conference paper, Oral presentation with published abstract (Other academic)
National Category
Materials Engineering
Identifiers
urn:nbn:se:ri:diva-31871 (URN)
Conference
International Deep Drawing Research Group Conference, Zurich, Switzerland, June 2-5.
Available from: 2017-10-17 Created: 2017-10-17 Last updated: 2025-09-23Bibliographically approved
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0009-0005-7340-9223

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