Open Access
Issue
Manufacturing Rev.
Volume 12, 2025
Article Number 27
Number of page(s) 15
DOI https://doi.org/10.1051/mfreview/2025024
Published online 05 December 2025
  1. H. Hegab, N. Khanna, N. Monib, A. Salem, Design for sustainable additive manufacturing: a review, Sustain. Mater. Technol. 35 (2023) e00576 [Google Scholar]
  2. T. Kober, H.-W. Schiffer, M. Densing, E. Panos, Global energy perspectives to 2060-WEC's World Energy Scenarios 2019, Energy Strategy Rev. 31 (2020) 100523 [CrossRef] [Google Scholar]
  3. W.N. Ryerson, Population: the multiplier of everything else, in: The post carbon reader: Managing the 21st century's sustainability crises, 2010, pp. 153–175 [Google Scholar]
  4. Z. Wu, T.S. Adebayo, A.A. Alola, Renewable energy intensity and efficiency of fossil energy fuels in the nordics: how environmentally efficient is the energy mix?, J. Clean. Prod. 438 (2024) 140711 [Google Scholar]
  5. J.L. Holechek, H.M.E. Geli, M.N. Sawalhah, R. Valdez, A global assessment: can renewable energy replace fossil fuels by 2050?, Sustainability 14 (2022) 4792 [CrossRef] [Google Scholar]
  6. K. Holmberg, A. Erdemir, Influence of tribology on global energy consumption, costs and emissions, Friction 5 (2017) 263–284 [CrossRef] [Google Scholar]
  7. W. Colglazier, Sustainable development agenda: 2030, Science (New York, N.Y.) 349 (2015) 1048–1050 [Google Scholar]
  8. D. Bowman, G. van Calster, Reflecting on REACH: Global implications of the European Union's chemicals regulation, Nanotech. L. Bus. 4 (2007) 375 [Google Scholar]
  9. A. Fercoq, S. Lamouri, V. Carbone, Lean/Green integration focused on waste reduction techniques, J. Clean. Prod. 137 (2016) 567–578 [Google Scholar]
  10. S. Bahadur, The economic impact of wear on society, 0022-2305, 100 (1978) 145–147 [Google Scholar]
  11. T. Trzepieciński, Recent developments and trends in sheet metal forming, Metals 10 (2020) 779 [Google Scholar]
  12. M. Woydt, The importance of tribology for reducing CO2 emissions and for sustainability, Wear 474 (2021) 203768 [Google Scholar]
  13. Y. Lu, M. Hua, Z. Liu, The biomimetic shark skin optimization design method for improving lubrication effect of engineering surface, J. Tribol. 136 (2014) 31703 [Google Scholar]
  14. M. Yang, S. Evans, Rapid decarbonization requires industrial efficiency, Nat. Rev. Clean Technol. 1 (2025) 4–5 [CrossRef] [Google Scholar]
  15. D. Patel, V.K. Jain, J. Ramkumar, Micro texturing on metallic surfaces: State of the art, Proc. Inst. Mech. Eng. Part B: J. Eng. Manuf. 232 (2018) 941–964 [Google Scholar]
  16. V. Sharma, P.M. Pandey, Recent advances in turning with textured cutting tools: a review, J. Clean. Prod. 137 (2016) 701–715 [Google Scholar]
  17. J. Hazrati, P. Stein, P. Kramer, A.H. van den Boogaard, Tool texturing for deep drawing applications, in: IOP conference series: materials science and engineering, (2018) p. 12095 [Google Scholar]
  18. T. Shimizu, H. Kan, H. Messaoudi, F. Vollertsen, M. Yang, Impact of geometrical parameters of micro-textured DLC on tribological properties under dry sliding friction, Manuf. Rev. 6 (2019) 18 [Google Scholar]
  19. K. Kitamura, T. Makino, M. Nawa, S. Miyata, Tribological effects of punch with micro-dimples in blanking under high hydrostatic pressure, CIRP Annals 65 (2016) 249–252 [Google Scholar]
  20. P. Schumann, V. Arne, P. Groche, Improved tribological properties of blanking punches for copper alloys utilizing deterministic surface texturing by machine hammer peening, Coatings 15 (2025) 136 [CrossRef] [Google Scholar]
  21. P. Kersting et al., Experimental and numerical analysis of tribological effective surfaces for forming tools in sheet-bulk metal forming, Prod. Eng. 10 (2016) 37–50 [Google Scholar]
  22. Y. Uehara, M. Wakuda, Y. Yamauchi, S. Kanzaki, S. Sakaguchi, Tribological properties of dimpled silicon nitride under oil lubrication, J. Eur. Ceram. Soc. 24 (2004) 369–373 [CrossRef] [Google Scholar]
  23. P. Schumann, P. Groche, R. Lindner, Influence of different determinsistic surface texturing processes on friction and tool life for load collectives in sheet metal forming, in: Proceedings: Tribology International Conference 2023, 2023 [Google Scholar]
  24. E. Ciulli, Tribology and sustainable development goals, in: G. Quaglia, A. Gasparetto, V. Petuya, G. Carbone (Eds.), Mechanisms and Machine Science, Proceedings of I4SDG Workshop 2021, Springer International Publishing, Cham 2022, pp. 438–447 [Google Scholar]
  25. W. Liu, H. Ni, P. Wang, H. Chen, Investigation on the tribological performance of micro-dimples textured surface combined with longitudinal or transverse vibration under hydrodynamic lubrication, Int. J. Mech. Sci. 174 (2020) 105474 [CrossRef] [Google Scholar]
  26. M. Tošić, R. Larsson, J. Jovanović, T. Lohner, M. Björling, K. Stahl, A computational fluid dynamics study on shearing mechanisms in thermal elastohydrodynamic line contacts, Lubricants 7 (2019) 69 [Google Scholar]
  27. Y. Carretta, R. Boman, J. Bech, N. Legrand, M. Laugier, J.-P. Ponthot, Numerical modelling of microscopic lubricant flow in sheet metal forming. Application to plane strip drawing, Int. J. Numer. Methods Eng. 112 (2017) 203–237 [CrossRef] [Google Scholar]
  28. P. Schumann, D. Martin, O.M. Serra, P. Groche, Cavity design for surface textured sheets in metal forming, MATEC Web Conf. (2025) 1053 [Google Scholar]
  29. P. Groche, N. Moeller, H. Hoffmann, J. Suh, Influence of gliding speed and contact pressure on the wear of forming tools, Wear 271 (2011) 2570–2578 [Google Scholar]
  30. P. Groche, M. Christiany, Y. Wu, Load-dependent wear in sheet metal forming, Wear 422 (2019) 252–260 [Google Scholar]
  31. M. Christiany, P. Groche, Reproducibility of wear tests and the effect of load on tool life in sheet metal forming, AMR 1018 (2014) 293–300 [CrossRef] [Google Scholar]
  32. D. Yu, D. Cao, Z. Li, Q. Li, Experimental and CFD studies on the effects of surface texture on liquid thickness, wetted area and mass transfer in wave-like structured packings, Chem. Eng. Res. Des. 129 (2018) 170–181 [Google Scholar]
  33. G. Caramia, G. Carbone, P. de Palma, Hydrodynamic lubrication of micro-textured surfaces: two dimensional CFD-analysis, Tribol. Int. 88 (2015) 162–169 [Google Scholar]
  34. J. Han, L. Fang, J. Sun, S. Ge, Hydrodynamic lubrication of microdimple textured surface using three-dimensional CFD, Tribol. Trans. 53 (2010) 860–870 [Google Scholar]
  35. M. Ludwig, C. Müller, P. Groche, Simulation of dynamic lubricant effects in sheet metal forming processes, Key Eng. Mater. 438 (2010) 171–178 [Google Scholar]
  36. B. LotfizadehDehkordi, P.J. Shiller, G.L. Doll, Pressure-and temperature-dependent viscosity measurements of lubricants with polymeric viscosity modifiers, Front. Mech. Eng. 5 (2019) 18 [Google Scholar]
  37. N. Marx, L. Fernández, F. Barceló, H. Spikes, Shear thinning and hydrodynamic friction of viscosity modifier-containing oils. Part I: shear thinning behaviour, Tribol. Lett. 66 (2018) 92 [Google Scholar]
  38. W. Liu, H. Ni, H. Chen, P. Wang, Numerical simulation and experimental investigation on tribological performance of micro-dimples textured surface under hydrodynamic lubrication, Int. J. Mech. Sci. 163 (2019) 105095 [CrossRef] [Google Scholar]
  39. T.S. Yang, Investigation of the strain distribution with lubrication during the deep drawing process, Tribol. Int. 43 (2010) 1104–1112 [Google Scholar]
  40. M. Steitz, P. Stein, P. Groche, Influence of hammer-peened surface textures on friction behavior, Tribol. Lett. 58 (2015), https://doi.org/10.1007/s11249-015-0502-9 [Google Scholar]
  41. Shimizu, Kobayashi, Vorholt, Yang, Lubrication analysis of micro-dimple textured die surface by direct observation of contact interface in sheet metal forming, Metals 9 (2019) 917 [Google Scholar]
  42. J. Bech, N. Bay, M. Eriksen, Entrapment and escape of liquid lubricant in metal forming, Wear 232 (1999) 134–139 [Google Scholar]

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