Design and manufacture of a Type V composite pressure vessel using automated fibre placement

Composites Part B: Engineering - Tập 266 - Trang 111027 - 2023
Alexander Air1, Ebrahim Oromiehie1, B. Gangadhara Prusty1,2
1ARC Training Centre for Automated Manufacture of Advanced Composites (AMAC), School of Mechanical & Manufacturing Engineering, UNSW Sydney, NSW, 2052, Australia
2Sovereign Manufacturing Automation for Composites Cooperative Research Centre (SoMAC CRC), UNSW Sydney, NSW, 2052, Australia

Tài liệu tham khảo

Rivard, 2019, Hydrogen storage for mobility: a review, Materials, 12, 10.3390/ma12121973 Vasiliev, 2009 Hydrogen Council, 2020 Hassan, 2021, Hydrogen storage technologies for stationary and mobile applications: review, analysis and perspectives, Renew Sustain Energy Rev, 149, 10.1016/j.rser.2021.111311 Mallick, 2004, 28 Kosar, 2008 Ryan, 2006, Prediction of pressure cycle Induced microcrack Damage in linerless composite tanks, 1 Jones, 2003, Liner-less tanks for space application - design and manufacturing considerations Mertiny, 2002, Influence of the filament winding tension on physical and mechanical properties of reinforced composites, Compos. A: Appl. Sci. Manuf., 33, 1615, 10.1016/S1359-835X(02)00209-9 Błachut, 2023, Influence of fiber tension during filament winding on the mechanical properties of composite pressure vessels, Compos Struct, 304, 10.1016/j.compstruct.2022.116337 Air, 2023, A review of Type V composite pressure vessels and automated fibre placement based manufacturing, Compos B Eng, 253, 10.1016/j.compositesb.2023.110573 Leavitt, 2011 Leavitt, 2013 Leavitt, 2014 Leavitt, 2010 McCarville, 2018, Design, manufacture and test of Cryotank components, 153 Schakel, 2021, Process analysis of manufacturing thermoplastic type-IV composite pressure vessels with helical winding pattern Villalonga, 2011, Applications of full thermoplastic composite for type IV 70 MPa high pressure vessels. 18th int, 21 Höck, 2014, Innovative and efficient manufacturing technologies for highly advanced composite pressure vessels O Brádaigh, 2016, Lightweight thermoplastic composite fuel tanks for space applications Nehls G. AFPT combines tape winding, placement into one tool. CompositesWorld. https://www.compositesworld.com/news/afpt-combines-tape-winding-placement-into-one-tool (accessed Sep. 28, 2023). Morimoto, 2004, Pressurization test on CFRP liner-less tanks at liquefied nitrogen temperature, Adv Compos Mater, 13, 81, 10.1163/1568551041718062 Mallick, 2010, Microcrack resistant polymers enabling Lightweight composite hydrogen storage vessels, vol. 224 Liao, 2020, Prediction of residual burst strength for composite pressure vessels after low velocity impact, Int J Hydrogen Energy, 45, 10962, 10.1016/j.ijhydene.2020.02.021 Yamashita, 2015 Jois, 2021, Numerical analysis of filament wound cylindrical composite pressure vessels Accounting for variable dome contour, J. Compos. Sci, 5, 10.3390/jcs5020056 2021 Lin, 2023, Prediction of composite pressure vessel dome contour and strength analysis based on a new fiber thickness calculation method, Compos Struct, 306, 10.1016/j.compstruct.2022.116590 Wang, 2011, Dome thickness prediction of composite pressure vessels by a cubic spline function and finite element analysis, Polym Polym Compos, 19, 227, 10.1177/0967391111019002-327 Katsiropoulos, 2012, Fracture toughness and shear behavior of composite bonded joints based on a novel aerospace adhesive, Compos B Eng, 43, 240, 10.1016/j.compositesb.2011.07.010 2020 Defauchy, 2018, Simulation of the Oxygen permeability of a composite container, J. Compos. Sci, 2, 10.3390/jcs2020021 Flanagan, 2017, Permeability of carbon fibre PEEK composites for cryogenic storage tanks of future space launchers, Compos. A: Appl. Sci. Manuf., 101, 173, 10.1016/j.compositesa.2017.06.013