Magnet Assisted Composite Manufacturing: A Flexible New Technique for Achieving High Consolidation Pressure in Vacuum Bag/Lay-Up Processes

Maya Pishvar, Mehrad Amirkhosravi, M Cengiz Altan, Maya Pishvar, Mehrad Amirkhosravi, M Cengiz Altan

Abstract

This work demonstrates a protocol to improve the quality of composite laminates fabricated by wet lay-up vacuum bag processes using the recently developed magnet assisted composite manufacturing (MACM) technique. In this technique, permanent magnets are utilized to apply a sufficiently high consolidation pressure during the curing stage. To enhance the intensity of the magnetic field, and thus, to increase the magnetic compaction pressure, the magnets are placed on a magnetic top plate. First, the entire procedure of preparing the composite lay-up on a magnetic bottom steel plate using the conventional wet lay-up vacuum bag process is described. Second, placement of a set of Neodymium-Iron-Boron permanent magnets, arranged in alternating polarity, on the vacuum bag is illustrated. Next, the experimental procedures to measure the magnetic compaction pressure and volume fractions of the composite constituents are presented. Finally, methods used to characterize microstructure and mechanical properties of composite laminates are discussed in detail. The results prove the effectiveness of the MACM method in improving the quality of wet lay-up vacuum bag laminates. This method does not require large capital investment for tooling or equipment and can also be used to consolidate geometrically complex composite parts by placing the magnets on a matching top mold positioned on the vacuum bag.

Figures

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References

    1. Amel H, et al. Introducing a novel manufacturing process for automotive structural/semi structural composite components. Procedia CIRP. 2017;66:143–146.
    1. Beardmore P, Johnson CF. The potential for composites in structural automotive applications. Compos Sci Technol. 1986;26(4):251–281.
    1. Irving PE, Soutis C. Polymer composites in the aerospace industry. Sawston, U.K: 2015.
    1. Li Y, Li N, Gao J. Tooling design and microwave curing technologies for the manufacturing of fiber-reinforced polymer composites in aerospace applications. Int J Adv Manuf Technol. 2014;70(1-4):591–606.
    1. Mouritz AP, Gellert E, Burchill P, Challis K. Review of advanced composite structures for naval ships and submarines. Compos Struct. 2001;53(1):21–42.
    1. Davies P, Petton D. An experimental study of scale effects in marine composites. Compos Part A: App Sci Manuf. 1999;30(3):267–275.
    1. Pendhari SS, Kant T, Desai YM. Application of polymer composites in civil construction: A general review. Compos Struct. 2008;84(2):114–124.
    1. Bakis CE, et al. Fiber-reinforced polymer composites for construction-State-of-the-art review. J Compos Construct. 2002;6(2):73–87.
    1. Thomas MM, Joseph B, Kardos JL. Experimental characterization of autoclave-cured glass-epoxy composite laminates: Cure cycle effects upon thickness, void content, and related phenomena. Polym Compos. 1997;18(3):283–299.
    1. Michaud V, Mortensen A. Infiltration processing of fibre reinforced composites: Governing phenomena. Compos Part A: App Sci Manuf. 2001;32(8):981–996.
    1. Wood JR, Bader MG. Void control for polymer-matrix composites (2): Experimental evaluation of a diffusion model for the growth and collapse of gas bubbles. Compos Manuf. 1994;5(2):149–158.
    1. Abraham D, Matthews S, McIlhagger R. A comparison of physical properties of glass fibre epoxy composites produced by wet lay-up with autoclave consolidation and resin transfer moulding. Compos Part A: App Sci Manuf. 1998;29(7):795–801.
    1. Liu L, Zhang BM, Wang DF, Wu ZJ. Effects of cure cycles on void content and mechanical properties of composite laminates. Compos Struct. 2006;73(3):303–309.
    1. Park SY, Choi WJ, Choi HS. The effects of void contents on the long-term hygrothermal behaviors of glass/epoxy and GLARE laminates. Compos Struct. 2010;92(1):18–24.
    1. Hamidi YK, Aktas L, Altan MC. Three-dimensional features of void morphology in resin transfer molded composites. Compos Part A: App Sci Manuf. 2005;65(7):1306–1320.
    1. Pucci MF, Liotier P-J, Drapier S. Capillary wicking in a fibrous reinforcement-orthotropic issues to determine the capillary pressure components. Compos Part A: App Sci Manuf. 2015;77:133–141.
    1. Pucci MF, et al. Wetting and swelling property modifications of elementary flax fibres and their effects on the Liquid Composite Molding process. Compos Part A: App Sci Manuf. 2017;97:31–40.
    1. Jeong H. Effects of voids on the mechanical strength and ultrasonic attenuation of laminated composites. J Compos Mater. 1997;31(3):276–292.
    1. Almeida SFM, Neto ZdSN. Effect of void content on the strength of composite laminates. Compos Struct. 1994;28(2):139–148.
    1. Varna J, Joffe R, Berglund LA, Lundström T. Effect of voids on failure mechanisms in RTM laminates. Compos Sci Technol. 1995;53(2):241–249.
    1. Hagstrand PO, Bonjour F, Månson JA. The influence of void content on the structural flexural performance of unidirectional glass fibre reinforced polypropylene composites. Compos Part A: App Sci Manuf. 2005;36(5):705–714.
    1. Mouritz A. Ultrasonic and interlaminar properties of highly porous composites. J Compos Mater. 2000;34(3):218–239.
    1. Maragoni L, Carraro P, Peron M, Quaresimin M. Fatigue behaviour of glass/epoxy laminates in the presence of voids. Int J Fatigue. 2017;95:18–28.
    1. Chambers A, Earl J, Squires C, Suhot M. The effect of voids on the flexural fatigue performance of unidirectional carbon fibre composites developed for wind turbine applications. Int J Fatigue. 2006;28(10):1389–1398.
    1. Judd NC, Wright W. Voids and their effects on the mechanical properties of composites- an appraisal. SAMPE J. 1978;14:10–14.
    1. Ghiorse S. Effect of void content on the mechanical properties of carbon/epoxy laminates. SAMPE Quart. 1993;24(2):54–59.
    1. Lambert J, Chambers A, Sinclair I, Spearing S. 3D damage characterisation and the role of voids in the fatigue of wind turbine blade materials. Compos Sci Technol. 2012;72(2):337–343.
    1. Mesogitis T, Skordos A, Long A. Uncertainty in the manufacturing of fibrous thermosetting composites: a review. Compos Part A: App Sci Manuf. 2014;57:67–75.
    1. Aktas L, Hamidi Y, Altan MC. Effect of moisture on the mechanical properties of resin transfer molded composites-part I: absorption. J Mater Process Manuf Sci. 2002;10(4):239–254.
    1. Selzer R, Friedrich K. Mechanical properties and failure behaviour of carbon fibre-reinforced polymer composites under the influence of moisture. Compos Part A: App Sci Manuf. 1997;28(6):595–604.
    1. Costa ML, Rezende MC, Almeida SFM. Effect of void content on the moisture absorption in polymeric composites. Polym Plast Technol Eng. 2006;45(6):691–698.
    1. Muric-Nesic J, Compston P, Stachurski Z. On the void reduction mechanisms in vibration assisted consolidation of fibre reinforced polymer composites. Compos Part A: App Sci Manuf. 2011;42(3):320–327.
    1. Walczyk D, Kuppers J. Thermal press curing of advanced thermoset composite laminate parts. Compos Part A: App Sci Manuf. 2012;43(4):635–646.
    1. Khan LA, Mahmood AH, Ahmed S, Day RJ. Effect of double vacuum bagging (DVB) in quickstep processing on the properties of 977-2A carbon/epoxy composites. Polym Compos. 2013;34(6):942–952.
    1. Kwak M, Robinson P, Bismarck A, Wise R. Microwave curing of carbon-epoxy composites: penetration depth and material characterisation. Compos Part A: App Sci Manuf. 2015;75:18–27.
    1. Agius S, Magniez K, Fox B. Cure behaviour and void development within rapidly cured out-of-autoclave composites. Compos Part B: Eng. 2013;47:230–237.
    1. Davies L, et al. Effect of cure cycle heat transfer rates on the physical and mechanical properties of an epoxy matrix composite. Compos Sci Technol. 2007;67(9):1892–1899.
    1. Pishvar M, Amirkhosravi M, Altan MC. Applying magnetic consolidation pressure during cure to improve laminate quality: a comparative analysis of wet lay-up and vacuum assisted resin transfer molding processes. ASME Int Mech Eng Cong Expos Proc. 2017. IMECE2017-72019.
    1. Amirkhosravi M, Pishvar M, Altan MC. Improving laminate quality in wet lay-up/vacuum bag processes by magnet assisted composite manufacturing (MACM) Compos Part A: App Sci Manuf. 2017;98:227–237.
    1. Pishvar M, Amirkhosravi M, Altan MC. Magnet assisted composite manufacturing: A novel fabrication technique for high-quality composite laminates. Polym Compos. 2017.
    1. ASTM D2584-11 Standard test method for ignition loss of cured reinforced resins. West Conshohocken, PA: ASTM International; 2011.
    1. Anderson JP, Altan MC. Properties of composite cylinders fabricated by bladder assisted composite manufacturing. J Eng Mater Technol. 2012;134(4):044501.
    1. Webb PA. Volume and density determinations for particle technologists. Micromeritics Instru. Corp. 2001;01
    1. ASTM D3171-15 Standard test methods for constituent content of composite materials. West Conshohocken, PA: ASTM International; 2015.
    1. Anderson J. Manufacturing and microstructural modeling of geometrically complex composite components produced by bladder assisted composite manufacturing (BACM) Norman, OK: 2013. PhD dissertation.
    1. ASTM D790-15, Standard test methods for flexural properties of unreinforced and reinforced plastics and electrical insulating materials. West Conshohocken, PA: ASTM International; 2015.
    1. Yalcinkaya MA, Sozer EM, Altan MC. Fabrication of high quality composite laminates by pressurized and heated-VARTM. Compos Part A: App Sci Manuf. 2017;102:336–346.
    1. Chang T, Zhan L, Tan W, Li S. Effect of autoclave pressure on interfacial properties at micro-and macro-level in polymer-matrix composite laminates. Fiber Polym. 2017;18(8):1614–1622.
    1. Stringer LG. Optimization of the wet lay-up/vacuum bag process for the fabrication of carbon fibre epoxy composites with high fibre fraction and low void content. Composites. 1989;20(5):441–452.

Source: PubMed

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