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2023 | OriginalPaper | Chapter

Ecologically Enhanced Natural/Synthetic Polymer Hybrid Composites for Aviation-Interior and Secondary Structures

Authors : Alcides Lopes Leao, Ivana Cesarino, Milena Chanes, Edson Cocchieri Botelho, Otavio Augusto Titton Dias, Mohammad Jawaid

Published in: Green Hybrid Composite in Engineering and Non-Engineering Applications

Publisher: Springer Nature Singapore

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Abstract

The present paper reviews the latest development in composites application in the aviation industry, with emphasis in the bio-based and renewable components. With the environmental pressure over a sustainable mobility, the use of lighter and better materials are under worldwide research. The search for those materials goes through the bio-based components in composites. The recent advances in nanotechnology and in the applications for natural fibers can represent a future trend for the industry. Recent approaches such as the bioeconomy and circular economy aim to transition the current linear, economic system in the aviation industry to a more sustainable one, including bio-composites and recycling.

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Literature
1.
go back to reference Abad-Segura E et al (2021) Implications for sustainability of the joint application of bioeconomy and circular economy: a worldwide trend study. Sustainability 13:1–24CrossRef Abad-Segura E et al (2021) Implications for sustainability of the joint application of bioeconomy and circular economy: a worldwide trend study. Sustainability 13:1–24CrossRef
2.
go back to reference Abdulkareem, S. A. et al. (2019) Development of natural fibre reinforced polystyrene (NFRP) composites: Impact resistance study. In: IOP Conference. Series: Materials Science and Engineering, 640, pp 012059 Abdulkareem, S. A. et al. (2019) Development of natural fibre reinforced polystyrene (NFRP) composites: Impact resistance study. In: IOP Conference. Series: Materials Science and Engineering, 640, pp 012059
3.
go back to reference Ali SZ et al (2018) Effect of fiber content and post stress on moisture absorption of jute polyester composite. IOP Conference Series Materials Science and Engineering 438:12024CrossRef Ali SZ et al (2018) Effect of fiber content and post stress on moisture absorption of jute polyester composite. IOP Conference Series Materials Science and Engineering 438:12024CrossRef
4.
go back to reference Amin S, Amin M (2011) Thermoplastic elastomeric (TPE) materials and their use in outdoor electrical insulation. Rev Adv Mater Sci 29:15–30 Amin S, Amin M (2011) Thermoplastic elastomeric (TPE) materials and their use in outdoor electrical insulation. Rev Adv Mater Sci 29:15–30
5.
go back to reference Arakaki FK, Gonçalves WG (2007) EMBRAER composite material application. In: 16th International Conference on Composite Materials, Kyoto, Japan, 3 p 2007. Arakaki FK, Gonçalves WG (2007) EMBRAER composite material application. In: 16th International Conference on Composite Materials, Kyoto, Japan, 3 p 2007.
6.
go back to reference Ardil C (2020) Regional aircraft selection using preference analysis for reference ideal solution (PARIS). World Academy of Science, Engineering and Technology. In: International Scholarly and Scientific Research & Innovation, 14, 9, pp 378–388 Ardil C (2020) Regional aircraft selection using preference analysis for reference ideal solution (PARIS). World Academy of Science, Engineering and Technology. In: International Scholarly and Scientific Research & Innovation, 14, 9, pp 378–388
7.
go back to reference Arthur DE et al (2021) Studies on some mechanical properties of PVC-wood fiber composite. Chem Rev Lett 4:85–91 Arthur DE et al (2021) Studies on some mechanical properties of PVC-wood fiber composite. Chem Rev Lett 4:85–91
8.
go back to reference Aviation Oil Outlet. Santos-dumont vs the wright brothers: who really invented the airplane? 2020 Aviation Oil Outlet. Santos-dumont vs the wright brothers: who really invented the airplane? 2020
9.
go back to reference Bachmann J et al. (2021) Towards a circular economy in the aviation sector using eco-composites for interior and secondary structures. In: Results and recommendations from the EU/China project ECO-COMPASS 2018, Aerospace, 8, pp 131 Bachmann J et al. (2021) Towards a circular economy in the aviation sector using eco-composites for interior and secondary structures. In: Results and recommendations from the EU/China project ECO-COMPASS 2018, Aerospace, 8, pp 131
10.
go back to reference Balakrishnan P et al. (2016) Natural fiber and polymer matrix composites and their applications in aerospace engineering. In: Sohel Rana and Raul Fangueiro editors. In: Advanced Composite Materials for Aerospace Engineering—Processing, Properties and Applications. Advanced Composite Materials for Aerospace Engineering, Chapter 12, pp. 365–383 Balakrishnan P et al. (2016) Natural fiber and polymer matrix composites and their applications in aerospace engineering. In: Sohel Rana and Raul Fangueiro editors. In: Advanced Composite Materials for Aerospace Engineering—Processing, Properties and Applications. Advanced Composite Materials for Aerospace Engineering, Chapter 12, pp. 365–383
11.
go back to reference Baker AA, Leong KH (2004) Fibers for polymer-matrix composites. Compos Mater Aircr Struct. Second Edition. Alan Baker; Stuart Dutton; Donald Kelly. Chapter 3, pp 55–80 Baker AA, Leong KH (2004) Fibers for polymer-matrix composites. Compos Mater Aircr Struct. Second Edition. Alan Baker; Stuart Dutton; Donald Kelly. Chapter 3, pp 55–80
12.
go back to reference Bazan P et al (2020) Biobased polyethylene hybrid composites with natural fiber: mechanical, thermal properties, and micromechanics. Materials 13:1–16 Bazan P et al (2020) Biobased polyethylene hybrid composites with natural fiber: mechanical, thermal properties, and micromechanics. Materials 13:1–16
13.
go back to reference Bharath KN et al (2020) Alkaline effect on characterization of discarded waste of Moringa oleifera fiber as a potential eco-friendly reinforcement for biocomposites. J Polym Environ 2:2823–2836CrossRef Bharath KN et al (2020) Alkaline effect on characterization of discarded waste of Moringa oleifera fiber as a potential eco-friendly reinforcement for biocomposites. J Polym Environ 2:2823–2836CrossRef
14.
go back to reference Biron M (2013) Thermoplastic composites. Thermoplastics and thermoplastic composites: technical information for plastic users. 2nd ed Oxford: William Andrew. Chapter 6, pp 769–829 Biron M (2013) Thermoplastic composites. Thermoplastics and thermoplastic composites: technical information for plastic users. 2nd ed Oxford: William Andrew. Chapter 6, pp 769–829
15.
go back to reference Botelho EC et al (2006) A review on the development and properties of continuous fiber/epoxy/aluminum hybrid composites for aircraft structures. Material Research 9:247–256CrossRef Botelho EC et al (2006) A review on the development and properties of continuous fiber/epoxy/aluminum hybrid composites for aircraft structures. Material Research 9:247–256CrossRef
16.
go back to reference Callister Jr. WD, Rethwisch DG (2013) Composite Materials. Mater Sci Eng: Introd, 9th ed New Jersey: John Wiley & Sons, pp 627–671 Callister Jr. WD, Rethwisch DG (2013) Composite Materials. Mater Sci Eng: Introd, 9th ed New Jersey: John Wiley & Sons, pp 627–671
17.
go back to reference Catalán J, Norppa H (2017) Safety aspects of bio-based nanomaterials. Bioengineering 4:94CrossRef Catalán J, Norppa H (2017) Safety aspects of bio-based nanomaterials. Bioengineering 4:94CrossRef
18.
go back to reference Daystar J et al. (2019) An economic impact analysis of the U.S. biobased products industry. Rural Dev: US Dep Agric. pp 1–122 Daystar J et al. (2019) An economic impact analysis of the U.S. biobased products industry. Rural Dev: US Dep Agric. pp 1–122
19.
go back to reference Devezas T (2020) Trends in aviation: rebound effect and the struggle composites x aluminum. Technol Forecast Soc Chang 160:120241CrossRef Devezas T (2020) Trends in aviation: rebound effect and the struggle composites x aluminum. Technol Forecast Soc Chang 160:120241CrossRef
20.
go back to reference Erden S, Ho K (2017) Chapter 3—Fiber reinforced composites. Fiber Technol Fiber-Reinf Compos. Cambridge, UK: Woodhead Publishing, pp 51–79 Erden S, Ho K (2017) Chapter 3—Fiber reinforced composites. Fiber Technol Fiber-Reinf Compos. Cambridge, UK: Woodhead Publishing, pp 51–79
21.
go back to reference Girijappa YG T et al. Natural fibers as sustainable and renewable resource for development of eco-friendly composites: a comprehensive review. Front. Mater. 6, pp 226 Girijappa YG T et al. Natural fibers as sustainable and renewable resource for development of eco-friendly composites: a comprehensive review. Front. Mater. 6, pp 226
22.
go back to reference Gorbatikh L et al (2011) Nano-engineered composites: a multiscale approach for adding toughness to fibre reinforced composites. Procedia Eng 10:3252–3258CrossRef Gorbatikh L et al (2011) Nano-engineered composites: a multiscale approach for adding toughness to fibre reinforced composites. Procedia Eng 10:3252–3258CrossRef
24.
go back to reference Gubisch M (February 2019) Embraer receives first production engines for E195-E2. Flightglobal Gubisch M (February 2019) Embraer receives first production engines for E195-E2. Flightglobal
25.
go back to reference Harris T (2022) How stealth bombers work: Defenses against detection Harris T (2022) How stealth bombers work: Defenses against detection
26.
go back to reference Harvey BG et al (2016) Sustainable hydrophobic thermosetting resins and polycarbonates from turpentine. Green Chem 18:2416–2423CrossRef Harvey BG et al (2016) Sustainable hydrophobic thermosetting resins and polycarbonates from turpentine. Green Chem 18:2416–2423CrossRef
27.
go back to reference International Institute for Strategic Studies—IISS, The Military Balance: The annual Assessment of Global Military Capabilities and Defence Economics, Routledge, Taylor & Francis Group, pp 1–525 International Institute for Strategic Studies—IISS, The Military Balance: The annual Assessment of Global Military Capabilities and Defence Economics, Routledge, Taylor & Francis Group, pp 1–525
28.
go back to reference Kesarwan S (2017) Polymer composites in aviation sector - a brief review article. Int J Eng Res & Technol (IJERT) 6(06):518–525 Kesarwan S (2017) Polymer composites in aviation sector - a brief review article. Int J Eng Res & Technol (IJERT) 6(06):518–525
29.
go back to reference Kumar R and Anandjiwala (2013) Compression molded flax fabric-reinforced polyfurfuryl alcohol bio-composites. Mechanical and thermal properties. J Therm Anal Calorim, 112(2):755–760 Kumar R and Anandjiwala (2013) Compression molded flax fabric-reinforced polyfurfuryl alcohol bio-composites. Mechanical and thermal properties. J Therm Anal Calorim, 112(2):755–760
30.
go back to reference Layth M et al. (2015) A review on natural fiber reinforced polymer composite and its applications. Int J Polym Sci, pp 15 Layth M et al. (2015) A review on natural fiber reinforced polymer composite and its applications. Int J Polym Sci, pp 15
31.
go back to reference Leao AL et al. (2017) Curaua fibers—the queen of the fibers. Ryszard M. Kozlowski, Malgorzata Muzyczek (Org.). Natural Fibers—Properties, Mechanical Behavior, Functionalization and Applications. 1st Edition. Nova. Chapter 4, pp 83–106 Leao AL et al. (2017) Curaua fibers—the queen of the fibers. Ryszard M. Kozlowski, Malgorzata Muzyczek (Org.). Natural Fibers—Properties, Mechanical Behavior, Functionalization and Applications. 1st Edition. Nova. Chapter 4, pp 83–106
32.
go back to reference Madhu P et al (2018) Potential of natural/synthetic hybrid composites for aerospace applications. Sustain Compos Aerosp Appl, Woodhead Publ Ser Compos Sci Eng, Chapter 15:315–351 Madhu P et al (2018) Potential of natural/synthetic hybrid composites for aerospace applications. Sustain Compos Aerosp Appl, Woodhead Publ Ser Compos Sci Eng, Chapter 15:315–351
33.
go back to reference Madhu P et al (2019) A review on synthesis and characterization of commercially available natural fibers: Part-I. J Nat Fibers 16:1132–1144CrossRef Madhu P et al (2019) A review on synthesis and characterization of commercially available natural fibers: Part-I. J Nat Fibers 16:1132–1144CrossRef
34.
go back to reference Malkapuram R et al (2008) Recent development in natural fiber reinforced polypropylene composites. J Reinf Plast Compos 28:1169–1189CrossRef Malkapuram R et al (2008) Recent development in natural fiber reinforced polypropylene composites. J Reinf Plast Compos 28:1169–1189CrossRef
35.
go back to reference Mrazova M (2013) Advanced composite materials of the future in aerospace industry. INCAS Bulletin. Bucharest, Ed 3, 5, pp 139–150 Mrazova M (2013) Advanced composite materials of the future in aerospace industry. INCAS Bulletin. Bucharest, Ed 3, 5, pp 139–150
36.
go back to reference Mohanty AK et al. (2005) Natural fibers, biopolymers, and biocomposites. CRC Press, pp 274 Mohanty AK et al. (2005) Natural fibers, biopolymers, and biocomposites. CRC Press, pp 274
37.
go back to reference Mohammed M et al. (2022) Improving hydrophobicity and compatibility between kenaf fiber and polymer composite by surface treatment with inorganic nanoparticles. Arab J Chem, 15(11):104233 Mohammed M et al. (2022) Improving hydrophobicity and compatibility between kenaf fiber and polymer composite by surface treatment with inorganic nanoparticles. Arab J Chem, 15(11):104233
38.
go back to reference Mukesh SS, Godara (2019) Effect of chemical modification of fiber surface on natural fiber composites: a review. In: Materials Today: Proceedings, 18, pp 3428–3434 Mukesh SS, Godara (2019) Effect of chemical modification of fiber surface on natural fiber composites: a review. In: Materials Today: Proceedings, 18, pp 3428–3434
39.
go back to reference Nandhakumar S et al (2021) Experimental investigations on natural fiber reinforced composites. Materials Today: Proceedings 37:2905–2908 Nandhakumar S et al (2021) Experimental investigations on natural fiber reinforced composites. Materials Today: Proceedings 37:2905–2908
40.
go back to reference Pereira PHF et al (2015) Vegetal fibers in polymeric composites: a review. Polymers 25:9–22 Pereira PHF et al (2015) Vegetal fibers in polymeric composites: a review. Polymers 25:9–22
41.
go back to reference Puttegowda M et al. (2018) Potential of natural synthetic hybrid composites for aerospace applications. In: Sustainable composite for aerospace applications. Woodhead publishing series in composite science and engineering. pp. 315–351. Puttegowda M et al. (2018) Potential of natural synthetic hybrid composites for aerospace applications. In: Sustainable composite for aerospace applications. Woodhead publishing series in composite science and engineering. pp. 315–351.
42.
go back to reference Pye A (2021) The basics of Acrylonitrile Butadiene Styrene (ABS) Pye A (2021) The basics of Acrylonitrile Butadiene Styrene (ABS)
43.
go back to reference Quilter A (2004) Composites in Aerospace Applications. Aviationpros Quilter A (2004) Composites in Aerospace Applications. Aviationpros
44.
go back to reference Rajak DK et al (2019) Recent progress of reinforcement materials: a comprehensive overview of composite materials. J Market Res 8:6354–6374 Rajak DK et al (2019) Recent progress of reinforcement materials: a comprehensive overview of composite materials. J Market Res 8:6354–6374
45.
go back to reference Rangappa SM et al (2020) Green-composites: ecofriendly and sustainability. Appl Sci Eng Prog 13:183–184CrossRef Rangappa SM et al (2020) Green-composites: ecofriendly and sustainability. Appl Sci Eng Prog 13:183–184CrossRef
46.
go back to reference Rohit K, Dixit S (2016) A review—future aspect of natural fiber reinforced composite. Polym Renewable Resour 7:43–59 Rohit K, Dixit S (2016) A review—future aspect of natural fiber reinforced composite. Polym Renewable Resour 7:43–59
47.
go back to reference Salim S et al (2020) Enhanced mechanical properties of natural fiber bamboo/pineapple leaf/coconut husk reinforced composites for application in bio-board. Int J Geomate 19:168–174CrossRef Salim S et al (2020) Enhanced mechanical properties of natural fiber bamboo/pineapple leaf/coconut husk reinforced composites for application in bio-board. Int J Geomate 19:168–174CrossRef
48.
go back to reference Sanjay MR, Siengchin S (2021) Exploring the applicability of natural fibers for the development of biocomposites. Express Polym Lett 15:193CrossRef Sanjay MR, Siengchin S (2021) Exploring the applicability of natural fibers for the development of biocomposites. Express Polym Lett 15:193CrossRef
49.
go back to reference Sanjay MR et al (2018) Characterization and properties of natural fiber polymer composites: A comprehensive review. J Clean Prod 172:566–581CrossRef Sanjay MR et al (2018) Characterization and properties of natural fiber polymer composites: A comprehensive review. J Clean Prod 172:566–581CrossRef
50.
go back to reference Shirvanimoghaddam K et al. (2021) Balancing the toughness and strength in polypropylene composites. Composites Part B: Engineering, 223 Shirvanimoghaddam K et al. (2021) Balancing the toughness and strength in polypropylene composites. Composites Part B: Engineering, 223
51.
go back to reference Soler M (2014) Fundamentals of Aerospace Engineering: An introductory course to aeronautical engineering Soler M (2014) Fundamentals of Aerospace Engineering: An introductory course to aeronautical engineering
52.
go back to reference Soutis C et al (2019) How green composite materials could benefit aircraft construction. Sci China Tech Sci 62:1478–1480CrossRef Soutis C et al (2019) How green composite materials could benefit aircraft construction. Sci China Tech Sci 62:1478–1480CrossRef
53.
go back to reference Souza MC (2019) Essay proposal for defining the requirements of vegetable-based oils for bio-lubricants on Al 7050-T7451 and Ti-6Al-4V alloys and natural biocides. Doctor of Science Thesis in Materials, Manufacturing and Automation—Aeronautics Institute of Technology (ITA), pp 158 Souza MC (2019) Essay proposal for defining the requirements of vegetable-based oils for bio-lubricants on Al 7050-T7451 and Ti-6Al-4V alloys and natural biocides. Doctor of Science Thesis in Materials, Manufacturing and Automation—Aeronautics Institute of Technology (ITA), pp 158
54.
go back to reference Souza MC et al (2022) A review of natural fibers reinforced composites for railroad applications. Appl Sci Eng Prog 15:1–12 Souza MC et al (2022) A review of natural fibers reinforced composites for railroad applications. Appl Sci Eng Prog 15:1–12
55.
go back to reference Singha AS et al (2010) Natural fiber reinforced polystyrene matrix-based composites. Adv Mater Res 123–125:1175–1178CrossRef Singha AS et al (2010) Natural fiber reinforced polystyrene matrix-based composites. Adv Mater Res 123–125:1175–1178CrossRef
56.
go back to reference Singha AS, Rana RK (2012) Natural fiber reinforced polystyrene composites: Effect of fiber loading, fiber dimensions and surface modification on mechanical properties. Mater Des 41:289–297CrossRef Singha AS, Rana RK (2012) Natural fiber reinforced polystyrene composites: Effect of fiber loading, fiber dimensions and surface modification on mechanical properties. Mater Des 41:289–297CrossRef
57.
go back to reference Sivaraj S et al (2017) Mechanical behavior of saw wood dust filled polymer composites. Int J Sci Eng Res 5:3221–5687 Sivaraj S et al (2017) Mechanical behavior of saw wood dust filled polymer composites. Int J Sci Eng Res 5:3221–5687
58.
go back to reference Sreekumar PA et al (2012) Effect of chemical treatment on dynamic mechanical properties of sisal fiber-reinforced polyester composites fabricated by resin transfer molding. Compos Interfaces 15:263–279CrossRef Sreekumar PA et al (2012) Effect of chemical treatment on dynamic mechanical properties of sisal fiber-reinforced polyester composites fabricated by resin transfer molding. Compos Interfaces 15:263–279CrossRef
59.
go back to reference Trzepieciński T et al (2021) New advances and future possibilities in forming technology of hybrid metal–polymer composites used in aerospace applications. Journal of Composites Science. 5:1–52CrossRef Trzepieciński T et al (2021) New advances and future possibilities in forming technology of hybrid metal–polymer composites used in aerospace applications. Journal of Composites Science. 5:1–52CrossRef
60.
go back to reference Wijkman A, Skanberg K (2017) The circular economy and benefits for society: jobs and climate clear winners in an economy based on renewable energy and resource efficiency. A study pertaining to the Czech Republic and Poland. The Club of Rome. pp 1–62 Wijkman A, Skanberg K (2017) The circular economy and benefits for society: jobs and climate clear winners in an economy based on renewable energy and resource efficiency. A study pertaining to the Czech Republic and Poland. The Club of Rome. pp 1–62
61.
go back to reference Yashas Gowda TG et al. (2018) Polymer matrix-natural fiber composites: an overview. Cogente Eng, 5, pp 1–13 Yashas Gowda TG et al. (2018) Polymer matrix-natural fiber composites: an overview. Cogente Eng, 5, pp 1–13
62.
go back to reference Zweben C (2015) 10 Composite materials. Mech Engineers’ Handb. I:1–35 Zweben C (2015) 10 Composite materials. Mech Engineers’ Handb. I:1–35
Metadata
Title
Ecologically Enhanced Natural/Synthetic Polymer Hybrid Composites for Aviation-Interior and Secondary Structures
Authors
Alcides Lopes Leao
Ivana Cesarino
Milena Chanes
Edson Cocchieri Botelho
Otavio Augusto Titton Dias
Mohammad Jawaid
Copyright Year
2023
Publisher
Springer Nature Singapore
DOI
https://doi.org/10.1007/978-981-99-1583-5_4

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