Skip to main content

2021 | OriginalPaper | Buchkapitel

Lifecycle Assessment of Thermoplastic and Thermosetting Bamboo Composites

verfasst von : Akarsh Verma, Naman Jain, Avinash Parashar, Amit Gaur, M. R. Sanjay, Suchart Siengchin

Erschienen in: Bamboo Fiber Composites

Verlag: Springer Singapore

Aktivieren Sie unsere intelligente Suche, um passende Fachinhalte oder Patente zu finden.

search-config
loading …

Abstract

This chapter reports on the lifecycle assessment of the thermoplastic and thermosetting polymers composites reinforced with bamboo fibers. Several research works have reported that the bamboo reinforced polymers composites are biodegradable with environmental friendliness characteristic. Several chemical surface functionalization techniques have enhanced the properties of bamboo reinforced polymer composites.

Sie haben noch keine Lizenz? Dann Informieren Sie sich jetzt über unsere Produkte:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literatur
1.
Zurück zum Zitat Kaw AK (2005) Mechanics of composite materials. CRC Press Kaw AK (2005) Mechanics of composite materials. CRC Press
2.
Zurück zum Zitat Verma A, Parashar A, Packirisamy M (2018) Atomistic modeling of graphene/hexagonal boron nitride polymer nanocomposites: a review. Wiley Interdiscip Rev Comput Mol Sci 8(3):e1346CrossRef Verma A, Parashar A, Packirisamy M (2018) Atomistic modeling of graphene/hexagonal boron nitride polymer nanocomposites: a review. Wiley Interdiscip Rev Comput Mol Sci 8(3):e1346CrossRef
3.
Zurück zum Zitat Verma A, Singh VK (2019) Mechanical, microstructural and thermal characterization of epoxy-based human hair–reinforced composites. J Test Eval 47(2):1193–1215CrossRef Verma A, Singh VK (2019) Mechanical, microstructural and thermal characterization of epoxy-based human hair–reinforced composites. J Test Eval 47(2):1193–1215CrossRef
4.
Zurück zum Zitat Daniel IM, Ishai O, Daniel IM, Daniel I (1994) Engineering mechanics of composite materials, vol 3. Oxford University Press, New York, pp 256–256 Daniel IM, Ishai O, Daniel IM, Daniel I (1994) Engineering mechanics of composite materials, vol 3. Oxford University Press, New York, pp 256–256
5.
Zurück zum Zitat Hill R (1965) A self-consistent mechanics of composite materials. J Mech Phys Solids 13(4):213–222CrossRef Hill R (1965) A self-consistent mechanics of composite materials. J Mech Phys Solids 13(4):213–222CrossRef
6.
Zurück zum Zitat Verma A, Parashar A, Packirisamy M (2019) Effect of grain boundaries on the interfacial behaviour of graphene-polyethylene nanocomposite. Appl Surf Sci 470:1085–1092CrossRef Verma A, Parashar A, Packirisamy M (2019) Effect of grain boundaries on the interfacial behaviour of graphene-polyethylene nanocomposite. Appl Surf Sci 470:1085–1092CrossRef
7.
Zurück zum Zitat Jones RM (2014) Mechanics of composite materials. CRC Press Jones RM (2014) Mechanics of composite materials. CRC Press
8.
Zurück zum Zitat Verma A, Parashar A, Jain N, Singh VK, Rangappa SM, Siengchin S (2020) Surface modification techniques for the preparation of different novel biofibers for composites. In: Biofibers and biopolymers for biocomposites, Chap 1. Springer, Cham, pp 1–34 Verma A, Parashar A, Jain N, Singh VK, Rangappa SM, Siengchin S (2020) Surface modification techniques for the preparation of different novel biofibers for composites. In: Biofibers and biopolymers for biocomposites, Chap 1. Springer, Cham, pp 1–34
9.
Zurück zum Zitat Rastogi S, Verma A, Singh VK (2020) Experimental response of nonwoven waste cellulose fabric-reinforced epoxy composites for high toughness and coating applications. Mater Perform Charact 9(1):151–172 Rastogi S, Verma A, Singh VK (2020) Experimental response of nonwoven waste cellulose fabric-reinforced epoxy composites for high toughness and coating applications. Mater Perform Charact 9(1):151–172
10.
Zurück zum Zitat Verma A, Gaur A, Singh VK (2017) Mechanical properties and microstructure of starch and sisal fiber biocomposite modified with epoxy resin. Mater Perform Charact 6(1):500–520 Verma A, Gaur A, Singh VK (2017) Mechanical properties and microstructure of starch and sisal fiber biocomposite modified with epoxy resin. Mater Perform Charact 6(1):500–520
11.
Zurück zum Zitat Verma A, Negi P, Singh VK (2018) Experimental analysis on carbon residuum transformed epoxy resin: chicken feather fiber hybrid composite. Polym Compos 40(7):2690–2699 Verma A, Negi P, Singh VK (2018) Experimental analysis on carbon residuum transformed epoxy resin: chicken feather fiber hybrid composite. Polym Compos 40(7):2690–2699
12.
Zurück zum Zitat Verma A, Negi P, Singh VK (2018) Experimental investigation of chicken feather fiber and crumb rubber reformed epoxy resin hybrid composite: mechanical and microstructural characterization. J Mech Behav Mater 27(3–4) Verma A, Negi P, Singh VK (2018) Experimental investigation of chicken feather fiber and crumb rubber reformed epoxy resin hybrid composite: mechanical and microstructural characterization. J Mech Behav Mater 27(3–4)
13.
Zurück zum Zitat Verma A, Negi P, Singh VK (2018) Physical and thermal characterization of chicken feather fiber and crumb rubber reformed epoxy resin hybrid composite. Adv Civ Eng Mater 7(1):538–557 Verma A, Negi P, Singh VK (2018) Physical and thermal characterization of chicken feather fiber and crumb rubber reformed epoxy resin hybrid composite. Adv Civ Eng Mater 7(1):538–557
14.
Zurück zum Zitat Verma A, Joshi K, Gaur A, Singh VK (2018) Starch-jute fiber hybrid biocomposite modified with an epoxy resin coating: fabrication and experimental characterization. J Mech Behav Mater 27(5–6) Verma A, Joshi K, Gaur A, Singh VK (2018) Starch-jute fiber hybrid biocomposite modified with an epoxy resin coating: fabrication and experimental characterization. J Mech Behav Mater 27(5–6)
15.
Zurück zum Zitat Verma A, Budiyal L, Sanjay MR, Siengchin S (2019) Processing and characterization analysis of pyrolyzed oil rubber (from waste tires)-epoxy polymer blend composite for lightweight structures and coatings applications. Polym Eng Sci 59(10):2041–2051CrossRef Verma A, Budiyal L, Sanjay MR, Siengchin S (2019) Processing and characterization analysis of pyrolyzed oil rubber (from waste tires)-epoxy polymer blend composite for lightweight structures and coatings applications. Polym Eng Sci 59(10):2041–2051CrossRef
16.
Zurück zum Zitat Chaurasia A, Verma A, Parashar A, Mulik RS (2019) Experimental and computational studies to analyze the effect of h-BN nanosheets on mechanical behavior of h-BN/polyethylene nanocomposites. J Phys Chem C 123(32):20059–20070CrossRef Chaurasia A, Verma A, Parashar A, Mulik RS (2019) Experimental and computational studies to analyze the effect of h-BN nanosheets on mechanical behavior of h-BN/polyethylene nanocomposites. J Phys Chem C 123(32):20059–20070CrossRef
17.
Zurück zum Zitat Verma A, Baurai K, Sanjay MR, Siengchin S (2019) Mechanical, microstructural, and thermal characterization insights of pyrolyzed carbon black from waste tires reinforced epoxy nanocomposites for coating application. Polym Compos Verma A, Baurai K, Sanjay MR, Siengchin S (2019) Mechanical, microstructural, and thermal characterization insights of pyrolyzed carbon black from waste tires reinforced epoxy nanocomposites for coating application. Polym Compos
18.
Zurück zum Zitat Verma A, Kumar R, Parashar A (2019) Enhanced thermal transport across a bi-crystalline graphene–polymer interface: an atomistic approach. Phys Chem Chem Phys 21(11):6229–6237CrossRef Verma A, Kumar R, Parashar A (2019) Enhanced thermal transport across a bi-crystalline graphene–polymer interface: an atomistic approach. Phys Chem Chem Phys 21(11):6229–6237CrossRef
19.
Zurück zum Zitat Verma A, Singh VK, Verma SK, Sharma A (2016) Human hair: a biodegradable composite fiber—a review. Int J Waste Resour 6(206):2 Verma A, Singh VK, Verma SK, Sharma A (2016) Human hair: a biodegradable composite fiber—a review. Int J Waste Resour 6(206):2
20.
Zurück zum Zitat Verma A, Singh VK, Arif M (2016) Study of flame retardant and mechanical properties of coconut shell particles filled composite. Res Rev J Mater Sci 4(3):1–5 Verma A, Singh VK, Arif M (2016) Study of flame retardant and mechanical properties of coconut shell particles filled composite. Res Rev J Mater Sci 4(3):1–5
21.
Zurück zum Zitat Jain N, Ali S, Singh VK, Singh K, Bisht N, Chauhan S (2019) Creep and dynamic mechanical behavior of cross-linked polyvinyl alcohol reinforced with cotton fiber laminate composites. J Polym Eng 39(4):326–335CrossRef Jain N, Ali S, Singh VK, Singh K, Bisht N, Chauhan S (2019) Creep and dynamic mechanical behavior of cross-linked polyvinyl alcohol reinforced with cotton fiber laminate composites. J Polym Eng 39(4):326–335CrossRef
22.
Zurück zum Zitat Jain N, Verma A, Singh VK (2019) Dynamic mechanical analysis and creep-recovery behaviour of polyvinyl alcohol based cross-linked biocomposite reinforced with basalt fiber. Mater Res Express 6(10):105373CrossRef Jain N, Verma A, Singh VK (2019) Dynamic mechanical analysis and creep-recovery behaviour of polyvinyl alcohol based cross-linked biocomposite reinforced with basalt fiber. Mater Res Express 6(10):105373CrossRef
23.
Zurück zum Zitat Jain N, Singh VK, Chauhan S (2018) Dynamic and creep analysis of polyvinyl alcohol based films blended with starch and protein. J Polym Eng 39(1):35–47CrossRef Jain N, Singh VK, Chauhan S (2018) Dynamic and creep analysis of polyvinyl alcohol based films blended with starch and protein. J Polym Eng 39(1):35–47CrossRef
24.
Zurück zum Zitat Verma A, Singh C, Singh VK, Jain N (2019) Fabrication and characterization of chitosan-coated sisal fiber–phytagel modified soy protein-based green composite. J Compos Mater 53(18):2481–2504CrossRef Verma A, Singh C, Singh VK, Jain N (2019) Fabrication and characterization of chitosan-coated sisal fiber–phytagel modified soy protein-based green composite. J Compos Mater 53(18):2481–2504CrossRef
25.
Zurück zum Zitat Deepmala K, Jain N, Singh VK, Chauhan S (2018) Fabrication and characterization of chitosan coated human hair reinforced phytagel modified soy protein-based green composite. J Mech Behav Mater 27(1–2) Deepmala K, Jain N, Singh VK, Chauhan S (2018) Fabrication and characterization of chitosan coated human hair reinforced phytagel modified soy protein-based green composite. J Mech Behav Mater 27(1–2)
26.
Zurück zum Zitat Jain N, Singh VK, Chauhan S (2017) A review on mechanical and water absorption properties of polyvinyl alcohol based composites/films. J Mech Behav Mater 26(5–6):213–222 Jain N, Singh VK, Chauhan S (2017) A review on mechanical and water absorption properties of polyvinyl alcohol based composites/films. J Mech Behav Mater 26(5–6):213–222
27.
Zurück zum Zitat Jain N, Singh VK, Chauhan S (2017) Review on effect of chemical, thermal, additive treatment on mechanical properties of basalt fiber and their composites. J Mech Behav Mater 26(5–6):205–211 Jain N, Singh VK, Chauhan S (2017) Review on effect of chemical, thermal, additive treatment on mechanical properties of basalt fiber and their composites. J Mech Behav Mater 26(5–6):205–211
28.
Zurück zum Zitat John MJ, Thomas S (2008) Biofibres and biocomposites. Carbohydr Polym 71(3):343–364CrossRef John MJ, Thomas S (2008) Biofibres and biocomposites. Carbohydr Polym 71(3):343–364CrossRef
29.
Zurück zum Zitat Gupta A, Kumar A (2008) Potential of bamboo in sustainable development. Asia Pac Bus Rev 4(3):100–107CrossRef Gupta A, Kumar A (2008) Potential of bamboo in sustainable development. Asia Pac Bus Rev 4(3):100–107CrossRef
30.
Zurück zum Zitat Lobovikov M, Ball L, Paudel S, Guardia M, Piazza M, Wu J, Ren H, Russo L (2007) World bamboo resources: a thematic study prepared in the framework of the global forest resources assessment 2005, No 18. Food & Agriculture Organization Lobovikov M, Ball L, Paudel S, Guardia M, Piazza M, Wu J, Ren H, Russo L (2007) World bamboo resources: a thematic study prepared in the framework of the global forest resources assessment 2005, No 18. Food & Agriculture Organization
31.
Zurück zum Zitat Janssen JJ (2000) Designing and building with bamboo. International Network for Bamboo and Rattan, Netherlands, pp 130–133 Janssen JJ (2000) Designing and building with bamboo. International Network for Bamboo and Rattan, Netherlands, pp 130–133
32.
Zurück zum Zitat Londoño X, Camayo GC, Riaño NM, López Y (2002) Characterization of the anatomy of Guadua angustifolia (Poaceae: Bambusoideae) culms. Bamboo Sci Cult J Am Bamboo Soc 16(1):18–31 Londoño X, Camayo GC, Riaño NM, López Y (2002) Characterization of the anatomy of Guadua angustifolia (Poaceae: Bambusoideae) culms. Bamboo Sci Cult J Am Bamboo Soc 16(1):18–31
33.
Zurück zum Zitat Lo TY, Cui HZ, Leung HC (2004) The effect of fiber density on strength capacity of bamboo. Mater Lett 58(21):2595–2598CrossRef Lo TY, Cui HZ, Leung HC (2004) The effect of fiber density on strength capacity of bamboo. Mater Lett 58(21):2595–2598CrossRef
34.
Zurück zum Zitat Yueping W, Ge W, Haitao C, Genlin T, Zheng L, Feng XQ, Xiangqi Z, Xiaojun H, Xushan G (2010) Structures of bamboo fiber for textiles. Text Res J 80(4):334–343CrossRef Yueping W, Ge W, Haitao C, Genlin T, Zheng L, Feng XQ, Xiangqi Z, Xiaojun H, Xushan G (2010) Structures of bamboo fiber for textiles. Text Res J 80(4):334–343CrossRef
35.
Zurück zum Zitat Shao S, Wen G, Jin Z (2008) Changes in chemical characteristics of bamboo (Phyllostachys pubescens) components during steam explosion. Wood Sci Technol 42(6):439CrossRef Shao S, Wen G, Jin Z (2008) Changes in chemical characteristics of bamboo (Phyllostachys pubescens) components during steam explosion. Wood Sci Technol 42(6):439CrossRef
36.
Zurück zum Zitat Phong NT, Fujii T, Chuong B, Okubo K (2012) Study on how to effectively extract bamboo fibers from raw bamboo and wastewater treatment. J Mater Sci Res 1(1):144 Phong NT, Fujii T, Chuong B, Okubo K (2012) Study on how to effectively extract bamboo fibers from raw bamboo and wastewater treatment. J Mater Sci Res 1(1):144
37.
Zurück zum Zitat Ashimori M, Katayama T, Aoyama E, Nagai S (2004) Study on splitting of bamboo fibers due to freezing and tensile strength of FRTP using bamboo fibers. JSME Int J Ser A Solid Mech Mater Eng 47(4):566–569CrossRef Ashimori M, Katayama T, Aoyama E, Nagai S (2004) Study on splitting of bamboo fibers due to freezing and tensile strength of FRTP using bamboo fibers. JSME Int J Ser A Solid Mech Mater Eng 47(4):566–569CrossRef
38.
Zurück zum Zitat Thwe MM, Liao K (2002) Effects of environmental aging on the mechanical properties of bamboo–glass fiber reinforced polymer matrix hybrid composites. Compos A Appl Sci Manuf 33(1):43–52CrossRef Thwe MM, Liao K (2002) Effects of environmental aging on the mechanical properties of bamboo–glass fiber reinforced polymer matrix hybrid composites. Compos A Appl Sci Manuf 33(1):43–52CrossRef
39.
Zurück zum Zitat Rao KMM, Rao KM (2007) Extraction and tensile properties of natural fibers: vakka, date and bamboo. Compos Struct 77(3):288–295CrossRef Rao KMM, Rao KM (2007) Extraction and tensile properties of natural fibers: vakka, date and bamboo. Compos Struct 77(3):288–295CrossRef
40.
Zurück zum Zitat Deshpande AP, Bhaskar Rao M, Lakshmana Rao C (2000) Extraction of bamboo fibers and their use as reinforcement in polymeric composites. J Appl Polym Sci 76(1):83–92CrossRef Deshpande AP, Bhaskar Rao M, Lakshmana Rao C (2000) Extraction of bamboo fibers and their use as reinforcement in polymeric composites. J Appl Polym Sci 76(1):83–92CrossRef
41.
Zurück zum Zitat Kim H, Okubo K, Fujii T, Takemura K (2013) Influence of fiber extraction and surface modification on mechanical properties of green composites with bamboo fiber. J Adhes Sci Technol 27(12):1348–1358CrossRef Kim H, Okubo K, Fujii T, Takemura K (2013) Influence of fiber extraction and surface modification on mechanical properties of green composites with bamboo fiber. J Adhes Sci Technol 27(12):1348–1358CrossRef
42.
Zurück zum Zitat Kumar S, Choudhary V, Kumar R (2010) Study on the compatibility of unbleached and bleached bamboo-fiber with LLDPE matrix. J Therm Anal Calorim 102(2):751–761CrossRef Kumar S, Choudhary V, Kumar R (2010) Study on the compatibility of unbleached and bleached bamboo-fiber with LLDPE matrix. J Therm Anal Calorim 102(2):751–761CrossRef
43.
Zurück zum Zitat Fengel D, Shao X (1984) A chemical and ultrastructural study of the bamboo species Phyllostachys makinoi Hay. Wood Sci Technol 18(2):103–112 Fengel D, Shao X (1984) A chemical and ultrastructural study of the bamboo species Phyllostachys makinoi Hay. Wood Sci Technol 18(2):103–112
44.
Zurück zum Zitat Kaur V, Chattopadhyay DP, Kaur S (2013) Study on extraction of bamboo fibres from raw bamboo fibres bundles using different retting techniques. Text Light Ind Sci Technol 2(4):174–179 Kaur V, Chattopadhyay DP, Kaur S (2013) Study on extraction of bamboo fibres from raw bamboo fibres bundles using different retting techniques. Text Light Ind Sci Technol 2(4):174–179
45.
Zurück zum Zitat He JX, Tang Y, Wang SY (2007) Differences in morphological characteristics of bamboo fibres and other natural cellulose fibres: studies on X-ray diffraction, solid state 13C-CP/MAS NMR, and second derivative FTIR spectroscopy data He JX, Tang Y, Wang SY (2007) Differences in morphological characteristics of bamboo fibres and other natural cellulose fibres: studies on X-ray diffraction, solid state 13C-CP/MAS NMR, and second derivative FTIR spectroscopy data
46.
Zurück zum Zitat Khalil HA, Bhat IUH, Jawaid M, Zaidon A, Hermawan D, Hadi YS (2012) Bamboo fibre reinforced biocomposites: a review. Mater Des 42:353–368CrossRef Khalil HA, Bhat IUH, Jawaid M, Zaidon A, Hermawan D, Hadi YS (2012) Bamboo fibre reinforced biocomposites: a review. Mater Des 42:353–368CrossRef
47.
Zurück zum Zitat Ogawa K, Hirogaki T, Aoyama E, Taniguchi M, Ogawa S (2010) Sustainable manufacturing system focusing on the natural growth of bamboo. J Adv Mech Des Syst Manuf 4(2):531–542CrossRef Ogawa K, Hirogaki T, Aoyama E, Taniguchi M, Ogawa S (2010) Sustainable manufacturing system focusing on the natural growth of bamboo. J Adv Mech Des Syst Manuf 4(2):531–542CrossRef
48.
Zurück zum Zitat Corradi S, Isidori T, Corradi M, Soleri F, Olivari L (2009) Composite boat hulls with bamboo natural fibres. Int J Mater Prod Technol 36(1–4):73–89CrossRef Corradi S, Isidori T, Corradi M, Soleri F, Olivari L (2009) Composite boat hulls with bamboo natural fibres. Int J Mater Prod Technol 36(1–4):73–89CrossRef
49.
Zurück zum Zitat Okubo K, Fujii T, Yamamoto Y (2004) Development of bamboo-based polymer composites and their mechanical properties. Compos A Appl Sci Manuf 35(3):377–383CrossRef Okubo K, Fujii T, Yamamoto Y (2004) Development of bamboo-based polymer composites and their mechanical properties. Compos A Appl Sci Manuf 35(3):377–383CrossRef
50.
Zurück zum Zitat Saxena M, Gowri VS (2003) Studies on bamboo polymer composites with polyester amide polyol as interfacial agent. Polym Compos 24(3):428–436CrossRef Saxena M, Gowri VS (2003) Studies on bamboo polymer composites with polyester amide polyol as interfacial agent. Polym Compos 24(3):428–436CrossRef
51.
Zurück zum Zitat Thwe MM, Liao K (2003) Durability of bamboo-glass fiber reinforced polymer matrix hybrid composites. Compos Sci Technol 63(3–4):375–387 Thwe MM, Liao K (2003) Durability of bamboo-glass fiber reinforced polymer matrix hybrid composites. Compos Sci Technol 63(3–4):375–387
52.
Zurück zum Zitat Lee SH, Wang S (2006) Biodegradable polymers/bamboo fiber biocomposite with bio-based coupling agent. Compos A Appl Sci Manuf 37(1):80–91CrossRef Lee SH, Wang S (2006) Biodegradable polymers/bamboo fiber biocomposite with bio-based coupling agent. Compos A Appl Sci Manuf 37(1):80–91CrossRef
53.
Zurück zum Zitat Lu T, Jiang M, Jiang Z, Hui D, Wang Z, Zhou Z (2013) Effect of surface modification of bamboo cellulose fibers on mechanical properties of cellulose/epoxy composites. Compos B Eng 51:28–34CrossRef Lu T, Jiang M, Jiang Z, Hui D, Wang Z, Zhou Z (2013) Effect of surface modification of bamboo cellulose fibers on mechanical properties of cellulose/epoxy composites. Compos B Eng 51:28–34CrossRef
54.
Zurück zum Zitat Besi MKS (2013) A review on mechanical properties of bamboo fiber reinforced polymer composite. Aust J Basic Appl Sci 7(8):247–253 Besi MKS (2013) A review on mechanical properties of bamboo fiber reinforced polymer composite. Aust J Basic Appl Sci 7(8):247–253
55.
Zurück zum Zitat Das M, Pal A, Chakraborty D (2006) Effects of mercerization of bamboo strips on mechanical properties of unidirectional bamboo–novolac composites. J Appl Polym Sci 100(1):238–244CrossRef Das M, Pal A, Chakraborty D (2006) Effects of mercerization of bamboo strips on mechanical properties of unidirectional bamboo–novolac composites. J Appl Polym Sci 100(1):238–244CrossRef
56.
Zurück zum Zitat Okubo K, Fujii T, Yamashita N (2005) Improvement of interfacial adhesion in bamboo polymer composite enhanced with micro-fibrillated cellulose. JSME Int J Ser A Solid Mech Mater Eng 48(4):199–204CrossRef Okubo K, Fujii T, Yamashita N (2005) Improvement of interfacial adhesion in bamboo polymer composite enhanced with micro-fibrillated cellulose. JSME Int J Ser A Solid Mech Mater Eng 48(4):199–204CrossRef
57.
Zurück zum Zitat Okubo K, Fujii T, Thostenson ET (2009) Multi-scale hybrid biocomposite: processing and mechanical characterization of bamboo fiber reinforced PLA with microfibrillated cellulose. Compos A Appl Sci Manuf 40(4):469–475CrossRef Okubo K, Fujii T, Thostenson ET (2009) Multi-scale hybrid biocomposite: processing and mechanical characterization of bamboo fiber reinforced PLA with microfibrillated cellulose. Compos A Appl Sci Manuf 40(4):469–475CrossRef
58.
Zurück zum Zitat Ismail H, Edyham MR, Wirjosentono B (2002) Bamboo fibre filled natural rubber composites: the effects of filler loading and bonding agent. Polym Test 21(2):139–144CrossRef Ismail H, Edyham MR, Wirjosentono B (2002) Bamboo fibre filled natural rubber composites: the effects of filler loading and bonding agent. Polym Test 21(2):139–144CrossRef
59.
Zurück zum Zitat Gupta A, Kumar A, Patnaik A, Biswas S (2011) Effect of different parameters on mechanical and erosion wear behavior of bamboo fiber reinforced epoxy composites. Int J Polym Sci Gupta A, Kumar A, Patnaik A, Biswas S (2011) Effect of different parameters on mechanical and erosion wear behavior of bamboo fiber reinforced epoxy composites. Int J Polym Sci
60.
Zurück zum Zitat Kushwaha PK, Kumar R (2010) Studies on water absorption of bamboo-epoxy composites: effect of silane treatment of mercerized bamboo. J Appl Polym Sci 115(3):1846–1852CrossRef Kushwaha PK, Kumar R (2010) Studies on water absorption of bamboo-epoxy composites: effect of silane treatment of mercerized bamboo. J Appl Polym Sci 115(3):1846–1852CrossRef
61.
Zurück zum Zitat Bahari SA, Krause A (2016) Utilizing Malaysian bamboo for use in thermoplastic composites. J Clean Prod 110:16–24CrossRef Bahari SA, Krause A (2016) Utilizing Malaysian bamboo for use in thermoplastic composites. J Clean Prod 110:16–24CrossRef
62.
Zurück zum Zitat Han G, Lei Y, Wu Q, Kojima Y, Suzuki S (2008) Bamboo–fiber filled high density polyethylene composites: effect of coupling treatment and nanoclay. J Polym Environ 16(2):123–130CrossRef Han G, Lei Y, Wu Q, Kojima Y, Suzuki S (2008) Bamboo–fiber filled high density polyethylene composites: effect of coupling treatment and nanoclay. J Polym Environ 16(2):123–130CrossRef
63.
Zurück zum Zitat Zakikhani P, Zahari R, Sultan MTH, Majid DL (2014) Extraction and preparation of bamboo fibre-reinforced composites. Mater Des 63:820–828CrossRef Zakikhani P, Zahari R, Sultan MTH, Majid DL (2014) Extraction and preparation of bamboo fibre-reinforced composites. Mater Des 63:820–828CrossRef
64.
Zurück zum Zitat Chen H, Miao M, Ding X (2009) Influence of moisture absorption on the interfacial strength of bamboo/vinyl ester composites. Compos A Appl Sci Manuf 40(12):2013–2019CrossRef Chen H, Miao M, Ding X (2009) Influence of moisture absorption on the interfacial strength of bamboo/vinyl ester composites. Compos A Appl Sci Manuf 40(12):2013–2019CrossRef
65.
Zurück zum Zitat Cruz RBD, Junior L, Pereira E, Monteiro SN, Louro LHL (2015) Giant bamboo fiber reinforced epoxy composite in multilayered ballistic armor. Mater Res 18:70–75CrossRef Cruz RBD, Junior L, Pereira E, Monteiro SN, Louro LHL (2015) Giant bamboo fiber reinforced epoxy composite in multilayered ballistic armor. Mater Res 18:70–75CrossRef
66.
Zurück zum Zitat Kori Y, Kitagawa K, Hamada H (2005) Crystallization behavior and viscoelasticity of bamboo-fiber composites. J Appl Polym Sci 98(2):603–612CrossRef Kori Y, Kitagawa K, Hamada H (2005) Crystallization behavior and viscoelasticity of bamboo-fiber composites. J Appl Polym Sci 98(2):603–612CrossRef
67.
Zurück zum Zitat Osorio L, Trujillo E, Van Vuure AW, Verpoest I (2011) Morphological aspects and mechanical properties of single bamboo fibers and flexural characterization of bamboo/epoxy composites. J Reinf Plast Compos 30(5):396–408CrossRef Osorio L, Trujillo E, Van Vuure AW, Verpoest I (2011) Morphological aspects and mechanical properties of single bamboo fibers and flexural characterization of bamboo/epoxy composites. J Reinf Plast Compos 30(5):396–408CrossRef
68.
Zurück zum Zitat Yu Y, Huang X, Yu W (2014) A novel process to improve yield and mechanical performance of bamboo fiber reinforced composite via mechanical treatments. Compos B Eng 56:48–53CrossRef Yu Y, Huang X, Yu W (2014) A novel process to improve yield and mechanical performance of bamboo fiber reinforced composite via mechanical treatments. Compos B Eng 56:48–53CrossRef
69.
Zurück zum Zitat Chattopadhyay SK, Khandal RK, Uppaluri R, Ghoshal AK (2011) Bamboo fiber reinforced polypropylene composites and their mechanical, thermal, and morphological properties. J Appl Polym Sci 119(3):1619–1626CrossRef Chattopadhyay SK, Khandal RK, Uppaluri R, Ghoshal AK (2011) Bamboo fiber reinforced polypropylene composites and their mechanical, thermal, and morphological properties. J Appl Polym Sci 119(3):1619–1626CrossRef
70.
Zurück zum Zitat Wong KJ, Zahi S, Low KO, Lim CC (2010) Fracture characterisation of short bamboo fibre reinforced polyester composites. Mater Des 31(9):4147–4154CrossRef Wong KJ, Zahi S, Low KO, Lim CC (2010) Fracture characterisation of short bamboo fibre reinforced polyester composites. Mater Des 31(9):4147–4154CrossRef
71.
Zurück zum Zitat Latha PS, Rao MV, Kumar VK, Raghavendra G, Ojha S, Inala R (2016) Evaluation of mechanical and tribological properties of bamboo–glass hybrid fiber reinforced polymer composite. J Ind Text 46(1):3–18CrossRef Latha PS, Rao MV, Kumar VK, Raghavendra G, Ojha S, Inala R (2016) Evaluation of mechanical and tribological properties of bamboo–glass hybrid fiber reinforced polymer composite. J Ind Text 46(1):3–18CrossRef
72.
Zurück zum Zitat Liu D, Song J, Anderson DP, Chang PR, Hua Y (2012) Bamboo fiber and its reinforced composites: structure and properties. Cellulose 19(5):1449–1480CrossRef Liu D, Song J, Anderson DP, Chang PR, Hua Y (2012) Bamboo fiber and its reinforced composites: structure and properties. Cellulose 19(5):1449–1480CrossRef
73.
Zurück zum Zitat Huang X, Netravali A (2009) Biodegradable green composites made using bamboo micro/nano-fibrils and chemically modified soy protein resin. Compos Sci Technol 69(7–8):1009–1015CrossRef Huang X, Netravali A (2009) Biodegradable green composites made using bamboo micro/nano-fibrils and chemically modified soy protein resin. Compos Sci Technol 69(7–8):1009–1015CrossRef
74.
Zurück zum Zitat Sen T, Reddy HJ (2011) Application of sisal, bamboo, coir and jute natural composites in structural upgradation. Int J Innov Manag Technol 2(3):186 Sen T, Reddy HJ (2011) Application of sisal, bamboo, coir and jute natural composites in structural upgradation. Int J Innov Manag Technol 2(3):186
75.
Zurück zum Zitat Kim BJ, Yao F, Han G, Wu Q (2012) Performance of bamboo plastic composites with hybrid bamboo and precipitated calcium carbonate fillers. Polym Compos 33(1):68–78CrossRef Kim BJ, Yao F, Han G, Wu Q (2012) Performance of bamboo plastic composites with hybrid bamboo and precipitated calcium carbonate fillers. Polym Compos 33(1):68–78CrossRef
76.
Zurück zum Zitat Mi Y, Chen X, Guo Q (1997) Bamboo fiber-reinforced polypropylene composites: crystallization and interfacial morphology. J Appl Polym Sci 64(7):1267–1273CrossRef Mi Y, Chen X, Guo Q (1997) Bamboo fiber-reinforced polypropylene composites: crystallization and interfacial morphology. J Appl Polym Sci 64(7):1267–1273CrossRef
77.
Zurück zum Zitat Shah AUM, Sultan MTH, Jawaid M, Cardona F, Talib ARA (2016) A review on the tensile properties of bamboo fiber reinforced polymer composites. BioResources 11(4):10654–10676 Shah AUM, Sultan MTH, Jawaid M, Cardona F, Talib ARA (2016) A review on the tensile properties of bamboo fiber reinforced polymer composites. BioResources 11(4):10654–10676
78.
Zurück zum Zitat Porras A, Maranon A (2012) Development and characterization of a laminate composite material from polylactic acid (PLA) and woven bamboo fabric. Compos B Eng 43(7):2782–2788CrossRef Porras A, Maranon A (2012) Development and characterization of a laminate composite material from polylactic acid (PLA) and woven bamboo fabric. Compos B Eng 43(7):2782–2788CrossRef
79.
Zurück zum Zitat Prasad AR, Rao KM (2011) Mechanical properties of natural fibre reinforced polyester composites: jowar, sisal and bamboo. Mater Des 32(8–9):4658–4663CrossRef Prasad AR, Rao KM (2011) Mechanical properties of natural fibre reinforced polyester composites: jowar, sisal and bamboo. Mater Des 32(8–9):4658–4663CrossRef
80.
Zurück zum Zitat Shih YF (2007) Mechanical and thermal properties of waste water bamboo husk fiber reinforced epoxy composites. Mater Sci Eng A 445:289–295CrossRef Shih YF (2007) Mechanical and thermal properties of waste water bamboo husk fiber reinforced epoxy composites. Mater Sci Eng A 445:289–295CrossRef
81.
Zurück zum Zitat Huang Y, Liu H, He P, Yuan L, Xiong H, Xu Y, Yu Y (2010) Nonisothermal crystallization kinetics of modified bamboo fiber/PCL composites. J Appl Polym Sci 116(4):2119–2125 Huang Y, Liu H, He P, Yuan L, Xiong H, Xu Y, Yu Y (2010) Nonisothermal crystallization kinetics of modified bamboo fiber/PCL composites. J Appl Polym Sci 116(4):2119–2125
82.
Zurück zum Zitat Yu Y, Wang H, Lu F, Tian G, Lin J (2014) Bamboo fibers for composite applications: a mechanical and morphological investigation. J Mater Sci 49(6):2559–2566CrossRef Yu Y, Wang H, Lu F, Tian G, Lin J (2014) Bamboo fibers for composite applications: a mechanical and morphological investigation. J Mater Sci 49(6):2559–2566CrossRef
83.
Zurück zum Zitat Li Y, Du L, Kai C, Huang R, Wu Q (2013) Bamboo and high density polyethylene composite with heat-treated bamboo fiber: thermal decomposition properties. BioResources 8(1):900–912CrossRef Li Y, Du L, Kai C, Huang R, Wu Q (2013) Bamboo and high density polyethylene composite with heat-treated bamboo fiber: thermal decomposition properties. BioResources 8(1):900–912CrossRef
84.
Zurück zum Zitat Lee SH, Ohkita T, Kitagawa K (2004) Eco-composite from poly (lactic acid) and bamboo fiber. Holzforschung 58(5):529–536CrossRef Lee SH, Ohkita T, Kitagawa K (2004) Eco-composite from poly (lactic acid) and bamboo fiber. Holzforschung 58(5):529–536CrossRef
85.
Zurück zum Zitat Liu H, Wu Q, Han G, Yao F, Kojima Y, Suzuki S (2008) Compatibilizing and toughening bamboo flour-filled HDPE composites: mechanical properties and morphologies. Compos A Appl Sci Manuf 39(12):1891–1900CrossRef Liu H, Wu Q, Han G, Yao F, Kojima Y, Suzuki S (2008) Compatibilizing and toughening bamboo flour-filled HDPE composites: mechanical properties and morphologies. Compos A Appl Sci Manuf 39(12):1891–1900CrossRef
86.
Zurück zum Zitat Nayak SK, Mohanty S, Samal SK (2009) Influence of short bamboo/glass fiber on the thermal, dynamic mechanical and rheological properties of polypropylene hybrid composites. Mater Sci Eng A 523(1–2):32–38CrossRef Nayak SK, Mohanty S, Samal SK (2009) Influence of short bamboo/glass fiber on the thermal, dynamic mechanical and rheological properties of polypropylene hybrid composites. Mater Sci Eng A 523(1–2):32–38CrossRef
87.
Zurück zum Zitat Verma CS, Chariar VM (2012) Development of layered laminate bamboo composite and their mechanical properties. Compos B Eng 43(3):1063–1069CrossRef Verma CS, Chariar VM (2012) Development of layered laminate bamboo composite and their mechanical properties. Compos B Eng 43(3):1063–1069CrossRef
88.
Zurück zum Zitat Nirmal U, Hashim J, Low KO (2012) Adhesive wear and frictional performance of bamboo fibres reinforced epoxy composite. Tribol Int 47:122–133CrossRef Nirmal U, Hashim J, Low KO (2012) Adhesive wear and frictional performance of bamboo fibres reinforced epoxy composite. Tribol Int 47:122–133CrossRef
89.
Zurück zum Zitat Chen X, Guo Q, Mi Y (1998) Bamboo fiber-reinforced polypropylene composites: a study of the mechanical properties. J Appl Polym Sci 69(10):1891–1899CrossRef Chen X, Guo Q, Mi Y (1998) Bamboo fiber-reinforced polypropylene composites: a study of the mechanical properties. J Appl Polym Sci 69(10):1891–1899CrossRef
90.
Zurück zum Zitat Ying-Chen Z, Hong-Yan W, Yi-Ping Q (2010) Morphology and properties of hybrid composites based on polypropylene/polylactic acid blend and bamboo fiber. Bioresour Technol 101(20):7944–7950CrossRef Ying-Chen Z, Hong-Yan W, Yi-Ping Q (2010) Morphology and properties of hybrid composites based on polypropylene/polylactic acid blend and bamboo fiber. Bioresour Technol 101(20):7944–7950CrossRef
91.
Zurück zum Zitat Lu T, Liu S, Jiang M, Xu X, Wang Y, Wang Z, Gou J, Hui D, Zhou Z (2014) Effects of modifications of bamboo cellulose fibers on the improved mechanical properties of cellulose reinforced poly (lactic acid) composites. Compos B Eng 62:191–197CrossRef Lu T, Liu S, Jiang M, Xu X, Wang Y, Wang Z, Gou J, Hui D, Zhou Z (2014) Effects of modifications of bamboo cellulose fibers on the improved mechanical properties of cellulose reinforced poly (lactic acid) composites. Compos B Eng 62:191–197CrossRef
92.
Zurück zum Zitat Mounika M, Ramaniah K, Prasad AR, Rao KM, Reddy KHC (2012) Thermal conductivity characterization of bamboo fiber reinforced polyester composite. J Mater Environ Sci 3(6):1109–1116 Mounika M, Ramaniah K, Prasad AR, Rao KM, Reddy KHC (2012) Thermal conductivity characterization of bamboo fiber reinforced polyester composite. J Mater Environ Sci 3(6):1109–1116
93.
Zurück zum Zitat Kushwaha PK, Kumar R (2009) Studies on water absorption of bamboo-polyester composites: effect of silane treatment of mercerized bamboo. Polym-Plast Technol Eng 49(1):45–52CrossRef Kushwaha PK, Kumar R (2009) Studies on water absorption of bamboo-polyester composites: effect of silane treatment of mercerized bamboo. Polym-Plast Technol Eng 49(1):45–52CrossRef
94.
Zurück zum Zitat Das M, Chakraborty D (2007) Role of mercerization of the bamboo strips on the impact properties and morphology of unidirectional bamboo strips–novolac composites. Polym Compos 28(1):57–60CrossRef Das M, Chakraborty D (2007) Role of mercerization of the bamboo strips on the impact properties and morphology of unidirectional bamboo strips–novolac composites. Polym Compos 28(1):57–60CrossRef
95.
Zurück zum Zitat Ge XC, Li XH, Meng YZ (2004) Tensile properties, morphology, and thermal behavior of PVC composites containing pine flour and bamboo flour. J Appl Polym Sci 93(4):1804–1811CrossRef Ge XC, Li XH, Meng YZ (2004) Tensile properties, morphology, and thermal behavior of PVC composites containing pine flour and bamboo flour. J Appl Polym Sci 93(4):1804–1811CrossRef
96.
Zurück zum Zitat Lee SY, Chun SJ, Doh GH, Kang IA, Lee S, Paik KH (2009) Influence of chemical modification and filler loading on fundamental properties of bamboo fibers reinforced polypropylene composites. J Compos Mater 43(15):1639–1657CrossRef Lee SY, Chun SJ, Doh GH, Kang IA, Lee S, Paik KH (2009) Influence of chemical modification and filler loading on fundamental properties of bamboo fibers reinforced polypropylene composites. J Compos Mater 43(15):1639–1657CrossRef
97.
Zurück zum Zitat Tran DT, Nguyen DM, Ha Thuc CN, Dang TT (2013) Effect of coupling agents on the properties of bamboo fiber-reinforced unsaturated polyester resin composites. Compos Interfaces 20(5):343–353CrossRef Tran DT, Nguyen DM, Ha Thuc CN, Dang TT (2013) Effect of coupling agents on the properties of bamboo fiber-reinforced unsaturated polyester resin composites. Compos Interfaces 20(5):343–353CrossRef
98.
Zurück zum Zitat Kushwaha PK, Kumar R (2011) Influence of chemical treatments on the mechanical and water absorption properties of bamboo fiber composites. J Reinf Plast Compos 30(1):73–85CrossRef Kushwaha PK, Kumar R (2011) Influence of chemical treatments on the mechanical and water absorption properties of bamboo fiber composites. J Reinf Plast Compos 30(1):73–85CrossRef
99.
Zurück zum Zitat Liu H, Huang Y, Yuan L, He P, Cai Z, Shen Y, Xu Y, Yu Y, Xiong H (2010) Isothermal crystallization kinetics of modified bamboo cellulose/PCL composites. Carbohydr Polym 79(3):513–519CrossRef Liu H, Huang Y, Yuan L, He P, Cai Z, Shen Y, Xu Y, Yu Y, Xiong H (2010) Isothermal crystallization kinetics of modified bamboo cellulose/PCL composites. Carbohydr Polym 79(3):513–519CrossRef
100.
Zurück zum Zitat Biswas S, Satapathy A (2010) A comparative study on erosion characteristics of red mud filled bamboo–epoxy and glass–epoxy composites. Mater Des 31(4):1752–1767CrossRef Biswas S, Satapathy A (2010) A comparative study on erosion characteristics of red mud filled bamboo–epoxy and glass–epoxy composites. Mater Des 31(4):1752–1767CrossRef
101.
Zurück zum Zitat Delgado PS, Lana SLB, Ayres E, Patrício POS, Oréfice RL (2012) The potential of bamboo in the design of polymer composites. Mater Res 15(4):639–644CrossRef Delgado PS, Lana SLB, Ayres E, Patrício POS, Oréfice RL (2012) The potential of bamboo in the design of polymer composites. Mater Res 15(4):639–644CrossRef
102.
Zurück zum Zitat Yusoff RB, Takagi H, Nakagaito AN (2016) Tensile and flexural properties of polylactic acid-based hybrid green composites reinforced by kenaf, bamboo and coir fibers. Ind Crops Prod 94:562–573CrossRef Yusoff RB, Takagi H, Nakagaito AN (2016) Tensile and flexural properties of polylactic acid-based hybrid green composites reinforced by kenaf, bamboo and coir fibers. Ind Crops Prod 94:562–573CrossRef
103.
Zurück zum Zitat Li X, Lei B, Lin Z, Huang L, Tan S, Cai X (2014) The utilization of bamboo charcoal enhances wood plastic composites with excellent mechanical and thermal properties. Mater Des 53:419–424CrossRef Li X, Lei B, Lin Z, Huang L, Tan S, Cai X (2014) The utilization of bamboo charcoal enhances wood plastic composites with excellent mechanical and thermal properties. Mater Des 53:419–424CrossRef
104.
Zurück zum Zitat Mohanty S, Nayak SK (2010) Short bamboo fiber-reinforced HDPE composites: influence of fiber content and modification on strength of the composite. J Reinf Plast Compos 29(14):2199–2210CrossRef Mohanty S, Nayak SK (2010) Short bamboo fiber-reinforced HDPE composites: influence of fiber content and modification on strength of the composite. J Reinf Plast Compos 29(14):2199–2210CrossRef
105.
Zurück zum Zitat Das S (2011) Life cycle assessment of carbon fiber-reinforced polymer composites. Int J Life Cycle Assess 16(3):268–282CrossRef Das S (2011) Life cycle assessment of carbon fiber-reinforced polymer composites. Int J Life Cycle Assess 16(3):268–282CrossRef
106.
Zurück zum Zitat Xu X, Jayaraman K, Morin C, Pecqueux N (2008) Life cycle assessment of wood-fibre-reinforced polypropylene composites. J Mater Process Technol 198(1–3):168–177CrossRef Xu X, Jayaraman K, Morin C, Pecqueux N (2008) Life cycle assessment of wood-fibre-reinforced polypropylene composites. J Mater Process Technol 198(1–3):168–177CrossRef
107.
Zurück zum Zitat Witik RA, Payet J, Michaud V, Ludwig C, Månson JAE (2011) Assessing the life cycle costs and environmental performance of lightweight materials in automobile applications. Compos A Appl Sci Manuf 42(11):1694–1709CrossRef Witik RA, Payet J, Michaud V, Ludwig C, Månson JAE (2011) Assessing the life cycle costs and environmental performance of lightweight materials in automobile applications. Compos A Appl Sci Manuf 42(11):1694–1709CrossRef
108.
Zurück zum Zitat Shen L, Patel MK (2008) Life cycle assessment of polysaccharide materials: a review. J Polym Environ 16(2):154CrossRef Shen L, Patel MK (2008) Life cycle assessment of polysaccharide materials: a review. J Polym Environ 16(2):154CrossRef
109.
Zurück zum Zitat Dissanayake NPJ, Summerscales J, Grove SM, Singh MM (2009) Life cycle impact assessment of flax fibre for the reinforcement of composites. J Biobased Mater Bioenergy 3(3):245–248CrossRef Dissanayake NPJ, Summerscales J, Grove SM, Singh MM (2009) Life cycle impact assessment of flax fibre for the reinforcement of composites. J Biobased Mater Bioenergy 3(3):245–248CrossRef
110.
Zurück zum Zitat La Rosa AD, Cozzo G, Latteri A, Recca A, Björklund A, Parrinello E, Cicala G (2013) Life cycle assessment of a novel hybrid glass-hemp/thermoset composite. J Clean Prod 44:69–76CrossRef La Rosa AD, Cozzo G, Latteri A, Recca A, Björklund A, Parrinello E, Cicala G (2013) Life cycle assessment of a novel hybrid glass-hemp/thermoset composite. J Clean Prod 44:69–76CrossRef
111.
Zurück zum Zitat Duflou JR, Deng Y, Van Acker K, Dewulf W (2012) Do fiber-reinforced polymer composites provide environmentally benign alternatives? A life-cycle-assessment-based study. MRS Bull 37(4):374–382CrossRef Duflou JR, Deng Y, Van Acker K, Dewulf W (2012) Do fiber-reinforced polymer composites provide environmentally benign alternatives? A life-cycle-assessment-based study. MRS Bull 37(4):374–382CrossRef
112.
Zurück zum Zitat Corbière-Nicollier T, Laban BG, Lundquist L, Leterrier Y, Månson JA, Jolliet O (2001) Life cycle assessment of biofibres replacing glass fibres as reinforcement in plastics. Resour Conserv Recycl 33(4):267–287CrossRef Corbière-Nicollier T, Laban BG, Lundquist L, Leterrier Y, Månson JA, Jolliet O (2001) Life cycle assessment of biofibres replacing glass fibres as reinforcement in plastics. Resour Conserv Recycl 33(4):267–287CrossRef
113.
Zurück zum Zitat Vidal R, Martínez P, Garraín D (2009) Life cycle assessment of composite materials made of recycled thermoplastics combined with rice husks and cotton linters. Int J Life Cycle Assess 14(1):73–82CrossRef Vidal R, Martínez P, Garraín D (2009) Life cycle assessment of composite materials made of recycled thermoplastics combined with rice husks and cotton linters. Int J Life Cycle Assess 14(1):73–82CrossRef
114.
Zurück zum Zitat Kim KH (2011) A comparative life cycle assessment of a transparent composite façade system and a glass curtain wall system. Energy Build 43(12):3436–3445CrossRef Kim KH (2011) A comparative life cycle assessment of a transparent composite façade system and a glass curtain wall system. Energy Build 43(12):3436–3445CrossRef
115.
Zurück zum Zitat La Rosa AD, Recca G, Summerscales J, Latteri A, Cozzo G, Cicala G (2014) Bio-based versus traditional polymer composites. A life cycle assessment perspective. J Clean Prod 74:135–144CrossRef La Rosa AD, Recca G, Summerscales J, Latteri A, Cozzo G, Cicala G (2014) Bio-based versus traditional polymer composites. A life cycle assessment perspective. J Clean Prod 74:135–144CrossRef
116.
Zurück zum Zitat Milani AS, Eskicioglu C, Robles K, Bujun K, Hosseini-Nasab H (2011) Multiple criteria decision making with life cycle assessment for material selection of composites. Express Polym Lett 5(12) Milani AS, Eskicioglu C, Robles K, Bujun K, Hosseini-Nasab H (2011) Multiple criteria decision making with life cycle assessment for material selection of composites. Express Polym Lett 5(12)
117.
Zurück zum Zitat Scelsi L, Bonner M, Hodzic A, Soutis C, Wilson C, Scaife R, Ridgway K (2011) Potential emissions savings of lightweight composite aircraft components evaluated through life cycle assessment. Express Polym Lett 5(3) Scelsi L, Bonner M, Hodzic A, Soutis C, Wilson C, Scaife R, Ridgway K (2011) Potential emissions savings of lightweight composite aircraft components evaluated through life cycle assessment. Express Polym Lett 5(3)
118.
Zurück zum Zitat Hervy M, Evangelisti S, Lettieri P, Lee KY (2015) Life cycle assessment of nanocellulose-reinforced advanced fibre composites. Compos Sci Technol 118:154–162CrossRef Hervy M, Evangelisti S, Lettieri P, Lee KY (2015) Life cycle assessment of nanocellulose-reinforced advanced fibre composites. Compos Sci Technol 118:154–162CrossRef
119.
Zurück zum Zitat Qiang T, Yu D, Zhang A, Gao H, Li Z, Liu Z, Chen W, Han Z (2014) Life cycle assessment on polylactide-based wood plastic composites toughened with polyhydroxyalkanoates. J Clean Prod 66:139–145CrossRef Qiang T, Yu D, Zhang A, Gao H, Li Z, Liu Z, Chen W, Han Z (2014) Life cycle assessment on polylactide-based wood plastic composites toughened with polyhydroxyalkanoates. J Clean Prod 66:139–145CrossRef
120.
Zurück zum Zitat Xie M, Qiao Q, Sun Q, Zhang L (2013) Life cycle assessment of composite packaging waste management—a Chinese case study on aseptic packaging. Int J Life Cycle Assess 18(3):626–635CrossRef Xie M, Qiao Q, Sun Q, Zhang L (2013) Life cycle assessment of composite packaging waste management—a Chinese case study on aseptic packaging. Int J Life Cycle Assess 18(3):626–635CrossRef
121.
Zurück zum Zitat Gu F, Guo J, Zhang W, Summers PA, Hall P (2017) From waste plastics to industrial raw materials: a life cycle assessment of mechanical plastic recycling practice based on a real-world case study. Sci Total Environ 601:1192–1207CrossRef Gu F, Guo J, Zhang W, Summers PA, Hall P (2017) From waste plastics to industrial raw materials: a life cycle assessment of mechanical plastic recycling practice based on a real-world case study. Sci Total Environ 601:1192–1207CrossRef
122.
Zurück zum Zitat Hastak M, Mirmiran A, Richard D (2003) A framework for life-cycle cost assessment of composites in construction. J Reinf Plast Compos 22(15):1409–1430CrossRef Hastak M, Mirmiran A, Richard D (2003) A framework for life-cycle cost assessment of composites in construction. J Reinf Plast Compos 22(15):1409–1430CrossRef
123.
Zurück zum Zitat Delogu M, Zanchi L, Maltese S, Bonoli A, Pierini M (2016) Environmental and economic life cycle assessment of a lightweight solution for an automotive component: a comparison between talc-filled and hollow glass microspheres-reinforced polymer composites. J Clean Prod 139:548–560CrossRef Delogu M, Zanchi L, Maltese S, Bonoli A, Pierini M (2016) Environmental and economic life cycle assessment of a lightweight solution for an automotive component: a comparison between talc-filled and hollow glass microspheres-reinforced polymer composites. J Clean Prod 139:548–560CrossRef
124.
Zurück zum Zitat Mayyas AT, Qattawi A, Mayyas AR, Omar MA (2012) Life cycle assessment-based selection for a sustainable lightweight body-in-white design. Energy 39(1):412–425CrossRef Mayyas AT, Qattawi A, Mayyas AR, Omar MA (2012) Life cycle assessment-based selection for a sustainable lightweight body-in-white design. Energy 39(1):412–425CrossRef
125.
Zurück zum Zitat Guinee JB, Heijungs R, Huppes G, Zamagni A, Masoni P, Buonamici R, Ekvall T, Rydberg T (2010) Life cycle assessment: past, present, and future Guinee JB, Heijungs R, Huppes G, Zamagni A, Masoni P, Buonamici R, Ekvall T, Rydberg T (2010) Life cycle assessment: past, present, and future
126.
Zurück zum Zitat Gu D, Zhu Y, Gu L (2006) Life cycle assessment for China building environment impacts. J Tsinghua Univ 46(12):1953 Gu D, Zhu Y, Gu L (2006) Life cycle assessment for China building environment impacts. J Tsinghua Univ 46(12):1953
127.
Zurück zum Zitat Vogtländer J, Van der Lugt P, Brezet H (2010) The sustainability of bamboo products for local and Western European applications. LCAs and land-use. J Clean Prod 18(13):1260–1269 Vogtländer J, Van der Lugt P, Brezet H (2010) The sustainability of bamboo products for local and Western European applications. LCAs and land-use. J Clean Prod 18(13):1260–1269
128.
Zurück zum Zitat Li J, Yuan Y, Guan X (2016) Assessing the environmental impacts of glued-laminated bamboo based on a life cycle assessment. BioResources 11(1):1941–1950 Li J, Yuan Y, Guan X (2016) Assessing the environmental impacts of glued-laminated bamboo based on a life cycle assessment. BioResources 11(1):1941–1950
129.
Zurück zum Zitat Chang FC, Chen KS, Yang PY, Ko CH (2018) Environmental benefit of utilizing bamboo material based on life cycle assessment. J Clean Prod 204:60–69CrossRef Chang FC, Chen KS, Yang PY, Ko CH (2018) Environmental benefit of utilizing bamboo material based on life cycle assessment. J Clean Prod 204:60–69CrossRef
130.
Zurück zum Zitat Gu F, Zheng Y, Zhang W, Yao X, Pan D, Wong ASM, Guo J, Hall P, Sharmin N (2018) Can bamboo fibres be an alternative to flax fibres as materials for plastic reinforcement? A comparative life cycle study on polypropylene/flax/bamboo laminates. Ind Crops Prod 121:372–387CrossRef Gu F, Zheng Y, Zhang W, Yao X, Pan D, Wong ASM, Guo J, Hall P, Sharmin N (2018) Can bamboo fibres be an alternative to flax fibres as materials for plastic reinforcement? A comparative life cycle study on polypropylene/flax/bamboo laminates. Ind Crops Prod 121:372–387CrossRef
131.
Zurück zum Zitat Thwe MM, Liao K (2003) Environmental effects on bamboo-glass/polypropylene hybrid composites. J Mater Sci 38(2):363–376 Thwe MM, Liao K (2003) Environmental effects on bamboo-glass/polypropylene hybrid composites. J Mater Sci 38(2):363–376
132.
Zurück zum Zitat Hung KC, Chen YL, Wu JH (2012) Natural weathering properties of acetylated bamboo plastic composites. Polym Degrad Stab 97(9):1680–1685CrossRef Hung KC, Chen YL, Wu JH (2012) Natural weathering properties of acetylated bamboo plastic composites. Polym Degrad Stab 97(9):1680–1685CrossRef
Metadaten
Titel
Lifecycle Assessment of Thermoplastic and Thermosetting Bamboo Composites
verfasst von
Akarsh Verma
Naman Jain
Avinash Parashar
Amit Gaur
M. R. Sanjay
Suchart Siengchin
Copyright-Jahr
2021
Verlag
Springer Singapore
DOI
https://doi.org/10.1007/978-981-15-8489-3_13

    Marktübersichten

    Die im Laufe eines Jahres in der „adhäsion“ veröffentlichten Marktübersichten helfen Anwendern verschiedenster Branchen, sich einen gezielten Überblick über Lieferantenangebote zu verschaffen.