[1]
D. Das and B. Pourdeyhimi: Composite Nonwoven Materials: Structure, Properties and Applications, Woodhead Publising, Cambride (2014).
Google Scholar
[2]
D. J. David, A. Misra, Relating Materials Properties to Structure, Technomic Publication, Pennsylvania (1999).
Google Scholar
[3]
H. Pal, N. Jit, A. K. Tyagi and S. Sidhu: Metal CastingA General Review, Advances in Applied Science Research Vol. 2 (2011), p.360371.
Google Scholar
[4]
E. Bozkurt, E. Kaya and M. Tanoglu: Mechanical and Thermal Behavior of NonCrimp Glass Fiber Reinforced Layered Clay/Epoxy Nanocomposites, Composites Science and Technology Vol. 67 (2007), p.33943403.
DOI: 10.1016/j.compscitech.2007.03.021
Google Scholar
[5]
M. W. Nielsen, J. W. Schmidt, J. H. Hogh, J. P. Waldbjorn, J. H. Hattel, T. L. Andersen and C. M. Markussen: Life Cycle Strain Monitoring in Glass Fibre Reinforced Polymer Laminates using Embedded Fibre Bragg Grating Sensors from Manufacturing to Failure, Journal of Composite Materials Vol. 48 (2013), p.365381.
DOI: 10.1177/0021998312472221
Google Scholar
[6]
M. Balasubramanian: Composite Materials and Processing, Boca Raton : CRC Press (2014).
Google Scholar
[7]
E. Sparnins: Mechanical Properties of Flax Fibers and Their Composites, Ph.D. Thesis, Lulea University of Technology, Lulea (2009).
Google Scholar
[8]
T. M. Gowda, A. Naidu and C. Rajput: Some Mechanical Properties of Untreated Jute FabricReinforced Polyester Composites, Composites Part A: Applied Science and Manufacturing Vol. 30 (1999), p.277284.
DOI: 10.1016/s1359-835x(98)00157-2
Google Scholar
[9]
L. Mohammed, M. N. M. Ansari, G. Pua, M. Jawaid and M. S. Islam: A Review on Natural Fiber Reinforced Polymer Composite and Its Applications, Hindawi Publishing CorporationInternational Journal of Polymer Science (2015).
DOI: 10.1155/2015/243947
Google Scholar
[10]
M. S. Islam and S. K. Ahmed: The Impacts of Jute on Environment: An Analytical Review of Bangladesh, Journal of Environment and Earth Science Vol. 2 (2012), p.2431.
Google Scholar
[11]
B. K. Ghosh and A. Jethi: Growth and Instability in World Jute Production: A Disaggregated Analysis, International Journal of Electronics and Communication Technology Vol. 4 (1999), p.191195.
Google Scholar
[12]
M. S. Islam and M. Alauddin: World Production of Jute: A Comparative Analysis of Bangladesh, International Journal of Management and Business Studies Vol. 2 (2012), p.1422.
Google Scholar
[13]
The Jute & Jute Textiles Industry, Source: Indian Textile Ministry (201314).
Google Scholar
[14]
M. A. Ashraf, M. Zwawi, M. T. Mehran, R. Kanthasamy and A. Bahadar: Jute Based Bio and Hybrid Composites and Their Applications, Fibers Vol. 7(77) (2019), p.9094.
DOI: 10.3390/fib7090077
Google Scholar
[15]
J. Summerscales, W. H. N. P. J. Dissanayake and A. S. Virk: A Review of Bast Fibres and their Composites. Part 1 Fibres as Reinforcements, Composites: Part A Vol. 41 (2010), p.13291335.
DOI: 10.1016/j.compositesa.2010.06.001
Google Scholar
[16]
J. Jayaramudu, B. Guduri and A. V. Rajulu: Characterization of new natural cellulosic fabric Grewia tilifolia, Carbohydrate Polymers Vol. 79 (2010), p.847851.
DOI: 10.1016/j.carbpol.2009.10.046
Google Scholar
[17]
C. Roul: The International Jute Commodity System, Northern Book Centre, New Delhi (2009).
Google Scholar
[18]
L. Liu, J. Yu, L. Cheng and X. Yang, Biodegradability of Poly (Butylene Succinate) (PBS) Composite Reinforced with Jute Fibre, Polymer Degradation and Stability Vol. 94 (2009), p.9094.
DOI: 10.1016/j.polymdegradstab.2008.10.013
Google Scholar
[19]
M. U. Wahit, N. I. Akos and W. A. Laftah, Infuence of Natural Fibers on the Mechanical Properties and Biodegradation of Poly(lactic acid) and Poly(ecaprolactone) Composites: A Review, Polymer Composites Vol. 33 (2012), p.10451053.
DOI: 10.1002/pc.22249
Google Scholar
[20]
M. J. John and R. D. Anandjiwala: Recent Developments in Chemical Modification and Characterization of Natural FiberReinforced Composites, Polymer Composites Vol. 29 (2008), p.187207.
DOI: 10.1002/pc.20461
Google Scholar
[21]
A. Kumar and A. Srivastava: Preparation and Mechanical Properties of Jute Fiber Reinforced Epoxy Composites, Industrial Engineering Management Vol. 6 (2017), p.14.
DOI: 10.4172/2169-0316.1000234
Google Scholar
[22]
R. Kozlowski and M. WladykaPrzybylak: Flammability and Fire Resistance of Composites Reinforced by Natural Fibers, Polymers for Advanced Technologies Vol. 19 (2008), p.446453.
Google Scholar
[23]
A. K. Mohanty, M. Misraa and G. Hinrichsen: Biofibres, biodegradable polymers and biocomposites: An overview, Macromolecular Materials and Engineering Vol. 276/277 (2000), p.124.
DOI: 10.1002/(sici)1439-2054(20000301)276:1<1::aid-mame1>3.0.co;2-w
Google Scholar
[24]
M. M. Islam and M. S. Ali: Industrial Research Advances of Jute in Bangladesh, International Journal of Agricultural and Biosystems Engineering Vol. 3(1) (2018), p.19.
Google Scholar
[25]
D. Gon, K. Das, P. Paul and SubhankarMaity: Jute Composites as Wood Substitute, International Journal of Textile Science Vol. 1(6) (2012), p.8493.
Google Scholar
[26]
P. K. Bajpai, I. Singh and J. Madaan: Development and characterization of PLAbased green composites: A review, Journal of Thermoplastic Composite Materials Vol. 27 (2014), p.5281.
Google Scholar
[27]
M. K. Gupta: Investigations on jute fibrereinforced polyester composites: Effect of alkali treatment and poly(lactic acid) coating, Journal of Industrial Textiles Vol. 0(00) (2018), p.110.
DOI: 10.1177/1528083718804203
Google Scholar
[28]
K. Rajasekar: Experimental Testing Of Natural Composite Material (Jute Fiber), IOSR Journal of Mechanical and Civil Engineering (IOSRJMCE) Vol. 11(2) (2014), p.19.
DOI: 10.9790/1684-11230109
Google Scholar
[29]
A. Mishra, A. Pandey and M. Dwivedi: Natural Fibre Reinforcement Polymer CompositesA Review, International Journal of Advance Research in Science and Engineering Vol. 5(5) (2016), p.453458.
Google Scholar
[30]
U. Bongarde and V. Shinde, Review on natural fiber reinforcement polymer composites, International Journal of Engineering Science and Innovative Technology (IJESIT) Vol. 3(2) (2014), p.431436.
Google Scholar
[31]
R. Masoodi and K. M. Pillai: A study on moisture absorption and swelling in biobased jute– epoxy composites, Journal of Reinforced Plastics Composites Vol. 31 (2012) p.285–294.
DOI: 10.1177/0731684411434654
Google Scholar
[32]
Michael A. Fuqua, Shanshan Huo and Chad A. Ulven: Natural Fiber Reinforced Composites, Polymer Reviews Vol. 52 (2012) p.259–320.
DOI: 10.1080/15583724.2012.705409
Google Scholar
[33]
G. Myvizhirajeswari and K. Saravanan: Manufacturing and applications of jute fibre composites, The Indian Textile Journal (2011).
Google Scholar
[34]
Kathiresan Selvakumar and Omkumar Meenakshisundaram: Mechanical and Dynamic Mechanical Analysis of Jute and Human HairReinforced Polymer Composites, Polymer Composites (2018).
DOI: 10.1002/pc.24818
Google Scholar
[35]
M. Ramesh, K. Palanikumar and K. Hemachandra Reddy: Comparative Evaluation on Properties of Hybrid Glass FiberSisal/ Jute Reinforced Epoxy Composites, Procedia Engineering Vol. 51 ( 2013 ) p.745 – 750.
DOI: 10.1016/j.proeng.2013.01.106
Google Scholar
[36]
C. Alves, P.M.C. Ferrao, A.J. Silva, L.G. Reis, M. Freitas, L.B. Rodrigues and D.E. Alves: Ecodesign of automotive components making use of natural jute fiber composites, Journal of Cleaner Production Vol. 18 (2010) p.313–327.
DOI: 10.1016/j.jclepro.2009.10.022
Google Scholar
[37]
Prashant Tripathi, Vivek Kumar Gupta, Anurag Dixit, Raghvendra Kumar Mishra and Satpal Sharma: Development and characterization of low cost jute, bagasse and glass fiber reinforced advanced hybrid epoxy composites, AIMS Materials ScienceVol. 5 (2018) p.320337.
DOI: 10.3934/matersci.2018.2.320
Google Scholar
[38]
T. Mukherjee and N. Kao: PLA Based Biopolymer Reinforced with Natural Fibre: A Review, Journal of Polymers and Environment Vol. 19 (2011), p.714725.
DOI: 10.1007/s10924-011-0320-6
Google Scholar
[39]
NPCS Board, Select Start Your Own Industry (4th Revised Edition), NIIR Project Consultancy Services, New Delhi (2012).
Google Scholar
[40]
J. L. Kardos: Critical Issues in Achieving Desirable Mechanical Properties for Short Fiber Composites, Pure and Applied Chemistry Vol. 57 (1985), p.16511657.
DOI: 10.1351/pac198557111651
Google Scholar
[41]
J. K. Kim and J. H. Song: Rheological Properties and fiber Orientations of Short FiberReinforced Plastics, Journal of Rheology Vol. 48 (1997), p.10611085.
Google Scholar
[42]
H. Ismail, S. Shuhelmy and M. R. Edyham: The Effect of a Silane Coupling Agent on Curing Characteristics and Mechanical Properties of Bamboo Fiber Filled Natural Rubber Composites, European Polymer Journal Vol. 38 (2002), p.3947.
DOI: 10.1016/s0014-3057(01)00113-6
Google Scholar
[43]
S. R. Sahoo and A. Mishra: Fracture Characterization of Plain Woven Fabric GlassEpoxy Composites, World Academy of Science, Engineering and Technology Vol. 6(7) (2012), p.228233.
Google Scholar
[44]
T. J. Kang and S. H. Lee: Characterization of Reinforcing Web Structures in Needle Punched Nonwoven Composites, Journal of Composite Materials Vol. 33 (1999), p.21162132.
DOI: 10.1177/002199839903302203
Google Scholar
[45]
S. Sengupta, P. Ray and P. K. Majumdar: Effect of Punched Density, Depth of Needle Penetration and Mass Per Unit Area on Compressional Behaviour of Jute NeedlePunched Nonwoven Fabrics Using Central Composite Rotatable Experimental Design, Indian Journal of Fibre and Textile Research Vol. 33 (2008), p.411418.
Google Scholar
[46]
A. Gopinath, M. SenthilKumar and Elayaperumal: Experimental Investigations on Mechanical Properties Of Jute Fiber Reinforced Composites with Polyester and Epoxy Resin Matrices, 12th Global Congress On Manufacturing And Management, GCMM Vol. 97 (2014), p.20522063.
DOI: 10.1016/j.proeng.2014.12.448
Google Scholar
[47]
S. M. Sadaf, M. Siddik, Q. Ahsan and M. Hasan: Physical and Mechanical Properties of Jute Mat Reinforced Epoxy Composites, ASEAN Journal on Science and Technology for Development Vol. 28(2) (2011), p.115121.
DOI: 10.29037/ajstd.38
Google Scholar
[48]
A. Deb, S. Das and A. Mache: A Study on the Mechanical Behaviors of JutePolyester Composites, Procedia Engineering Vol. 173 (2016), p.631638.
Google Scholar
[49]
M. R. Kunuthur and C. Mohana Reddy: Synthesis and Characterization of Jute Reinforced Composites with Wollastonite Filler, International Journal for Research in Applied Science Engineering Technology Vol. 6(3) (2018), 17281735.
Google Scholar
[50]
P. Kaushik, Jaivir and K. Mittal: Analysis of mechanical properties of jute fiber strengthened epoxy/polyester Composites, Engineering Solid Mechanics (2017), p.103112.
DOI: 10.5267/j.esm.2017.3.002
Google Scholar
[51]
G. Raghavendra: Jute fiber reinforced epoxy composites and comparison with the glass and neat epoxy composites, Journal of Composite Materials (2013), p.111.
DOI: 10.1177/0021998313499955
Google Scholar
[52]
A. Verma, K. Joshi, A. Gaur and V. K. Singh: Starch Jute Fiber Hybrid Biocomposite Modified with Epoxy Resin Layer: Fabrication and Experimental Characterization, preprints2018(biomaterials) (2018).
DOI: 10.20944/preprints201804.0268.v1
Google Scholar
[53]
A. Satapathy, A. K. Jha, S. Mantry, S. K. Singh and A. Patnaik: Processing and Characterization of JuteEpoxy Composites Reinforced with SiC Derived from Rice Husk, Journal Of Reinforced Plastics And Composites Vol. 29(18) (2010), p.28692878.
DOI: 10.1177/0731684409341757
Google Scholar
[54]
J. M. Ferreira, C. Capela, J. Manaiab and J. D. Costa: Mechanical Properties of Woven Mat Jute/Epoxy Composites, Materials Research Vol. 19(3) (2016), p.702710.
DOI: 10.1590/1980-5373-mr-2015-0422
Google Scholar
[55]
S. Sengupta, S. N. Chattopadhyay, S. Samajpati and A. Day: Use of Jute NeedlePunched Nonwoven Fabric as Reinforcement in Composite, Indian Journal of Fibre Textile Research Vol. 33 (2008), p.3744.
Google Scholar
[56]
K. Z. M. A. Motaleb: Improvement of Mechanical Properties by Alkali Treatment on Pineapple and Jute Fabric Reinforced Polyester Resin Composites, International Journal of Composite Materials Vol. 8(2) (2018), p.3237.
Google Scholar
[57]
M. Boopalan, M. J. Umapathy and P. Jenyfer: A Comparative Study on the Mechanical Properties of Jute and Sisal Fiber Reinforced Polymer Composites, Springer (Silicon) Vol. 4 (2012), p.145149.
DOI: 10.1007/s12633-012-9110-6
Google Scholar
[58]
A. A. Shaikh and S. A. Channiwala: To Study the Characteristics of Jute Polyester Composite for Randomly Distributed Fiber Reinforcement, Proceedings of the World Congress on Engineering Vol. 2 (2010).
Google Scholar
[59]
A. K. Rana, B. C. Mitra and A. N. Banerjee: Short Jute FiberReinforced Polypropylene Composites: Dynamic Mechanical Study, Journal of Applied Polymer Science Vol. 71 (1999), p.531539.
DOI: 10.1002/(sici)1097-4628(19990124)71:4<531::aid-app2>3.0.co;2-i
Google Scholar
[60]
S. Percin: Evaluation of ThirdParty Logistics (3PL) Providers by Using a TwoPhase AHP and TOPSIS Methodology, Benchmarking: An International Journal Vol. 16 (2009), p.588604.
DOI: 10.1108/14635770910987823
Google Scholar
[61]
B. K. Goriparthi, K. Suman and N. M. Rao: Effect of fiber surface treatments on mechanical and abrasive wear performance of polylactide/jute composites, Composites: Part A Vol. 43 (2012), p.18001808.
DOI: 10.1016/j.compositesa.2012.05.007
Google Scholar
[62]
X. Y. Liu and G. C. Dai: Surface Modification and Micromechanical Properties of Jute Fiber Mat Reinforced Polypropylene Composites, Express Polymer Letters Vol. 1 (5) (2007), p.299307.
DOI: 10.3144/expresspolymlett.2007.43
Google Scholar