Research Article
BibTex RIS Cite
Year 2024, Volume: 12 Issue: 2, 182 - 191, 30.12.2024
https://doi.org/10.18586/msufbd.1555267

Abstract

Project Number

BTÜBAP-2021-YL-020

References

  • [1] Chan JX, Wong JF, Petrů M, et al. Effect of nanofillers on tribological properties of polymer nanocomposites: A review on recent development, Polymers.13(17)1-47, 2021.
  • [2] Bhatia S, Khan S, Angra S. Effect of the content of silane-functionalized boron carbide on the mechanical and wear performance of B4C reinforced epoxy composites, High Performance Polymers. 33(10) 1165-1180, 2021.
  • [3] Chelliah A. Mechanical properties and abrasive wear of different weight percentage of TiC filled basalt fabric reinforced epoxy composites, Materials Research. 22(2), 2019.
  • [4] Albayrak M, Kaman MO, Bozkurt I. Experimental and numerical investigation of the geometrical effect on low velocity impact behavior for curved composites with a rubber interlayer, Applied Composite Materials. 30(2) 507-538, 2023.
  • [5] Albayrak M, Kaman MO, Bozkurt I. The effect of lamina configuration on low-velocity impact behaviour for glass fiber/rubber curved composites, Journal of Composite Materials. 57(11) 1875-1908, 2023.
  • [6] Suresha B, Chandramohan G, Rao PRS, Sampathkumaran P, Seetharamu S. Influence of SiC filler on mechanical and tribological behavior of glass fabric reinforced epoxy composite systems, Journal of Reinforced Plastics and Composites. 26(6) 565-578, 2007.
  • [7] Demir M. E., Çelik Y. H., and Kilickap E. Effect of matrix material and orientation angle on tensile and tribological behavior of jute reinforced composites, Materials Testing. 61(8) 806-812, 2019.
  • [8] Çetkin E, Demir ME, Ergün RK. The effect of different fillers, loads, and sliding distance on adhesive wear in woven e-glass fabric composites, Proceedings of the Institution of Mechanical Engineers Part E. 237(2) 418-429, 2023.
  • [9] Demir ME, Investigation of the abrasive wear behavior of GFRC and CFRC with different parameters using taguchi and artificial neural networks method, Politeknik Dergisi. 1-1, 2024.
  • [10] Bhatia S, Angra S, Khan S. A review on mechanical and tribological characterization of boron carbide reinforced epoxy composite, Advanced Composite Materials. 30(4) 307-337, 2021.
  • [11] Abenojar J, Martínez MA, Velasco F, Pascual-Sánchez V, Martín-Martínez JM. Effect of boron carbide filler on the curing and mechanical properties of an epoxy resin, The Journal of Adhesion. 85(4-5) 216-238, 2009.
  • [12] Raju BR, Suresha B, Swamy RP, Kanthraju BSG. Investigations on Mechanical and Tribological Behaviour of Particulate Filled Glass Fabric Reinforced Epoxy Composites, Journal of Minerals and Materials Characterization and Engineering. 01(04) 160-167, 2013.
  • [13] Kharat WS, Sidhu JS. Development of Epoxy Based Composites Filled With Boron Carbide (B4C), Tungsten Disulphide (WS2) and Evaluation of its Mechanical Properties, International Journal of Mechanical Engineering and Robotics. 6(1) 19-30, 2016.
  • [14] Demir ME, Cetkin E, Ergün RK, Denizhan O. Tribological and mechanical properties of nanofilled glass fiber reinforced composites and analyzing the tribological behavior using artificial neural networks, Polymer Composites. 45(5) 4233-4249, 2024.
  • [15] Kose H, Bayar I, Ergün RK. Experimental optimization of CuO and MgO hybrid nanoparticle reinforcement ratios to enhance fatigue life of GFRP composites. Polymer Composites 11125-11137, 2024.
  • [16] Ergün RK, Köse H. Experimental optimization of Al2O3 microparticles ratio in epoxy layered glass fiber to improve tensile fatigue performance, Journal of Composite Materials. 57(16) 2563-2572, 2023.
  • [17] Manjunath M, Renukappa NM, Suresha B. Influence of micro and nanofillers on mechanical properties of pultruded unidirectional glass fiber reinforced epoxy composite systems, Journal of Composite Materials. 50(8) 1109-1121, 2016.
  • [18] Hariprasad P, Kannan M, Ramesh C, et al. Mechanical and Morphological Studies of Sansevieria trifasciata Fiber-Reinforced Polyester Composites with the Addition of SiO2and B4C, Advances in Materials Science and Engineering. 1-5, 2022.
  • [19] Suresha B, Ramesh BN, Subbaya KM, Ravi Kumar BN, Chandramohan G. Influence of graphite filler on two-body abrasive wear behaviour of carbon fabric reinforced epoxy composites, Materials & Design. 31(4) 1833-1841, 2010.
  • [20] Hulugappa B, Achutha M V., Suresha B. Effect of Fillers on Mechanical Properties and Fracture Toughness of Glass Fabric Reinforced Epoxy Composites. Journal of Minerals and Materials Characterization and Engineering 2016;04(01):1-14.
  • [21] Başar G, Fedai Y, Kirli Akin H. Kompozit Malzemelerin Delme İşleminde İtme Kuvvetinin Taguchi Metodu ile Optimizasyonu ve Regresyon Analizi ile Tahmini, Çukurova Üniversitesi Mühendislik-Mimarlık Fakültesi Dergisi. 35(4) 969-982. 2020.
  • [22] Karaca F. Investigation of Drilling Parameters Effect On Delamination Factor in With Glass Fiber Reinforced Plastic Composites, Fırat Üniversitesi Mühendislik Bilimleri Dergisi. 28(2) 23-27, 2016.
  • [23] Uzay Ç. Investigating the Wear Behaviors of Silane Coated Silica Filled Glass/Epoxy Nanocomposites, Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi. 23(1) 260-269, 2023.
  • [24] Çelik A, Lazoglu I, Kara A, Kara F. Investigation on the performance of SiAlON ceramic drills on aerospace grade CFRP composites, Journal of Materials Processing Technology. 223 39-47, 2015.
  • [25] Mohan NS, Ramachandra A, Kulkarni SM. Influence of process parameters on cutting force and torque during drilling of glass-fiber polyester reinforced composites, Composite Structure. 71(3-4) 407-413, 2005.
  • [26] Liu L, Qi C, Wu F, Zhang X, Zhu X. Analysis of thrust force and delamination in drilling GFRP composites with candle stick drills, International Journal of Advanced Manufacturing Technology. 95(5-8) 2585-2600, 2018.
  • [27] Natarajan E, Markandan K, Sekar SM, et al. Drilling-Induced Damages in Hybrid Carbon and Glass Fiber-Reinforced Composite Laminate and Optimized Drilling Parameters, Journal of Composites Science. 6(10) 2022.
  • [28] Tian J, Wu F, Zhang P, Lin B, Liu T, Liu L. The coupling effect and damage analysis when drilling GFRP laminates using candlestick drills. International Journal of Advanced Manufacturing Technology 102(1-4):519-531. 2019.
  • [29] Khashaba UA, Abd-Elwahed MS, Najjar I, et al. Heat-affected zone and mechanical analysis of GFRP composites with different thicknesses in drilling processes, Polymers. 13(14) 2021.
  • [30] Erturk AT, Vatansever F, Yarar E, Guven EA, Sinmazcelik T. Effects of cutting temperature and process optimization in drilling of GFRP composites, Journal of Composite Materials. 55(2) 235-249, 2021.
  • [31] Jessy K, Satish kumar S, Dinakaran D, Seshagiri Rao V. Influence of different cooling methods on drill temperature in drilling GFRP, International Journal of Advanced Manufacturing Technology, 76(1-4) 609-621, 2015.
  • [32] Khashaba UA, El-Keran AA. Drilling analysis of thin woven glass-fiber reinforced epoxy‎ composites, Journal of Materials Processing Technology. 249 415-425, 2017.
  • [33] Zuo JP, Xie HP, Dai, F, Ju, Y. Three-point bending test investigation of the fracture behavior of siltstone after thermal treatment, International Journal of Rock Mechanics and Mining Sciences. 70 133-143, 2014.
  • [34] Latha PS, Rao MV. Investigation into Effect of Ceramic Fillers on Mechanical and Tribological Properties of Bamboo-Glass Hybrid Fiber Reinforced Polymer Composites, Silicon. 10(4) 1543-1550, 2018.
  • [35] Ozsoy I, Demirkol A, Mimaroglu A, Unal H, Demir Z. The influence of micro- And nano-filler content on the mechanical properties of epoxy composites, Strojniški vestnik Journal of Mechanical Engineering. 61(10) 601-609, 2015.
  • [36] Raju BR, Suresha RPSB, Bharath KN. The Effect of Silicon Dioxide Filler on the Wear Resistance of Glass Fabric Reinforced Epoxy Composites, Advances in polymer science and technology - an international journal. 2(4) 51-57, 2012.
  • [37] Anjum N, Ajit Prasad SL, Suresha B. Role of silicon dioxide filler on mechanical and dry sliding wear behaviour of glass-epoxy composites, Advances in Tribology. 1-13, 2013.
  • [38] Abuali Galehdari N, Kelkar AD. Effect of neutron radiation on the mechanical and thermophysical properties of nanoengineered polymer composites, Journal of Materials Research. 32(2) 426-434, 2017.
  • [39] Fathy A, Shaker A, Hamid MA, Megahed AA. The effects of nano-silica/nano-alumina on fatigue behavior of glass fiber-reinforced epoxy composites. Journal of Composite Materials 51(12):1667-1679, 2017.
  • [40] Hossain MK, Hossain ME, Hosur M V., Jeelani S. Flexural and compression response of woven E-glass/polyester-CNF nanophased composites, Composites Part A: Applied Science and Manufacturing. 42(11) 1774-1782, 2011.
  • [41] Raja T, Devarajan Y. Investigation on boron carbide nanofiller-influenced epoxy polymer composite for thermal barrier applications, Biomass Convers Biorefinery. 14 12623 2023.
  • [42] Siddhartha, Patnaik A, Bhatt AD. Mechanical and dry sliding wear characterization of epoxy-TiO2 particulate filled functionally graded composites materials using Taguchi design of experiment, Materials & Design. 32(2) 615-627, 2011.
  • [43] Singh MM., Kumar H, Kumar GH, Sivaiah P, Nagesha KV, Ajay KM, Vijaya G. Determination of strength parameters of glass fibers reinforced composites for engineering applications, Silicon. 12 1-11, 2020.
  • [44] Ou Y, Zhu D, Zhang H, Huang L, Yao Y, Li G, Mobasher B. Mechanical characterization of the tensile properties of glass fiber and its reinforced polymer (GFRP) composite under varying strain rates and temperatures, Polymers. 8(5) 1-16, 2016.
  • [45] Ghasemi FA, Hyvadi A, Payganeh G, Arab NBM. Effects of drilling parameters on delamination of glass-epoxy composites, Australian Journal of Basic and Applied Sciences. 5(12) 1433-1440, 2011.
  • [46] Sunny T, Babu J, Philip J. Experimental Studies on Effect of Process Parameters on Delamination in Drilling GFRP Composites Using Taguchi Method, Procedia Materials Science, 6:1131-1142, 2014.
  • [47] Krishnaraj V, Prabukarthi A, Ramanathan A, et al. Optimization of machining parameters at high speed drilling of carbon fiber reinforced plastic (CFRP) laminates, Composite Part B Engineering. 43(4) 1791-1799, 2012.
  • [48] Melentiev R, Priarone PC, Robiglio M, Settineri L. Effects of Tool Geometry and Process Parameters on Delamination in CFRP Drilling: An Overview, Procedia CIRP. 45 31-34. 2016.
  • [49] Bayraktar S, Turgut Y. Investigation of the cutting forces and surface roughness in milling carbon-fiber-reinforced polymer composite material, Material Tehnology. 50(4) 591-600, 2016.
  • [50] Parasuraman S, Elamvazuthi I, Kanagaraj G, Natarajan E, Pugazhenthi A. Assessments of process parameters on cutting force and surface roughness during drilling of aa7075/tib2 in situ composite, Materials. 14(7) 2021.

Dolgusuz ve GR/B4C Dolgulu Hibrit Kompozitlerin Mekanik Özelliklerinin ve İşlenebilirliğinin İncelenmesi

Year 2024, Volume: 12 Issue: 2, 182 - 191, 30.12.2024
https://doi.org/10.18586/msufbd.1555267

Abstract

Bu çalışmada B4C ve Gr dolguları kullanılarak üretilen cam elyaflı polimer kompozitlerin (CETK) çekme, eğme ve delik delme özellikleri incelenmiştir. %7,5 B4C ve %7,5 Gr dolgulu hibrit kompozitlerde dolgu parçacıkları hem çekme hem eğme dayanımlarını düşürmüştür. Çekme numunelerinin kopmuş kesitlerinin SEM görüntüleri analiz edildiğinde dolgulu kompozitlerde matris boşluklarının daha fazla olduğu belirlenmiştir. Hibrit kompozitlerden elde edilen delaminasyon değerleri dolgusuz kompozitlerden daha düşük, ilerleme kuvvetleri ise dolgusuz kompozitlerden daha yüksek çıkmıştır. Kesme hızı arttıkça delaminasyon değerlerinin arttığı, ilerleme oranın artmasıyla delaminasyon değerlerinin düştüğü tespit edilmiştir. Elde edilen ilerleme kuvvetleri ilerleme oranın artmasıyla artmakta, kesme hızının arttırılmasıyla ise azalmaktadır. Titreşim ve moment değerleri açısından hibrit ve dolgusuz kompozitler arasında önemli bir fark olmadığı görülmüştür.

Project Number

BTÜBAP-2021-YL-020

Thanks

Yazarlar, bu deneysel çalışmanın gerçekleştirilmesinde her türlü katkı ve desteklerini sağlayan Batman Üniversitesi BAP birimine (BTÜBAP-2021-YL-020 no’lu proje) teşekkür eder.

References

  • [1] Chan JX, Wong JF, Petrů M, et al. Effect of nanofillers on tribological properties of polymer nanocomposites: A review on recent development, Polymers.13(17)1-47, 2021.
  • [2] Bhatia S, Khan S, Angra S. Effect of the content of silane-functionalized boron carbide on the mechanical and wear performance of B4C reinforced epoxy composites, High Performance Polymers. 33(10) 1165-1180, 2021.
  • [3] Chelliah A. Mechanical properties and abrasive wear of different weight percentage of TiC filled basalt fabric reinforced epoxy composites, Materials Research. 22(2), 2019.
  • [4] Albayrak M, Kaman MO, Bozkurt I. Experimental and numerical investigation of the geometrical effect on low velocity impact behavior for curved composites with a rubber interlayer, Applied Composite Materials. 30(2) 507-538, 2023.
  • [5] Albayrak M, Kaman MO, Bozkurt I. The effect of lamina configuration on low-velocity impact behaviour for glass fiber/rubber curved composites, Journal of Composite Materials. 57(11) 1875-1908, 2023.
  • [6] Suresha B, Chandramohan G, Rao PRS, Sampathkumaran P, Seetharamu S. Influence of SiC filler on mechanical and tribological behavior of glass fabric reinforced epoxy composite systems, Journal of Reinforced Plastics and Composites. 26(6) 565-578, 2007.
  • [7] Demir M. E., Çelik Y. H., and Kilickap E. Effect of matrix material and orientation angle on tensile and tribological behavior of jute reinforced composites, Materials Testing. 61(8) 806-812, 2019.
  • [8] Çetkin E, Demir ME, Ergün RK. The effect of different fillers, loads, and sliding distance on adhesive wear in woven e-glass fabric composites, Proceedings of the Institution of Mechanical Engineers Part E. 237(2) 418-429, 2023.
  • [9] Demir ME, Investigation of the abrasive wear behavior of GFRC and CFRC with different parameters using taguchi and artificial neural networks method, Politeknik Dergisi. 1-1, 2024.
  • [10] Bhatia S, Angra S, Khan S. A review on mechanical and tribological characterization of boron carbide reinforced epoxy composite, Advanced Composite Materials. 30(4) 307-337, 2021.
  • [11] Abenojar J, Martínez MA, Velasco F, Pascual-Sánchez V, Martín-Martínez JM. Effect of boron carbide filler on the curing and mechanical properties of an epoxy resin, The Journal of Adhesion. 85(4-5) 216-238, 2009.
  • [12] Raju BR, Suresha B, Swamy RP, Kanthraju BSG. Investigations on Mechanical and Tribological Behaviour of Particulate Filled Glass Fabric Reinforced Epoxy Composites, Journal of Minerals and Materials Characterization and Engineering. 01(04) 160-167, 2013.
  • [13] Kharat WS, Sidhu JS. Development of Epoxy Based Composites Filled With Boron Carbide (B4C), Tungsten Disulphide (WS2) and Evaluation of its Mechanical Properties, International Journal of Mechanical Engineering and Robotics. 6(1) 19-30, 2016.
  • [14] Demir ME, Cetkin E, Ergün RK, Denizhan O. Tribological and mechanical properties of nanofilled glass fiber reinforced composites and analyzing the tribological behavior using artificial neural networks, Polymer Composites. 45(5) 4233-4249, 2024.
  • [15] Kose H, Bayar I, Ergün RK. Experimental optimization of CuO and MgO hybrid nanoparticle reinforcement ratios to enhance fatigue life of GFRP composites. Polymer Composites 11125-11137, 2024.
  • [16] Ergün RK, Köse H. Experimental optimization of Al2O3 microparticles ratio in epoxy layered glass fiber to improve tensile fatigue performance, Journal of Composite Materials. 57(16) 2563-2572, 2023.
  • [17] Manjunath M, Renukappa NM, Suresha B. Influence of micro and nanofillers on mechanical properties of pultruded unidirectional glass fiber reinforced epoxy composite systems, Journal of Composite Materials. 50(8) 1109-1121, 2016.
  • [18] Hariprasad P, Kannan M, Ramesh C, et al. Mechanical and Morphological Studies of Sansevieria trifasciata Fiber-Reinforced Polyester Composites with the Addition of SiO2and B4C, Advances in Materials Science and Engineering. 1-5, 2022.
  • [19] Suresha B, Ramesh BN, Subbaya KM, Ravi Kumar BN, Chandramohan G. Influence of graphite filler on two-body abrasive wear behaviour of carbon fabric reinforced epoxy composites, Materials & Design. 31(4) 1833-1841, 2010.
  • [20] Hulugappa B, Achutha M V., Suresha B. Effect of Fillers on Mechanical Properties and Fracture Toughness of Glass Fabric Reinforced Epoxy Composites. Journal of Minerals and Materials Characterization and Engineering 2016;04(01):1-14.
  • [21] Başar G, Fedai Y, Kirli Akin H. Kompozit Malzemelerin Delme İşleminde İtme Kuvvetinin Taguchi Metodu ile Optimizasyonu ve Regresyon Analizi ile Tahmini, Çukurova Üniversitesi Mühendislik-Mimarlık Fakültesi Dergisi. 35(4) 969-982. 2020.
  • [22] Karaca F. Investigation of Drilling Parameters Effect On Delamination Factor in With Glass Fiber Reinforced Plastic Composites, Fırat Üniversitesi Mühendislik Bilimleri Dergisi. 28(2) 23-27, 2016.
  • [23] Uzay Ç. Investigating the Wear Behaviors of Silane Coated Silica Filled Glass/Epoxy Nanocomposites, Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi. 23(1) 260-269, 2023.
  • [24] Çelik A, Lazoglu I, Kara A, Kara F. Investigation on the performance of SiAlON ceramic drills on aerospace grade CFRP composites, Journal of Materials Processing Technology. 223 39-47, 2015.
  • [25] Mohan NS, Ramachandra A, Kulkarni SM. Influence of process parameters on cutting force and torque during drilling of glass-fiber polyester reinforced composites, Composite Structure. 71(3-4) 407-413, 2005.
  • [26] Liu L, Qi C, Wu F, Zhang X, Zhu X. Analysis of thrust force and delamination in drilling GFRP composites with candle stick drills, International Journal of Advanced Manufacturing Technology. 95(5-8) 2585-2600, 2018.
  • [27] Natarajan E, Markandan K, Sekar SM, et al. Drilling-Induced Damages in Hybrid Carbon and Glass Fiber-Reinforced Composite Laminate and Optimized Drilling Parameters, Journal of Composites Science. 6(10) 2022.
  • [28] Tian J, Wu F, Zhang P, Lin B, Liu T, Liu L. The coupling effect and damage analysis when drilling GFRP laminates using candlestick drills. International Journal of Advanced Manufacturing Technology 102(1-4):519-531. 2019.
  • [29] Khashaba UA, Abd-Elwahed MS, Najjar I, et al. Heat-affected zone and mechanical analysis of GFRP composites with different thicknesses in drilling processes, Polymers. 13(14) 2021.
  • [30] Erturk AT, Vatansever F, Yarar E, Guven EA, Sinmazcelik T. Effects of cutting temperature and process optimization in drilling of GFRP composites, Journal of Composite Materials. 55(2) 235-249, 2021.
  • [31] Jessy K, Satish kumar S, Dinakaran D, Seshagiri Rao V. Influence of different cooling methods on drill temperature in drilling GFRP, International Journal of Advanced Manufacturing Technology, 76(1-4) 609-621, 2015.
  • [32] Khashaba UA, El-Keran AA. Drilling analysis of thin woven glass-fiber reinforced epoxy‎ composites, Journal of Materials Processing Technology. 249 415-425, 2017.
  • [33] Zuo JP, Xie HP, Dai, F, Ju, Y. Three-point bending test investigation of the fracture behavior of siltstone after thermal treatment, International Journal of Rock Mechanics and Mining Sciences. 70 133-143, 2014.
  • [34] Latha PS, Rao MV. Investigation into Effect of Ceramic Fillers on Mechanical and Tribological Properties of Bamboo-Glass Hybrid Fiber Reinforced Polymer Composites, Silicon. 10(4) 1543-1550, 2018.
  • [35] Ozsoy I, Demirkol A, Mimaroglu A, Unal H, Demir Z. The influence of micro- And nano-filler content on the mechanical properties of epoxy composites, Strojniški vestnik Journal of Mechanical Engineering. 61(10) 601-609, 2015.
  • [36] Raju BR, Suresha RPSB, Bharath KN. The Effect of Silicon Dioxide Filler on the Wear Resistance of Glass Fabric Reinforced Epoxy Composites, Advances in polymer science and technology - an international journal. 2(4) 51-57, 2012.
  • [37] Anjum N, Ajit Prasad SL, Suresha B. Role of silicon dioxide filler on mechanical and dry sliding wear behaviour of glass-epoxy composites, Advances in Tribology. 1-13, 2013.
  • [38] Abuali Galehdari N, Kelkar AD. Effect of neutron radiation on the mechanical and thermophysical properties of nanoengineered polymer composites, Journal of Materials Research. 32(2) 426-434, 2017.
  • [39] Fathy A, Shaker A, Hamid MA, Megahed AA. The effects of nano-silica/nano-alumina on fatigue behavior of glass fiber-reinforced epoxy composites. Journal of Composite Materials 51(12):1667-1679, 2017.
  • [40] Hossain MK, Hossain ME, Hosur M V., Jeelani S. Flexural and compression response of woven E-glass/polyester-CNF nanophased composites, Composites Part A: Applied Science and Manufacturing. 42(11) 1774-1782, 2011.
  • [41] Raja T, Devarajan Y. Investigation on boron carbide nanofiller-influenced epoxy polymer composite for thermal barrier applications, Biomass Convers Biorefinery. 14 12623 2023.
  • [42] Siddhartha, Patnaik A, Bhatt AD. Mechanical and dry sliding wear characterization of epoxy-TiO2 particulate filled functionally graded composites materials using Taguchi design of experiment, Materials & Design. 32(2) 615-627, 2011.
  • [43] Singh MM., Kumar H, Kumar GH, Sivaiah P, Nagesha KV, Ajay KM, Vijaya G. Determination of strength parameters of glass fibers reinforced composites for engineering applications, Silicon. 12 1-11, 2020.
  • [44] Ou Y, Zhu D, Zhang H, Huang L, Yao Y, Li G, Mobasher B. Mechanical characterization of the tensile properties of glass fiber and its reinforced polymer (GFRP) composite under varying strain rates and temperatures, Polymers. 8(5) 1-16, 2016.
  • [45] Ghasemi FA, Hyvadi A, Payganeh G, Arab NBM. Effects of drilling parameters on delamination of glass-epoxy composites, Australian Journal of Basic and Applied Sciences. 5(12) 1433-1440, 2011.
  • [46] Sunny T, Babu J, Philip J. Experimental Studies on Effect of Process Parameters on Delamination in Drilling GFRP Composites Using Taguchi Method, Procedia Materials Science, 6:1131-1142, 2014.
  • [47] Krishnaraj V, Prabukarthi A, Ramanathan A, et al. Optimization of machining parameters at high speed drilling of carbon fiber reinforced plastic (CFRP) laminates, Composite Part B Engineering. 43(4) 1791-1799, 2012.
  • [48] Melentiev R, Priarone PC, Robiglio M, Settineri L. Effects of Tool Geometry and Process Parameters on Delamination in CFRP Drilling: An Overview, Procedia CIRP. 45 31-34. 2016.
  • [49] Bayraktar S, Turgut Y. Investigation of the cutting forces and surface roughness in milling carbon-fiber-reinforced polymer composite material, Material Tehnology. 50(4) 591-600, 2016.
  • [50] Parasuraman S, Elamvazuthi I, Kanagaraj G, Natarajan E, Pugazhenthi A. Assessments of process parameters on cutting force and surface roughness during drilling of aa7075/tib2 in situ composite, Materials. 14(7) 2021.
There are 50 citations in total.

Details

Primary Language Turkish
Subjects Material Design and Behaviors
Journal Section Research Article
Authors

Hüseyin Gürbüz 0000-0003-1391-172X

Mehmet Emin Demir 0000-0001-9630-6378

Şehmus Baday 0000-0003-4208-8779

İbrahim Halil Akcan 0009-0007-8075-2323

Project Number BTÜBAP-2021-YL-020
Early Pub Date December 21, 2024
Publication Date December 30, 2024
Submission Date September 24, 2024
Acceptance Date November 8, 2024
Published in Issue Year 2024 Volume: 12 Issue: 2

Cite

APA Gürbüz, H., Demir, M. E., Baday, Ş., Akcan, İ. H. (2024). Dolgusuz ve GR/B4C Dolgulu Hibrit Kompozitlerin Mekanik Özelliklerinin ve İşlenebilirliğinin İncelenmesi. Mus Alparslan University Journal of Science, 12(2), 182-191. https://doi.org/10.18586/msufbd.1555267
AMA Gürbüz H, Demir ME, Baday Ş, Akcan İH. Dolgusuz ve GR/B4C Dolgulu Hibrit Kompozitlerin Mekanik Özelliklerinin ve İşlenebilirliğinin İncelenmesi. MAUN Fen Bil. Dergi. December 2024;12(2):182-191. doi:10.18586/msufbd.1555267
Chicago Gürbüz, Hüseyin, Mehmet Emin Demir, Şehmus Baday, and İbrahim Halil Akcan. “Dolgusuz Ve GR/B4C Dolgulu Hibrit Kompozitlerin Mekanik Özelliklerinin Ve İşlenebilirliğinin İncelenmesi”. Mus Alparslan University Journal of Science 12, no. 2 (December 2024): 182-91. https://doi.org/10.18586/msufbd.1555267.
EndNote Gürbüz H, Demir ME, Baday Ş, Akcan İH (December 1, 2024) Dolgusuz ve GR/B4C Dolgulu Hibrit Kompozitlerin Mekanik Özelliklerinin ve İşlenebilirliğinin İncelenmesi. Mus Alparslan University Journal of Science 12 2 182–191.
IEEE H. Gürbüz, M. E. Demir, Ş. Baday, and İ. H. Akcan, “Dolgusuz ve GR/B4C Dolgulu Hibrit Kompozitlerin Mekanik Özelliklerinin ve İşlenebilirliğinin İncelenmesi”, MAUN Fen Bil. Dergi., vol. 12, no. 2, pp. 182–191, 2024, doi: 10.18586/msufbd.1555267.
ISNAD Gürbüz, Hüseyin et al. “Dolgusuz Ve GR/B4C Dolgulu Hibrit Kompozitlerin Mekanik Özelliklerinin Ve İşlenebilirliğinin İncelenmesi”. Mus Alparslan University Journal of Science 12/2 (December 2024), 182-191. https://doi.org/10.18586/msufbd.1555267.
JAMA Gürbüz H, Demir ME, Baday Ş, Akcan İH. Dolgusuz ve GR/B4C Dolgulu Hibrit Kompozitlerin Mekanik Özelliklerinin ve İşlenebilirliğinin İncelenmesi. MAUN Fen Bil. Dergi. 2024;12:182–191.
MLA Gürbüz, Hüseyin et al. “Dolgusuz Ve GR/B4C Dolgulu Hibrit Kompozitlerin Mekanik Özelliklerinin Ve İşlenebilirliğinin İncelenmesi”. Mus Alparslan University Journal of Science, vol. 12, no. 2, 2024, pp. 182-91, doi:10.18586/msufbd.1555267.
Vancouver Gürbüz H, Demir ME, Baday Ş, Akcan İH. Dolgusuz ve GR/B4C Dolgulu Hibrit Kompozitlerin Mekanik Özelliklerinin ve İşlenebilirliğinin İncelenmesi. MAUN Fen Bil. Dergi. 2024;12(2):182-91.