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Effect of Tungsten-Cobalt (WCo) nanoparticles on shear and flexural strength of adhesive joints

Yıl 2025, Cilt: 31 Sayı: 5, 758 - 764, 19.10.2025

Öz

The effects of Tungsten Cobalt (WCo) nanoparticle contribution on the shear and bending strengths are examined in adhesively bonded single-lap joints made with glass fiber-reinforced polymer (GFRP) substrates in this study. WCo particles were synthesized via mechanical alloying and added to epoxy adhesives at varying concentrations (1.0, 3.0, and 5.0 wt.%). The adhesive mixtures were used to bond GFRP plates in single-lap joints (SLJ), and their mechanical performance was evaluated under shear and bending loading conditions. The shear strength results indicate that the incorporation of 1.0 wt.% WCo increased shear strength by 68.5%, while 3.0 wt.% WCo yielded the highest improvement at 136%. However, the addition of 5.0% WCo led to a reduced enhancement (60%) due to nanoparticle agglomeration and local stress concentrations. Notably, the maximum bending stress was observed in the 3% WCo-containing specimens. Specifically, the bending load increased by 51.5%, from 61.96 MPa in the pure epoxy specimen to 93.85 MPa in the 3% WCo-reinforced specimen. Failure surface analysis revealed that WCo-reinforced samples exhibited light-fiber tear, thin-layer cohesive failures, and enhanced bonding properties due to increased viscosity and the filling of micro-voids. These findings suggest that WCo nanoparticles effectively improve the shear and bending performance of epoxy adhesives by enhancing interfacial bonding, ductility, and stress distribution mechanisms. The study provides insights into the potential of WCo-reinforced adhesives as a
cost-effective and high-performance solution for engineering applications.

Kaynakça

  • [1] Torralba JD, Da Costa CE, Velasco F. “P/M aluminum matrix composites: an overview”. Journal of Materials Processing Technology, 133, 203-206, 2003.
  • [2] Lin Y, Gigliotti M, Lafarie-Frenot MC, Bai J, Marchand D, Mellier D. “Experimental study to assess the effect of carbon nanotube addition on the through-thickness electrical conductivity of CFRP laminates for aircraft applications”. Composites Part B: Engineering, 76, 31-37, 2015.
  • [3] Kadioglu F. “Mechanical behaviour of adhesively single lap joint under buckling conditions”. Chinese Journal of Aeronautics, 34, 154-164, 2021.
  • [4] Dhilipkumar T, Rajesh M. “Effect of using multiwall carbon nanotube reinforced epoxy adhesive in enhancing glass fiber reinforced polymer composite through cocure manufacturing technique”. Polymer Composites, 42, 3758-3772, 2021.
  • [5] Qin M, Dzenis YA. “Analysis of single lap adhesive composite joints with delaminated adherends”. Composites Part B: Engineering, 34,167-173, 2003.
  • [6] Park H and Kim H. “Damage resistance of single lap adhesive composite joints by transverse ice impact”. International Journal of Impact Engineering, 37, 177-184, 2010.
  • [7] Cavezza F, Boehm M, Terryn H, Hauffman TJM. “A review on adhesively bonded aluminium joints in the automotive industry”. Metal, 10(6), 730, 2020.
  • [8] Petrie EM. “Adhesive bonding of textiles: principles, types of adhesive and methods of use”. Joining Textiles, 21, 225-274, 2013.
  • [9] Hart-Smith J. Aerospace Industry Applications of Adhesive Bonding. Editors: Adams RD. Adhesive Bonding, 763-800, Oxford, UK, Elsevier, 2021.
  • [10] Tavakoli SM, Pullen DA, Dunkerton SB. “A review of adhesive bonding techniques for joining medical materials”. Assembly Automation, 25, 100-105, 2005.
  • [11] Karaoğlan H, Erkliğ A, Doğan NF, Bulut M. “A comparative study on adhesive properties of nanoparticle reinforced epoxy bonded single-strap repaired composites”. International Polymer Processing, 39, 70-79, 2024.
  • [12] Shu Y, Qiang X, Jiang X, Xiao Y, Dong H. “Long‐term performance of single‐lap joints: Review, challenges and prospects in civil engineering”. Engineering Reports, 6, e12769, 2023.
  • [13] Turaga UVRS, Sun CT. “Improved design for metallic and composite single-lap joints”. Journal of Aircraft, 45, 440-447, 2008.
  • [14] De Sousa C, Campilho R, Marques EAS, Costa M, Da Silva LFM. “Overview of different strength prediction techniques for single-lap bonded joints”. Proceedings of the Institution of Mechanical Engineers, Part L: Journal of Materials: Design and Applications, 231, 210-223, 2017.
  • [15] Dominguez F, Carral L. “A review of formulations to design an adhesive single-lap joint for use in marine applications”. Brodogradnja: An International Journal of Naval Architecture and Ocean Engineering for Research and Development, 71, 89-119, 2020.
  • [16] Sülü İY. “Mechanical behavior of single-lap and double-lap adhesive joined composite parts”. Materials Testing, 59, 1019-1026, 2017.
  • [17] Shu Y, Qiang X, Jiang X, Li Y. “Experimental and theoretical study on mechanical performance of Fe-SMA/steel single lap joints”. Thin-Walled Structures, 199, 111824, 2024.
  • [18] Zhao L-C, Karimi S, and Xu L. “An experimental investigation of static and fatigue behavior of various adhesive single lap joints under bending loads subjected to hygrothermal and thermal conditions”. The Journal of Adhesion,100, 845-866, 2024.
  • [19] Akkasali NK, Biswas S. “Influence of reinforcement on vibration control in adhesively bonded single lap joints: a numerical and experimental validation”. Engineering Research Express, 6, 035558, 2024.
  • [20] Metehri A, Madani K, Campilho RDSG. “Numerical analysis of the geometrical modifications effects on the tensile strength of bonded single-lap joints”. International Journal of Adhesion and Adhesives, 134, 103814, 2024.
  • [21] Xiang S, Cheng B, Wang J, Li D, Yan X. “Behavior of hybrid bonded/bolted GFRP single-lap joint under static tensile loading: An experimental and numerical study”. Journal of Composite Materials, 59(5), 589-602, 2025.
  • [22] Budhe S, Banea MD, de Barros S, Da Silva LFM. “An updated review of adhesively bonded joints in composite materials”. International Journal of Adhesion and Adhesives, 72, 30-42, 2017.
  • [23] Kumar A, Kumar K, Ghosh PK, Rathi A, Yadav KL. “MWCNTs toward superior strength of epoxy adhesive joint on mild steel adherent”. Composites Part B: Engineering, 143, 207-216, 2018.
  • [24] Özbek Ö, Çakır MV. “MWCNT and nano-silica hybrids effect on mechanical and fracture characterization of single lap joints of GFRP plates”. International Journal of Adhesion and Adhesives, 117, 103159, 2022.
  • [25] Çakır MV, Erkliğ A, Ahmed BF. “Graphene nanoparticle effect on flexural and shear behaviors of adhesively bonded single lap joints of GFRP composites”. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 43, 1-11, 2021.
  • [26] Öteyaka MÖ, Aybar K, Öteyaka HC. “A comparative study of the effect of polyurethane nanofiber and powders filler on the mechanical properties of carbon fiber and glass fiber composites”. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi, 28, 51-57, 2022.
  • [27] Yilmaz M, Ekrem M, Avci A. ”Impact resistance of composite to aluminum single lap joints reinforced with graphene doped nylon 6.6 nanofibers”. International Journal of Adhesion and Adhesives, 128, 103565, 2024.
  • [28] Demir TN, Yuksel Yilmaz AN, Celik Bedeloglu “A. Investigation of mechanical properties of aluminum–glass fiber-reinforced polyester composite joints bonded with structural epoxy adhesives reinforced with silicon dioxide and graphene oxide particles”. International Journal of Adhesion and Adhesives, 126, 103481, 2023.
  • [29] Razavi N, Ayatollahi MR, Giv AN, Khoramishad H. “Single lap joints bonded with structural adhesives reinforced with a mixture of silica nanoparticles and multi walled carbon nanotubes”. International Journal of Adhesion and Adhesives, 80, 76-86, 2018.
  • [30] Vattathurvalappil SH, Haq M. “Thermomechanical characterization of Nano-Fe3O4 reinforced thermoplastic adhesives and single lap-joints”. Composites Part B: Engineering, 175, 107162, 2019.
  • [31] Ekrem M, Koyunbakan M, Ünal B. “Investigation of the mechanical and thermal properties of epoxy adhesives reinforced by carbon nanotubes and silicon dioxide nanoparticles in single-lap joints”. Journal of Adhesion Science and Technology, 38, 1-16, 2024.
  • [32] Aslan M, Yaykaşlı H, Eskalen H. “The W-Zn-Co-Y2O3 alloys synthesized by a secondary ball milling method and their effects on adhesion performance of single lap joints of aluminum composites”. Materials Today Communications, 36, 106723, 2023.
  • [33] Candela S, Ottelin J, Hongisto J, Lehtonen H, Candela V, Syvänen T, Bettini P. “Effects of micro-sized TiC on the cracking behavior of additively manufactured tungsten”. Materials Letters, 383, 137969, 2025.
  • [34] Hao Z, Zhao Z, Zhang G, Zhang S, Li Z, Yao B, Lin X. “Microstructure evolution and mechanical properties of tungsten alloy prepared by laser directed energy deposition”. Journal of Alloys and Compounds, 1010, 177056, 2025.
  • [35] Yang R, Wang H, Xie Z, Liu R, Wang X, Wu X, Liu C. “Microstructure and mechanical properties of ultrafine-grained W-Ni-Al alloys prepared via in-situ precipitation”. Journal of Alloys and Compounds, 1010, 178002, 2025.
  • [36] Dai D, Wang L, Chen T, Shi K, Zhang H. “Dual-laser powder bed fusion of difficult-to-process tungsten heavy-alloy: Inhibition of inferior defects and integrated fabrication of thin-walled overhanging structures”. Thin-Walled Structures, 208, 112827, 2025.
  • [37] Chen CL, Ma SH. “Study on characteristics and sintering behavior of W-Ni-Co tungsten heavy alloy by a secondary ball milling method”. Journal of Alloys and Compounds, 731, 78-83, 2018.
  • [38] Cakir MV, Kinay D. “MWCNT, nano‐silica, and nano‐clay additives effects on adhesion performance of dissimilar materials bonded joints”. Polymer Composites, 42, 5880-5892, 2021.
  • [39] Peng H, Zhou T, Shangguan L, Cheng R. “Effect of temperature and humidity coupling on the ageing failure of carbon fiber composite/titanium bonded joints”. Polymers, 16, 952, 2024.
  • [40] Banea MD, Rosioara M, Carbas RJC, Da Silva LFM. “Multi-material adhesive joints for automotive industry”. Composites Part B: Engineering, 151, 71-77, 2018.
  • [41] Özbek Ö, Çakır MV. “MWCNT and nano-silica hybrids effect on mechanical and fracture characterization of single lap joints of GFRP plates”. International Journal of Adhesion and Adhesives, 117, 103159, 2022.

Tungsten-Kobalt (WCo) nanoparçacıklarının yapıştırma bağlantılarının kayma ve eğilme dayanımlarına etkisi

Yıl 2025, Cilt: 31 Sayı: 5, 758 - 764, 19.10.2025

Öz

Bu çalışmada cam elyaf takviyeli polimer (GFRP) altlılarla yapılmış tek bindirmeli yapıştırma bağlantılarında Tungsten-Kobalt (WCo) parçacık katkısının kayma ve eğilme dayanımlarına etkileri incelenmektedir. WCo parçacıkları mekanik alaşım yöntemi ile sentezlenmiş ve epoksi yapıştırıcısına farklı konsantrasyonlarda (ağırlıkça % 1.0, 3.0 ve 5.0 ) eklenmiştir. Bu yapıştırıcı karışımları, GFRP plakalarını tek bindirmeli eklem (SLJ) şeklinde bağlamak için kullanılmış ve mekanik performansları kayma ve bükülme yükleri altında değerlendirilmiştir. Kayma dayanımı testleri, %1.0 WCo eklenmesinin kayma dayanımını %68.5 artırırken, %3.0 WCo katkısının %136 ile en yüksek iyileşmeyi sağladığını göstermiştir. Ancak %5.0 WCo eklenmesi, nanoparçacıkların topaklanması ve yerel gerilme yoğunlukları nedeniyle %60’lık daha az bir iyileşme ile sonuçlanmıştır. Dikkate değer bir şekilde, maksimum eğilme gerilmesi %3 WCo içeren numunelerde gözlemlendi. Özellikle, eğilme dayanımı %51.5 artarak, saf epoksi numunesinde 61.96 MPa iken %3 WCo takviyeli numunede 93.85 MPa'ya yükseldi. Hata yüzey analizi, WCo takviyeli örneklerde ince lif çekilmesi, ince tabaka kohezif arıza türleri ve mikro boşlukların dolması ile birlikte viskozite artışı nedeniyle geliştirilmiş bağlama özellikleri sergilediğini ortaya koymuştur. Bu bulgular, WCo nanoparçacıklarının arayüzey bağlanmasını, sünekliği ve gerilme dağılım mekanizmalarını iyileştirerek epoksi yapıştırıcılarının kayma ve eğilme performansını etkili bir şekilde artırdığını göstermektedir. Çalışma, WCo takviyeli yapıştırıcıların, mühendislik uygulamaları için maliyet açısından etkin ve yüksek performanslı bir çözüm olma potansiyeline sahip olduğunu vurgulamaktaydı.

Kaynakça

  • [1] Torralba JD, Da Costa CE, Velasco F. “P/M aluminum matrix composites: an overview”. Journal of Materials Processing Technology, 133, 203-206, 2003.
  • [2] Lin Y, Gigliotti M, Lafarie-Frenot MC, Bai J, Marchand D, Mellier D. “Experimental study to assess the effect of carbon nanotube addition on the through-thickness electrical conductivity of CFRP laminates for aircraft applications”. Composites Part B: Engineering, 76, 31-37, 2015.
  • [3] Kadioglu F. “Mechanical behaviour of adhesively single lap joint under buckling conditions”. Chinese Journal of Aeronautics, 34, 154-164, 2021.
  • [4] Dhilipkumar T, Rajesh M. “Effect of using multiwall carbon nanotube reinforced epoxy adhesive in enhancing glass fiber reinforced polymer composite through cocure manufacturing technique”. Polymer Composites, 42, 3758-3772, 2021.
  • [5] Qin M, Dzenis YA. “Analysis of single lap adhesive composite joints with delaminated adherends”. Composites Part B: Engineering, 34,167-173, 2003.
  • [6] Park H and Kim H. “Damage resistance of single lap adhesive composite joints by transverse ice impact”. International Journal of Impact Engineering, 37, 177-184, 2010.
  • [7] Cavezza F, Boehm M, Terryn H, Hauffman TJM. “A review on adhesively bonded aluminium joints in the automotive industry”. Metal, 10(6), 730, 2020.
  • [8] Petrie EM. “Adhesive bonding of textiles: principles, types of adhesive and methods of use”. Joining Textiles, 21, 225-274, 2013.
  • [9] Hart-Smith J. Aerospace Industry Applications of Adhesive Bonding. Editors: Adams RD. Adhesive Bonding, 763-800, Oxford, UK, Elsevier, 2021.
  • [10] Tavakoli SM, Pullen DA, Dunkerton SB. “A review of adhesive bonding techniques for joining medical materials”. Assembly Automation, 25, 100-105, 2005.
  • [11] Karaoğlan H, Erkliğ A, Doğan NF, Bulut M. “A comparative study on adhesive properties of nanoparticle reinforced epoxy bonded single-strap repaired composites”. International Polymer Processing, 39, 70-79, 2024.
  • [12] Shu Y, Qiang X, Jiang X, Xiao Y, Dong H. “Long‐term performance of single‐lap joints: Review, challenges and prospects in civil engineering”. Engineering Reports, 6, e12769, 2023.
  • [13] Turaga UVRS, Sun CT. “Improved design for metallic and composite single-lap joints”. Journal of Aircraft, 45, 440-447, 2008.
  • [14] De Sousa C, Campilho R, Marques EAS, Costa M, Da Silva LFM. “Overview of different strength prediction techniques for single-lap bonded joints”. Proceedings of the Institution of Mechanical Engineers, Part L: Journal of Materials: Design and Applications, 231, 210-223, 2017.
  • [15] Dominguez F, Carral L. “A review of formulations to design an adhesive single-lap joint for use in marine applications”. Brodogradnja: An International Journal of Naval Architecture and Ocean Engineering for Research and Development, 71, 89-119, 2020.
  • [16] Sülü İY. “Mechanical behavior of single-lap and double-lap adhesive joined composite parts”. Materials Testing, 59, 1019-1026, 2017.
  • [17] Shu Y, Qiang X, Jiang X, Li Y. “Experimental and theoretical study on mechanical performance of Fe-SMA/steel single lap joints”. Thin-Walled Structures, 199, 111824, 2024.
  • [18] Zhao L-C, Karimi S, and Xu L. “An experimental investigation of static and fatigue behavior of various adhesive single lap joints under bending loads subjected to hygrothermal and thermal conditions”. The Journal of Adhesion,100, 845-866, 2024.
  • [19] Akkasali NK, Biswas S. “Influence of reinforcement on vibration control in adhesively bonded single lap joints: a numerical and experimental validation”. Engineering Research Express, 6, 035558, 2024.
  • [20] Metehri A, Madani K, Campilho RDSG. “Numerical analysis of the geometrical modifications effects on the tensile strength of bonded single-lap joints”. International Journal of Adhesion and Adhesives, 134, 103814, 2024.
  • [21] Xiang S, Cheng B, Wang J, Li D, Yan X. “Behavior of hybrid bonded/bolted GFRP single-lap joint under static tensile loading: An experimental and numerical study”. Journal of Composite Materials, 59(5), 589-602, 2025.
  • [22] Budhe S, Banea MD, de Barros S, Da Silva LFM. “An updated review of adhesively bonded joints in composite materials”. International Journal of Adhesion and Adhesives, 72, 30-42, 2017.
  • [23] Kumar A, Kumar K, Ghosh PK, Rathi A, Yadav KL. “MWCNTs toward superior strength of epoxy adhesive joint on mild steel adherent”. Composites Part B: Engineering, 143, 207-216, 2018.
  • [24] Özbek Ö, Çakır MV. “MWCNT and nano-silica hybrids effect on mechanical and fracture characterization of single lap joints of GFRP plates”. International Journal of Adhesion and Adhesives, 117, 103159, 2022.
  • [25] Çakır MV, Erkliğ A, Ahmed BF. “Graphene nanoparticle effect on flexural and shear behaviors of adhesively bonded single lap joints of GFRP composites”. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 43, 1-11, 2021.
  • [26] Öteyaka MÖ, Aybar K, Öteyaka HC. “A comparative study of the effect of polyurethane nanofiber and powders filler on the mechanical properties of carbon fiber and glass fiber composites”. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi, 28, 51-57, 2022.
  • [27] Yilmaz M, Ekrem M, Avci A. ”Impact resistance of composite to aluminum single lap joints reinforced with graphene doped nylon 6.6 nanofibers”. International Journal of Adhesion and Adhesives, 128, 103565, 2024.
  • [28] Demir TN, Yuksel Yilmaz AN, Celik Bedeloglu “A. Investigation of mechanical properties of aluminum–glass fiber-reinforced polyester composite joints bonded with structural epoxy adhesives reinforced with silicon dioxide and graphene oxide particles”. International Journal of Adhesion and Adhesives, 126, 103481, 2023.
  • [29] Razavi N, Ayatollahi MR, Giv AN, Khoramishad H. “Single lap joints bonded with structural adhesives reinforced with a mixture of silica nanoparticles and multi walled carbon nanotubes”. International Journal of Adhesion and Adhesives, 80, 76-86, 2018.
  • [30] Vattathurvalappil SH, Haq M. “Thermomechanical characterization of Nano-Fe3O4 reinforced thermoplastic adhesives and single lap-joints”. Composites Part B: Engineering, 175, 107162, 2019.
  • [31] Ekrem M, Koyunbakan M, Ünal B. “Investigation of the mechanical and thermal properties of epoxy adhesives reinforced by carbon nanotubes and silicon dioxide nanoparticles in single-lap joints”. Journal of Adhesion Science and Technology, 38, 1-16, 2024.
  • [32] Aslan M, Yaykaşlı H, Eskalen H. “The W-Zn-Co-Y2O3 alloys synthesized by a secondary ball milling method and their effects on adhesion performance of single lap joints of aluminum composites”. Materials Today Communications, 36, 106723, 2023.
  • [33] Candela S, Ottelin J, Hongisto J, Lehtonen H, Candela V, Syvänen T, Bettini P. “Effects of micro-sized TiC on the cracking behavior of additively manufactured tungsten”. Materials Letters, 383, 137969, 2025.
  • [34] Hao Z, Zhao Z, Zhang G, Zhang S, Li Z, Yao B, Lin X. “Microstructure evolution and mechanical properties of tungsten alloy prepared by laser directed energy deposition”. Journal of Alloys and Compounds, 1010, 177056, 2025.
  • [35] Yang R, Wang H, Xie Z, Liu R, Wang X, Wu X, Liu C. “Microstructure and mechanical properties of ultrafine-grained W-Ni-Al alloys prepared via in-situ precipitation”. Journal of Alloys and Compounds, 1010, 178002, 2025.
  • [36] Dai D, Wang L, Chen T, Shi K, Zhang H. “Dual-laser powder bed fusion of difficult-to-process tungsten heavy-alloy: Inhibition of inferior defects and integrated fabrication of thin-walled overhanging structures”. Thin-Walled Structures, 208, 112827, 2025.
  • [37] Chen CL, Ma SH. “Study on characteristics and sintering behavior of W-Ni-Co tungsten heavy alloy by a secondary ball milling method”. Journal of Alloys and Compounds, 731, 78-83, 2018.
  • [38] Cakir MV, Kinay D. “MWCNT, nano‐silica, and nano‐clay additives effects on adhesion performance of dissimilar materials bonded joints”. Polymer Composites, 42, 5880-5892, 2021.
  • [39] Peng H, Zhou T, Shangguan L, Cheng R. “Effect of temperature and humidity coupling on the ageing failure of carbon fiber composite/titanium bonded joints”. Polymers, 16, 952, 2024.
  • [40] Banea MD, Rosioara M, Carbas RJC, Da Silva LFM. “Multi-material adhesive joints for automotive industry”. Composites Part B: Engineering, 151, 71-77, 2018.
  • [41] Özbek Ö, Çakır MV. “MWCNT and nano-silica hybrids effect on mechanical and fracture characterization of single lap joints of GFRP plates”. International Journal of Adhesion and Adhesives, 117, 103159, 2022.
Toplam 41 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Makine Mühendisliği (Diğer)
Bölüm Araştırma Makalesi
Yazarlar

Mikail Aslan

Mehmet Veysel Çakır

Ahmed Almossa Bu kişi benim

Yayımlanma Tarihi 19 Ekim 2025
Gönderilme Tarihi 13 Aralık 2024
Kabul Tarihi 25 Ocak 2025
Yayımlandığı Sayı Yıl 2025 Cilt: 31 Sayı: 5

Kaynak Göster

APA Aslan, M., Çakır, M. V., & Almossa, A. (2025). Effect of Tungsten-Cobalt (WCo) nanoparticles on shear and flexural strength of adhesive joints. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi, 31(5), 758-764.
AMA Aslan M, Çakır MV, Almossa A. Effect of Tungsten-Cobalt (WCo) nanoparticles on shear and flexural strength of adhesive joints. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi. Ekim 2025;31(5):758-764.
Chicago Aslan, Mikail, Mehmet Veysel Çakır, ve Ahmed Almossa. “Effect of Tungsten-Cobalt (WCo) nanoparticles on shear and flexural strength of adhesive joints”. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi 31, sy. 5 (Ekim 2025): 758-64.
EndNote Aslan M, Çakır MV, Almossa A (01 Ekim 2025) Effect of Tungsten-Cobalt (WCo) nanoparticles on shear and flexural strength of adhesive joints. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi 31 5 758–764.
IEEE M. Aslan, M. V. Çakır, ve A. Almossa, “Effect of Tungsten-Cobalt (WCo) nanoparticles on shear and flexural strength of adhesive joints”, Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi, c. 31, sy. 5, ss. 758–764, 2025.
ISNAD Aslan, Mikail vd. “Effect of Tungsten-Cobalt (WCo) nanoparticles on shear and flexural strength of adhesive joints”. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi 31/5 (Ekim2025), 758-764.
JAMA Aslan M, Çakır MV, Almossa A. Effect of Tungsten-Cobalt (WCo) nanoparticles on shear and flexural strength of adhesive joints. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi. 2025;31:758–764.
MLA Aslan, Mikail vd. “Effect of Tungsten-Cobalt (WCo) nanoparticles on shear and flexural strength of adhesive joints”. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi, c. 31, sy. 5, 2025, ss. 758-64.
Vancouver Aslan M, Çakır MV, Almossa A. Effect of Tungsten-Cobalt (WCo) nanoparticles on shear and flexural strength of adhesive joints. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi. 2025;31(5):758-64.





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