Scopus Eşleşmesi Bulundu
61
Atıf
119
Cilt
114-124
Sayfa
Scopus Yazarları: Mehmet Turan Demirci, Necmettin Tarakçioğlu, A. Avci, Ahmet Akdemir, Ibrahim Demirci
Özet
Matrix cracking which is the major initial form of damage in fiber reinforced polymer composites plays significant role in determining the fracture toughness. The fast crack propagation in polymer matrix causes to decrease the fracture toughness of fiber reinforced polymer (FRP) composite. In order to retard the fast crack propagation in polymer matrix and provide to increase of the fracture toughness of FRP composite, the polymer matrix of FRP composite is modified by filling the different kinds of nanoparticles. In such a way, the crack propagation leads to retard and dissipate the stress concentration affected to form the fiber cracks along of fibers in composite structure. In this study, basalt fiber was used as reinforcement material in ±[55]6 filament wound ring composite for creating the alternative to carbon, kevlar and glass fibers, to contribute to the research studies and literature. SiO2 nanoparticles that provides to form the effects of fracture toughness mechanism based on the effect of retarding crack propagation were filled into epoxy matrix to increase the mechanical properties and fracture toughness of ±[55]6 filament wound BFR/Epoxy ring composite. The split-disk tensile tests of single edge notched and un-notched ±[55]6 filament wound BFR/Epoxy ring composite specimens were conducted to determine the mechanical properties and mode I fracture toughness. SiO2 nanoparticle addition into epoxy matrix of ±[55]6 filament wound BFR/Epoxy ring composites has given the results of hoop tensile stress within the range of 27.7–30.3%. The fracture toughness of composite ring specimen was specified by ASTM E 399-12E3 by adapting to the directed mode I crack propagation and compared with each other. An effective increase in mode I fracture toughness of 43%–50% was obtained at 4 wt% addition level of SiO2 nanoparticles. The crack branching in epoxy matrix provided by SiO2 nanoparticle, matrix cracking, debonding, delamination and fiber breakage failures has been observed via microscope and SEM analysis.
Anahtar Kelimeler (Scopus)
Crack branching
Filament wound composite
Nanocomposite
SiO nanoparticle 2
Basalt fiber reinforcement
Fracture toughness
Scimago Dergi Bilgisi
Otomatik ISSN Eşleştirmesi
2017 yılı verileri
Composites Part B: Engineering
Q1
SJR Quartile
2,039
SJR Skoru
227
H-Index
Kategoriler: Ceramics and Composites (Q1) · Industrial and Manufacturing Engineering (Q1) · Mechanical Engineering (Q1) · Mechanics of Materials (Q1)
Alanlar: Engineering · Materials Science
Ülke: United Kingdom
· Elsevier Ltd
Bu bilgiler makale yılına göre Scimago veritabanından ISSN eşleştirmesiyle otomatik getirilmektedir.
Dergi sıralama verileri Scimago'nun ilgili yılı baz alınmaktadır.
Anahtar Kelimeler
Crack branching
Filament wound composite
Nanocomposite
SiO nanoparticle 2
Basalt fiber reinforcement
Fracture toughness
Makale Bilgileri
Dergi
Composites Part B: Engineering
ISSN
1359-8368
Yıl
2017
/ 7. ay
Cilt / Sayı
119
Sayfalar
114 – 124
Makale Türü
Özgün Makale
Hakemlik
Hakemli
Endeks
SCI-Expanded
JCR Quartile
Q1
Yayın Dili
İngilizce
Kapsam
Uluslararası
Toplam Yazar
5 kişi
Erişim Türü
Elektronik
Erişim Linki
Makaleye Git
Sponsor
Selçuk Üniversitesi Bilimsel Araştırma Projeleri Koordinatörlüğü (B.A.P) 11101030 nolu proje
Alan
Mühendislik Temel Alanı
Malzeme ve Metalurji Mühendisliği
Kompozit Malzemeler
YÖKSİS Yazar Kaydı
Yazar Adı
DEMİRCİ MEHMET TURAN,TARAKÇIOĞLU NECMETTİN,AVCI AHMET,AKDEMİR AHMET,DEMİRCİ İBRAHİM
YÖKSİS ID
2497039
Hızlı Erişim
Metrikler
Scopus Atıf
61
JCR Quartile
Q1
Yazar Sayısı
5