Scopus Eşleşmesi Bulundu
27
Atıf
50
Cilt
3445-3456
Sayfa
Özet
The objective of this study is to examine the mechanical, thermal, and physical properties of industrially produced nano-CaCO3 filled high-density polyethylene nanocomposites. For this purpose, 1.0, 3.0, 5.0, 10.0, and 15.0 wt.% loading of nano-CaCO3 filled high-density polyethylene nanocomposites were prepared by the melt mixing method using a compounder system, which consist of industrial banbury mixer, single screw extruder, and granule cutting. The effect of nano-CaCO3 on mechanical, thermal, and physical properties of nano-CaCO3/HDPE nanocomposites was investigated. As a result of all experiments, the tensile strength of nano-CaCO3 filled high-density polyethylene nanocomposite increased about 5% with addition of 1.0 wt.% nano-CaCO3. But did not increase further as more nano-CaCO3 was added. The flexural strength of nano-CaCO3 filled high-density polyethylene nanocomposite increased about 4.5% with addition of 15.0 wt.% nano-CaCO3.Then increased slightly as the nano-CaCO3 content increased to 15.0 wt.%. The tensile and flexural modulus of high-density polyethylene were significantly improved after (from 1.0 wt.% up to 15.0 wt.%) addition of nano-CaCO3. The tensile elongation at break and shore D hardness was consistently decreased with the addition of nano-CaCO3. The nano-CaCO3 filled high-density polyethylene nanocomposites were determined to have lower impact energy level than neat high-density polyethylene. The occurred fracture areas with the impact were detected by scanning electron microscopy examination. It is understood that fracture surface morphology changes when nano-CaCO3 ratio increases. The fracture surface changes were examined to determine the fracture mechanism of nano-CaCO3 filled high-density polyethylene nanocomposites. Density, melting flow index, differential scanning colorimetry, and vicat softening temperature were used to characterize the physical and thermal properties of the nanocomposites. The X-ray diffraction, the fourier transform infrared spectrophotometry, the transmission electron microscopy, and the scanning electron microscopy were used to analyze the structural characteristics of the nanocomposites. It is concluded that the addition of the nano-CaCO3 in high-density polyethylene has significantly influenced the mechanical, thermal, and physical properties of the nanocomposites.
Web of Science Eşleşmesi Bulundu
26
WoS Atıf
50
Cilt
Article
Belge Türü
Kaynak: JOURNAL OF COMPOSITE MATERIALS
· s. 3445-3456
Anahtar Kelimeler (WoS)
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Scimago Dergi Bilgisi
Otomatik ISSN Eşleştirmesi
2016 yılı verileri
Journal of Composite Materials
Q2
SJR Quartile
0,528
SJR Skoru
115
H-Index
Kategoriler: Ceramics and Composites (Q2) · Materials Chemistry (Q2) · Mechanical Engineering (Q2) · Mechanics of Materials (Q2)
Alanlar: Engineering · Materials Science
Ülke: United Kingdom
· SAGE Publications Ltd
Bu bilgiler makale yılına göre Scimago veritabanından ISSN eşleştirmesiyle otomatik getirilmektedir.
Dergi sıralama verileri Scimago'nun ilgili yılı baz alınmaktadır.
Anahtar Kelimeler
Nano-CaCO3
tensile properties
high-density polyethylene
nanocomposite
flexural properties
charpy impact test
melt mixing method
industrial-scale
thermal properties
physical properties
WoS |
Bir kelimeye tıklayıp ilgili kaynaktaki yayınları görün.
Makale Bilgileri
Dergi
Journal of Composite Materials
ISSN
0021-9983
Yıl
2016
/ 10. ay
Cilt / Sayı
50
/ 24
Sayfalar
3445 – 3456
Makale Türü
Özgün Makale
Hakemlik
Hakemli
Endeks
SCI-Expanded
JCR Quartile
Q3
Yayın Dili
İngilizce
Kapsam
Uluslararası
Toplam Yazar
3 kişi
Erişim Türü
Elektronik
Sponsor
Selçuk Üniveristesi Bilimsel Araştırmalar Proje Koordinatörlüğü
Alan
Mühendislik Temel Alanı
Malzeme ve Metalurji Mühendisliği
Polimerik Malzemeler
Polimer Teknolojisi
Kompozit Malzemeler
YÖKSİS Yazar Kaydı
Yazar Adı
SEPET HARUN,TARAKÇIOĞLU NECMETTİN,MISRA RDK
YÖKSİS ID
853539