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&#x627;&#x644;&#x62A;&#x634;&#x642;&#x642;&#x627;&#x62A; &#x648;&#x627;&#x644;&#x639;&#x64A;&#x648;&#x628; &#x627;&#x644;&#x62A;&#x64A; &#x62A;&#x62A;&#x643;&#x648;&#x646; &#x639;&#x644;&#x649; &#x633;&#x637;&#x62D; &#x627;&#x644;&#x645;&#x648;&#x627;&#x62F; &#x627;&#x644;&#x628;&#x648;&#x644;&#x64A;&#x645;&#x64A;&#x631;&#x64A;&#x629;.</description><description lang="en-US">Friction stir processing (FSP) is a promising technique to improve the mechanical properties of the polymer blends surface with retainment of bulk properties, in this work an attempt was done to add different ratios of polypropylene (PP), styrene acrylonitrile (SAN) and polyvinyl chloride (PVC) as a second material to the matrix plate high density polyethylene (HDPE). Mechanical properties were estimated for hardness and tensile tests were carried out to assess the performance of friction stir processed to prepared the binary polymers blends (HDPE: PP), (HDPE: SAN) and (HDPE: PVC) at depth 3 mm from the surface of (HDPE) plate. The results of the tests showed that the best values of the tensile strength, young modulus and hardness, it was obtained when adding the ratio of (15%) of the (PVC) to matrix (HDPE). The friction stir processing technique was successfully used to improve the mechanical properties of polymer surface. In view of the foregoing, it can be concluded that the friction stir processing technique, can be utilizing to repair the cracks and imperfections that are formed in polymeric materials.</description><publisher lang="en-US">University of Babylon</publisher><date>2018-03-12</date><type>Journal:Article</type><type>Other:info:eu-repo/semantics/publishedVersion</type><type>Journal:Article</type><type>File:application/pdf</type><identifier>https://www.journalofbabylon.com/index.php/JUBES/article/view/1042</identifier><source lang="ar-IQ">&#x645;&#x62C;&#x644;&#x629; &#x62C;&#x627;&#x645;&#x639;&#x629; &#x628;&#x627;&#x628;&#x644; &#x644;&#x644;&#x639;&#x644;&#x648;&#x645; &#x627;&#x644;&#x647;&#x646;&#x62F;&#x633;&#x64A;&#x629;; &#x645;&#x62C;&#x644;&#x62F; 26 &#x639;&#x62F;&#x62F; 5 (2018); 362 - 370</source><source lang="en-US">Journal of University of Babylon for Engineering Sciences; Vol. 26 No. 5 (2018); 362 - 370</source><source>2616-9916</source><source>2616-9916</source><language>eng</language><relation>https://www.journalofbabylon.com/index.php/JUBES/article/view/1042/798</relation><rights lang="en-US">Copyright (c) 2018 Journal of University of Babylon</rights><rights lang="en-US">https://www.journalofbabylon.com/index.php/JUB/navigationMenu/view/CopyrightandLicensing</rights><recordID>article-1042</recordID></dc>
language eng
format Journal:Article
Journal
Other:info:eu-repo/semantics/publishedVersion
Other
File:application/pdf
File
Journal:Journal
author Oleiwi, Jawad Kadhim
Salih, Sihama I.
Alkhidhir, Sajid Abd
title Study Some Mechanical Properties of Binary Polymer Blends Fabricated by Friction Stir Processing
publisher University of Babylon
publishDate 2018
topic Binary polymers blends
Friction Stir Processing (FSP)
Tensile strength
Hardness
الخلائط البوليميرية الثنائية
عملية الاحتكاك والخلط
مقاومة الشد، الصلادة
url https://www.journalofbabylon.com/index.php/JUBES/article/view/1042
https://www.journalofbabylon.com/index.php/JUBES/article/view/1042/798
contents تعتبر طريقة الاحتكاك والخلط تقنية واعدة لتحسين الخواص الميكانيكية لسطح الخلائط البوليميرية مع الاحتفاظ بخواص باقي الجسم، في هذا العمل جرت محاولة لإضافة نسب مختلفة من البولي بروبلين، ستيرين أكريلونيتريل والبولي فينيل كلوريد كمادة ثانية إلى البولي اثيلين عالي الكثافة (كمادة اساس). تم أجراء الاختبارات الميكانيكية (الصلادة والشد) لتقييم أداء عملية الاحتكاك والخلط لتحضير الخلائط البوليميرية الثنائية: (البولي اثيلين عالي الكثافة: بولي فينيل كلوريد)، (البولي اثيلين عالي الكثافة: ستيرين أكريلونيتريل) و (البولي اثيلين عالي الكثافة: بولي بروبلين) على عمق 3 مم من سطح (البولي اثيلين عالي الكثافة). أظهرت نتائج الاختبارات أن أفضل قيم للصلادة ومقاومة الشد تم الحصول عليها عند إضافة نسبة (15٪) من (البولي فينيل كلوريد) إلى المادة الاساس (البولي اثيلين عالي الكثافة).&nbsp; في ضوء ما سبق، يمكن الاستنتاج أن تقنية الاحتكاك والخلط، يمكن أن تستخدم لإصلاح التشققات والعيوب التي تتكون على سطح المواد البوليميرية.
Friction stir processing (FSP) is a promising technique to improve the mechanical properties of the polymer blends surface with retainment of bulk properties, in this work an attempt was done to add different ratios of polypropylene (PP), styrene acrylonitrile (SAN) and polyvinyl chloride (PVC) as a second material to the matrix plate high density polyethylene (HDPE). Mechanical properties were estimated for hardness and tensile tests were carried out to assess the performance of friction stir processed to prepared the binary polymers blends (HDPE: PP), (HDPE: SAN) and (HDPE: PVC) at depth 3 mm from the surface of (HDPE) plate. The results of the tests showed that the best values of the tensile strength, young modulus and hardness, it was obtained when adding the ratio of (15%) of the (PVC) to matrix (HDPE). The friction stir processing technique was successfully used to improve the mechanical properties of polymer surface. In view of the foregoing, it can be concluded that the friction stir processing technique, can be utilizing to repair the cracks and imperfections that are formed in polymeric materials.
id IOS7627.article-1042
institution UNIVERSITY OF BABYLON
institution_id 3415
institution_type library:university
library
library Journals of University of Babylon
library_id 2672
collection Journal of University of Babylon for Engineering Sciences Journal of University of Babylon for Engineering Sciences
repository_id 7627
subject_area Electrical Engineering
Mechanical Engineering
Material Engineering and Chemical Engineering
Civil Engineering and Architectural Engineering
city Hilla, Babil
province INTERNASIONAL
repoId IOS7627
first_indexed 2020-03-24T13:37:09Z
last_indexed 2020-03-24T13:42:50Z
recordtype dc
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