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106407

Interaction of Spinning Parameters in Rieter Air-Jet Fabric Properties.

Article

Last updated: 22 Jan 2023

Subjects

-

Tags

Textile Engineering

Abstract

The newest method of air-jet spinning is launched by Rieter. This article examines the interaction effect of various spinning process parameters such as delivery speed, yarn linear density and nozzle pressures on single Jersey knitted fabric properties. Results show that yarn linear density has the maximum effect on fabric bursting strength and abrasion resistance followed by delivery speed and nozzle pressure. Generally, fabrics made using fine counts are weak, low abrasion-resistant and their surface are smooth. Using high yarn delivery speed affected fabric bursting strength and abrasion resistance negatively. Moreover, by increasing nozzle pressure, the fabric abrasion resistance improves to a specific level then it deteriorates when nozzle pressure approaches 6 bar.

DOI

10.21608/bfemu.2020.106407

Keywords

air-jet spinning, Yarn, Fabric, Knitting, bursting force, coefficient of friction, geometric roughness

Authors

First Name

Moaaz

Last Name

Eldeeb

MiddleName

-

Affiliation

Textile Engineering Department, Faculty of Engineering, Mansoura University, Egypt

Email

eldeeb.moaaz@gmail.com

City

-

Orcid

-

First Name

Abd El Monem

Last Name

Fouda

MiddleName

Faheem

Affiliation

Textile Engineering Department, Faculty of Engineering, Mansoura University, Egypt

Email

eabdo3@gmail.com

City

-

Orcid

0000-0002-5180-4274

Volume

45

Article Issue

3

Related Issue

15732

Issue Date

2020-09-01

Receive Date

2020-03-10

Publish Date

2020-08-06

Page Start

1

Page End

5

Print ISSN

1110-0923

Online ISSN

2735-4202

Link

https://bfemu.journals.ekb.eg/article_106407.html

Detail API

https://bfemu.journals.ekb.eg/service?article_code=106407

Order

11

Type

Research Studies

Type Code

1,205

Publication Type

Journal

Publication Title

MEJ. Mansoura Engineering Journal

Publication Link

https://bfemu.journals.ekb.eg/

MainTitle

-

Details

Type

Article

Created At

22 Jan 2023