<?xml version="1.0" encoding="UTF-8"?><feed xmlns="http://www.w3.org/2005/Atom" xmlns:dc="http://purl.org/dc/elements/1.1/">
<title>Journal Articles</title>
<link href="http://210.212.227.212:8080/xmlui/handle/123456789/121" rel="alternate"/>
<subtitle>This collection includes Journal Articles published by Faculty of Mechanical Engineering</subtitle>
<id>http://210.212.227.212:8080/xmlui/handle/123456789/121</id>
<updated>2026-05-17T00:01:39Z</updated>
<dc:date>2026-05-17T00:01:39Z</dc:date>
<entry>
<title>Chitosan-reinforced nitrile rubber – a step towards sustainable development</title>
<link href="http://210.212.227.212:8080/xmlui/handle/123456789/130" rel="alternate"/>
<author>
<name>Mubarak, Ali</name>
</author>
<id>http://210.212.227.212:8080/xmlui/handle/123456789/130</id>
<updated>2022-03-22T11:15:12Z</updated>
<published>2021-10-20T00:00:00Z</published>
<summary type="text">Chitosan-reinforced nitrile rubber – a step towards sustainable development
Mubarak, Ali
This work aims to investigate the effect of chitosan powders on the mechanical, morphological&#13;
and thermal behaviour of nitrile rubber (NBR). The chitosan content has been varied between 0&#13;
and 15 phr. NBR was initially loaded with chitosan using a two-roll mixing mill along with&#13;
compounding agents and then cured by compression moulding using accelerated sulphur&#13;
vulcanisation strategy. The results indicate that the mechanical properties of NBR increase at&#13;
a critical loading of chitosan (12 phr). A new Chitosan Efficacy Index has been proposed to&#13;
understand the effect of chitosan loading on overall mechanical properties. Morphological&#13;
examinations by using scanning electron microscopy pointed towards the presence of voids&#13;
and discontinuities within the fractured surfaces of the composites. Thermogravimetric&#13;
analysis and water absorption studies have also been carried out to complement the results&#13;
from the investigation of mechanical properties.
</summary>
<dc:date>2021-10-20T00:00:00Z</dc:date>
</entry>
<entry>
<title>Numerical investigations of thermal performance enhancement in phase change energy storage system effective for solar adsorption cooling systems</title>
<link href="http://210.212.227.212:8080/xmlui/handle/123456789/122" rel="alternate"/>
<author>
<name>Baiju, V</name>
</author>
<author>
<name>Faras, Junaid P</name>
</author>
<id>http://210.212.227.212:8080/xmlui/handle/123456789/122</id>
<updated>2022-03-07T06:32:23Z</updated>
<published>2021-12-06T00:00:00Z</published>
<summary type="text">Numerical investigations of thermal performance enhancement in phase change energy storage system effective for solar adsorption cooling systems
Baiju, V; Faras, Junaid P
Solar cooling systems requires an uninterrupted heat input for their continued operation. Thermal energy storage systems using phase change material (PCM) has the ability to deliver heat near isothermally and are effective for solar cooling applications. But these high energy dense storage systems exhibits poor thermal performance due to the low thermal conductivity of PCMs and are bulky. The main objective of this study is to design a phase change energy storage system (PCES) unit with different fin configurations, and to select a proper PCM for solar adsorption cooling systems (SAC). It projects the Preference Selection Index (PSI) method as the effective way to select the PCMs, and the result suggests the commercial PCM SavE-HS89 as a potential candidate among the different materials considered. This study also numerically investigates the thermal performance of different fins shapes, namely, positively tapered, negatively tapered and straight fins; among these the negatively tapered fins are found to be capable of compensating the slow melting process at the bottom region of the storage unit. It has been found that the negatively tapered fin improves the thermal performance of the PCES unit by reducing the melting time by up to 13% and 36% in comparison with the conventional straight fin and positively tapered fin, respectively. A case study of actual plant data of a SAC with different fin shapes shows that the storage system with the desirable configuration can save up to 46% of heat storage cost as compared to PCES without fin.
</summary>
<dc:date>2021-12-06T00:00:00Z</dc:date>
</entry>
</feed>
