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    <title>DSpace Community:</title>
    <link>http://210.212.227.212:8080/xmlui/handle/123456789/153</link>
    <description />
    <pubDate>Wed, 27 May 2026 20:58:01 GMT</pubDate>
    <dc:date>2026-05-27T20:58:01Z</dc:date>
    <item>
      <title>PERFORMANCE BASED DESIGN OF CIRCULAR SCRAP  TYRE PAD ISOLATOR BY MACHINE LEARNING</title>
      <link>http://210.212.227.212:8080/xmlui/handle/123456789/529</link>
      <description>Title: PERFORMANCE BASED DESIGN OF CIRCULAR SCRAP  TYRE PAD ISOLATOR BY MACHINE LEARNING
Authors: Anandhakrishnan, M; Asif, Basheer
Abstract: Base isolation systems have conventionally been used to mitigate the major impacts of &#xD;
earthquakes on the structures and attenuate their seismic responses. The scrap tyre pads&#xD;
are proven to be a material that resists vibrations. The optimal design of the base isolator &#xD;
has a vital role in the performance of a structure in response to an earthquake. Machine &#xD;
learning (ML) methods have been widely applied to predict the outputs of various &#xD;
problems in the structural engineering field. This study focuses on the development of a &#xD;
Machine Learning (ML)-based approach to predict the design of a base isolation system. &#xD;
The base isolator used in the present work is the Scrap Tyre Pad (STP) in a circular &#xD;
configuration. Conventionally, alternate layers of rubber bonded with steel reinforcement &#xD;
are used as isolators. As scrap tires consist of steel reinforcement inside the rubber itself, &#xD;
it can be considered as a cost-effective method. The presence of steel provides substantial &#xD;
vertical stiffness and rubber imparts horizontal flexibility. The eco-friendly Scrap Tyre &#xD;
Pads (STPs) provide several advantages such as low cost, ease of handling, and shear &#xD;
stiffness adjustments. In the present study, experimental evaluation of Circular Scrap Tyre &#xD;
Pads (CSTPs) under compression and cyclic loading is done in different configurations &#xD;
to analyse the structural behaviour of CSTPs as a base isolator. The damper properties &#xD;
obtained from the experiment are numerically analysed using non-linear time history &#xD;
analysis in ETABS to assess the isolator’s performance subjected to seismic loading on &#xD;
masonry structures. The data from the numerical evaluation is stored in Machine Learning &#xD;
(ML) database and the ML algorithm is trained to predict the design characteristics of the &#xD;
base isolator for a given structure. The performance of ML algorithms is validated using &#xD;
statistical metrics.</description>
      <pubDate>Mon, 01 May 2023 00:00:00 GMT</pubDate>
      <guid isPermaLink="false">http://210.212.227.212:8080/xmlui/handle/123456789/529</guid>
      <dc:date>2023-05-01T00:00:00Z</dc:date>
    </item>
    <item>
      <title>STUDY OF FLEXURAL BEHAVIOUR OF ECC  FERROCEMENT I-BEAM</title>
      <link>http://210.212.227.212:8080/xmlui/handle/123456789/528</link>
      <description>Title: STUDY OF FLEXURAL BEHAVIOUR OF ECC  FERROCEMENT I-BEAM
Authors: Ajmal, S N; Mohammed, Thowsif
Abstract: Due to its poor crack width control, limited flexural behaviour, delamination of mortar, &#xD;
etc., the use of ferrocement as a structural element is restricted. Utilizing ferrocement in &#xD;
construction will assist reduce the overall weight of the building, hence lowering its &#xD;
inertia. The key benefit is that using ferrocement can lower the overall cost of building, &#xD;
as material costs, labour costs, and storage costs make up the majority of the entire cost. &#xD;
In this study, I-beams made of ferrocement are cast, their flexural properties are &#xD;
evaluated, and it is determined whether they are a good alternative to traditional beams &#xD;
for use in residential building construction. Ferrocement I-beams made of standard mortar &#xD;
mix have been cast and tested; a second group of I-beams casted using Engineering &#xD;
Cementitious Composites (ECC) instead of standard mortar mix, and the difference in &#xD;
behaviour will be examined. ECC ferrocement I-beam showed better load carrying &#xD;
capacity, crack resistance, energy absorption and ductility index</description>
      <pubDate>Sat, 01 Jul 2023 00:00:00 GMT</pubDate>
      <guid isPermaLink="false">http://210.212.227.212:8080/xmlui/handle/123456789/528</guid>
      <dc:date>2023-07-01T00:00:00Z</dc:date>
    </item>
    <item>
      <title>ANALYSIS OF PUNCHING SHEAR STRENGTH OF  REINFORCED LIGHTWEIGHT CONCRETE FLAT SLAB  STRENGTHENED BY GFRP</title>
      <link>http://210.212.227.212:8080/xmlui/handle/123456789/527</link>
      <description>Title: ANALYSIS OF PUNCHING SHEAR STRENGTH OF  REINFORCED LIGHTWEIGHT CONCRETE FLAT SLAB  STRENGTHENED BY GFRP
Authors: Anjali, V; Hazeena, R
Abstract: Flat slab structural systems are frequently used in various construction scenarios, such as &#xD;
multistorey buildings, bridges, parking garages, and foundation engineering, for their great&#xD;
economical superiority and ease of construction. The slab-column connection problem may be &#xD;
effectively solved by reducing the weight of RC slabs. The introduction of the reinforced &#xD;
lightweight concrete flat slab is helpful in decreasing the weight of the RC flat slabs which &#xD;
thereby solves the slab column connection problem. Punching shear is a failure mechanism in &#xD;
structural components like slabs and foundations when subjected to concentrated force and it &#xD;
occurs at column support points in flat slabs. FRP system is used, to strengthen LWC slabs &#xD;
subjected to punching shear with some advantages such as corrosion resistance, extraordinary &#xD;
tensile strength, low density, and high strength-to-weight ratio. The influence of GFRP on the &#xD;
punching shear strength of lightweight concrete slabs is examined in this study. Glass fibers&#xD;
possess exceptional characteristics equal to or better than steel in certain forms. Low thermal &#xD;
conductivity, high strength, good electrical insulator, elasticity, incombustible, stiffness, and &#xD;
protection from chemical injury are the distinct properties provided by GFRPs. In this study, &#xD;
numerical analysis of LWC slab strengthening using a GFRP strip was investigated. The &#xD;
difference in punching shear capacity using different orientations, locations, widths and fiber &#xD;
orientations is tested. Evaluations are carried out in terms of punching shear capacity, energy &#xD;
absorption and ductility factor. The numerical analysis found that the strengthened slab &#xD;
improved punching shear capacity as compared to the normal LWC slab. The punching shear &#xD;
strength increases when the strip is placed in the diagonal direction, increasing the number of &#xD;
strips and placing the strip at an offset distance from the loading surface.</description>
      <pubDate>Wed, 12 Jul 2023 00:00:00 GMT</pubDate>
      <guid isPermaLink="false">http://210.212.227.212:8080/xmlui/handle/123456789/527</guid>
      <dc:date>2023-07-12T00:00:00Z</dc:date>
    </item>
    <item>
      <title>NUMERICAL STUDY ON THE BEHAVIOUR OF CFRP AND  BFRP STRENGTHENED RC BEAM-COLUMN JOINT WITH  BEAM OPENING UNDER CYCLIC LOADING</title>
      <link>http://210.212.227.212:8080/xmlui/handle/123456789/526</link>
      <description>Title: NUMERICAL STUDY ON THE BEHAVIOUR OF CFRP AND  BFRP STRENGTHENED RC BEAM-COLUMN JOINT WITH  BEAM OPENING UNDER CYCLIC LOADING
Authors: Ashok, S; Rekha, Ambi
Abstract: Beam-column joint is the most important part of any framed building structure. In many &#xD;
cases due to mechanical, electrical and plumbing needs openings are made in beam &#xD;
column joint at transverse beam section. Many times, these openings are made without &#xD;
checking the strength requirement of joint. Presence of these opening may cause &#xD;
detrimental effect on structure especially considering the effect of seismic loads. Which &#xD;
brings in the requirement of strengthening of the beam-column joint to prevent premature &#xD;
failure resulting in endangering the life of people and structure. The various strengthening &#xD;
techniques used of discussion are; fibre reinforced polymer (FRP) composites, &#xD;
Ferrocement, Steel plate etc. The purpose of this study the efficiency of retrofitting beam column junctions with transverse beam opening a with Carbon Fiber Reinforced Polymer &#xD;
(CFRP) and Basalt Fiber Reinforced Polymer (BFRP). Analysis can be done numerically &#xD;
to assess the performance of the original and improved joint models using nonlinear finite&#xD;
element analysis. The performance has been investigated in terms of load carrying &#xD;
capacity, deflection, failure pattern and displacement ductility. The parameters of study &#xD;
include; Size, shape, distance of opening from joint and thickness of FRP used.</description>
      <pubDate>Wed, 12 Jul 2023 00:00:00 GMT</pubDate>
      <guid isPermaLink="false">http://210.212.227.212:8080/xmlui/handle/123456789/526</guid>
      <dc:date>2023-07-12T00:00:00Z</dc:date>
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