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                  <text>Journal of Naval Architecture and Marine Engineering</text>
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                <text>Islam, Mohammed</text>
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                <text>Jahra, Fatima</text>
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            <name>Date</name>
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                <text>2019-06-24</text>
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            <description>An account of the resource</description>
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                <text>This research proposes mesh and domain optimization strategies for a popular Computational Fluid Dynamics (CFD) technique to estimate the open water propulsive characteristics of fixed pitch propellers accurately and time-efficiently based on examining the effect of various mesh and computation domain parameters. It used a Reynolds-Averaged Navier-Stokes (RANS) solver to predict the propulsive performance of a fixed pitch propeller with varied meshing, simulation domain and setup parameters. The optimized mesh and domain size parameters were selected using Design of Experiments (DoE) methods enabling simulations in a limited memory and in a timely manner without compromising the accuracy of results. The predicted thrust and torque for the propeller were compared to the corresponding measurements for determining the prediction accuracy. The authors found that the optimized meshing and setup arrangements reduced the propeller opens simulation time by at least a factor of six as compared to the generally popular CFD parameter setup. In addition, the accuracy of propulsive characteristics was improved by up to 50% as compared to published simulation results. The methodologies presented in this paper can be similarly applied to other simulations such as calm water ship resistance, ship propulsion etc. to systematically derive the optimized meshing arrangement for simulations with minimal simulation time and maximum accuracy. This investigation was carried out using a commercial CFD package; however, the findings can be applied to any RANS solver.</text>
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                <text>https://www.banglajol.info/index.php/JNAME/article/view/34756</text>
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                <text>10.3329/jname.v16i1.34756</text>
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            <description>A language of the resource</description>
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              <elementText elementTextId="67777">
                <text>eng</text>
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            <description>An entity responsible for making the resource available</description>
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                <text>Association of Naval Architects and Marine Engineers</text>
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            <name>Relation</name>
            <description>A related resource</description>
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                <text>https://www.banglajol.info/index.php/JNAME/article/view/34756/31258</text>
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          <element elementId="47">
            <name>Rights</name>
            <description>Information about rights held in and over the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67780">
                <text>Copyright (c) 2019 Journal of Naval Architecture and Marine Engineering</text>
              </elementText>
            </elementTextContainer>
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          <element elementId="48">
            <name>Source</name>
            <description>A related resource from which the described resource is derived</description>
            <elementTextContainer>
              <elementText elementTextId="67781">
                <text>Journal of Naval Architecture and Marine Engineering; Vol. 16 No. 1 (2019); 1-20</text>
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              <elementText elementTextId="67782">
                <text>2070-8998</text>
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              <elementText elementTextId="67783">
                <text>1813-8535</text>
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          <element elementId="49">
            <name>Subject</name>
            <description>The topic of the resource</description>
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              <elementText elementTextId="67784">
                <text>CFD</text>
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              <elementText elementTextId="67785">
                <text>RANS methods</text>
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                <text>mesh optimization</text>
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              <elementText elementTextId="67787">
                <text>design of experiments</text>
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              <elementText elementTextId="67788">
                <text>propulsive characteristics</text>
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              <elementText elementTextId="67789">
                <text>propeller thrust and torque</text>
              </elementText>
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          </element>
          <element elementId="50">
            <name>Title</name>
            <description>A name given to the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67790">
                <text>Improving accuracy and efficiency of CFD predictions of propeller open water performance</text>
              </elementText>
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            <name>Type</name>
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              <name>Title</name>
              <description>A name given to the resource</description>
              <elementTextContainer>
                <elementText elementTextId="64218">
                  <text>Journal of Naval Architecture and Marine Engineering</text>
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          <element elementId="39">
            <name>Creator</name>
            <description>An entity primarily responsible for making the resource</description>
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              <elementText elementTextId="67793">
                <text>Xu, Yiyi</text>
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              <elementText elementTextId="67794">
                <text>Liu, Pengfei</text>
              </elementText>
              <elementText elementTextId="67795">
                <text>Penesis, Irene</text>
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              <elementText elementTextId="67796">
                <text>He, Guanghua</text>
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          <element elementId="40">
            <name>Date</name>
            <description>A point or period of time associated with an event in the lifecycle of the resource</description>
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              <elementText elementTextId="67797">
                <text>2019-12-19</text>
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            <name>Description</name>
            <description>An account of the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67798">
                <text>A computational hydrodynamics method was formulated and implemented as a tool from screw propeller propulsion to renewable energy performance prediction, design and optimization of horizontal axis turbines. As an example for tidal energy generation, a comparative analysis between screw propellers and horizontal axis turbines was presented, in terms of geometry and motion parameters, inflow velocity analysis and the implementation methodologies. Comparison and analysis are given for a marine propeller model and a horizontal axis turbine model that have experimental measurements available in literature. Analysis and comparison are presented in terms of thrust coefficients, shaft torque/power coefficients, blade surface pressure distributions, and downstream velocity profiles. The effect of number of blades from 2 to 5, of a tidal turbine on hydrodynamic efficiency is also obtained and presented. The key implementation techniques and methodologies are provided in detail for this panel method as a prediction tool for horizontal axis turbines. While the method has been proven to be accurate and robust for many propellers tested in the past, this numerical tool was also validated and presented for both tidal and wind turbines.</text>
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            <name>Format</name>
            <description>The file format, physical medium, or dimensions of the resource</description>
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              <elementText elementTextId="67799">
                <text>application/pdf</text>
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          <element elementId="43">
            <name>Identifier</name>
            <description>An unambiguous reference to the resource within a given context</description>
            <elementTextContainer>
              <elementText elementTextId="67800">
                <text>https://www.banglajol.info/index.php/JNAME/article/view/35984</text>
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              <elementText elementTextId="67801">
                <text>10.3329/jname.v16i2.35984</text>
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          <element elementId="44">
            <name>Language</name>
            <description>A language of the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67802">
                <text>eng</text>
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            <name>Publisher</name>
            <description>An entity responsible for making the resource available</description>
            <elementTextContainer>
              <elementText elementTextId="67803">
                <text>Association of Naval Architects and Marine Engineers</text>
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            <name>Relation</name>
            <description>A related resource</description>
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              <elementText elementTextId="67804">
                <text>https://www.banglajol.info/index.php/JNAME/article/view/35984/32541</text>
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          <element elementId="47">
            <name>Rights</name>
            <description>Information about rights held in and over the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67805">
                <text>Copyright (c) 2019 Journal of Naval Architecture and Marine Engineering</text>
              </elementText>
            </elementTextContainer>
          </element>
          <element elementId="48">
            <name>Source</name>
            <description>A related resource from which the described resource is derived</description>
            <elementTextContainer>
              <elementText elementTextId="67806">
                <text>Journal of Naval Architecture and Marine Engineering; Vol. 16 No. 2 (2019); 61-76</text>
              </elementText>
              <elementText elementTextId="67807">
                <text>2070-8998</text>
              </elementText>
              <elementText elementTextId="67808">
                <text>1813-8535</text>
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          <element elementId="49">
            <name>Subject</name>
            <description>The topic of the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67809">
                <text>Panel Method</text>
              </elementText>
              <elementText elementTextId="67810">
                <text>Marine propeller</text>
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              <elementText elementTextId="67811">
                <text>renewabale energy turbine</text>
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              <elementText elementTextId="67812">
                <text>aero-dynamics</text>
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              <elementText elementTextId="67813">
                <text>hydrodynamics</text>
              </elementText>
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          </element>
          <element elementId="50">
            <name>Title</name>
            <description>A name given to the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67814">
                <text>A panel method for both marine propulsion and renewable energy</text>
              </elementText>
            </elementTextContainer>
          </element>
          <element elementId="51">
            <name>Type</name>
            <description>The nature or genre of the resource</description>
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            <element elementId="50">
              <name>Title</name>
              <description>A name given to the resource</description>
              <elementTextContainer>
                <elementText elementTextId="64218">
                  <text>Journal of Naval Architecture and Marine Engineering</text>
                </elementText>
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          <element elementId="39">
            <name>Creator</name>
            <description>An entity primarily responsible for making the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67817">
                <text>Kaewkhiaw, Prachakon</text>
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          <element elementId="40">
            <name>Date</name>
            <description>A point or period of time associated with an event in the lifecycle of the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67818">
                <text>2018-12-26</text>
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          <element elementId="41">
            <name>Description</name>
            <description>An account of the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67819">
                <text>The realistic flow on each blade of the front and rear propellers with contra-rotating propellers (CRPs) are most complex because that consist the interaction forces with themselves and it affects to the actual efficiency of the propeller blades. The wake of CRPs at the gap between the front and rear propellers have influent to the variation of propeller performance for the front and rear propellers. So, this paper presented the numerical simulation of propeller performance on CRPs with steady method in the first. Second, it is applied to evaluate the propeller performance with unsteady method in time accuracy including investigating the wake on a transverse plane between the front and rear propellers and a transverse plane located downstream of the rear propeller. The wake was analyzed through velocity vector magnitude contours. The numerical simulations were conducted using the Reynolds Averaged Navier-Stokes (RANS). The calculation results have been compared the measurement data.</text>
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                <text>application/pdf</text>
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              <elementText elementTextId="67821">
                <text>https://www.banglajol.info/index.php/JNAME/article/view/36225</text>
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                <text>10.3329/jname.v15i2.36225</text>
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            <description>A language of the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67823">
                <text>eng</text>
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            <name>Publisher</name>
            <description>An entity responsible for making the resource available</description>
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              <elementText elementTextId="67824">
                <text>Association of Naval Architects and Marine Engineers</text>
              </elementText>
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          <element elementId="46">
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            <description>A related resource</description>
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              <elementText elementTextId="67825">
                <text>https://www.banglajol.info/index.php/JNAME/article/view/36225/29645</text>
              </elementText>
            </elementTextContainer>
          </element>
          <element elementId="47">
            <name>Rights</name>
            <description>Information about rights held in and over the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67826">
                <text>Copyright (c) 2018 Journal of Naval Architecture and Marine Engineering</text>
              </elementText>
            </elementTextContainer>
          </element>
          <element elementId="48">
            <name>Source</name>
            <description>A related resource from which the described resource is derived</description>
            <elementTextContainer>
              <elementText elementTextId="67827">
                <text>Journal of Naval Architecture and Marine Engineering; Vol. 15 No. 2 (2018); 91-105</text>
              </elementText>
              <elementText elementTextId="67828">
                <text>2070-8998</text>
              </elementText>
              <elementText elementTextId="67829">
                <text>1813-8535</text>
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          <element elementId="50">
            <name>Title</name>
            <description>A name given to the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67830">
                <text>CFD investigation on steady and unsteady performances of contra-rotating propellers</text>
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            <name>Type</name>
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                <text>info:eu-repo/semantics/article</text>
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            <element elementId="50">
              <name>Title</name>
              <description>A name given to the resource</description>
              <elementTextContainer>
                <elementText elementTextId="64218">
                  <text>Journal of Naval Architecture and Marine Engineering</text>
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          <element elementId="39">
            <name>Creator</name>
            <description>An entity primarily responsible for making the resource</description>
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              <elementText elementTextId="67833">
                <text>Shameem, BM</text>
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              <elementText elementTextId="67834">
                <text>Vincent, Vinod</text>
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          <element elementId="40">
            <name>Date</name>
            <description>A point or period of time associated with an event in the lifecycle of the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67835">
                <text>2018-12-30</text>
              </elementText>
            </elementTextContainer>
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          <element elementId="41">
            <name>Description</name>
            <description>An account of the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67836">
                <text>The control objective of the Rudder Roll Stabilization (RRS) system is to deploy the rudder, which is primarily a path controlling device, to reduce the roll motion without interference in heading of ship. To achieve the control of both roll and yaw motions, the only control input is the rudder angle and hence the RRS system is referred as a Single Input, Two Output (SITO) system. Rudder roll stabilization is insignificant at low forward speed of the ship, but can give significant control at higher speed when fast rudder movement is applied. This paper presents a closed loop state space model for accurate simulations on rudder roll stabilization in irregular seas considering the 3-degree of freedom motions, i.e., sway, roll and yaw. The computational model is developed to analyze the effect of the rudder movement on sway, roll and yaw in forward speed conditions in irregular sea conditions. The Sea State conditions are modelled as wave perturbation models using the method of shaping filter established by filtered white noise. The control system has been designed using optimal linear quadratic regulator (LQR) method. The control loop contains both the signal for the autopilot action to trigger the heading angle correction as well as the signal for rudder based roll motion control. The simulations are carried out with rudder roll control system ON and OFF mode to analyze the effect of the rudder on steering and motion stabilization. In both cases the autopilot is in active mode to correct deviations in the course heading. The simulations are analyzed for three different ship speeds in two different Seas State conditions with a low and fast rudder movement to show the efficacy of the model. The performance is evaluated and presented based on the RMS value. Since the rudder based roll motion stabilization may also result in unnecessary motions of sway and yaw, besides the desirable roll reduction, the result presents the sway-roll-yaw responses as applicable under the particular speed and Sea State conditions.</text>
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                <text>application/pdf</text>
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              <elementText elementTextId="67838">
                <text>https://www.banglajol.info/index.php/JNAME/article/view/36322</text>
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              <elementText elementTextId="67839">
                <text>10.3329/jname.v15i2.36322</text>
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            <description>A language of the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67840">
                <text>eng</text>
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            <name>Publisher</name>
            <description>An entity responsible for making the resource available</description>
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              <elementText elementTextId="67841">
                <text>Association of Naval Architects and Marine Engineers</text>
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                <text>https://www.banglajol.info/index.php/JNAME/article/view/36322/29747</text>
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                <text>Copyright (c) 2018 Journal of Naval Architecture and Marine Engineering</text>
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                <text>Journal of Naval Architecture and Marine Engineering; Vol. 15 No. 2 (2018); 135-151</text>
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                <text>2070-8998</text>
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                <text>This paper is about Ocean Strider; an Underwater Hybrid Vehicle that is modified with hybrid (manual and autonomous) control system. The aims concerning this Underwater Hybrid Vehicle are to be competent to operate underwater by using remote control via operator and seek out the user interested objects, and in case of autonomously to be smart, to visually follow and manage a secured position comparable to a motionless target, and to visually follow and move behind a moving target and avoid the hindrances for reliable navigation. Vision is a fundamental root that promotes the underwater robot to execute various tasks autonomously. Ocean Strider is intelligent to explicitly identify and locate objects by specifying from distinct color codes and dimension of the objects and respond accordingly. Multiple experiments have been conducted in the laboratory the robot successfully operates manually and grasp the objects underwater, and the robot can locate and track the objects autonomously, secure a fixed distance to the fixed object and travel onward with the object as it moves.&amp;nbsp; &amp;nbsp; &amp;nbsp;&amp;nbsp;</text>
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                <text>Association of Naval Architects and Marine Engineers</text>
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            <description>Information about rights held in and over the resource</description>
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              <elementText elementTextId="67862">
                <text>Copyright (c) 2018 Journal of Naval Architecture and Marine Engineering</text>
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              <elementText elementTextId="67863">
                <text>Journal of Naval Architecture and Marine Engineering; Vol. 15 No. 2 (2018); 127-134</text>
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                <text>2070-8998</text>
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                <text>Design and control of underwater hybrid vehicle capable of performing numerous tasks</text>
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                <text>Baitharu, A. P.</text>
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                <text>Sahoo, Sachidananda</text>
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                <text>Dash, G. C.</text>
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            <description>An account of the resource</description>
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              <elementText elementTextId="67873">
                <text>A study on heat and mass transfer of a steady laminar boundary layer flow of an electrically conducting fluid of second grade in a porous medium subject to a uniform magnetic field past a semi-infinite stretching sheet with power law surface temperature or power law surface heat flux. The variations in fluid velocity, fluid temperature and species concentration are displayed graphically whereas the numerical values of skin friction, Nusselt number and Sherwood number are presented in tabular form for various values of the pertinent flow parameters. The asymptotic expansions of the solutions for large Prandtl number are also given for the two heating conditions. The temperature distribution decreases with the increase in thermal radiation parameter in case of PST and PHF. The rate of mass transfer at the solid surface increases in the presence of magnetic field and decreases with heavier diffusing species. &amp;nbsp;</text>
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                <text>https://www.banglajol.info/index.php/JNAME/article/view/37777</text>
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            <description>Information about rights held in and over the resource</description>
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              <elementText elementTextId="67880">
                <text>Copyright (c) 2020 Journal of Naval Architecture and Marine Engineering</text>
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                <text>Journal of Naval Architecture and Marine Engineering; Vol. 17 No. 1 (2020); 51-66</text>
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                <text>2070-8998</text>
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                <text>1813-8535</text>
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              <elementText elementTextId="67884">
                <text>Thermal radiation</text>
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              <elementText elementTextId="67885">
                <text>MHD flow</text>
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                <text>Second grade fluid</text>
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                <text>Stretching sheet</text>
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                <text>Porous    medium</text>
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              <elementText elementTextId="67889">
                <text>chemical reaction.</text>
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            <name>Title</name>
            <description>A name given to the resource</description>
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                <text>Heat and mass transfer effect on a radiative second grade MHD flow in a porous medium over a stretching sheet</text>
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            <name>Creator</name>
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              <elementText elementTextId="67893">
                <text>Purwana, Agung</text>
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                <text>Ariana, I. Made</text>
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                <text>Wardhana, Wisnu</text>
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              <elementText elementTextId="67896">
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                <text>In this study, numerical simulations on the noise of the underwater marine propeller for different pressures, skew angles, and performance conditions are investigated. The study has been carried out for the prediction of cavity and noise cavitation characteristics of the propeller. The blade sheet cavitation created by an underwater propeller is then evaluated using numerical analysis. The cavitation and cavity around marine propellers were predicted using MRF (Multiple Reference Frame) techniques. The simulation uses the Reynolds Averaged Navier-Stokes (RANS) formulation with the turbulence model k-ω Shear Stress Transport and the Fast Fourier Transform. The FW-H equation is used to measure far-field radiation under various operating conditions. The simulation is carried out to present that the pressure and skew propeller angles have an effect on the form and area of the cavity, as well as cavitation noise. The noise characteristics at various positions of hydrophones and speeds of the marine propeller are presented. The 3D model of B-series marine propeller with D=250 mm, Z=4, P/D= 1.0, AE/AO=0.55, skew angles of 16, 35, 53, and 72 degrees at advance coefficient, J=0.221, is used for the simulation</text>
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                <text>https://www.banglajol.info/index.php/JNAME/article/view/38099</text>
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              <elementText elementTextId="67900">
                <text>10.3329/jname.v18i2.38099</text>
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                <text>eng</text>
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                <text>Association of Naval Architects and Marine Engineers</text>
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                <text>https://www.banglajol.info/index.php/JNAME/article/view/38099/39826</text>
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          <element elementId="47">
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            <elementTextContainer>
              <elementText elementTextId="67904">
                <text>Copyright (c) 2021 Journal of Naval Architecture and Marine Engineering</text>
              </elementText>
              <elementText elementTextId="67905">
                <text>http://creativecommons.org/licenses/by-nc/4.0</text>
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              <elementText elementTextId="67906">
                <text>Journal of Naval Architecture and Marine Engineering; Vol. 18 No. 2 (2021); 97-107</text>
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              <elementText elementTextId="67907">
                <text>2070-8998</text>
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                <text>1813-8535</text>
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            <name>Subject</name>
            <description>The topic of the resource</description>
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              <elementText elementTextId="67909">
                <text>Numerical</text>
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                <text>Simulation</text>
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                <text>Cavitation</text>
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                <text>Noise</text>
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                <text>Marine Skew Propeller</text>
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          <element elementId="50">
            <name>Title</name>
            <description>A name given to the resource</description>
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              <elementText elementTextId="67914">
                <text>Numerical study on the cavitation noise  of marine skew propellers</text>
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                <text>Numerical simulation</text>
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                  <text>Journal of Naval Architecture and Marine Engineering</text>
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          <element elementId="39">
            <name>Creator</name>
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              <elementText elementTextId="67918">
                <text>Boumediene, Kadda</text>
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              <elementText elementTextId="67919">
                <text>Belhenniche, Samir</text>
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                <text>Imine, Omar</text>
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                <text>Bouzit, Mohamed</text>
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              <elementText elementTextId="67922">
                <text>2019-06-24</text>
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                <text>&amp;nbsp;The objective of the current paper is to study the flow around Seiun Maru Highly Skewed (HSP) marine propeller by assessment of blade forces and moments under non-cavitating case. The calculations are performed in open water (steady case) and non-uniform ship wake (Unsteady case). The governing equations based on Reynolds Averaged Navier-Stokes Equation (RANSE) are solved using Finite Volume Method. Ansys Fluent 14.0 is used to implement the simulation. For the steady case, Moving Reference Frame (MRF) is selected while sliding mesh technique is adopted for the unsteady case. Calculated open water performances in terms of thrust and torque coefficients fit very well with experimental data for a wide range of advance ratio. In the unsteady calculations, axial velocities, deduced from the nominal wake, are introduced in the Ansys fluent code. To locate suitably the non-uniform wake in the propeller front plane, three positions of inlet wake have been taken into account to determine their effects on the accuracy of the results. Obtained results show that computed performances are improved compared to panel method when the inlet is close to the propeller.
&amp;nbsp;</text>
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                <text>https://www.banglajol.info/index.php/JNAME/article/view/38757</text>
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                <text>10.3329/jname.v16i1.38757</text>
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                <text>eng</text>
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                <text>Association of Naval Architects and Marine Engineers</text>
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          <element elementId="47">
            <name>Rights</name>
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            <elementTextContainer>
              <elementText elementTextId="67930">
                <text>Copyright (c) 2019 Journal of Naval Architecture and Marine Engineering</text>
              </elementText>
            </elementTextContainer>
          </element>
          <element elementId="48">
            <name>Source</name>
            <description>A related resource from which the described resource is derived</description>
            <elementTextContainer>
              <elementText elementTextId="67931">
                <text>Journal of Naval Architecture and Marine Engineering; Vol. 16 No. 1 (2019); 21-32</text>
              </elementText>
              <elementText elementTextId="67932">
                <text>2070-8998</text>
              </elementText>
              <elementText elementTextId="67933">
                <text>1813-8535</text>
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          <element elementId="49">
            <name>Subject</name>
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            <elementTextContainer>
              <elementText elementTextId="67934">
                <text>Seiun Maru highly skewed propeller</text>
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                <text>steady</text>
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                <text>unsteady</text>
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                <text>RANS</text>
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                <text>sliding mesh technique</text>
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              <elementText elementTextId="67939">
                <text>MRF</text>
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            <name>Title</name>
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            <elementTextContainer>
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                <text>Computational hydrodynamic analysis of a highly skewed marine propeller</text>
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              <name>Title</name>
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                  <text>Journal of Naval Architecture and Marine Engineering</text>
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          <element elementId="39">
            <name>Creator</name>
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              <elementText elementTextId="67943">
                <text>Persaud, Rudolph</text>
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              <elementText elementTextId="67944">
                <text>Li, Hao Jie</text>
              </elementText>
              <elementText elementTextId="67945">
                <text>Leng, Jian Xing</text>
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            <name>Date</name>
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                <text>2019-06-30</text>
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              <elementText elementTextId="67947">
                <text>Research vessels are commonly used on a daily basis for ocean exploration and payload handling. However, due to unpredictable wave motion on the ship and the flexibility of the cable, the heave of the ship is unavoidable and causes danger during operations, loss of payload, possible damages to expensive equipment and prolong period of downtime. A compensator system is an essential part of operations to mitigate this effect and to ensure safety, reduce down-time of operation and increase efficiency while providing longer and better duration of operation even in harsh conditions. In this article, a passive heave compensator system with cylinder, accumulator and depth compensator connected in series by pressured pipes developed for a scientific research ship with length of 68m and breath of 16m is analyzed along the coast of Guyana, South America. The payload used in this analysis is 200 ton. The working principle of the heave compensation system is described, the parameters affecting the performance of the system are simulated and analyzed using MatLab. A 3D model of the system is built using SolidWorks and schematic drawings are produced from AutoCAD. The compensation rate of the system is higher than 77% under the influence of the input wave and the system has a response of an average setting time of 18s. The point of maximum load exerted is at the splash zone. For a typical most probable extreme significant wave height, Hs= 2.3m, period T= 6s and direction μ= 45° in the operational area, the reduction in heave motion when the vessel is equipped with the heave compensator is approximately 77% compared to 47% reduction when the vessel is without a compensator. &amp;nbsp;</text>
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              <elementText elementTextId="67948">
                <text>application/pdf</text>
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            <name>Identifier</name>
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              <elementText elementTextId="67949">
                <text>https://www.banglajol.info/index.php/JNAME/article/view/39960</text>
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                <text>10.3329/jname.v16i1.39960</text>
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            <description>A language of the resource</description>
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              <elementText elementTextId="67951">
                <text>eng</text>
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                <text>Association of Naval Architects and Marine Engineers</text>
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                <text>https://www.banglajol.info/index.php/JNAME/article/view/39960/31339</text>
              </elementText>
            </elementTextContainer>
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          <element elementId="47">
            <name>Rights</name>
            <description>Information about rights held in and over the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67954">
                <text>Copyright (c) 2019 Journal of Naval Architecture and Marine Engineering</text>
              </elementText>
            </elementTextContainer>
          </element>
          <element elementId="48">
            <name>Source</name>
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            <elementTextContainer>
              <elementText elementTextId="67955">
                <text>Journal of Naval Architecture and Marine Engineering; Vol. 16 No. 1 (2019); 45-59</text>
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              <elementText elementTextId="67956">
                <text>2070-8998</text>
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              <elementText elementTextId="67957">
                <text>1813-8535</text>
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          <element elementId="49">
            <name>Subject</name>
            <description>The topic of the resource</description>
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              <elementText elementTextId="67958">
                <text>Passive heave compensator</text>
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              <elementText elementTextId="67959">
                <text>accumulator</text>
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              <elementText elementTextId="67960">
                <text>depth compensator</text>
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                <text>towed bodies</text>
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              <elementText elementTextId="67962">
                <text>numerical simulation</text>
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              <elementText elementTextId="67963">
                <text>payload handling</text>
              </elementText>
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          <element elementId="50">
            <name>Title</name>
            <description>A name given to the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67964">
                <text>Numerical simulation of a passive heave compensator for scientific research ships</text>
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            </elementTextContainer>
          </element>
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            <name>Type</name>
            <description>The nature or genre of the resource</description>
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                <text>info:eu-repo/semantics/article</text>
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  <item itemId="3308" public="1" featured="0">
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          <name>Dublin Core</name>
          <description>The Dublin Core metadata element set is common to all Omeka records, including items, files, and collections. For more information see, http://dublincore.org/documents/dces/.</description>
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            <element elementId="50">
              <name>Title</name>
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                  <text>Journal of Naval Architecture and Marine Engineering</text>
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      <elementSet elementSetId="1">
        <name>Dublin Core</name>
        <description>The Dublin Core metadata element set is common to all Omeka records, including items, files, and collections. For more information see, http://dublincore.org/documents/dces/.</description>
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          <element elementId="39">
            <name>Creator</name>
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              <elementText elementTextId="67967">
                <text>Zahan, Ishrat</text>
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              <elementText elementTextId="67968">
                <text>Nasrin, R</text>
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              <elementText elementTextId="67969">
                <text>Alim, M A</text>
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          <element elementId="40">
            <name>Date</name>
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              <elementText elementTextId="67970">
                <text>2019-12-31</text>
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          <element elementId="41">
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                <text>A numerical analysis has been conducted to show the effects of magnetohydrodynamic (MHD) and Joule heating on heat transfer phenomenon in a lid driven triangular cavity. The heat transfer fluid (HTF) has been considered as water based hybrid nanofluid composed of equal quantities of Cu and TiO2 nanoparticles. The bottom wall of the cavity is undulated in sinusoidal pattern and cooled isothermally. The left vertical wall of the cavity is heated while the inclined side is insulated. The two dimensional governing partial differential equations of heat transfer and fluid flow with appropriate boundary conditions have been solved by using Galerkin's finite element method built in COMSOL Multyphysics. The effects of Hartmann number, Joule heating, number of undulation and Richardson number on the flow structure and heat transfer characteristics have been studied in details. The values of Prandtl number and solid volume fraction of hybrid nanoparticles have been considered as fixed. Also, the code validation has been shown. The numerical results have been presented in terms of streamlines, isotherms and average Nusselt number of the hybrid nanofluid for different values of governing parameters. The comparison of heat transfer rate by using hybrid nanofluid, Cu-water nanofluid, &amp;nbsp;TiO2 -water nanofluid and clear water has been also shown. Increasing wave number from 0 to 3 enhances the heat transfer rate by 16.89%. The enhanced rate of mean Nusselt number for hybrid nanofluid is found as 4.11% compared to base fluid.</text>
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            <name>Format</name>
            <description>The file format, physical medium, or dimensions of the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67972">
                <text>application/pdf</text>
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          <element elementId="43">
            <name>Identifier</name>
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            <elementTextContainer>
              <elementText elementTextId="67973">
                <text>https://www.banglajol.info/index.php/JNAME/article/view/40585</text>
              </elementText>
              <elementText elementTextId="67974">
                <text>10.3329/jname.v16i2.40585</text>
              </elementText>
            </elementTextContainer>
          </element>
          <element elementId="44">
            <name>Language</name>
            <description>A language of the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67975">
                <text>eng</text>
              </elementText>
            </elementTextContainer>
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          <element elementId="45">
            <name>Publisher</name>
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            <elementTextContainer>
              <elementText elementTextId="67976">
                <text>Association of Naval Architects and Marine Engineers</text>
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          <element elementId="46">
            <name>Relation</name>
            <description>A related resource</description>
            <elementTextContainer>
              <elementText elementTextId="67977">
                <text>https://www.banglajol.info/index.php/JNAME/article/view/40585/32765</text>
              </elementText>
            </elementTextContainer>
          </element>
          <element elementId="47">
            <name>Rights</name>
            <description>Information about rights held in and over the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67978">
                <text>Copyright (c) 2019 Journal of Naval Architecture and Marine Engineering</text>
              </elementText>
            </elementTextContainer>
          </element>
          <element elementId="48">
            <name>Source</name>
            <description>A related resource from which the described resource is derived</description>
            <elementTextContainer>
              <elementText elementTextId="67979">
                <text>Journal of Naval Architecture and Marine Engineering; Vol. 16 No. 2 (2019); 109-126</text>
              </elementText>
              <elementText elementTextId="67980">
                <text>2070-8998</text>
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              <elementText elementTextId="67981">
                <text>1813-8535</text>
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          </element>
          <element elementId="49">
            <name>Subject</name>
            <description>The topic of the resource</description>
            <elementTextContainer>
              <elementText elementTextId="67982">
                <text>Hybrid nanofluid</text>
              </elementText>
              <elementText elementTextId="67983">
                <text>mixed convection</text>
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                <text>MHD</text>
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                <text>Joule heating</text>
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                <text>undulated cavity</text>
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              <elementText elementTextId="67987">
                <text>finite element</text>
              </elementText>
              <elementText elementTextId="67988">
                <text>method</text>
              </elementText>
              <elementText elementTextId="67989">
                <text>heat transfer</text>
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          </element>
          <element elementId="50">
            <name>Title</name>
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            <elementTextContainer>
              <elementText elementTextId="67990">
                <text>Mixed convective hybrid nanofluid flow in lid-driven undulated cavity: effect of MHD and Joule heating</text>
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                <text>info:eu-repo/semantics/article</text>
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              <elementText elementTextId="67992">
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              </elementText>
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