Department of Mechanical Engineering and Materials Science and Engineering

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Department of Mechanical Engineering and Materials Science and Engineering
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Candidate Students General Information History What is ME and MSE? Vision and Objectives Acquired Skills and Employment Opportunities Mechanical Engineering (ME) and Materials Science and Engineering (MSE) are among the broadest engineering disciplines; the objectives of these fields are to utilize the scientific principles of physics, mathematics, chemistry and biology for the analysis, design, development, optimization, and production of components, machines, processes and systems. The profile of the engineering field has changed so dramatically over the years that it is no longer an easy task to define a “typical” mechanical engineer. Indeed, the level of education afforded to the mechanical engineer of today permits him or her to work in diverse areas ranging from research, design, development, consulting, fabrication, processing, testing, and characterization to operation, planning, marketing, sales and management. In fact, as they mature professionally, many mechanical engineers move from the more technical environment of design and development to the more business-oriented environment of operations, sales and management. Thus, it is perhaps more appropriate to talk about a typical career path rather than a typical mechanical engineer. In recognition of the diversity of the mechanical engineering discipline, the Department of Mechanical Engineering and Materials Science and Engineering aims to foster the appropriate learning environment for its students that will allow them to meet their educational aspirations and pursue their career goals in Cyprus. The single feature that characterises and distinguishes engineers from other professionals is design, and that could entail design of machinery (Mechanical Engineering), design of major highways (Civil Engineering), design of electronic materials/devices and systems (Materials Engineering and Electrical Engineering), and many others. In order for design to have practical significance, however, it must culminate in the production or fabrication of a device, structure or system. Fabrication of any product, however, requires the selection of the appropriate materials. In fact, materials selection is so important from both engineering and economic perspectives that it constitutes an integral and often the most important component of engineering design. If one also takes into account the fact that the rapid technological advancements of recent years have brought into the forefront novel materials like composite and smart materials that allow the design of materials with enhanced properties and characteristics, then one appreciates that the term “modern mechanical engineering design” entails the design of not only a product or a structure but also the material itself. Thus, it is logical that a Department that combines the fields of Mechanical Engineering and Materials Science and Engineering will be able to arm its graduates with the necessary tools to effect complete engineering design beginning with the preliminary stages of design of not only the product or structure but also of the appropriate material and culminating in the last stages of production. In our Department therefore, integrated with the field of Mechanical Engineering is the field of Materials Science and Engineering. Materials Science and Engineering is an interdisciplinary field that has only recently come into the forefront of technology. The stature of the field has grown from that of a support field to that of an independent engineering discipline when it became evident that the activities in various materials categories such as metals, ceramics and polymers have a lot of common features among them involving both their processing and experimental characterization techniques as well as the micromechanical (numerical and analytical) methodologies for the assessment of their properties. Materials Science and Engineering, therefore, has emerged from the integration of these activities. Materials Science and Engineering may be defined as the field of study of the structure and properties of different materials that has the objective of appreciating the relationships between the structural characteristics, processing techniques, and properties of a certain product. Materials Science and Engineering is the utilization of the accumulated knowledgebase for the purpose of effecting specific design, synthesis, control and modification of appropriate materials for engineering and general technological applications. The interdisciplinary nature of the field has its foundations in the fact that one needs to appreciate both the underlying scientific foundations of the pertinent materials – beginning from their fundamental building blocks at the nanoscopic level to their macroscopic behaviour – as well as the specific mechanics characterising their applications. Thus, it is a very broad field attracting scientists and engineers that come from a wide range of educational and research backgrounds such as Physics, Chemistry, Biology, and Engineering. Moreover, it has been observed that, in the recent years, many leading Universities throughout the world are offering both undergraduate and graduate degrees in Materials Science and Engineering. This trend will continue as more countries realise the importance of the field in the achievement of innovative and ambitious technological goals.

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Publisher:  Elsevier

Results 81-100 of 193 (Search time: 0.004 seconds).

Issue DateTitleAuthor(s)
81Jan-2013Geothermal properties of the ground in Cyprus and their effect on the efficiency of ground coupled heat pumpsFlorides, Georgios A. ; Pouloupatis, Panayiotis ; Kalogirou, Soteris A. ; Messaritis, Vassilios ; Panayides, Ioannis ; Zomeni, Zomenia ; Partasides, George ; Lizides, Andreas ; Sophocleous, Eleni ; Koutsoumpas, Kostas 
82Feb-2009Global warming and carbon dioxide through sciencesFlorides, Georgios A. ; Christodoulides, Paul 
831-Feb-2011Gravure printing for three subsequent solar cell layers of inverted structures on flexible substratesVoigt, Monika M. ; MacKenzie, Roderick C. I. ; Yau, Chin P. ; Atienzar, Pedro ; Dane, Justin ; Keivanidis, Panagiotis E. ; Bradley, Donal D.C. ; Nelson, Jenny 
84Nov-2017Heat transfer and sensitivity analysis in a double pipe heat exchanger filled with porous mediumMilani Shirvan, Kamel ; Mirzakhanlari, Soroush ; Kalogirou, Soteris A. ; Öztop, Hakan F. ; Mamourian, Mojtaba 
85Jul-2019Households with Fibre Reinforced Composite BIPV modules in Southern Europe under Net Metering SchemeKyritsis, Anastasios Ch ; Roman, Eduardo ; Kalogirou, Soteris A. ; Nikoletatos, J. ; Agathokleous, Rafaela ; Mathas, E. ; Tselepis, Stathis 
861-Mar-2023Hydrogen generation by soluble CO reaction with zero-valent iron or scrap iron and the role of weak acids for controlling FeCO formationConstantinou, Despina ; Samanides, Charis G. ; Koutsokeras, Loukas E. ; Constantinides, Georgios ; Vyrides, Ioannis 
87Dec-2017The impact of the implementation of the European Energy Performance of buildings directive on the European building stock: the case of the Cyprus land development corporationFokaides, Paris A. ; Polycarpou, Kyriacos ; Kalogirou, Soteris A. 
8815-Nov-2018Improvement of passive behaviour of existing buildings through the integration of active solar energy systemsVassiliades, Constantinos ; Michael, Aimilios ; Savvides, Andreas L. ; Kalogirou, Soteris A. 
8915-Mar-2016In memory of professor MILORAD BOJICLior, Noam ; Kalogirou, Soteris A. 
90Jul-2009Influence of side chain symmetry on the performance of poly(2,5-dialkoxy-p-phenylenevinylene): fullerene blend solar cellsTuladhar, Sachetan M. ; Sims, Marc ; Choulis, Stelios A. ; Nielsen, Christian B. ; George, Wayne N. ; Steinke, Joachim H.G. ; Bradley, Donal D.C. ; Nelson, Jenny 
91Dec-2014Infrared thermography (IRT) applications for building diagnostics: A reviewKylili, Angeliki ; Fokaides, Paris A. ; Christou, Petros M. ; Kalogirou, Soteris A. 
92Nov-2014Inkjet printing processing conditions for bulk-heterojunction solar cells using two high-performing conjugated polymer donorsHermerschmidt, Felix ; Papagiorgis, Paris ; Savva, Achilleas ; Christodoulou, Constantinos ; Itskos, Grigorios ; Choulis, Stelios A. 
93Mar-2014Intelligent maximum power point trackers for photovoltaic applications using FPGA chip: A comparative studyChekired, F. ; Mellit, Adel ; Kalogirou, Soteris A. ; Larbes, Cherif 
941-Nov-2014Investigating electrodes degradation in organic photovoltaics through reverse engineering under accelerated humidity lifetime conditionsDrakonakis, Vasileios M. ; Savva, Achilleas ; Kokonou, Maria ; Choulis, Stelios A. 
95Jun-2021An investigation on the environmental impact of various Ground Heat Exchangers configurationsAresti, Lazaros ; Christodoulides, Paul ; Florides, Georgios A. 
961-Sep-2023Laser powder bed fusion of 316L stainless steel with 2 wt.% nanosized SiO2 additives: Powder processing and consolidationStylianou, Rafael ; Evangelou, Angelos ; Loizou, Alexandros ; Kim, Donghyuk ; Wharton, Julian ; Koutsokeras, Loukas E. ; Constantinides, Georgios ; Delimitis, Andreas ; Kyratsi, Theodora 
97Dec-2020Latest progress in Sustainable Development using renewable energy technologyØstergaard, Poul Alberg ; Duic, Neven ; Noorollahi, Younes ; Kalogirou, Soteris A. 
98Mar-2014Legislation driven scenarios based on recent construction advancements towards the achievement of nearly zero energy dwellings in the southern European country of CyprusFokaides, Paris A. ; Christoforou, Elias A. ; Kalogirou, Soteris A. 
99May-2017Machine learning methods for solar radiation forecasting: A reviewVoyant, Cyril ; Notton, Gilles ; Kalogirou, Soteris A. ; Nivet, Marie Laure ; Paoli, Christophe ; Motte, Fabrice ; Fouilloy, Alexis 
100Jul-2021Machine learning technology in biodiesel research: A reviewAghbashlo, Mortaza ; Peng, Wanxi ; Tabatabaei, Meisam ; Kalogirou, Soteris A. ; Soltanian, Salman ; Hosseinzadeh-Bandbafha, Homa ; Mahian, Omid ; Lam, Su Shiung