COPERITE-computer-aided tool for power engineering research, instruction, training and education

1992 ◽  
Vol 7 (4) ◽  
pp. 1565-1570 ◽  
Author(s):  
B.H. Chowdhury ◽  
D.E. Clark
2016 ◽  
Vol 5 (01) ◽  
pp. 4723 ◽  
Author(s):  
Bhusnure O. G.* ◽  
Gholve V. S. ◽  
Sugave B. K. ◽  
Dongre R. C. ◽  
Gore S. A. ◽  
...  

Many researchers have attempted to use computer-aided design (C.A.D) and computer-aided manufacturing (CAM) to realize a scaffold that provides a three-dimensional (3D) environment for regeneration of tissues and organs. As a result, several 3D printing technologies, including stereolithography, deposition modeling, inkjet-based printing and selective laser sintering have been developed. Because these 3D printing technologies use computers for design and fabrication, and they can fabricate 3D scaffolds as designed; as a consequence, they can be standardized. Growth of target tissues and organs requires the presence of appropriate growth factors, so fabrication of 3Dscaffold systems that release these biomolecules has been explored. A drug delivery system (D.D.S) that administrates a pharmaceutical compound to achieve a therapeutic effect in cells, animals and humans is a key technology that delivers biomolecules without side effects caused by excessive doses. 3D printing technologies and D. D. Ss have been assembled successfully, so new possibilities for improved tissue regeneration have been suggested. If the interaction between cells and scaffold system with biomolecules can be understood and controlled, and if an optimal 3D tissue regenerating environment is realized, 3D printing technologies will become an important aspect of tissue engineering research in the near future. 3D Printing promises to produce complex biomedical devices according to computer design using patient-specific anatomical data. Since its initial use as pre-surgical visualization models and tooling molds, 3D Printing has slowly evolved to create one-of-a-kind devices, implants, scaffolds for tissue engineering, diagnostic platforms, and drug delivery systems. Fuelled by the recent explosion in public interest and access to affordable printers, there is renewed interest to combine stem cells with custom 3D scaffolds for personalized regenerative medicine. Before 3D Printing can be used routinely for the regeneration of complex tissues (e.g. bone, cartilage, muscles, vessels, nerves in the craniomaxillofacial complex), and complex organs with intricate 3D microarchitecture (e.g. liver, lymphoid organs), several technological limitations must be addressed. Until recently, tablet designs had been restricted to the relatively small number of shapes that are easily achievable using traditional manufacturing methods. As 3D printing capabilities develop further, safety and regulatory concerns are addressed and the cost of the technology falls, contract manufacturers and pharmaceutical companies that experiment with these 3D printing innovations are likely to gain a competitive edge. This review compose the basics, types & techniques used, advantages and disadvantages of 3D printing


Author(s):  
Subramani Chinnamuthu ◽  
C. Vimala ◽  
A. A. Jimoh ◽  
Adedayo Ademola Yusuff

The main scope of this paper is about the applications of wavelet transform (WT) on power engineering research. This review paper deals with the summary of applications of WT to different power system problems including transmission line faults detection, power quality issues, power forecasting, power measurements and power system stability. Different types of wavelet are used for the solution of various power engineering issues, and the selection of suitable wavelet for specific problems is also discussed in this paper with the support of literature.


1982 ◽  
Vol 28 (1) ◽  
pp. 94 ◽  
Author(s):  
Milton Klein

Author(s):  
F. Galiana ◽  
G. Gross ◽  
N. Hadjsaid ◽  
N. Hatziargyriou ◽  
H. Outhred ◽  
...  

Author(s):  
Clive L. Dym ◽  
Raymond E. Levitt

AbstractLess than a decade ago it seemed that a new paradigm of engineering–called computer-aided engineering (CAE) – was emerging. This emergence was driven in part by the success of computer support for the tasks of engineering analysis and in part by a new understanding of how computational ideas largely rooted in artificial intelligence (AI) could perhaps improve the practice of engineering, especially in the area of design synthesis. However, while this “revolution” has failed to take root or flourish as a separate discipline, it has spawned research that is very different from traditional engineering research. To the extent that such CAE research is different in style and paradigm, it must also be evaluated according to different metrics. Some of the metrics that can be used are suggested, and some of the evaluation issues that remain as open questions are pointed out.


2002 ◽  
Vol 39 (2) ◽  
pp. 100-109 ◽  
Author(s):  
Leena Korpinen ◽  
Ilpo Havunen ◽  
Sampsa Kuusiluoma

Computer-aided instruction has been under development for several years in the Department of Electrical Engineering at Tampere University of Technology. The aim of this study is to develop interactive WWW-based calculation exercises for the course ‘Introduction to Power Engineering’. After the course, an inquiry was carried out. This inquiry showed that the self-study WWW program is useful, and similar programs may be developed.


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