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2014 | 23 | 3 |

Tytuł artykułu

Thermo-vision analysis of iron foundry production process concerning secondary usage of heat

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Increasing demand for energy and the shrinking of natural resources necessary for its production have led to the introduction of a wide range of activities and research about saving energy and using alternative sources. The industry in which such research is sensible is the founding industry, an industry of high energy demand. Energy use includes melting, heating, and keeping constant temperature of liquid metal, cooling the cast, and ventilation. At present it seems justified to regain the energy lost during the foundry process. However, before such research starts it is vital to establish the areas of greatest heat emission during the production process in the foundry. One way of getting such data is to use a thermo-vision camera.

Wydawca

-

Rocznik

Tom

23

Numer

3

Opis fizyczny

p.1017-1023,fig.,ref.

Twórcy

  • Faculty of Mechanical Engineering and Robotics, AGH University of Science and Technology, A. Mickiewicza 30, 30-059 Krakow, Poland
autor
  • Faculty of Mechanical Engineering and Robotics, AGH University of Science and Technology, A. Mickiewicza 30, 30-059 Krakow, Poland

Bibliografia

  • 1. TYBULCZUK J. Technological foresight of Polish molding. Instytut Odlewnictwa, 2009.
  • 2. TYBULCZUK J. Energy and its influence on the future of Polish molding, Przegląd Odlewnictwa, 62, 16, 2012.
  • 3. DAMIJAN Z., UHRYŃSKI A. Systemic cryotherapy influence of low temperatures on selected physiological parameters, Acta Phys. Pol. A, 121, (1A), 38, 2012.
  • 4. TARNOWSKI J., GAWĘDZKI W., LEPIARCZYK D. Determination of the slide bearing friction coefficient on the basis of heat balance. Tribologia: theory and practice, 6, 219, 2011.
  • 5. ZAZULAK M. Thermography. Bio-medical engineering under the supervision of R. Tadeusiewicz. Wyd. AGH, Kraków 2008.
  • 6. DAMIJAN Z., UHRYŃSKI A. The influence of driver's working environment on thermical changes of their organism. Acta Phys. Pol. A, 118, (1), 35, 2010.
  • 7. LEPIARCZYK D. Use of infrared mapping to protect the natural environmental resources used in production and operation of mechanical machines and devices. Pol. J. Environ. Stud., 21, (5A), 276, 2012.
  • 8. LEPIARCZYK D., GAWĘDZKI W., TARNOWSKI J. Laboratory stand for tests of slide bearings based on heat balance. Tribologia: theory and practice, 1, 85, 2012.
  • 9. KRZYWORZEKA P., UHRYŃSKI A. Thermovision analysis of temperature changes in lower extremities after exposing to general low frequency vibrations. Acta Bio-Optica et Informatica Medica, 15, (1), 23, 2009.
  • 10. LEPIARCZYK D., GAWĘDZKI W., UHRYŃSKI A., TARNOWSKI J. Usage of thermo-vision in research concerning kinematic pair of friction in machines and mechanical devices. Visnik Kiivs'kogo Nacional'nogo Universitetu Tehnologij ta Dizajnu, No. 3, Kiev, pp. 190-195, 2012.
  • 11. ALBATICI R., TONELLI A. M. Infrared thermovision technique for the assessment of thermal transmittance value of opaque building elements on site. Energ. Buildings 42, 2177, 2010.
  • 12. BEIER K., GEMPERLEIN H. Simulation of infrared detection range at fog conditions for Enhanced Vision Systems in civil aviation. Aerosp. Sci. Technol. 8, 63, 2004.
  • 13. WIĘCEK B., MEY G. Thermo-vision in infraded: basis and usage. Wydawnictwo PAK, Warszawa 2011.
  • 14. WIŚNIEWSKI S. Heat exchange. WNT, Warszawa 1997.
  • 15. JAKUBOWSKA T., PESZYŃSKI-DREWS C., WIĘCEK B. Standarization in thermo-graphic research in practical use based on the example of thermo-graphic workshop in the Diagnosis and Laser Therapy Centre at Politechnika Łódzka. Acta Bio-Optica et Informatica Medica, 12, 81, 2006.
  • 16. KOSTOWSKI E. Heat radiation. PWN Warszawa 1993.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

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