A #uid-"lled cylindrical shell comprising a wall joint is investigated by using the concept of vibrational power #ow. The power #ow in the contained #uid and in the shell wall of this #uid-"lled elastic cylindrical shell is studied. The transmission loss of vibrational power #ow through the wall joi
VIBRATIONAL POWER FLOW IN THE MOVING BELT PASSING THROUGH A TENSIONER
β Scribed by Y.I. KWON; J.-G. IH
- Publisher
- Elsevier Science
- Year
- 2000
- Tongue
- English
- Weight
- 414 KB
- Volume
- 229
- Category
- Article
- ISSN
- 0022-460X
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β¦ Synopsis
Because of the high performance and low weight requirements for modern machines including engines, the belts servicing high dynamic loads at high speed tend to be very susceptible to the transferred vibration. In this paper, a method is proposed for obtaining the physical characteristics of the transverse vibrational power #ow through moving rubber belts. The governing equation is derived by applying Hamilton's principle to the description of the #exural vibrations in axially moving belts, where the tensioner is considered to be a one-degree-of-freedom system. The total power #ow calculated and measured in the moving belt is the sum of the true power #ow and the power component associated with the steady medium motion. Consequently, any component that is due solely to the belt movement should be subtracted from the total power #ow in order to obtain the true, net power #ow. This concept is employed in calculating the transverse vibrational power #ow through belt}pulley systems that include a tensioner. An equivalent system including an idler instead of the tensioner is also considered, and the observed power #ow in this condition is ascribed to the power #ow due only to the movement of the medium. The results of analysis show that the vibrational power of the two belt-spans #ows into the tensioner. It is shown that the energy #ow, measured by using two laser sensors, agrees reasonably well with the predicted results.
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