## Abstract A simple mathematical model for calculating the effective thermal conductivity of nanofluids has been developed based on the thermal resistance approach. The model is developed by considering both effects of a solidβlike nanolayer and convective heat transfer caused by Brownian motion w
A MODEL FOR CALCULATING THE INSERTION LOSSES OF PIPE LAGGING
β Scribed by S. Kanapathipillai; K.P. Byrne
- Publisher
- Elsevier Science
- Year
- 1997
- Tongue
- English
- Weight
- 326 KB
- Volume
- 200
- Category
- Article
- ISSN
- 0022-460X
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β¦ Synopsis
Lagging formed of jackets of porous materials such as glass wool and of impervious materials such as metal sheets are widely used to attenuate the sound radiated from pipes. A procedure is described for calculating the insertion losses produced by such lagging. The procedure yields the insertion losses corresponding to each of the low order mode types of the pipe. These are breathing, bending and ovalling mode types. Impedance and pressure transfer formulae for the various jacket types are given in terms of the fundamental properties of the jackets. The porous jacket, for example, is defined by its inner and outer diameters and the flow resistivity of the porous material. These formulae enable the frequency dependent insertion loss produced by an arbitrary pipe lagging to be determined. A comparison of the insertion losses predicted by this procedure with published results is given.
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