Enhanced heat transfer of heat-exchange equipment by pulsating air flow
Автор: Jin Yudong, Levtsev Aleksei, Shi Yuanyuan
Журнал: Бюллетень науки и практики @bulletennauki
Рубрика: Технические науки
Статья в выпуске: 10 т.4, 2018 года.
Бесплатный доступ
This paper designs a pulsating generator to provide pulsating air flow for experiments the relationship between the average flow velocity, pulse and pulsation amplitude and the pulsating flow enhancement heat transfer ratio was discussed respectively. The characteristics of the pulsating flow enhanced heat transfer were analyzed, and the academic research and engineering application of pulsating heat transfer was proposed. This inevitably has an optimal pulsating frequency value at which the maximum vortex generation can be obtained within one pulsation cycle to obtain maximum heat transfer effect, for example, in this experiment; the optimal frequency is 1-1.25 Hz. The effect of Reynolds number Re on the low-frequency pulsation convection heat transfer process is that the low-frequency pulsation can only enhance the convective heat transfer within a certain range of Reynolds numbers. If it exceeds this range, the convective heat transfer is weakened.
Pulsating generator, pulsating air flow, frequency, reynolds number, enhance
Короткий адрес: https://sciup.org/14114794
IDR: 14114794 | DOI: 10.5281/zenodo.1461973
Список литературы Enhanced heat transfer of heat-exchange equipment by pulsating air flow
- Habib M. A., Attya A. M., Eid A. I., Aly A. Z. Convective heat transfer characteristics of laminar pulsating pipe air flow//Heat and mass transfer. 2002. V. 38. №3. P. 221-232.
- Richardson E. G., Tyler E. The transverse velocity gradient near the mouths of pipes in which an alternating or continuous flow of air is established//Proceedings of the Physical Society. 1929. V. 42. №1. P. 1.
- West F. B., Taylor A. T. The effect of pulsations on heat transfer-turbulent flow of water inside tubes//Chemical Engineering Progress. 1952. V. 48. №1. P. 39-43.
- Lemlich R. Vibration and pulsation boost heat transfer//Chem. Eng. 1961. V. 68. №10. P. 171-176.
- Edwards M. F., Wilkinson W. L. Review of potential applications of pulsating flow in pipes//Transaction of the Institution of Chemical Engineering. 1971. №49. P. 85-94.
- Merkl I. P., Thomann H. Transition to turbulence in oscillating pipe flow//Journal of Fluid Mechanics. 1975. №68. P. 567-575.
- Ghaddar N. K., Korczak K. Z., Mikic B. B. Numerical investigation of incompressible flow in grooved channels. Part 1: Stability and self-sustained oscillations//Fluid Mech. 1986. №163. P. 99-127.
- Ghaddar N. K. et al. Numerical investigation of incompressible flow in grooved channels. Part 2. Resonance and oscillatory heat-transfer enhancement//Journal of Fluid Mechanics. 1986. V. 168. P. 541-567.
- Beskok A., Warburton T. C. Arbitrary Lagrangian Eulerian analysis of a bidirectional micro-pump using spectral elements//International Journal of Computational Engineering Science. 2001. V. 2. №01. P. 43-57.
- Yi M., Bau H. H., Hu H. A peristaltic meso-scale mixer//Proceedings of ASME IMECE Meeting. 2000. P. 367-374.
- Jin D. X., Lee Y. P., Lee D. Y. Effects of the pulsating flow agitation on the heat transfer in a triangular grooved channel//International journal of heat and mass transfer. 2007. V. 50. №15-16. P. 3062-3071.
- Kim S. Y., Kang B. H., Hyun J. M. Forced convection heat transfer from two heated blocks in pulsating channel flow//International Journal of Heat and Mass Transfer. 1998. V. 41. №3. P. 625-634.
- Cho H. W., Hyun J. M. Numerical solutions of pulsating flow and heat transfer characteristics in a pipe//International Journal of Heat and Fluid Flow. 1990. V. 11. №4. P. 321-330.
- Cho H. M., Hyun M. J. Numerical solutions of pulsating characteristics in pipe//International Journal of Heat and Fluid Flow. №11. P. 312-330.
- Mackley M. R., Tweddle G. M., Wyatt I. D. Experimental heat transfer measurements for pulsatile flow in baffled tubes//Chemical Engineering Science. 1990. V. 45. №5. P. 1237-1242.
- Nishimura T., Ohori Y., Kawamura Y. Flow characteristics in a channel with symmetric wavy wall for steady flow//Journal of chemical engineering of Japan. 1984. V. 17. №5. P. 466-471.
- Nishimura T. et al. Influence of imposed oscillatory frequency on mass transfer enhancement of grooved channels for pulsatile flow//International journal of heat and mass transfer. 2000. V. 43. №13. P. 2365-2374.
- Nishimura T., Kojima N. Mass transfer enhancement in a symmetric sinusoidal wavy-walled channel for pulsatile flow//International Journal of Heat and Mass Transfer. 1995. V. 38. №9. P. 1719-1731.
- Nishimura T., Matsune S. Vortices and wall shear stresses in asymmetric and symmetric channels with sinusoidal wavy walls for pulsatile flow at low Reynolds numbers//International Journal of Heat and Fluid Flow. 1998. V. 19. №6. P. 583-593.
- Nishimura T., Bian Y. N., Kunitsugu K. Mass-transfer enhancement in a wavy-walled tube by imposed fluid oscillation//AIChE journal. 2004. V. 50. №4. P. 762-770.
- Habib M. A. et al. Convective heat transfer characteristics of laminar pulsating pipe air flow//Heat and mass transfer. 2002. V. 38. №3. P. 221-232.
- Greiner M. An experimental investigation of resonant heat transfer enhancement in grooved channels//International journal of heat and mass transfer. 1991. V. 34. №6. P. 1383-1391.