Heat Transfer Enhancement Using a Convex-Patterned Surface
Author:
Moon H. K.1, O’Connell T.1, Sharma R.1
Affiliation:
1. Solar Turbines Incorporated, San Diego, CA 92186
Abstract
The heat transfer rate from a smooth wall in an internal cooling passage can be significantly enhanced by using a convex patterned surface on the opposite wall of the passage. This design is particularly effective for a design that requires the heat transfer surface to be free of any augmenting features (smooth). Heat transfer coefficients on the smooth wall in a rectangular channel, which had convexities on the opposite wall were experimentally investigated. Friction factors were also measured to assess the thermal performance. Relative clearances δ/d between the convexities and the smooth wall of 0, 0.024, and 0.055 were investigated in a Reynolds number ReHD range from 15,000 to 35,000. The heat transfer coefficients were measured in the thermally developed region using a transient thermochromic liquid crystal technique. The clearance gap between the convexities and the smooth wall adversely affected the heat transfer enhancement NuHD. The friction factors (f ), measured in the aerodynamically developed region, were largest for the cases of no clearance δ/d=0). The average heat transfer enhancement Nu¯HD was also largest for the cases of no clearance δ/d=0, as high as 3.08 times at a Reynolds number of 11,456 in relative to that Nuo of an entirely smooth channel. The normalized Nusselt numbers Nu¯HD/Nuo, as well as the normalized friction factors f/fo, for all three cases, decreased with Reynolds numbers. However, the decay rate of the friction factor ratios f/fo with Reynolds numbers was lower than that of the normalized Nusselt numbers. For all three cases investigated, the thermal performance Nu¯HD/Nuo/f/fo1/3 values were within 5% to each other. The heat transfer enhancement using a convex patterned surface was thermally more effective at a relative low Reynolds numbers (less than 20,000 for δ/d=0) than that of a smooth channel.
Publisher
ASME International
Subject
Mechanical Engineering
Reference23 articles.
1. Kesarev, V. S., and Kozlov, A. P., 1993, “Convective Heat Transfer in Turbulized Flow Past a Hemispherical Cavity,” Heat Transfer-Sov. Res., 25(2), Scripta Technica Inc, pp. 156–160. 2. Schukin, A. V., Kozlov, A. P., and Agachev, R. S., 1995, “Study and Application of Hemispherical Cavities for Surface Heat Transfer Augmentation,” ASME Paper 95-GT-59. 3. Chyu, M. K., Yu, Y., and Ding, H., 1997, “Concavity Enhanced Heat Transfer in an Internal Cooling Passage,” ASME Paper 97-GT-437. 4. Moon, H. K., Moon, H. K., and Glezer, B., 2000, “Channel Height Effect on Heat Transfer and Friction in a Dimpled Passage,” ASME J. Eng. Gas Turbines Power, 122, pp. 307–313. 5. Mahmood, G. I., Hill, M. L., Nelson, D. L., Ligrani, P. M., Moon, H. K., and Glezer, B., 2001, “Local Heat Transfer and Flow Structure on and Above a Dimpled Surface in a Channel,” ASME J. Turbomach., 123, pp. 115–123.
Cited by
23 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|