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Volume 30 Issue 4
Aug.  2009
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WU Shuang-ying, CHEN Su-jun, LI You-rong, LI Long-jian. Numerical Simulation of Thermal-Dynamic Characteristics through a Helical Coiled Tube with Annular Cross Section for Laminar Flow[J]. Nuclear Power Engineering, 2009, 30(4): 86-90.
Citation: WU Shuang-ying, CHEN Su-jun, LI You-rong, LI Long-jian. Numerical Simulation of Thermal-Dynamic Characteristics through a Helical Coiled Tube with Annular Cross Section for Laminar Flow[J]. Nuclear Power Engineering, 2009, 30(4): 86-90.

Numerical Simulation of Thermal-Dynamic Characteristics through a Helical Coiled Tube with Annular Cross Section for Laminar Flow

  • Received Date: 2008-06-10
  • Rev Recd Date: 2009-05-12
  • Available Online: 2025-07-28
  • Publish Date: 2009-08-15
  • A numerical method for simulating three-dimensional laminar forced convective heat transfer in a helical coiled passage with annular cross section under uniform wall temperature condition is presented. The helical coiled passage is fabricated by bending a 0.03m inner diameter and 0.05m outer diameter straight tube into a helical-coil of two turns. The results presented in this paper cover a Reynolds number range of 200~1000, a pitch range of 0.1~0.2 and a curvature ratio range of 0.1~0.3. The numerical computations reveal the development and distribution of heat transfer and flow fields in the helical coiled passage when the inner annular wall is heated and the outer annular wall is insulated. In addition, the effects of Reynolds number, curvature ratio, and coil pitch on the average friction factor, average Nusselt number at different axial cross-section have been discussed. The results show that the secondary flow is weak and can be neglected at the entrance region, but the effect of the secondary flow is enhanced, the maximum velocity perpendicular to axial cross section shifts toward the outer side of helical coiled passage. Furthermore, the average Nusselt number and friction factor at every different axial location present different characteristics when the Reynolds number, curvature ratio and pitch change. Compared with the curvature ratio, the pitch has relatively little influence on the heat transfer and flow performance.

     

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