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March 10, 2026Heat Transfer1 citations

Shape Thermal Performance Analysis of a Triangular‐Tube Solar Air Heater With Impingement‐Return Flow

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SNS. A. Gandjalikhan Nassab

Key Points

  • This research aims to analyze the thermal performance of an advanced triangular-tube solar air heater compared to circular tubes.
  • Developed a three-dimensional computational fluid dynamics model.
  • Investigated heat transfer, turbulence, and radiation effects.
  • Conducted performance analysis under varying air mass flow rates.
  • Achieved thermal efficiency of 95% for triangular tubes at high air mass flow.
  • Circular tubes exhibited 78% efficiency under the same conditions.
  • At lower flow rates, circular tubes surpassed triangular tubes in efficiency (63% vs. 60%).

Abstract

ABSTRACT This work presents a numerical investigation of an advanced, high‐efficiency solar air heater featuring a nine‐tube array with triangular ducts in an integrated impingement‐return flow configuration. A comprehensive three‐dimensional computational fluid dynamics model, solving for conjugate heat transfer, turbulence, and radiation, was developed to analyze its performance. A direct comparison is made with an equivalent collector using circular tubes. The design employs an extended absorber plate within each triangular tube to create two flow channels, facilitating a 180° flow reversal. Under the solar irradiance of 800 W/m 2 and at a high air mass flux of 0.03 kg/s, the triangular tube achieves a remarkable thermal efficiency of 95%, significantly outperforming the circular tube (78%). This performance reverses at a lower flow of 0.01 kg/s, where the circular tube's efficiency (63%) surpasses that of the triangular one (60%), a finding attributed to the differing flow regime dependence of each geometry.

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S. A. Gandjalikhan Nassab (2026) studied this question.

synapsesocial.com/papers/69af94fa70916d39fea4c1dehttps://doi.org/10.1002/htj.70208
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