Computational and experimental performance assessment of rectangular sectioned solar air heater duct provided with new curved ribs

Heat Transfer Pub Date : 2024-02-14 DOI:10.1002/htj.23014
Harshad Deshpande, V. Raibhole
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Abstract

There are many applications, such as fruits, paddy rice drying, and so on, where air heaters are comprehensively used. The provision of ribs in solar energy‐based air heaters has been accredited to be a beneficial approach for escalating its thermal performance. This investigation reveals the performance evaluation of a rectangular sectioned solar air heater duct placed with the curved type of ribs organized in noncontinuous and truncation patterns. Influence of variation of pitch ratio (4.0–12.0), block‐age ratio (0.06–0.1), the ratio of rib height to the radius of rib curvature (0.75–1), and the ratio of rib truncation gap to its height (0–0.75) at different values of Reynolds's numbers (Re) in the range 12,000–37,000 on the performance revealing factors explicitly heat transfer augmentation factor, the ratio of friction factor, as well as overall thermal performance enhancement (OTPE) have been discussed. The experimentation was performed on a similar rectangular air heater as that of numerical simulation with the same boundary conditions. It is figured out from numerical simulation that the provision of a central truncation gap in the arrangement of ribs helped in the development of vortices with minimal pressure loss due to friction. The greatest Nusselt number augmentation ratio between ribbed and plain plates that was attained is of the order of 2.01 for a pitch ratio of 9.0, blockage ratio of 0.08, the ratio of rib height to the radius of rib curvature 0.25 at the highest value of Re. The obtained friction factor ratio between the ribbed plate and the plain plate is of the order of 2.34 for p/y = 9.0 at maximum Re. The highest value of overall thermal performance enhancement (OTPE) is attained as 1.52 at the pitch ratio of 9, at the maximum value of Re. The central truncation gap of the rib pattern promoted the creation of vortices with a decreased pressure loss penalty. The uppermost value of the factor presenting overall thermal performance enhancement in this work is far superior to unity. This suggests that adding curved ribs to the air heater's duct is a helpful way to improve its overall performance. Empirical correlations have been established between the Nusselt number and geometrical parameters, likewise the friction factor and geometrical parameters using the regression study. The values of the Nusselt number, and friction factor that come from experimental work and developed empirical correlations fall between the highest deviation limits of ±9% and ±8%, respectively. This work is certainly helpful in the context of solar air heaters used for applications such as drying paddy rice.
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带有新弯肋的矩形截面太阳能空气加热器管道的计算和实验性能评估
在水果、稻谷烘干等许多应用领域,空气加热器都得到了广泛应用。在基于太阳能的空气加热器中设置肋条被认为是提高其热能性能的一种有益方法。本研究揭示了矩形截面太阳能空气加热器风道的性能评估,该风道采用了非连续和截断模式的弧形肋条。在 12,000-37,000 雷诺数 (Re) 范围内的不同值下,讨论了间距比 (4.0-12.0)、块龄比 (0.06-0.1)、肋条高度与肋条曲率半径之比 (0.75-1) 和肋条截断间隙与肋条高度之比 (0-0.75) 的变化对明确的传热增强因子、摩擦因数比以及整体热性能增强 (OTPE) 等性能揭示因素的影响。实验在与数值模拟类似的矩形空气加热器上进行,边界条件相同。数值模拟结果表明,在肋条排列中提供一个中心截断间隙有助于形成涡流,同时将摩擦造成的压力损失降至最低。当螺距比为 9.0、阻塞比为 0.08、肋板高度与肋板曲率半径之比为 0.25 时,在最高 Re 值下,肋板与平板之间的最大努塞尔特数增强比为 2.01。在最大 Re 值为 p/y = 9.0 时,肋板与普通板之间的摩擦因数比为 2.34。当间距比为 9 时,在最大 Re 值下,整体热性能增强(OTPE)的最高值为 1.52。肋条图案的中心截断间隙促进了涡流的产生,同时降低了压力损失惩罚。在这项工作中,整体热性能增强因子的最高值远高于统一值。这表明,在空气加热器的管道中添加弧形肋条有助于提高其整体性能。通过回归研究,在努塞尔特数和几何参数之间建立了经验相关性,同样,在摩擦因数和几何参数之间也建立了经验相关性。实验工作和经验相关性得出的努塞尔特数和摩擦因数值分别介于 ±9% 和 ±8% 的最高偏差限值之间。这项工作无疑有助于太阳能空气加热器在烘干水稻等应用中的应用。
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