Fahim Tayeb, Laouedj Samir, Abderrahmane Aissa, Alotaibi Sorour, Younis Obai, Ali Hafiz Muhammad
Materials and Reactive Systems Laboratory (LMSR), Djillali Liabes University, Sidi Bel Abbes 22000, Algeria.
Laboratoire de Physique Quantique de la Matière et Modélisation Mathématique (LPQ3M), Université Mustapha Stambouli de Mascara, Mascara 29000, Algeria.
Nanomaterials (Basel). 2022 Jan 27;12(3):419. doi: 10.3390/nano12030419.
Parabolic trough collectors (PTC) are one of the most established solar concentrating systems which have been used in a wide variety of applications. Enhancing their performance is critical to establish them as a viable technology. Internal obstacles are an intriguing way for improving the collector's performance. However, the usage of obstacles results in increasing pressure loss. The purpose of this research is to numerically explore the impact of introducing obstacles to the receiver tube of a parabolic trough collector on heat transmission in PTCs and its overall thermal performance. The first part analyzed the effects of geometrical parameters, orientation angle (α = 45°, 90° or 135°), and spacing of obstacles (P/D = 1, 2, or 3) on the fluid motion, heat transfer, and performance. Then, a non-uniform heat flow was applied to the absorber's outer surface. The effects of nanoparticles type, temperature profile, and heat transfer performance of three different nanofluids (Cu/thermal oil, AlO/thermal oil, andTiO/thermal oil) were studied in the second part. The simulation results show that, the friction factor increased when P/D decreases, and that the absorber tube with obstacles discs (α = 90°) and P/D = 2 achieved the best thermal performance. Additionally, increasing the concentration of solid nanoparticles in thermal oil improves heat transmission, and the Cu nanofluid has the greatest Nusselt number.
抛物槽式集热器(PTC)是应用最为广泛的太阳能聚光系统之一,已被广泛应用于各种领域。提高其性能对于将其确立为一种可行的技术至关重要。内部障碍物是提高集热器性能的一种有趣方式。然而,使用障碍物会导致压力损失增加。本研究的目的是通过数值模拟探究在抛物槽式集热器的接收管中引入障碍物对PTC传热及其整体热性能的影响。第一部分分析了几何参数、取向角(α = 45°、90°或135°)以及障碍物间距(P/D = 1、2或3)对流体流动、传热和性能的影响。然后,在吸收器外表面施加非均匀热流。第二部分研究了三种不同纳米流体(Cu/导热油、AlO/导热油和TiO/导热油)的纳米颗粒类型、温度分布和传热性能的影响。模拟结果表明,当P/D减小时摩擦系数增大,带有障碍物圆盘(α = 90°)且P/D = 2的吸收管具有最佳热性能。此外,提高导热油中固体纳米颗粒的浓度可改善传热,Cu纳米流体的努塞尔数最大。