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Assessments of thermal performance of hybrid and mono nanofluid U-tube solar collector system

机译:杂交和单纳流体U形管太阳能收集器系统热性能评估

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Solar energy systems are of great importance for water heating, where we spend most of the energy. U -tube solar collectors have a very important place in water heating among solar energy systems. Compensation of the intense energy used for water heating by this type of environmentally friendly solar energy system, will reduce CO2 and SO2 emissions for a cleaner nature. Therefore; the thermal perfor-mance of a U-tube complete system from evacuated tube solar collector (ETSC) systems was assessed. The heat transfer capability of the system, which contains 10 U-tubes, has been examined by considering the fact that it has different work fluids and different heat fluxes and flow rates. The finite volume method is used for this analysis. The model has been verified by many experimental and numerical studies. In the system under consideration has been used 10 vacuum U-tubes inclined at 30 degrees, and water and nanofluid (SiO2-Cu) which were used as working fluid in the manifolds connected to these tubes. Nanoparticles modeled in the work fluid are considered as hybrid and mono at different volume frac-tions. The thermal and hydrodynamic behaviors of the system have been examined by taking into ac-count the Boussinesq approach, and the system outlet temperatures have been calculated. As a result of analyzes and comparisons made, it has been seen that the use of nanofluid improves the thermal capability of the system under consideration. It has been determined that this improvement reaches up to 15% compared to water. The thermal effects of using SiO2 nanoparticles, which are lighter than Cu nanoparticles, were observed in terms of the precipitation problem encountered in many systems when using hybrid nanofluids. Thus, instead of using more Cu nanoparticles in volume, using smaller amounts together with SiO2 nanoparticles as a hybrid both eliminates the problem of precipitation and improves the heat capability of the work fluid. (c) 2021 Elsevier Ltd. All rights reserved.
机译:太阳能系统对于水供热非常重要,我们花费大部分能量。 U -Tube太阳能收集器在太阳能系统中具有一个非常重要的水处水。通过这种环境友好的太阳能系统来补偿水加热的强能量,将减少CO2和SO2排放的清洁性。所以;评估了来自抽空管太阳能收集器(ETESC)系统的U形管完整系统的热穿孔摩擦。通过考虑其具有不同的工作流体和不同的热量通量和流速来检查含有10个U形管的系统的传热能力。有限体积方法用于该分析。许多实验和数值研究已经验证了该模型。在所考虑的系统中,已被使用10个真空U形管,其倾斜30度,水和纳米流体(SiO 2-Cu),其用作连接到这些管的歧管中的歧管中的工作流体。在工作流体中建模的纳米颗粒被认为是不同体积的杂交和单声道。通过参加BousinesQ方法来检查系统的热和流体动力学行为,并计算系统出口温度。由于分析和比较,已经看到使用纳米流体来提高了所考虑的系统的热能力。与水相比,这一改进达到了15%的增加了15%。使用比Cu纳米颗粒的SiO2纳米颗粒的热效应于使用杂种纳米流体时在许多系统中遇到的沉淀问题而观察到。因此,代替使用体积的更多Cu纳米颗粒,使用较少量与SiO 2纳米颗粒一起作为杂交机,两者都消除了沉淀的问题并提高了工作流体的热能。 (c)2021 elestvier有限公司保留所有权利。

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