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Investigating potential benefits of a salinity gradient solar pond for ejector refrigeration cycle coupled with a thermoelectric generator

机译:调查盐度梯度太阳能池的潜在益处,用于喷射器制冷循环与热电发电机

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摘要

Extraction of thermal heat from a salinity-gradient solar pond (SGSP) as a way of accumulating solar energy, stockpiling and taking merit of it for medium and low temperature demands is presented as an interesting topic in recent decades. This reliable supply of heat can be used for low-temperature refrigeration systems to yield cooling load for residential applications. For this purpose, theoretical investigation of ejector refrigeration cycle (ERC) driven by a SGSP is carried out to produce cooling output. Also, thermoelectric generator (TEG) is used as a potential device replacing condenser of the ERC for the sake of bolstering performance of the fundamental system by producing power, using heat from SGSP. To express viscosity effect of refrigerant through different components of ejector, available numerical correlations are used and it is demonstrated that this deliberation highly increases the accuracy of ejector mathematical modeling. An extensive thermodynamic evaluation on the basis of the mass-, energy-, and exergy-based balance relations for disparate constituents of the introduced system is executed and the outcomes are corroborated with those of experiential approaches. Moreover, performance of the integrated system is optimized by maximizing energy efficiency as well as exergy efficiency for an optimal solar pond. At the optimum mode, the outcomes of modeling portrayed that the introduced system can culminate in furnishing cooling capacity of 9.216 kW and net electricity of 1.026 kW, respectively, at lower convective zone (LCZ) temperature of 359.7 K, La's thickness of 1.003 m, non convective zone of 1.339 m, upper convective zone of 0.102 m, and solar pond area of 189, 476 m(2). Under this optimum condition, the energy and exergy efficiencies are evaluated around 28.26% and 29.95%, respectively, using R245fa as working fluid in the ERC. In the optimal scenario, the ERC should be designed with primary pressure of 0.49 MPa, secondary pressure of 0.098 MPa, mass entrainment ratio of 0.3046, nozzle efficiency of 96.77%, mixer efficiency of 95.52%, and diffuser efficiency of 76.7%. (C) 2019 Elsevier Ltd. All rights reserved.
机译:从盐度梯度太阳能池(SGSP)中的热量提取作为累积太阳能,储存和对中等和低温需求的方法,近几十年来呈现为一个有趣的话题。这种可靠的热量供应可用于低温制冷系统,以产生用于住宅应用的冷却负荷。为此,进行了由SGSP驱动的喷射器制冷循环(ERC)的理论研究,以产生冷却输出。此外,热电发电机(TEG)用作通过从SGSP的热量产生功率的基本系统的润滑性能,以替换ERC的冷凝器的潜在装置。为了通过喷射器的不同部件表达制冷剂的粘度效应,使用可用的数值相关性,并证明这种审议高度提高了喷射器数学建模的准确性。根据经验方法的分离组成部分的基于群众,能量和无法基础的平衡关系进行广泛的热力学评估,并与经验主义方法的结果进行证实。此外,通过最大化能源效率以及最佳太阳能池的高效率优化了集成系统的性能。在最佳模式下,建模结果描绘了引入的系统可以分别为9.216 kW的净冷却能力和1.026 kW的净电量,在较低的对流区(LCZ)温度为359.7 k,La的厚度为1.003米,非对流区1.339米,上对流区0.102米,太阳能池面积为189,476米(2)。在这种最佳状态下,使用R245FA在ERC中的工作流体分别评估能量和漏洞效率约为28.26%和29.95%。在最优场景中,ERC应设计为初级压力为0.49MPa,二次压力为0.098MPa,质量夹带比为0.3046,喷嘴效率为96.77%,混合效率为95.52%,扩散效率为76.7%。 (c)2019 Elsevier Ltd.保留所有权利。

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