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ThermoSolar and photovoltaic hybridization for small scale distributed generation : applications for powering rural health

机译:用于小规模分布式发电的Thermosolar和光伏杂交:为农村卫生提供动力的应用

摘要

The problem of provisioning a remote health clinic or school with electricity, heating and cooling (trigeneration) is considered from an engineering design and optimization standpoint. A baseline technical-economic review of existing options is performed, and a novel alternative is proposed: micro-Concentrating Solar Power (CSP), featuring an Organic Rankine Cycle (ORC) using repurposed HVAC scroll compressors as expanders. The design of the [mu]-CSP technology is informed by a semi-empirical steady state multi-physics sizing and performance model (SORCE) which predicts system output, efficiency, and specific costs as a function of geoposition. Empirical validation of key mechanical and electrical components is performed to parameterize the model. On a levelized cost basis, ,-CSP is shown to outperform standard equipment for trigeneration applications at remote sites. Scroll expander development is identified as an opportunity for enhanced performance, and a computationally efficient method for selecting optimal thermo-mechanical geometries for a scroll expander is described. Tradeoffs between concentration ratio, power block size and thermal storage are examined, and the key role of thermal capacity in the system is highlighted. A semi-dynamic version of SORCE is developed to support optimization amongst system components in a simulated operating environment including insolation and thermal transients; this offers preliminary insights into control decisions that influence cost and performance, such as timing and power management of ORC operation. Finally, the concept of synergies between concentrating solar photovoltaic (CPV) and CSP architecture is explored. A semi-empirical diode model is developed using experimental data from commercially available a-SI and c-Si solar cells and incorporated into PV-SORCE (where the [mu]-CSP thermal absorber is replaced with a PV heat collection element). Optimization of design parameters influencing figures of merit (system efficiency and specific costs) indicates that an optimal configuration is highly sensitive to the PV properties; as such, further optimization of the hybrid system parameters is recommended. This research also involved lab and field (Lesotho, southern Africa) prototyping of small solar ORC units. Relevant design parameters and further development of the [mu]-CSP concept is discussed in the context of field experiences.
机译:从工程设计和优化的角度考虑了为远程医疗诊所或学校供电,供暖和制冷(三联发电)的问题。对现有选项进行了基准技术经济评估,并提出了一种新的替代方案:微浓缩太阳能(CSP),其特征在于使用重新设计的HVAC涡旋压缩机作为膨胀机的有机朗肯循环(ORC)。 μ-CSP技术的设计以半经验稳态多物理场尺寸和性能模型(SORCE)为基础,该模型预测系统输出,效率和特定成本是地理的函数。对关键机械和电气组件进行经验验证,以对模型进行参数化。以成本为准,在远程站点上,-CSP被证明优于三代应用的标准设备。涡旋膨胀机的发展被认为是增强性能的机会,并且描述了一种用于选择涡旋膨胀机的最佳热机械几何形状的计算有效的方法。研究了浓度比,功率块大小和热量存储之间的折衷,并突出了热容量在系统中的关键作用。开发了SORCE的半动态版本,以支持模拟操作环境中的系统组件之间的优化,包括日射和热瞬变。这提供了对影响成本和性能的控制决策的初步见解,例如ORC操作的时间和电源管理。最后,探讨了聚光太阳能光伏(CPV)与CSP体系结构之间协同作用的概念。使用来自可商购的a-SI和c-Si太阳能电池的实验数据来开发半经验二极管模型,并将其并入PV-SORCE(其中,将μ-CSP吸热器替换为PV集热元件)。影响参数(系统效率和特定成本)的设计参数的优化表明,最佳配置对PV性能高度敏感。因此,建议进一步优化混合动力系统参数。这项研究还涉及小型太阳能ORC装置的实验室和现场(南非莱索托)的原型制作。在现场经验的背景下讨论了相关的设计参数和μ-CSP概念的进一步发展。

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