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Modelling and potential of hybrid micro-scaling multi-junction solar cell and thermoelectric generator

机译:混合微缩放多结太阳能电池和热电发电机的建模与潜力

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Concentrator photovoltaic (CPV) systems replace semiconductor material by cost-efficient optical elements. This technology has doubled the efficiencies of conventional non-concentrating PV systems. However, the cost of CPV still needs to be lowered to be competitive. In these systems, approximately 60 % of the incident energy is dissipated as heat. One way to further enhance CPV systems is taking advantage of the dissipated heat energy as a source for an extra generation of electricity using a thermoelectric generator (TEG). The feasibility of hybrid CPV-TEG modules for enhancing the efficiency and lowering the cost has been discussed in recent work, with special emphasis on actively cooled designs. On the other hand, the micro-scaling of the technology could allow simple and reliable passive cooling mechanisms to be used. In this work, a numerical analysis of three-dimensional micro hybrid CPV-TEG receiver at ultra-high concentration ratios is presented. The procedure solves both the thermal and electrical effects for estimation of the power generated and the efficiency of the system. The results of performance are compared with a CPV-only receiver composed with equal solar cell properties working at similar conditions. Results show that micro CPV-TEG systems can reach an efficiency of 33.6 % versus the 31.6 % achievable with a CPV-only system, working under 4,000 suns.
机译:聚光灯光伏(CPV)系统通过成本有效的光学元件更换半导体材料。该技术使常规非浓缩光伏系统的效率翻了一番。但是,CPV的成本仍然需要降低竞争力。在这些系统中,大约60%的入射能量被散发为热量。进一步增强CPV系统的一种方法是利用使用热电发电机(TEG)作为额外产生电力的散热能量。最近的工作中讨论了混合CPV-TEG模块用于提高效率和降低成本的可行性,特别强调积极冷却的设计。另一方面,该技术的微观缩放可以允许使用简单可靠的被动冷却机制。在这项工作中,提出了在超高浓度比下的三维微杂化CPV-TEG接收器的数值分析。该程序解决了热电效应,用于估计产生的功率和系统的效率。将性能结果与仅在类似条件下工作的相同太阳能电池特性组成的CPV的接收器进行比较。结果表明,微型CPV-TEG系统可以达到33.6%的效率,而具有仅限CPV的系统可实现的31.6%,在4,000岁以下的太阳下工作。

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