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Can gadolinium compete with La-Fe-Co-Si in a thermomagnetic generator?

机译:钆可以用热磁发电机与La-Fe-Co-Si竞争吗?

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摘要

A thermomagnetic generator is a promising technology to harvest low-grade waste heat and convert it into electricity. To make this technology competitive with other technologies for energy harvesting near room temperature, the optimum thermomagnetic material is required. Here we compare the performance of a state of the art thermomagnetic generator using gadolinium and La-Fe-Co-Si as thermomagnetic material, which exhibit strong differences in thermal conductivity and type of magnetic transition. gadolinium is the established benchmark material for magnetocaloric cooling, which follows the reverse energy conversion process as compared to thermomagnetic energy harvesting. Surprisingly, La-Fe-Co-Si outperforms gadolinium in terms of voltage and power output. Our analysis reveals the differences in thermal conductivity are less important than the particular shape of the magnetization curve. In gadolinium an unsymmetrical magnetization curve is responsible for an uncompensated magnetic flux, which results in magnetic stray fields. These stray fields represent an energy barrier in the thermodynamic cycle and reduce the output of the generator. Our detailed experiments and simulations of both, thermomagnetic materials and generator, clearly reveal the importance to minimize magnetic stray fields. This is only possible when using materials with a symmetrical magnetization curve, such as La-Fe-Co-Si.
机译:热磁发电机是一个有希望的技术,可以获得低级余热并将其转换为电力。为了使这项技术与其他技术竞争竞争对手的能量收集,需要最佳的热磁性材料。在这里,我们使用钆和LA-Fe-Co-Si作为热磁性材料的艺术热磁发生器的状态进行比较,这表现出具有强烈差异的导热性和磁性过渡的类型。钆是磁热冷却的建立的基准材料,与热磁能收集相比,逆向能量转换过程遵循反向能量转换过程。令人惊讶的是,在电压和功率输出方面,La-Fe-Co-Si优于钆。我们的分析显示导热率的差异不如磁化曲线的特定形状的重要性。在钆中,不对称的磁化曲线负责未补偿的磁通量,这导致磁场场。这些杂散场代表热力学循环中的能量屏障,并减少发电机的输出。我们的详细实验和模拟,热磁性材料和发电机,清楚地揭示了最小化磁场场的重要性。只有在使用具有对称磁化曲线的材料时,才有可能,例如La-Fe-Co-Si。

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