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Cooling system investigation of thermoelectric generator used for marine waste heat recovery

机译:船用余热回收热电发电机冷却系统研究

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There has been great interest on exploring the potential of waste heat extraction using thermoelectric generator (TEG) system on marine application, due to great amount of exhaust gas volume, many potential locations with consistent high temperature and availability of infinite cooling sea water. To improve the overall output performance of TEG system in terms of efficiency, proper system level engineering and integration have been considered crucial besides development of thermoelectric materials with larger ZT (figure of merit) value and optimal control strategy of electrical interface system. In this work, preliminary experimental investigation and numerical modelling optimization on the cooling system for a thermoelectric module level device are conducted. The predicted open-circuit voltages by thermoelectric simulation for device with conventional tubed water cooling plate are in good agreement with the measured experimental data for various hot exhaust temperatures. The model is then revised for further simulation to optimize the cooling plate design by examining detailed thermal performance and electrical current-voltage characteristics for the thermoelectric module device with varying electrical load. These investigations demonstrate that a local effective cooling system is important for high efficiency TEG implementation. This modulelevel observation serves to perceive how TEG system integrates as well as indicate potential improvement for TEG power conversion system. With good accuracy, the employed simulation tool is capable of rapidly characterizing TEG system level performance in future work.
机译:由于大量的废气,许多潜在的位置,持续的高温和无限的冷却海水的可用性,人们非常关注利用热电发生器(TEG)系统在海上应用中提取废热的潜力。为了在效率方面提高TEG系统的整体输出性能,除了开发具有较大ZT(品质因数)值的热电材料和电接口系统的最佳控制策略外,适当的系统级工程和集成也被认为至关重要。在这项工作中,对热电模块级设备的冷却系统进行了初步的实验研究和数值模型优化。通过热电模拟对带有常规管式水冷板的设备进行的预测开路电压与各种热排气温度下测得的实验数据高度吻合。然后修改模型以进行进一步仿真,以通过检查具有变化的电负载的热电模块设备的详细热性能和电流-电压特性来优化冷却板设计。这些研究表明,本地有效的冷却系统对于高效TEG实施非常重要。该模块级别的观察有助于感知TEG系统如何集成以及表明TEG功率转换系统的潜在改进。所采用的仿真工具具有很高的精度,能够在未来的工作中快速表征TEG系统级性能。

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