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Transient response of a thermoelectric generator to load steps under constant heat flux

机译:在恒定热通量下热电发电机对负载阶跃的瞬态响应

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Most waste heat recovery applications involve a heat source that provides a limited heat flux that can be converted into electricity by a thermoelectric generator (TEG). When a TEG is used under limited or constant heat flux conditions the temperature difference across the device cannot be considered constant and will change depending on the electrical current generated by the TEG. This phenomenon is induced by the Peltier effect, which works against power generation and deviates the optimum operating point from the commonly known maximum power point (MPP). This point, dictated by the maximum power transfer theorem, is achieved when the source equivalent series resistance and the load resistance are equal, in conditions of constant temperature difference. Hence maximum power point tracking (MPPT) algorithms that regulate the TEG at half of the instantaneous open-circuit voltage are optimized only for applications where the TEG operates under constant temperature difference but are not ideal for constant heat flux conditions. Hill climbing MPPT methods, e.g., perturb-and-observe (P&O) or incremental conductance (IC), can reach the MPP more accurately if the sampling time is extended to the thermal time constant of the system.
机译:大多数废热回收应用都涉及热源,该热源提供有限的热通量,可以通过热电发电机(TEG)将其转换为电能。当在有限或恒定的热通量条件下使用TEG时,不能认为器件两端的温度差是恒定的,而是会根据TEG产生的电流而变化。这种现象是由珀尔帖效应引起的,珀尔帖效应不利于发电,并使最佳工作点偏离了众所周知的最大功率点(MPP)。在恒定温差的条件下,当源等效串联电阻和负载电阻相等时,可以达到这一点,这是由最大功率传递定理决定的。因此,仅将TEG调节为瞬时开路电压的一半的最大功率点跟踪(MPPT)算法仅针对TEG在恒定温差下运行但对于恒定热通量条件不理想的应用进行了优化。如果将采样时间扩展到系统的热时间常数,则爬坡MPPT方法(例如,扰动观察(P&O)或增量电导(IC))可以更准确地达到MPP。

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