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Periodic heating amplifies the efficiency of thermoelectric energy conversion

机译:定期加热可提高热电能量转换的效率

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摘要

We show that the use of a periodic heat source, instead of a constant heat source, can improve the conversion efficiency of a thermoelectric power generator (TPG). A periodic heat source drives a periodic temperature difference across the thermoelectric with an amplitude ΔT. While the time average of ΔT is identical to the temperature difference under a constant heat source with equivalent energy input, the time average of (ΔT)~2 is larger, resulting in improved conversion efficiency. Here we present experimental measurements on a commercial thermoelectric device (bismuth telluride based) to validate analytical and numerical models. These models show that maximum efficiency is achieved when the period of the heat source is much larger than the thermal time constant of the TPG. Under this quasisteady condition, the thermoelectric figure of merit ZT is still the relevant parameter for material optimization. A conventional thermoelectric material with ZT = 1, operated with sinusoidal and square-wave heat sources (ΔT = 100 K, T_(Cold)= 300 K), can achieve 140% and 180% of the constant heat source efficiency; or otherwise stated, can perform like advanced materials with ZTof 1.6 and 2.8. Even greater improvement, inaccessible through materials-based ZT enhancements, can be achieved with low duty cycle heat sources.
机译:我们表明,使用周期性热源而不是恒定热源可以提高热电发电机(TPG)的转换效率。周期性的热源在整个热电上驱动一个周期性的温度差,幅度为ΔT。 ΔT的时间平均值与输入能量相等的恒定热源下的温度差相同,但是(ΔT)〜2的时间平均值较大,因此转换效率提高。在这里,我们介绍了在商用热电设备(基于碲化铋)上的实验测量结果,以验证分析模型和数值模型的有效性。这些模型表明,当热源的周期远大于TPG的热时间常数时,可以实现最大效率。在这种准稳态条件下,热电性能因数ZT仍然是材料优化的相关参数。 ZT = 1的常规热电材料在正弦波和方波热源(ΔT= 100 K,T_(冷)= 300 K)下运行时,可以达到恒定热源效率的140%和180%。或以其他方式声明的内容,可以使用ZTof 1.6和2.8与高级材料一样执行。通过低占空比热源,可以实现基于材料的ZT增强无法获得的甚至更大的改进。

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  • 来源
    《Energy & environmental science》 |2013年第4期|1267-1273|共7页
  • 作者

    Yan Yan; Jonathan A. Malen;

  • 作者单位

    Department of Mechanical Engineering, Carnegie Mellon University, Pittsburgh, PA 15213, USA;

    Department of Mechanical Engineering, Carnegie Mellon University, Pittsburgh, PA 15213, USA,Department of Materials Science and Engineering, Carnegie Mellon University,Pittsburgh, PA 15213, USA;

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