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Oscillatory flow and heat transfer in a Stirling engine regenerator.

机译:斯特林发动机回热器中的振荡流和热传递。

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The present work is an experimental study of oscillatory flow and heat transfer in a simulated Stirling engine regenerator. In particular the effect of high pressure and high frequency zero-mean velocity oscillating flow on the internal heat transfer coefficient between working fluid and solid matrix in the regenerator was studied.; Using the same configuration as in the regenerator of NASA's Stirling Space Power Demonstration Engine (SPDE), an experimental apparatus was designed. The working conditions in the test section are similar to those used in SPDE: the working fluid is Helium; the operational pressure is up to 15 MPa (2,200 PSI); operation temperatures are 630 K and 315 K at the hot and cold end respectively; and the oscillating frequency can be varied to 105 Hz. The porous medium used as the regenerator is SS 304 "Brunsmet" feltmetal with 0.0254 mm (0.001") wire diameter, manufactured by Brunswick Cooperation. The digital thermal lag compensation technique has been developed and used to measure the high frequency gas temperature.; The results of the study indicate that:; (1) Inside the porous medium, the temperature of both fluid and solid matrix are changing periodically with the same frequency as the oscillating flow but with a temperature phase lag between the two phases.; (2) Due to the high frequency oscillating flow in the regenerator, the heat transfer coefficient, h, and hence the Nusselt number, Nu, are of the order of {dollar}1times10sp4{dollar} {dollar}rm W/msp2{lcub}cdot{rcub}k{dollar} and 10, respectively. These values are a significant increase as compared to what they would be for unidirectional flow passing through similar porous material, where Nu is usually in the order of {dollar}1times10sp{lcub}-2{rcub}{dollar} to {dollar}1times10sp{lcub}-1{rcub}{dollar} with corresponding Reynolds number. These results agree with the prediction made by a computer code, HFAST, which indicated that the maximum instantaneous heat transfer coefficient h in the SPDE regenerator will be 33,750 {dollar}rm W/msp2{lcub}cdot{rcub}K.{dollar}; (3) The oscillating frequency of the flow has a large influence on both temperature variation and heat transfer coefficient while the pressure effects only the heat transfer coefficient.; Because it is a very complex relationship and not easy to be quantified, the relationship between the oscillating flow and heat transfer in the porous metal regenerator is presented illustratively. And the transient Nusselt number is found to be a function of the oscillating frequency, f.; (4) The regenerator has very high effectiveness, around 97-99.5%, and both oscillating frequency and working pressure have little influence on the effectiveness.; With all of the information we obtained from the experiments, we conclude that the Stirling engine regenerator and the engine should be run at the conditions of higher pressure, if material allowed, and oscillating frequency around 80-90 Hz.
机译:目前的工作是在模拟的斯特林发动机蓄热器中进行振荡流和热传递的实验研究。尤其研究了高压和高频零均速度振荡流对蓄热室中工作流体与固体基质之间内部传热系数的影响。使用与NASA斯特林空间动力演示引擎(SPDE)的再生器相同的配置,设计了一种实验装置。测试部分的工作条件与SPDE中使用的条件相似:工作流体为氦气;工作压力高达15 MPa(2,200 PSI);热端和冷端的工作温度分别为630 K和315 K;振荡频率可以更改为105 Hz。用作再生器的多孔介质是由Brunswick合作社制造的SS 304“ Brunsmet”毡金属,线径为0.0254 mm(0.001“)。数字热滞后补偿技术已经开发并用于测量高频气体温度。研究结果表明:;(1)在多孔介质内部,流体和固体基质的温度都以与振荡流相同的频率周期性地变化,但两相之间的温度相差较大;(2)由于再生器中的高频振荡流,传热系数h以及努塞尔特数Nu约为1美元×10sp4 {美元} {rmal} rm W / msp2 {lcub} cdot { rcub} k {dollar}和10,与通过类似多孔材料的单向流的数值相比,这些值有了很大的提高,其中Nu通常为{dollar} 1×10sp {lcub} -2 {rcub} {dollar}至{dollar} 1带相应雷诺数的times10sp {lcub} -1 {rcub} {dollar}。这些结果与计算机代码HFAST的预测相符,该预测表明SPDE再生器中的最大瞬时传热系数h为33,750 {rm} W W / msp2 {lcub} cdot {rcub} K。 ; (3)流体的振荡频率对温度变化和传热系数都有很大的影响,而压力仅影响传热系数。由于这是一个非常复杂的关系并且不容易量化,因此示例性地介绍了多孔金属蓄热室中振荡流量与传热之间的关系。发现瞬态Nusselt数是振荡频率f的函数。 (4)蓄热室的效率很高,约为97-99.5%,振荡频率和工作压力对效率的影响都很小。利用从实验中获得的所有信息,我们得出结论,斯特林发动机蓄热器和发动机应在较高压力(如果允许使用材料)和80-90 Hz左右的振荡频率下运行。

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