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Geometric Design of Scroll Expanders Optimized for Small Organic Rankine Cycles

机译:优化小有机朗肯循环的涡旋扩张器几何设计

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摘要

The application of organic Rankine cycles (ORCs) for small scale power generation is inhibited by a lack of suitable expansion devices. Thermodynamic and mechanistic considerations suggest that scroll machines are advantageous in kilowatt-scale ORC equipment, however, a method of independently selecting a geometric design optimized for high-volume-ratio ORC scroll expanders is needed. The generalized 8-dimensional planar curve framework (Gravesen and Henriksen, 2001, “The Geometry of the Scroll Compressor,” Soc. Ind. Appl. Math., 43, pp. 113–126), previously developed for scroll compressors, is applied to the expansion scroll and its useful domain limits are defined. The set of workable scroll geometries is: (1) established using a generate-and-test algorithm with inclusion based on theoretical viability and engineering criteria, and (2) the corresponding parameter space is related to thermodynamically relevant metrics through an analytic ranking quantity fc (“compactness factor”) equal to the volume ratio divided by the normalized scroll diameter. This method for selecting optimal scroll geometry is described and demonstrated using a 3 kWe ORC specification as an example. Workable scroll geometry identification is achieved at a rate greater than 3 s⁻¹ with standard desktop computing, whereas the originally undefined 8-D parameter space yields an arbitrarily low success rate for determining valid scroll mating pairs. For the test case, a maximum isentropic expansion efficiency of 85% is found by examining a subset of candidates selected the for compactness factor (volume expansion ratio per diameter), which is shown to correlate with the modeled isentropic efficiency (R² = 0.88). The rapid computationally efficient generation and selection of complex validated scroll geometries ranked by physically meaningful properties is demonstrated. This procedure represents an essential preliminary qualification for intensive modeling and prototyping efforts necessary to generate new high performance scroll expander designs for kilowatt scale ORC systems.
机译:由于缺乏合适的膨胀装置,有机朗肯循环(ORC)用于小规模发电的应用受到了限制。热力学和机械方面的考虑表明,涡旋机在千瓦级ORC设备中具有优势,但是,需要一种独立选择针对高容积比ORC涡旋膨胀机进行优化的几何设计的方法。适用于以前为涡旋压缩机开发的广义8维平面曲线框架(Gravesen和Henriksen,2001,“涡旋压缩机的几何形状”,Soc。Ind。Appl。Math。,43,第113-126页)。扩展滚动条及其有效域限制已定义。这组可行的涡旋几何体是:(1)使用基于理论可行性和工程标准的包含生成和测试算法建立的;(2)相应的参数空间通过解析排名量fc与热力学相关的度量标准相关(“紧凑系数”)等于体积比除以归一化涡旋直径。以3 kWe ORC规范为例,描述和演示了选择最佳涡旋几何形状的方法。使用标准的台式计算机,可以以大于3 s s的速率实现可行的涡旋几何形状识别,而最初未定义的8-D参数空间为确定有效的涡旋配合对产生了任意低的成功率。对于测试用例,通过检查为紧密度系数(每直径的体积膨胀率)选择的一组候选子,发现最大等熵膨胀效率为85%,这与模型的等熵效率相关(R 2 = R0.88)。通过物理上有意义的属性对复杂的经过验证的涡旋几何进行快速计算有效生成和选择。该程序代表了对于为千瓦级ORC系统生成新的高性能涡旋膨胀机设计所必需的密集建模和原型设计工作的一项基本资格。

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