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Comparison of two different (quasi-) dynamic testing methods for the performance evaluation of a Linear Fresnel Process Heat Collector

机译:两种不同(准)动态试验方法的线性菲涅耳工艺热收集器的性能评价比较

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A small-scale Linear Fresnel Collector (LFC) for the generation of process heat has been tested by Fraunhofer ISE; its performance was evaluated by means of two different methods. The first is a quasi-dynamic testing method performed according to the testing standard ISO 9806:2013, with modifications in the model to accurately describe LFCs. Due to the two-dimensional Incidence Angle Modifier (IAM) of an LFC, an iterative multi-linear regression (MLR) approach has been developed to be able to comprehensively evaluate the optical performance. The second method is a dynamic testing method based on a parameter identification incorporating a multi-node/plug-flow collector model without strict restraints on mass flow and inlet temperature stability. Both methods are briefly described in their conceptual design and their basic requirements, revealing their similarities and differences. Each method is then applied to real measurement data from an LFC, assessing practicability and identification accuracy. For both methods, the mean absolute difference between identified IAM values and results from ray tracing fell in a range of 0.013-0.017, leading to a similar accuracy in LFC performance evaluation. Differences in optical efficiency between the two methods are smaller, with an average absolute difference below 0.0098, even when using different measurement data and simulation models. Thus the dynamic method represents a good starting point for the further development of an alternative dynamic testing and evaluation method with more flexibility than the current testing standard. This will be significant when evaluating large-scale concentrating collectors and collectors with direct steam generation.
机译:用于生成工艺热的小型线性菲涅耳收集器(LFC)已经通过Fraunhofer Ise进行了测试;其性能通过两种不同的方法评估。首先是根据测试标准ISO 9806:2013进行的准动态测试方法,模型中的修改以准确描述LFC。由于LFC的二维入射角调节剂(IAM),已经开发了一种迭代的多线性回归(MLR)方法能够综合评估光学性能。第二种方法是一种基于参数识别的动态测试方法,其包括多节点/插头流集电极模型,而不会严格限制质量流量和入口温度稳定性。两种方法都以概念设计简要描述及其基本要求,揭示了它们的相似之处和差异。然后将每个方法应用于来自LFC的真实测量数据,评估实用性和识别精度。对于这两种方法,所识别的IAM值与射线跟踪结果之间的平均绝对差异在0.013-0.017的范围内,导致LFC性能评估中类似的准确性。即使使用不同的测量数据和仿真模型,两种方法之间的光学效率之间的光学效率的差异较小,平均绝对差异低于0.0098,即使使用不同的测量数据和仿真模型。因此,动态方法表示具有比当前测试标准更大的替代动态测试和评估方法的良好起点。当评估具有直接蒸汽产生的大规模集中器和收集器时,这将是显着的。

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