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Analysis of a rotating spool expander for Organic Rankine Cycle applications.

机译:用于有机朗肯循环应用的旋转阀芯膨胀器的分析。

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摘要

Increasing interest in recovering or utilizing low-grade heat for power generation has prompted a search for ways in which the power conversion process may be enhanced. Amongst the conversion systems, the Organic Rankine Cycle (ORC) has generated an enormous amount of interest amongst researchers and system designers. Nevertheless, component level technologies need to be developed and match the range of potential applications. In particular, technical challenges associated with scaling expansion machines (turbines) from utility scale to commercial scale have prevented widespread adoption of the technology. In this regard, this work focuses on a novel rotating spool expansion machine at the heart of an Organic Rankine Cycle.;A comprehensive, deterministic simulation model of the rotating spool expander is developed. The comprehensive model includes a detailed geometry model of the spool expander and the suction valve mechanism. Sub-models for mass flow, leakage, heat transfer and friction within the expander are also developed. Apart from providing the ability to characterize the expander in a particular system, the model provides a valuable tool to study the impact of various design variables on the performance of the machine.;The investigative approach also involved an experimental program to assess the performance of a working prototype. In general, the experimental data showed that the expander performance was sub-par, largely due to the mismatch of prevailing operating conditions and the expander design criteria. Operating challenges during the shakedown tests and subsequent sub-optimal design changes also detracted from performance. Nevertheless, the results of the experimental program were sufficient for a proof-of-concept assessment of the expander and for model validation over a wide range of operating conditions.;The results of the validated model reveal several interesting details concerning the expander design and performance. For example, the match between the design expansion ratio and the system imposed pressure ratio has a large influence on the performance of the expander. Further exploration shows that from an operating perspective, under-expansion is preferable to over-expansion. The model is also able to provide insight on the dominant leakage paths in the expander and points to the fact that this is the primary loss mechanism in the current expander. Similar insights are obtained from assessing the sensitivity of various other design variables on expander performance. Based on the understanding provided by the sensitivity analysis, exercising the validated model showed that expander efficiencies on the order of 75% are imminently possible in an improved design. Therefore, with sufficient future development, adoption of the spool expander in ORC systems that span a 50 kW -- 200 kW range is broadly feasible.
机译:对回收或利用低级热量进行发电的兴趣日益浓厚,促使人们寻求可增强功率转换过程的方式。在转换系统中,有机朗肯循环(ORC)已引起研究人员和系统设计人员的极大兴趣。尽管如此,仍需要开发组件级技术并使其与潜在应用范围相匹配。特别地,与从公用事业规模到商业规模缩放膨胀机(涡轮机)相关的技术挑战阻止了该技术的广泛采用。在这方面,这项工作集中在有机朗肯循环的核心的新型旋转阀芯膨胀机上。;建立了旋转阀芯膨胀机的全面,确定性的仿真模型。全面的模型包括阀芯膨胀器和吸入阀机构的详细几何模型。还开发了用于膨胀机内质量流量,泄漏,传热和摩擦的子模型。除了提供在特定系统中表征扩展器的功能外,该模型还提供了一种有价值的工具,可用于研究各种设计变量对机器性能的影响。研究方法还涉及一个实验程序,以评估某台机器的性能。工作原型。一般而言,实验数据表明,膨胀机的性能不及预期,主要是由于主要运行条件与膨胀机设计标准不匹配。降低测试期间的操作挑战以及随后的次优设计更改也降低了性能。尽管如此,该实验程序的结果仍足以对扩展器进行概念验证评估,并足以在各种运行条件下进行模型验证。;经过验证的模型结果揭示了有关扩展器设计和性能的一些有趣细节。 。例如,设计膨胀比与系统施加的压力比之间的匹配对膨胀器的性能有很大的影响。进一步的研究表明,从操作的角度来看,扩展不足优于过度扩展。该模型还能够提供有关扩展器中主要泄漏路径的信息,并指出这一事实是当前扩展器中的主要损耗机制。通过评估各种其他设计变量对膨胀机性能的敏感性,可以获得类似的见解。基于敏感性分析提供的理解,对经过验证的模型进行测试表明,在改进的设计中,扩展器效率迫在眉睫,达到75%左右。因此,随着未来的充分发展,在50 kW-200 kW范围的ORC系统中采用线轴扩展器是广泛可行的。

著录项

  • 作者

    Krishna, Abhinav.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Mechanical engineering.;Energy.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 194 p.
  • 总页数 194
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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