从跨多个尺度和应用的DOE数据中得出的sCO2功率循环组件成本相关性

N. Weiland, B. Lance, Sandeep R. Pidaparti
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引用次数: 41

摘要

超临界CO2 (sCO2)动力循环在各种热源(包括核能、聚光太阳能(CSP)、煤炭、天然气和废热源)中都有潜在的应用,因此覆盖了广泛的规模。迄今为止,大多数研究都集中在sCO2动力循环的性能上,而经济分析却不那么普遍,这在很大程度上是由于sCO2动力循环组件的可靠成本估算相对稀缺。此外,对于任何给定的研究,现有sCO2技术经济分析的准确性都受到基于供应商的组件成本的小样本集的影响。需要提高sCO2组件成本估算的准确性,以便将重点从工厂效率转向经济,作为sCO2技术商业化的驱动因素。本研究报告了从供应商报价、成本估算和已发表文献的集合中协作开发的sCO2组件成本缩放关系。作为世界上最大的sCO2研究和开发的支持者之一,能源部(DOE)国家实验室可以获得相当大的供应商组件成本池,这些组件涵盖了每个国家实验室特定任务的多种应用,包括国家能源技术实验室(NETL)的化石燃料sCO2应用,国家可再生能源实验室(NREL)的CSP,以及CSP,核能,以及桑迪亚国家实验室(SNL)的分布式能源。由此产生的成本相关性与所有这些应用中的sCO2组件相关,并且范围从5-750 MWe。这项工作建立在SNL之前的工作基础上,在SNL中,sCO2组件成本模型被开发用于规模从1-100兆瓦的CSP应用。与早期的SNL工作类似,供应商的机密性在整个合作过程和发布的结果中都得到了维护。每个组件的成本模型是由来自多个供应商的4-24个单独报价相关联的,尽管单个成本数据点是专有的,没有显示出来。报告了径向和轴向涡轮机、整体齿轮和桶式离心压缩机、高温和低温回热器、干式sCO2冷却器以及煤和天然气燃料源的一次热交换器的成本模型。这些模型适用于各种sCO2循环配置中使用的特定sCO2组件,并包含相关组件的先进高温材料的增量成本因素。电机、齿轮箱和发电机的非sco2特定成本已包括在内,以允许循环设计师探索各种涡轮机械配置的成本影响。最后,通过使用AACE国际风格的供应商评估等级,结合组件成本相关统计,量化了与这些组件成本模型相关的不确定性。
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sCO2 Power Cycle Component Cost Correlations From DOE Data Spanning Multiple Scales and Applications
Supercritical CO2 (sCO2) power cycles find potential application with a variety of heat sources including nuclear, concentrated solar (CSP), coal, natural gas, and waste heat sources, and consequently cover a wide range of scales. Most studies to date have focused on the performance of sCO2 power cycles, while economic analyses have been less prevalent, due in large part to the relative scarcity of reliable cost estimates for sCO2 power cycle components. Further, the accuracy of existing sCO2 techno-economic analyses suffer from a small sample set of vendor-based component costs for any given study. Improved accuracy of sCO2 component cost estimation is desired to enable a shift in focus from plant efficiency to economics as a driver for commercialization of sCO2 technology. This study reports on sCO2 component cost scaling relationships that have been developed collaboratively from an aggregate set of vendor quotes, cost estimates, and published literature. As one of the world’s largest supporters of sCO2 research and development, the Department of Energy (DOE) National Laboratories have access to a considerable pool of vendor component costs that span multiple applications specific to each National Laboratory’s mission, including fossil-fueled sCO2 applications at the National Energy Technology Laboratory (NETL), CSP at the National Renewable Energy Laboratory (NREL), and CSP, nuclear, and distributed energy sources at Sandia National Laboratories (SNL). The resulting cost correlations are relevant to sCO2 components in all these applications, and for scales ranging from 5–750 MWe. This work builds upon prior work at SNL, in which sCO2 component cost models were developed for CSP applications ranging from 1–100 MWe in size. Similar to the earlier SNL efforts, vendor confidentiality has been maintained throughout this collaboration and in the published results. Cost models for each component were correlated from 4–24 individual quotes from multiple vendors, although the individual cost data points are proprietary and not shown. Cost models are reported for radial and axial turbines, integrally-geared and barrel-style centrifugal compressors, high temperature and low temperature recuperators, dry sCO2 coolers, and primary heat exchangers for coal and natural gas fuel sources. These models are applicable to sCO2-specific components used in a variety of sCO2 cycle configurations, and include incremental cost factors for advanced, high temperature materials for relevant components. Non-sCO2-specific costs for motors, gearboxes, and generators have been included to allow cycle designers to explore the cost implications of various turbomachinery configurations. Finally, the uncertainty associated with these component cost models is quantified by using AACE International-style class ratings for vendor estimates, combined with component cost correlation statistics.
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