利用SRLIFE工具对电力塔接收管进行损伤建模

IF 6 2区 工程技术 Q2 ENERGY & FUELS
Jacob Wenner , Mark C. Messner , Michael J. Wagner
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引用次数: 0

摘要

聚光太阳能(CSP)熔融盐中央接收器在日常运行中受到高瞬态入射通量的影响。由此产生的蠕变疲劳损伤影响了接收机的可靠性,并限制了给定接收机允许的入射通量分布。本文旨在通过开发一种方法来预测CSP电厂的寿命,并确定任何给定流体温度和温度梯度下的主要损伤机制(蠕变与疲劳),从而降低CSP电厂的平准化电力成本。结果以损伤图的形式呈现,作为有价值的操作指南和设计工具。损坏图可以通过提高可靠性来降低维护成本,并通过更好地利用接收器区域来降低接收器的资本成本。在开放源代码的接收机设计工具srlife中,对非对称磁通条件下的管道进行了有限元仿真和损伤建模。参数研究在A230、316H、740H、A282、A617和800H高温合金的内管温度和热梯度范围内进行。每种合金的损伤图都有。提出了一种参数化的、基于有限元的方法,用于比较疲劳蠕变比和基于临界热工况的管寿命预测。与蠕变相比,疲劳几乎在任何情况下都可以忽略不计。这一发现表明,与高温操作条件下的蠕变相比,与云事件相关的疲劳效应微不足道。此外,寿命预测还可以识别热条件,其中工作条件的微小变化可能导致预测寿命的巨大变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Damage modeling of power tower receiver tubes using the SRLIFE tool
Concentrating Solar Power (CSP) molten-salt central receivers are subject to high, transient incident flux during daily operation. The resulting creep-fatigue damage impacts the receiver’s reliability and restricts the permissible incident flux distribution for a given receiver. This paper aims to reduce CSP plants’ levelized cost of electricity by developing a methodology to predict lifetime and identifies the primary damage mechanism (creep vs fatigue) for any given fluid temperature and temperature gradient. Results are presented in the form of a damage map that serves as a valuable operation guide and design tool. Damage maps can be used to reduce maintenance costs by improving reliability and reduce receiver capital costs by better utilizing the receiver area. FEA simulation and damage modeling of tubes subject to asymmetrical flux conditions is performed in the open-source receiver design tool srlife. Parametric studies are performed over a range of inner tube temperatures and thermal gradients for A230, 316H, 740H, A282, A617, and 800H high temperature alloys. Damage maps are presented for each alloy. A parametric, FEA-based methodology is presented for comparison of fatigue-creep ratios and prediction of tube lifetime based on the critical thermal operating conditions. Fatigue is found to be negligible compared to creep for almost every case. This finding suggests that fatigue effects associated with cloud events are insignificant compared to creep at these high temperature operating conditions. Additionally, lifetime predictions identify thermal conditions where small changes in operating conditions can result in large changes in predicted lifetime.
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来源期刊
Solar Energy
Solar Energy 工程技术-能源与燃料
CiteScore
13.90
自引率
9.00%
发文量
0
审稿时长
47 days
期刊介绍: Solar Energy welcomes manuscripts presenting information not previously published in journals on any aspect of solar energy research, development, application, measurement or policy. The term "solar energy" in this context includes the indirect uses such as wind energy and biomass
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