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ECONOMIC OPTIMIZATION OF INLET AIR FILTRATION FOR GAS TURBINES

机译:燃气轮机进气过滤的经济优化

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Selecting the appropriate level of filtration for a gas turbine helps to minimize overall unit costs and maximize net revenue. When selecting a filter type and configuration, one must consider the initial costs, operational costs, and ongoing maintenance costs for both the filter and corresponding impacts on unit performance. Calculations are complex, and a fully functional framework is needed to properly account for all aspects of the life cycle and provide an opportunity to optimize filter selection and water wash scenarios for specific plant operating conditions. Decisions can generally be based on several different criteria. For instance, one may wish to minimize maintenance costs, maximize revenue, minimize fuel consumption, etc. For criteria that can be expressed in monetary terms, Life Cycle Cost Analysis (LCCA) is a means to simultaneously consider all criteria and reduce them to a single parameter for optimization using present value arithmetic. To be practically applied, the analysis must include all the significant inputs that would have an impact on the relative comparison between alternatives, while excluding minor inputs that would unduly add to complexity. This paper provides an integrated, quantitative, and transparent approach to life cycle cost analysis for gas turbine inlet filtration. Most prior art tends to focus either on how to perform the life cycle cost analysis (with simplified assumptions on the impact of filtration on performance), or on a specific technical aspect of filtration such as filter efficiency and performance, the impact of dust on compressor blading and fouling, or the impact of fouling on overall gas turbine performance. Many of these studies provide useful insight into specific aspects of gas turbine degradation due to fouling, but make simplifying assumptions that can lead to inaccuracies in application. By heavily leveraging prior work, this paper provides the reader with an overview of all aspects of the functionality required to perform such a life cycle analysis for gas turbine filtration. This work also serves as a technical summary of the underlying physics models that lead to the development of EPPI's Air Filter Life-Cycle Optimizer (AFLCO) software. The software tool provides a method to account for the influence of gas turbine type, operating conditions, load profile, filtration choices, and wash type and frequency on overall life-cycle costs. The AFLCO tool is focused on guiding the user to make optimum filter selections and water wash scheduling, accounting for all the significant parameters that affect the economic outcome. Revenue and cost quantities are considered simultaneously to determine the net present value of gross revenue minus filtration and water wash costs over a multiple year analysis period. The user defines the scenarios and the software displays the net present value (NPV) and present value difference between the scenarios. The preferred configuration from an LCCA perspective is that which yields the highest present value for net revenue. The user can iterate on multiple scenarios to seek further increases in NPV. The paper provides relevant example case studies to illustrate how LCCA evaluations of inlet air filters and water wash frequency can be applied to optimize gas turbine economic performance. The intent of the paper is to provide the user with a summary of prior work that can be integrated to provide a more holistic, complete life cycle cost analysis and describes the framework used within the AFLCO software. The underlying technical analysis in this paper can be applied to any life cycle cost analysis.
机译:为燃气轮机选择合适的过滤水平有助于最大程度地降低单位总成本并增加净收入。在选择过滤器类型和配置时,必须考虑过滤器的初始成本,运营成本和持续维护成本,以及对设备性能的相应影响。计算是复杂的,需要一个功能齐全的框架来适当考虑生命周期的各个方面,并提供机会针对特定的工厂运行条件优化过滤器的选择和水洗方案。决策通常可以基于几个不同的标准。例如,可能希望最小化维护成本,最大化收益,最小化燃料消耗等。对于可以用货币术语表示的标准,生命周期成本分析(LCCA)是一种同时考虑所有标准并将其降低为一个标准的方法。使用现值算法进行优化的单个参数。要在实践中应用,分析必须包括所有对备选方案之间的相对比较有影响的重要输入,同时要排除会不必要地增加复杂性的次要输入。本文为燃气轮机进气口过滤的生命周期成本分析提供了一种集成,定量和透明的方法。大多数现有技术趋向于集中于如何执行生命周期成本分析(简化了对过滤对性能影响的假设),或集中于过滤的特定技术方面,例如过滤器效率和性能,粉尘对压缩机的影响。叶片结垢或结垢对燃气轮机整体性能的影响。这些研究中的许多研究为因结垢而导致的燃气轮机退化的具体方面提供了有用的见识,但简化了可能导致应用中不准确的假设。通过充分利用先前的工作,本文为读者提供了执行此类燃气轮机过滤生命周期分析所需功能的所有方面的概述。这项工作还作为基础物理模型的技术摘要,这些物理模型导致了EPPI的空气滤清器生命周期优化器(AFLCO)软件的开发。该软件工具提供了一种方法来考虑燃气轮机类型,运行条件​​,负载曲线,过滤选择以及洗涤类型和频率对整个生命周期成本的影响。 AFLCO工具专注于指导用户做出最佳的过滤器选择和水洗计划,同时考虑到影响经济结果的所有重要参数。同时考虑收入和成本数量,以确定多年分析期内总收入减去过滤和水洗成本的净现值。用户定义方案,软件将显示方案之间的净现值(NPV)和现值差。从LCCA角度来看,首选配置是产生最高净收入现值的配置。用户可以在多种情况下进行迭代以寻求NPV的进一步增加。本文提供了相关的案例研究案例,以说明如何应用进气过滤器的LCCA评估和水洗频率来优化燃气轮机的经济性能。本文的目的是为用户提供先前工作的摘要,可以将其集成以提供更全面,完整的生命周期成本分析,并描述AFLCO软件中使用的框架。本文中的基础技术分析可以应用于任何生命周期成本分析。

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