校准能源转换网络,以实现效用优化和风险管理

P. Mousaw, J. Kantor
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引用次数: 1

摘要

我们演示了校园和市政规模公用事业中使用的灵活能源系统的建模和参数估计,这些系统具有复杂的能源需求,多种燃料来源,并且需要大量的操作灵活性。有用的模型应该准确地预测这些灵活实用程序的工作产出。这种模型的框架是一类双线性模型,用于估计复杂和灵活的能源公用事业[9]的效率。这个框架,我们称之为能源转换网络(ECN),可用于确定公用事业运营商[8],[10]的财务和运营对冲的财务最佳运营条件和机会。给定一个ECN模型,我们计算了一个唯一的从决策变量和热输入到功输出的输入输出映射。一个给定的输入/输出模型可以实现多个网络。这些模型的功输出表示为熵通量与温度、导热系数和发动机效率参数的有理函数。利用加州能源委员会b[6]发布的一份报告中的工厂数据,我们在几个网络实现示例中演示了该数据的拟合。我们使用测量的功输出作为热输入的函数来校准模型。热率曲线是获得这些数据最常见的方法。我们开发了一个数据拟合程序,以确定给定特定网络模型和数据集的最佳校准模型的参数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Calibrating Energy Conversion Networks for utility optimization and risk management
We demonstrate modeling and parameter estimation of flexible energy systems used in campus and municipal scale utilities with complex energy requirements, multiple fuel sources, and requiring substantial operational flexibility. Useful models should accurately predict the work production of these flexible utilities. A framework for such a model is a class of bilinear models for estimating the efficiency of complex and flexible energy utilities [9], This framework, which we call Energy Conversion Networks (ECN), may be used to determine financially optimal operating conditions and opportunities for financial and operational hedging by the utility operator [8], [10]. Given an ECN model, we compute a unique input-output mapping from the decision variables and heat input to work output. Multiple network realizations may be possible from a given input/output model. Work output from these models are expressed as rational functions of entropy flux with parameters of temperatures, thermal conductances, and engine efficiencies. Using plant data from a report published by the California Energy Commission [6], we demonstrate fitting this data on several network realization examples. We use measured work output as a function of heat input to calibrate a model. Heat rate curves are the most common way these data are typically available. We developed a data fitting procedure to determine the parameters resulting in the best calibrated model given a particular network model and data set.
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