COMPREHENSIVE METHODS OF EVALUATION OF EFFICIENCY AND OPTIMIZATION OF HEAT-UTILIZATION SYSTEMS

M. Fialko, A. Stepanova, S. Shevchuk, G. Sbrodova
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Abstract

At present, Ukraine has the necessary potential for the implementation of effective energy-saving technologies for heat recovery, and therefore the problem of their development and implementation is relevant for the country's energy sector. The solution of this problem is related to the need for systematic studies of the efficiency of optimization of heat recovery facilities from the standpoint of modern methodological approaches. The paper outlines the main stages in the development of integrated methods for assessing the efficiency and optimization of heat recovery systems based on the principles of exergic analysis, statistical methods for planning the experiment, structured variational methods, multilevel optimization methods, the theory of linear systems and the thermodynamics of irreversible processes. Examples and illustrations illustrate some of the stages in the development of complex methods. The necessary general step in the development of methodologies is the development of new performance criteria. Such criteria are highly sensitive to changes in the regime and design parameters of heat recovery systems due to the inclusion of some exergic characteristics in them. The developed criteria also serve as target optimization functions. For individual elements of heat recovery systems, efficiency and optimization methods usually include the definition of the functional dependencies of the selected efficiency criteria on the main parameters. For this, balance methods of exergic analysis and statistical methods of experiment planning are used. If such dependencies are established, optimization is carried out using known mathematical methods. For complex heat recovery systems involving a large number of elements, it is not possible to establish general analytical dependencies of the optimization objective functions on the parameters of the system when constructing mathematical models necessary for their optimization. Complex methods based on the basic principles of structural-variant methods, methods of multilevel optimization, the theory of linear systems, and the thermodynamics of irreversible processes have been developed for such cases. For this purpose, structural diagrams of plants, block diagrams of multi-level optimization have been developed, complete input matrices have been constructed, mathematical models for the processes under investigation have been developed, formulas have been derived for calculating the loss of exergy power in heat conduction processes and formulas for calculating dissipators of exergy. A well-founded choice of the methodology for evaluating efficiency and optimization raises the effectiveness of optimization, since it allows the use of parameters maximally close to optimal when developing the heat recovery system design, which in turn increases the efficiency of the system. References 14, figures 5.
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热利用系统效率评价与优化的综合方法
目前,乌克兰具有必要的潜力来实施有效的热能回收节能技术,因此,这些技术的发展和实施问题与该国的能源部门有关。要解决这个问题,就需要从现代方法的角度对热回收设施的优化效率进行系统的研究。本文概述了基于火用分析原理、实验计划统计方法、结构变分方法、多级优化方法、线性系统理论和不可逆过程热力学的热回收系统效率评估和优化综合方法发展的主要阶段。例子和插图说明了复杂方法发展的一些阶段。在开发方法的过程中,必要的一般步骤是制定新的绩效标准。这些标准对热回收系统的状态和设计参数的变化高度敏感,因为它们包含了一些火用特性。所建立的准则也可作为目标优化函数。对于热回收系统的单个元件,效率和优化方法通常包括所选效率标准对主要参数的函数依赖关系的定义。为此,采用了用能分析的平衡方法和实验计划的统计方法。如果建立了这样的依赖关系,则使用已知的数学方法进行优化。对于涉及大量元素的复杂热回收系统,在构建优化所需的数学模型时,不可能建立优化目标函数对系统参数的一般解析依赖关系。基于结构变异体方法、多层优化方法、线性系统理论和不可逆过程热力学等基本原理的复杂方法已经发展起来。为此,已经开发了工厂结构图、多级优化方框图、构建了完整的输入矩阵、开发了所研究过程的数学模型、推导了计算热传导过程中火用功率损失的公式和计算火用耗散的公式。对评估效率和优化方法的充分选择提高了优化的有效性,因为它允许在开发热回收系统设计时使用最接近最佳的参数,这反过来又提高了系统的效率。参考文献14,图5。
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