Heat Transfer Research in Blown-Through Non-Passable Heating Mains Channels. Part 2

IF 0.3 Q4 ENGINEERING, MULTIDISCIPLINARY
V. Sednin, T. V. Bubyr
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引用次数: 1

Abstract

A schematic and structural solution of regenerative-utilization heat use  in centralized  heat supply systems was previously proposed in order to increase the efficiency of operation of heating networks located in non-passable channels. The impossibility of creating a full-scale experimental setup covering the required range of factors and the area of their change, the complexity of a passive experiment on existing heating mains led to the need to develop a virtual model based on the ANSYS sofware package. A six-factor experiment has been carried out on this virtual model. Regression equations have been obtained to determine the pressure required to provide air purging of the channel, as well as heat exchange with pipelines of direct and return network water located in the channel, and heat exchange with soil around the channel. In addition, a regression relationship has been derived to find the integral heat flux from the listed washed surfaces to the air flow. The transition from dimensionless to natural factors has been made in the paper. The most significant factors are identified with the help of Pareto cards. The obtained dependencies have been verified in Part 1 of the paper. The adequacy of the obtained regression equations has been determined using standard statistical estimation methods based on the calculated values of the Fisher’s, Student’s and other criteria. The response surfaces are presented and analyzed using two dimensional sections for a number of factor values at fixed values of one and a change in two most characteristic, physically significant for a given response function.  They have been validated on the basis of the analysis of regression dependencies. The obtained regression equations cover almost the entire range of possible diameters of heating mains, which makes it possible to use them in the development of energy-saving projects.
吹透式非通热管管道的传热研究。第2部分
为了提高位于不可通过通道的供热网络的运行效率,提出了集中供热系统中蓄热利用的原理图和结构解决方案。由于不可能建立涵盖所需因素范围及其变化区域的全尺寸实验装置,以及在现有供暖管道上进行被动实验的复杂性,导致需要基于ANSYS软件包开发虚拟模型。对该虚拟模型进行了六因素实验。得到了回归方程,以确定通道提供空气清洗所需的压力,以及与通道内的直回水管网的换热以及与通道周围土壤的换热。此外,还导出了从所列洗涤表面到气流的积分热流密度的回归关系。本文实现了从无量纲到自然因素的过渡。最重要的因素是通过帕累托牌来确定的。本文的第1部分已经验证了获得的依赖项。根据Fisher标准、Student标准和其他标准的计算值,使用标准统计估计方法确定了所得回归方程的充分性。对于给定的响应函数,在固定值为1和两个最具特征的变化时,使用二维截面来表示和分析响应面。它们在回归相关性分析的基础上得到了验证。所得到的回归方程几乎涵盖了供热总管可能直径的全部范围,使其可以用于节能工程的开发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Science & Technique
Science & Technique ENGINEERING, MULTIDISCIPLINARY-
自引率
50.00%
发文量
47
审稿时长
8 weeks
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