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Thermal performance of mechanical pipe insulation systems at below-ambient temperature.

机译:机械管道保温系统在低于环境温度下的热性能。

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摘要

Mechanical pipe insulation systems are commonly applied to cold piping surfaces in most industrial and commercial buildings in order to limit the heat losses and prevent water vapor condensation on the pipe exterior surfaces. Due to the fact that the surface temperature of these pipelines is normally below the ambient dew point temperature, water vapor diffuses inside the pipe insulation systems often condenses when it reaches the pipe exterior surfaces. The water droplets accumulated in the pipe insulation system increase its overall thermal conductivity by thermal bridging the cells or the fibers of the insulation material. The moisture ingress into pipe insulation threatens the thermal performance and the overall efficiency of the building mechanical system. The main objective of this research was to investigate the effects of water vapor ingress on the thermal conductivity of pipe insulation systems. A critical review of the state of the art literature in this field was included to clarify the similarities and differences on the apparent thermal conductivity of pipe insulation systems and flat slabs. A new experimental methodology was developed to isolate and quantify the effect of water vapor ingress to the pipe insulation systems. Seven fibrous and ten closed-cell pipe insulation systems were tested on the novel experimental apparatus under dry and wet, condensing conditions. Under dry condition, the apparent thermal conductivity was observed linearly varied with insulation mean temperature, and the presence of joint sealant may increase the apparent thermal conductivity by 15%. During moisture test, results showed that the moisture diffusion mechanism were different in fibrous and closed-cell pipe insulation systems. Compared to closed-cell, fibrous pipe insulation system behaved more sensitive to the moisture content and the thermal conductivity increased dramatically due to the formation of more thermal bridging and preferential paths. An analytical model was developed based on the diffusion mechanism to predict the moisture accumulation and the associated penalization of the apparent thermal conductivity in different pipe insulation systems operating below ambient room temperature. The model was validated with the experimental results and the data reported in the literature on the thermal conductivity ratio with different moisture content. The differences were within 10% for closed-cell pipe insulation, and within 15% for fibrous pipe insulation systems.
机译:机械管道隔热系统通常应用于大多数工业和商业建筑的冷管道表面,以限制热量损失并防止水蒸气凝结在管道外表面上。由于这些管道的表面温度通常低于环境露点温度,因此当水蒸气到达管道外表面时,在管道保温系统内扩散的水蒸气通常会凝结。管道隔热系统中积累的水滴通过热桥接隔热材料的孔或纤维来增加其整体导热性。水分进入管道隔热层会威胁到建筑机械系统的热性能和整体效率。这项研究的主要目的是研究水蒸气的进入对管道隔热系统导热性的影响。对该领域的最新文献进行了严格的审查,以阐明管道隔热系统和平板的表观导热系数的异同。开发了一种新的实验方法,以隔离和量化水蒸气进入管道保温系统的影响。在新颖的实验设备上,在干燥和潮湿的冷凝条件下测试了七个纤维状和十个闭孔管道隔热系统。在干燥条件下,观察到的表观热导率随绝缘平均温度呈线性变化,并且存在密封胶可以使表观热导率增加15%。在水分测试过程中,结果表明,纤维和闭孔管道隔热系统的水分扩散机理不同。与闭孔相比,纤维管绝热系统对水分含量更敏感,并且由于形成更多的热桥和优先路径,导热系数显着提高。基于扩散机制开发了一个分析模型,以预测在室温以下运行的不同管道隔热系统中的水分积累和表观导热系数的相关损失。通过实验结果验证了该模型,并在文献中报告了有关不同水分含量的导热系数的数据。闭孔管道隔热的差异在10%以内,而纤维管道隔热系统的差异在15%以内。

著录项

  • 作者

    Cai, Shanshan.;

  • 作者单位

    Oklahoma State University.;

  • 授予单位 Oklahoma State University.;
  • 学科 Engineering General.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 330 p.
  • 总页数 330
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:42:19

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