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Triple vacuum glazing: Heat transfer and basic mechanical design constraints

机译:三重真空玻璃:传热和基本机械设计限制

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Given the major role played by windows with regard to energy losses from buildings in cold climates, low thermal trans-mittance is an indispensable property of glazing in low-energy buildings. Evacuation offers the only means of achieving negligible gaseous conduction in glazing cavities. Application of low-emittance coatings to glass sheet surfaces inside the cavity reduces the radiative heat transfer. The feasibility of double vacuum glazing using arrays of support pillars between the glass sheets has been shown by other authors. This type of glazing is commercially manufactured today. Based on these achievements, our study set out to investigate heat transfer in triple vacuum glazing by means of (ⅰ) an analytical thermal network model and (ⅱ) a numerical finite difference model. The study focused on the impact of the following parameters on thermal transmittance: emittances of glass sheet surfaces inside the cavity, support pillar radius, support pillar separation and thermal conductivity of support pillar material. The design procedure for triple vacuum glazing taking into account not only thermal but also mechanical stresses due to atmospheric pressure, i.e., to enable identification of favourable parameter sets, is presented. Our findings suggest that use of the triple vacuum glazing concept can significantly reduce the thermal transmittances achieved by the best insulation glazing units currently on the market. E.g., a centre-of-glazing thermal transmittance of less than 0.2 W m~(-2) K~(-1) is achievable using stainless steel support pillars, 6 mm/4 mm/ 6 mm sheets of untempered soda-lime glass and four low-emittance coatings (ε = 0.03).
机译:考虑到窗户在寒冷气候下建筑物能量损失方面所起的主要作用,低热透射率是低能耗建筑物玻璃的必不可少的特性。疏散是在玻璃腔中实现微不足道的气体传导的唯一方法。在空腔内部的玻璃板表面上涂覆低辐射涂层可减少辐射热传递。其他作者已经证明了在玻璃板之间使用支撑柱阵列进行双真空玻璃的可行性。如今,这种类型的玻璃是商业生产的。基于这些成就,我们的研究开始通过(ⅰ)解析热网络模型和(ⅱ)数值有限差分模型研究三重真空玻璃的传热。该研究集中在以下参数对导热率的影响上:腔体内玻璃板表面的发射率,支撑柱半径,支撑柱间距和支撑柱材料的热导率。提出了一种三层真空玻璃的设计过程,该过程不仅考虑了热,而且考虑了由于大气压引起的机械应力,即为了确定有利的参数集。我们的发现表明,使用三层真空玻璃窗概念可以显着降低目前市场上最好的隔热玻璃窗单元所达到的导热率。例如,使用不锈钢支撑柱,6毫米/ 4毫米/ 6毫米的未淬火钠钙玻璃可以实现低于0.2 W m〜(-2)K〜(-1)的玻璃中心热传输率。和四个低辐射涂层(ε= 0.03)。

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