Research on Local Heat Transfer Characteristics and Thermal Bridge Mitigation in UHPC Ribbed Sandwich Wall Panels
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摘要: 针对超高性能混凝土密肋夹心墙板,通过三维稳态传热计算,量化了墙体在切向(x)、法向(y)及竖向(z)的局部传热特性。结果表明,三个方向的热流密度呈现近似等比例分布的特征,结构几何参数主导各向热流的比例分配,材料热工参数则决定其增幅大小。基于此传热特性提出了采用气凝胶毡对密肋结构进行不同方向差异化包裹的热桥消解措施:当在x与z方向包裹16 mm厚气凝胶毡时其热工性能最佳,墙体平均传热系数较未包裹降低6.35%;在包裹相同厚度的气凝胶毡时,该方法较嵌入式局部处理方法可使墙体平均传热系数最多降低20.28%。Abstract: Concrete ribs, serving as crucial load-bearing components, inherently face thermal bridging issues that have become a core challenge in the energy-efficient design of such envelope systems. This study focuses on high-performance concrete ribbed sandwich insulation walls, employing three-dimensional steady-state heat transfer simulations to quantify the local thermal characteristics along the tangential (x), normal (y), and vertical (z) directions. The results indicated that the heat flux densities in the three directions exhibited an approximately proportional distribution. Structural geometric parameters primarily governed the proportional allocation of heat flow in each direction, while the thermophysical properties of materials determined the magnitude of increase. Based on this heat transfer behavior, a thermal bridge mitigation strategy was proposed, involving the differentiated wrapping of the ribs with aerogel felts in different directions. Optimal thermal performance was achieved when the ribs were wrapped with 16-mm-thick aerogel felts in the x and z directions, reducing the wall’s average thermal transmittance by 6.35% compared to the unwrapped condition. Under the same thickness of aerogel felts, this method reduced the wall’s average thermal transmittance by up to 20.28% compared to embedded local treatment, providing an effective approach for optimizing the thermal performance of concrete ribbed sandwich insulation walls.
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