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首页> 外文期刊>Cement & concrete composites >Thermal responses of concrete slabs containing microencapsulated low-transition temperature phase change materials exposed to realistic climate conditions
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Thermal responses of concrete slabs containing microencapsulated low-transition temperature phase change materials exposed to realistic climate conditions

机译:含有微胶囊化低转变温度相变材料的混凝土板的热响应暴露于现实气候条件

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This study examines the effect of microencapsulated low-transition temperature phase change material (PCM) additions on the thermal response of concrete slabs subjected to long-term realistic environmental exposure. To prevent direct contact of PCM with cement hydration products and possible leakage upon liquefaction, an inert PCM was encapsulated with a melamine-formaldehyde resin via an emulsification process before being added in concrete mixtures. Temperature monitoring was performed on three 500 x 500 x 150 mm large-scale concrete slabs with and without PCM for about 14 months encompassing two cold winter seasons. Results indicated that the addition of microencapsulated PCM effectively reduced excessive temperature drop and the number of freeze-thaw cycles concrete slabs experience during winter seasons, which may lead to service life extension by up to 5.2%-35.9% based on a freeze-thaw deterioration model. In particular, the effectiveness of PCM was found to be pronounced when the ambient temperature varied around the transition temperature (mild-cold seasons) while it became insignificant under prolonged exposure to extreme climate conditions such as cold winter and summer. The result of a visual condition survey was consistent with that of the model predictions, which verified the potential benefits of low-transition temperature PCM technology in concrete applications. This study also investigated the influence of microencapsulated PCM pellet embedment on the compressive and flexural strength characteristics.
机译:本研究检测微胶囊化低转变温度相变材料(PCM)添加对长期现实环境暴露的混凝土板的热响应的影响。为了防止PCM与水泥水合产物的直接接触,并且在液化时可能泄漏,在加入混凝土混合物之前,通过乳化过程将惰性PCM用三聚氰胺 - 甲醛树脂包封。温度监测在三500 x 500 x 150 mm大型混凝土板上进行大规模混凝土板,无需PCM约14个月,包含两个寒冷的冬季。结果表明,微胶囊化的PCM的添加有效降低了过度的温度下降,冬季冻融循环混凝土板的经验数量,这可能导致使用寿命延长至5.2%-35.9%基于冻结劣化模型。特别地,发现PCM的有效性在过渡温度(轻度冷季节)周围变化时发音为显着,而在长时间暴露于寒冷的冬季和夏季时,它在长期暴露于极端气候条件下变得微不足道。视觉条件调查的结果与模型预测的结果一致,这验证了低转换温度PCM技术在混凝土应用中的潜在益处。本研究还研究了微胶囊化的PCM颗粒栓塞对压缩和弯曲强度特性的影响。

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