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Novel dynamic thermal characterization of multifunctional concretes with microencapsulated phase change materials

机译:含微胶囊相变材料的多功能混凝土的新型动态热表征

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Concrete is widely applied in the construction sector for its reliable mechanical performance, its easiness of use and low costs. It also appears promising for enhancing the thermal-energy behavior of buildings thanks to its capability to be doped with multifunctional fillers. In fact, key studies acknowledged the benefits of thermally insulated concretes for applications in ceilings and walls. At the same time, thermal capacity also represents a key property to be optimized, especially for lightweight constructions. In this view, Thermal-Energy Storage (TES) systems have been recently integrated into building envelopes for increasing thermal inertia. More in detail, numerical experimental investigations showed how Phase Change materials (PCMs), as an acknowledged passive TES strategy, can be effectively included in building envelope, with promising results in terms of thermal buffer potentiality. In particular, this work builds upon previous papers aimed at developing the new PCM-filled concretes for structural applications and optimized thermal-energy efficiency, and it is focused on the development of a new experimental method for testing such composite materials in thermal-energy dynamic conditions simulated in laboratory by exposing samples to environmentally controlled microclimate while measuring thermal conductivity and diffusivity by means of transient plane source techniques. The key findings show how the new composites are able to increasingly delay the thermal wave with increasing the PCM concentration and how the thermal conductivity varies during the course of the phase change, in both melting and solidification processes. The new analysis produces useful findings in proposing an effective method for testing composite materials with adaptive thermal performance, much needed by the scientific community willing to study building envelopes dynamics.
机译:混凝土以其可靠的机械性能,易用性和低成本而在建筑领域得到广泛应用。由于它可以掺入多功能填料,因此增强建筑物的热能性能似乎也很有希望。实际上,关键研究承认隔热混凝土在天花板和墙壁中的优势。同时,热容量也代表了要优化的关键特性,尤其是对于轻型结构。根据这种观点,热能存储(TES)系统最近已集成到建筑物围护结构中,以增加热惯性。更详细地,数值实验研究表明,作为一种公认的被动TES策略,相变材料(PCM)如何可以有效地包含在建筑围护结构中,就热缓冲潜力而言,其结果令人鼓舞。尤其是,这项工作是建立在先前旨在开发用于结构应用和优化热能效率的新型PCM填充混凝土的论文的基础上的,并且致力于开发一种新的试验方法来测试这种复合材料的热能动力学。通过在瞬态平面源技术中测量热导率和扩散率,同时将样品暴露于环境可控的小气候中,在实验室中模拟的条件。关键发现表明,新的复合材料如何能够随着PCM浓度的增加而逐渐延迟热波,以及在熔融和凝固过程中,在相变过程中热导率如何变化。新的分析产生了有益的发现,提出了一种有效的方法来测试具有自适应热性能的复合材料,这是愿意研究建筑围护结构动力学的科学界所迫切需要的。

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