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首页> 外文期刊>Geosciences >Rocks, Clays, Water, and Salts: Highly Durable, Infinitely Rechargeable, Eminently Controllable Thermal Batteries for Buildings
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Rocks, Clays, Water, and Salts: Highly Durable, Infinitely Rechargeable, Eminently Controllable Thermal Batteries for Buildings

机译:岩石,粘土,水和盐:建筑物的高度耐用,可无限充电,可控的热电池

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摘要

Materials that store the energy of warm days, to return that heat during cool nights, have been fundamental to vernacular building since ancient times. Although building with thermally rechargeable materials became a niche pursuit with the advent of fossil fuel-based heating and cooling, energy and climate change concerns have sparked new enthusiasm for these substances of high heat capacity and moderate thermal conductivity: stone, adobe, rammed earth, brick, water, concrete, and more recently, phase-change materials. While broadly similar, these substances absorb and release heat in unique patterns characteristic of their mineralogies, densities, fluidities, emissivities, and latent heats of fusion. Current architectural practice, however, shows little awareness of these differences and the resulting potential to match materials to desired thermal performance. This investigation explores that potential, illustrating the correspondence between physical parameters and thermal storage-and-release patterns in direct-, indirect-, and isolated-gain passive solar configurations. Focusing on heating applications, results demonstrate the superiority of water walls for daytime warmth, the tunability of granite and concrete for evening warmth, and the exceptional ability of phase-change materials to sustain near-constant heat delivery throughout the night.
机译:自古以来,存储温暖天能量,在凉爽的夜晚返回热量的材料一直是白话建筑的基础。尽管随着以化石燃料为基础的供热和制冷技术的出现,以可再充电材料建造建筑物已成为利基市场,但对能源和气候变化的担忧已激发了人们对这些具有高热容量和中等导热率的物质的新热情,这些物质包括石材,土坯,夯土,砖,水,混凝土以及最近的相变材料。尽管这些物质大致相似,但它们以矿物学,密度,流动性,发射率和熔融潜热为特征的独特模式吸收和释放热量。但是,当前的建筑实践对这些差异以及将材料与所需的热性能相匹配的潜在潜力知之甚少。这项研究探索了这种潜力,说明了在直接,间接和隔离增益的被动太阳能配置中物理参数与热量存储和释放模式之间的对应关系。以加热应用为重点,结果证明了水壁在白天保暖方面的优越性,花岗岩和混凝土在夜间保暖方面的可调谐性以及相变材料在整个晚上维持近乎恒定的热量传递的出色能力。

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