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THE IRREVERSIBLE EVOLUTION OF BUILDINGS

机译:建筑的不可思议的演变

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摘要

Buildings, which are in fact ecosystems (living and inanimate organisms interacting together), are nowadays conceived and operated on the base of energy assessments underpinned by the first law of thermodynamics, and design strategies work towards energy conservation. Different approaches, based on the second law of thermodynamics, exist in research; they use the thermodynamic function called exergy - a measure of energy quality obtained from the combination of first and second law - and their scope is still centred on conservation strategies, optimised through irreversibility reduction. However, irreversibility plays a key role in nature, as entropy production dictates the direction and modality of all processes and real phenomena are actually irreversible. The main problem related to the forefront of high-efficiency buildings is their high cost and complexity, which contrast stridently with the needs of the largest part of the built environment: effective low-budget sustainable solutions, easy to raise and control by non-specialised users. This research, through a pragmatic methodology, mixes practical experiences from low-budget construction sites with concepts from the relatively new discipline of non-equilibrium thermodynamics, and proposes an alternative energy design approach based on the second law of thermodynamics. Thinking of buildings as evolving ecosystems, their ability to perceive and exploit useful gradients can be enhanced through a deeper understanding of the role of irreversibility as the driving force of spontaneous processes, and imperfection as an intrinsic characteristic of architecture.
机译:如今,实际上是生态系统(活的和无生命的生物相互作用)的建筑物,是在以热力学第一定律为基础的能源评估的基础上构思和运行的,而设计策略则致力于节能。在研究中存在基于热力学第二定律的不同方法。他们使用了称为热能的热力学函数-一种通过第一定律和第二定律的组合获得的能量质量的度量标准-并且它们的范围仍然集中在通过不可逆性降低进行优化的节能策略上。但是,不可逆性在自然界中起着关键作用,因为熵产生决定了所有过程的方向和形式,而实际现象实际上是不可逆的。与高效建筑的最前沿有关的主要问题是其高昂的成本和复杂性,这与大部分建筑环境的需求形成鲜明对比:有效的低成本可持续发展解决方案,易于由非专业人士提出和控制用户。这项研究通过一种务实的方法,将低预算建筑工地的实践经验与非平衡热力学相对较新学科的概念相结合,并提出了一种基于热力学第二定律的替代能源设计方法。将建筑物视为不断发展的生态系统,通过更深入地了解不可逆性作为自发过程的驱动力以及不完美性是建筑的固有特征,可以增强其感知和利用有用梯度的能力。

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