具有集成能量有源元件的建筑围护结构能量势能的参数研究

IF 0.6 Q3 ENGINEERING, MULTIDISCIPLINARY
D. Kalús, Daniela Koudelková, Veronika Mučková, Martin Sokol, Mária Kurčová, P. Šťastný
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引用次数: 1

摘要

具有集成能量活性元件的建筑结构(BSIEAE)为具有多功能能量功能的建筑施工提供了一种渐进的替代方案。目的是确定具有集成能量活性元件的建筑围护结构在大面积辐射供暖的直接供暖、半积累和积累功能中的能量潜力。研究方法包括分析具有能量活性元件的建筑结构,基于大面积辐射供暖中热量和质量传递的简化定义创建数学物理模型,以及对技术解决方案的各个变体的能量潜力进行参数研究。结果表明,对于变体II(半累积加热)和变体III(累积加热),由于管道在结构中的位置更靠近外部而导致的热损失增加可以忽略不计,与变体I(直接加热)相比,它低于总输送热通量的1%。对于变体I、变体II和变体III,进入加热室的直接热通量分别为总热通量的89.17%、73.36%和58.46%。对于变体II和变体III,储热量分别占总热通量的14.84%和29.86%。变体II和III在热/冷积累方面似乎是有希望的,假设能量需求(至少10%)低于低惯性壁。我们计划通过动态计算机模拟扩展这些简化的参数研究,以优化具有集成能量活性元件的面板的设计和组成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Parametric study of the energy potential of a building’s envelope with integrated energy-active elements
Building structures with integrated energy-active elements (BSIEAE) present a progressive alternative for building construction with multifunctional energy functions. The aim was to determine the energy potential of a building envelope with integrated energy-active elements in the function of direct-heating, semi-accumulation and accumulation of large-area radiant heating. The research methodology consists in an analysis of building structures with energy-active elements, creation of mathematical-physical models based on the simplified definition of heat and mass transfer in radiant large-area heating, and a parametric study of the energy potential of individual variants of technical solutions. The results indicate that the increase in heat loss due to the location of the tubes in the structure closer to the exterior is negligible for Variant II, semi-accumulation heating, and Variant III, accumulation heating, as compared to Variant I, direct heating, it is below 1 % of the total delivered heat flux. The direct heat flux to the heated room is 89.17 %, 73.36 %, and 58.46 % of the total heat flux for Variant I, Variant II and Variant III, respectively. For Variant II and Variant III, the heat storage accounts for 14.84 %, and 29.86 % of the total heat flux, respectively. Variants II and III appear to be promising in terms of heat/cool accumulation with an assumption of lower energy demand (at least 10 %) than for low inertia walls. We plan to extend these simplified parametric studies with dynamic computer simulations to optimise the design and composition of the panels with integrated energy-active elements.
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来源期刊
Acta Polytechnica
Acta Polytechnica ENGINEERING, MULTIDISCIPLINARY-
CiteScore
1.90
自引率
12.50%
发文量
49
审稿时长
24 weeks
期刊介绍: Acta Polytechnica is a scientific journal published by CTU in Prague. The main title, Acta Polytechnica, is accompanied by the subtitle Journal of Advanced Engineering, which defines the scope of the journal more precisely - Acta Polytechnica covers a wide spectrum of engineering topics, physics and mathematics. Our aim is to be a high-quality multi-disciplinary journal publishing the results of basic research and also applied research. We place emphasis on the quality of all published papers. The journal should also serve as a bridge between basic research in natural sciences and applied research in all technical disciplines. The innovative research results published by young researchers or by postdoctoral fellows, and also the high-quality papers by researchers from the international scientific community, reflect the good position of CTU in the World University Rankings. We hope that you will find our journal interesting, and that it will serve as a valuable source of scientific information.
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