用试验测试和数学模型研究承重木墙构件

IF 2.8 3区 工程技术 Q2 ENGINEERING, MANUFACTURING
M. Premrov, B. Ber, E. K. Silih
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引用次数: 3

摘要

将建筑围护结构的墙体元素中的木材和玻璃与透明立面元素的适当方向相结合,可以利用太阳能来加热和内部照明建筑。然而,在此类建筑中,木玻璃墙构件的不对称布局可能会导致结构的水平稳定性问题,因此它们对结构承载能力的作用通常被忽视。该研究处理了具有适当连接细节的水平承重构件等元件的解决方案。首先,专门开发的木玻璃墙单元在单调和循环水平点荷载下进行了实验测试,然后将经典的木框架墙单元结合到特殊的单层和双层箱屋模型中,并在振动台上进行了进一步的实验测试。在第二部分中,作为研究的主要目标,我们建立了一个非常简单的箱式房屋原型的数学模型,使用一个虚构的对角线元素来模拟支撑木-玻璃墙元素的货架刚度。将第一个振动周期的计算结果与先前的实测实验结果进行了比较,证明了所建立模型的准确性。最后,利用兰德斯加速度谱进行了线性时程计算,作为开发的数学模型的一个示例。开发的数学模型能够简单有效地计算木结构建筑的地震反应,考虑开发的木-玻璃墙单元作为承重支撑单元来抵抗水平荷载作用。该模型也可以推荐用于进一步的参数数值学术研究,分析各种参数的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study of load-bearing timber-wall elements using experimental testing and mathematical modelling
Combining timber and glass in the wall elements of the building envelope with the proper orientation of such transparent façade elements enables the utilization of solar energy for heating and internal illumination of the building. However, the asymmetrical layout of timber‐glass wall elements in such buildings can result in problems with the horizontal stability of the structure, so their participation to load‐bearing capacity of the structure is usually ne‐ glected. The study deals with solutions for such elements as horizontal load‐ bearing members with proper connection details. First, specifically developed timber‐glass wall elements were experimentally tested under monotonic and cyclic horizontal point load, and further in combination with classical timber‐ framed wall elements implemented into special single and two‐storey box‐ house models, which were further experimentally tested on the shaking table. In the second part as the main goal of the study, a quite simple mathematical model of the box‐house prototypes is developed using a fictive diagonal ele‐ ment for simulating the racking stiffness of the bracing timber‐glass wall element. The calculated results for the 1st vibration period are compared with the previously measured experimental results to prove an accuracy of the developed model. Finally, a linear time‐history calculation is done as a sample presentation of the developed mathematical model using Landers accelera‐ tion spectrum. The developed mathematical model enables a simple and effec‐ tive seismic response calculation of timber buildings considering the devel‐ oped timber‐glass wall elements as load‐bearing bracing elements against horizontal load actions. The model can also be recommended for using in further parametric numerical academic studies analysing the influence of various parameters.
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来源期刊
Advances in Production Engineering & Management
Advances in Production Engineering & Management ENGINEERING, MANUFACTURINGMATERIALS SCIENC-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
5.90
自引率
22.20%
发文量
19
期刊介绍: Advances in Production Engineering & Management (APEM journal) is an interdisciplinary international academic journal published quarterly. The main goal of the APEM journal is to present original, high quality, theoretical and application-oriented research developments in all areas of production engineering and production management to a broad audience of academics and practitioners. In order to bridge the gap between theory and practice, applications based on advanced theory and case studies are particularly welcome. For theoretical papers, their originality and research contributions are the main factors in the evaluation process. General approaches, formalisms, algorithms or techniques should be illustrated with significant applications that demonstrate their applicability to real-world problems. Please note the APEM journal is not intended especially for studying problems in the finance, economics, business, and bank sectors even though the methodology in the paper is quality/project management oriented. Therefore, the papers should include a substantial level of engineering issues in the field of manufacturing engineering.
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