宽梁的截面延性

Ornela Lalaj Şen, M. Çevik, A. H. Kayhan
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引用次数: 0

摘要

宽梁结构在土耳其和其他地方被归类为有限延性类,被认为不适合在高地震活动性地区建造。宽梁结构被认为具有有限延性的主要原因之一是由于高配筋率,宽梁的局部延性较低。宽梁的深度较小,与普通梁相比,这确实需要更高的配筋率来产生必要的弯矩能力。然而,宽梁的低局部延性是有争议的。本文介绍了一个包含150多个梁截面的数据库,其中一些是普通梁,一些是宽梁。计算了所有截面的弯矩-转动关系,并根据屈服和极限转动计算了截面的延性。研究了截面延性与截面宽高比、纵向配筋率、横向配筋率等参数的关系。延性与截面特性之间关系的一个例子,在这种情况下,显示了截面宽高比。计算并绘制了正、负延性。需要注意的是,截面比为0.5的梁为常规梁,其余为宽梁。所有梁的延性值都不同,常规梁的延性值稍宽一些。虽然这些参数在截面数据库中变化,但截面延性在30左右振荡,并且无法建立任何上述参数的明确相关性。普通梁和宽梁的平均截面延性无显著差异。对于该数据集,常规梁和宽梁的平均正延性分别为29.66和29.33,而常规梁和宽梁的平均负延性分别为28.96和31.50。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sectional Ductility of Wide Beams
Wide beam structures are categorized as Limited Ductility Class in Turkey and elsewhere and considered not fit for construction in areas of high seismicity. One of the main reasons that wide beam structures are considered to possess limited ductility is the perceived low local ductility of the wide beams, due to the high reinforcement ratios. Wide beams have small depths, which indeed require higher reinforcement ratios to produce the necessary moment capacities, as compared to normal beams. However, the low local ductility of the wide beams can be contested. This paper presents a database of more than 150 beam sections, some of which are normal and some of which are wide beams. The moment-rotation relationships were computed for all the sections, and the sectional ductility was calculated from the yield and ultimate rotations. The relations between sectional ductility and other parameters such as section aspect ratio, longitudinal reinforcement ratio and transverse reinforcement ratio were investigated. An example of the relation between ductility and section properties, in this case section aspect ratio is shown. Both positive and negative ductility were calculated and plotted. It should be noted that beams with section ratio of 0.5 are conventional beams, while the rest are wide beams. The values of ductility vary for all beams, and conventional beams have a slightly wider spread. While these parameters vary within the section database, the sectional ductility oscillates around 30, and no clear correlations could be established for any of the above-mentioned parameters. There were no significant differences between the average sectional ductility of conventional and wide beams. For this dataset, the mean positive ductility was 29.66 and 29.33 for conventional and wide beams respectively, and the mean negative ductility was 28.96 and 31.50 for conventional and wide beams, respectively.
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