Analisis Konstruksi Bangunan Bertingkat Terhadap Beban Gempa SNI-03-1726-2019 Dengan Infilled Frame

Maya Saridewi Pascanawaty, Agustin Ernawati, Titik Wahyuningsih
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Abstract

Red brick is one of the materials that is still quite widely used in construction practice, because it is quite easy to get and the price is relatively cheap. Red masonry wall is a pair consisting of a binder (mortar) and a filler (red brick) known as masonry. Masonry generally provides durable construction, where the constituent material, mortar quality, and workmanship greatly affect the durability of the overall wall construction. The installation of infill walls causes the structure to become more rigid, which can sometimes cause different failure behavior between structures without infill walls and structures with infill walls. This also affects the capacity and ductility of the overall structure. Several research results show that the interaction of the infill wall with the framework is very effective in increasing the strength, stiffness, and performance of the structure in resisting lateral loads due to earthquakes. This study takes the example of a 4 (four) floor building. The analysis is carried out by modeling the walls in the SAP2000 software application, where the structural models include: Model I fully uses frame elements, Model II is a structure modeled by including infill walls without plastering as a shell element, Model III is a structure modeled using infill walls with stucco reinforcement as the shell element, and Model IV is a structure modeled using infill walls with stucco reinforcement and counter wire as the shell element. The comparison parameters in this study are structural strength and deformation. Based on the results of the analysis, Model II, 90% stiffer than the open frame structure (open frame) Model I; while Model III is 92% stiffer than Model I; and Model IV, 97% stiffer than Model I which, when viewed from the X-direction earthquake load. When viewed from the Y-direction earthquake load, the infilled frame structure for Model II is 88% stiffer than the open frame structure (open frame) Model I; while Model III is 91% stiffer than Model I; and Model IV, 99 % stiffer than Model I. Moment and latitude values ​​of Model II, Model III, Model IV are smaller than Model I both in terms of the X-direction earthquake load and the Y-direction earthquake load. Infill walls of Model II are larger than those of Model IV and Model III when viewed from the X-direction earthquake load or due to the Y-direction earthquake load. and very qualified for use in areas with high earthquake risk
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建筑工地分析了内置的地震负荷-03-1726-2019的结构
红砖是目前在建筑实践中应用比较广泛的材料之一,因为它比较容易获得,价格也比较便宜。红砖墙是一对由粘结剂(砂浆)和填充物(红砖)组成的砖墙。砌体通常提供持久的结构,其中组成材料,砂浆质量和工艺极大地影响了整体墙体结构的耐久性。填充墙的安装使结构变得更加刚性,有时会导致无填充墙结构和有填充墙结构的破坏行为不同。这也会影响整体结构的承载力和延性。一些研究结果表明,填充墙与框架的相互作用非常有效地提高了结构的强度、刚度和抗地震侧向荷载的性能。本研究以四层建筑为例。通过在SAP2000软件应用程序中对墙体进行建模进行分析,其中结构模型包括:模型I完全使用框架单元,模型II是将不抹灰的填充墙作为壳单元建模的结构,模型III是将灰泥加固的填充墙作为壳单元建模的结构,模型IV是将灰泥加固的填充墙和反丝作为壳单元建模的结构。本研究的比较参数为结构强度和变形。根据分析结果,模型II比敞开式框架结构(敞开式框架)模型I刚度高90%;模型III比模型I刚度高92%;从x向地震荷载的角度看,模型IV比模型I的刚度高97%。从y向地震荷载来看,模型II的填充框架结构比模型I的开放框架结构(开放框架)的刚度提高88%;模型III的刚度比模型I高91%;模型II、模型III、模型IV的弯矩和纬度值在x向地震荷载和y向地震荷载作用下均小于模型I。无论从x向地震荷载还是由于y向地震荷载的影响,模型II的填充墙都比模型IV和模型III的填充墙大。非常适合在地震风险高的地区使用
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