{"title":"Design and Tests of Structural Post-Tensioned Glass T-Beams","authors":"Emrullah Koca, A. Turer","doi":"10.18400/tjce.1405084","DOIUrl":null,"url":null,"abstract":"Glass manifests superior properties with high strength and transparency although it may not be considered as a commonly used structural material. This study targets to improve the structural performance of glass by post-tensioning; a series of T-shaped glass beams are tested to develop a proper and safe design. Traditionally, glass is widely used in buildings as windows where its brittleness and strength capacity are not significant. Architects prefer to use glass in the structural field because of aesthetics, recyclability, and transparency. Although there is more demand for the usage of glass as a structural material, a common fear of its brittle nature and lack of research about its structural behavior have mostly hindered it. Since glass is a brittle material and has high compressive strength in the order of 400 to 800 MPa and lower tensile strength (40 to 120 MPa), post-tensioning to target distributed loads is investigated to increase its fracture capacity and even obtain a post-cracking ductile behavior. In this study, several material tests are conducted to confirm the theoretical mechanical properties of glass. After obtaining the bending and compressive strength of the glass, Finite Element Models (FEMs) of the T-beams were generated and analytical hand calculations were conducted. The tests of T-shaped annealed (float) and tempered (toughened) glass beams with and without post-tensioning were conducted. The results of the experiments were compared with the analytical hand calculations and FEM results. A favorable outcome of this study is that float glass’ post cracking strength has been drastically increased and a ductile post-cracking performance is obtained. Tempered glass has a brittle response but with much higher strength, with about 4 times the capacity of annealed glass T-beams","PeriodicalId":241324,"journal":{"name":"Turkish Journal of Civil Engineering","volume":"20 11","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-04-05","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Turkish Journal of Civil Engineering","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.18400/tjce.1405084","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
Glass manifests superior properties with high strength and transparency although it may not be considered as a commonly used structural material. This study targets to improve the structural performance of glass by post-tensioning; a series of T-shaped glass beams are tested to develop a proper and safe design. Traditionally, glass is widely used in buildings as windows where its brittleness and strength capacity are not significant. Architects prefer to use glass in the structural field because of aesthetics, recyclability, and transparency. Although there is more demand for the usage of glass as a structural material, a common fear of its brittle nature and lack of research about its structural behavior have mostly hindered it. Since glass is a brittle material and has high compressive strength in the order of 400 to 800 MPa and lower tensile strength (40 to 120 MPa), post-tensioning to target distributed loads is investigated to increase its fracture capacity and even obtain a post-cracking ductile behavior. In this study, several material tests are conducted to confirm the theoretical mechanical properties of glass. After obtaining the bending and compressive strength of the glass, Finite Element Models (FEMs) of the T-beams were generated and analytical hand calculations were conducted. The tests of T-shaped annealed (float) and tempered (toughened) glass beams with and without post-tensioning were conducted. The results of the experiments were compared with the analytical hand calculations and FEM results. A favorable outcome of this study is that float glass’ post cracking strength has been drastically increased and a ductile post-cracking performance is obtained. Tempered glass has a brittle response but with much higher strength, with about 4 times the capacity of annealed glass T-beams
玻璃具有高强度和高透明度的优越性能,尽管它可能不被视为常用的结构材料。本研究的目标是通过后张法改善玻璃的结构性能;对一系列 T 形玻璃梁进行测试,以开发出正确、安全的设计。传统上,玻璃作为窗户广泛应用于建筑物中,其脆性和强度并不显著。由于玻璃美观、可回收和透明,建筑师更喜欢在结构领域使用玻璃。虽然将玻璃用作结构材料的需求越来越大,但人们普遍担心玻璃会变脆,而且缺乏对其结构行为的研究,这在很大程度上阻碍了玻璃的使用。由于玻璃是一种脆性材料,具有 400 至 800 兆帕的高抗压强度和较低的抗拉强度(40 至 120 兆帕),因此研究了针对分布荷载的后张法,以提高其断裂能力,甚至获得开裂后的延展行为。在这项研究中,进行了多项材料测试,以确认玻璃的理论力学性能。在获得玻璃的抗弯强度和抗压强度后,生成了 T 形梁的有限元模型(FEM),并进行了分析性手工计算。对 T 形退火(浮法)和回火(钢化)玻璃梁进行了有无后张力的试验。实验结果与手工分析计算结果和有限元分析结果进行了比较。这项研究的一个有利结果是,浮法玻璃的后开裂强度大幅提高,并获得了韧性后开裂性能。钢化玻璃具有脆性响应,但强度更高,约为退火玻璃 T 型梁承载能力的 4 倍。