{"title":"CALCULATION METHOD OF COMBINED BEAMS","authors":"T. Azizov, O. Myza","doi":"10.18664/1994-7852.183.2019.169792","DOIUrl":null,"url":null,"abstract":"was proposed to perform the calculation with taking into account nonlinear properties of material similarly to the reinforced concrete beams calculation with layer-by-layer division of section by height but taking into account the presence of two layers along the section width. In this case, an iterative approach is used with a sequential increase in the magnitude of strains in the marginal compressed fiber of the combined section. Bernoulli hypothesis is used, i.e. it is considered that the strains along the section height are distributed according to a linear law, and the stresses in each layer considered along the section height are determined according to the material diagram. At the same time, the stresses in the reinforced concrete plates and in the stone part are different at the same height in the cross section due to the difference in diagrams of these materials. For the calculation simplification the material diagram is accepted in the form of Prandtl diagram. It is shown that, due to the presence of two different materials in the cross section, there can be four possible cases for the height of a compressed zone determining. It depends on the ratio of the value of deformations in the marginal fiber specified at iterations to the maximum deformations of the layers (stone part and reinforced concrete plates). The height of compressed zone in each case is determined from the quadratic equation solution. It is shown that the iterative calculation converges very quickly. At the same time, the accuracy of calculations by the approximate method is sufficient for carrying out practical calculations. An algorithm for the iterative calculation of the combined beam is given.","PeriodicalId":183715,"journal":{"name":"Collection of scientific works of the Ukrainian State University of Railway Transport","volume":"27 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2019-03-05","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Collection of scientific works of the Ukrainian State University of Railway Transport","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.18664/1994-7852.183.2019.169792","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
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Abstract

was proposed to perform the calculation with taking into account nonlinear properties of material similarly to the reinforced concrete beams calculation with layer-by-layer division of section by height but taking into account the presence of two layers along the section width. In this case, an iterative approach is used with a sequential increase in the magnitude of strains in the marginal compressed fiber of the combined section. Bernoulli hypothesis is used, i.e. it is considered that the strains along the section height are distributed according to a linear law, and the stresses in each layer considered along the section height are determined according to the material diagram. At the same time, the stresses in the reinforced concrete plates and in the stone part are different at the same height in the cross section due to the difference in diagrams of these materials. For the calculation simplification the material diagram is accepted in the form of Prandtl diagram. It is shown that, due to the presence of two different materials in the cross section, there can be four possible cases for the height of a compressed zone determining. It depends on the ratio of the value of deformations in the marginal fiber specified at iterations to the maximum deformations of the layers (stone part and reinforced concrete plates). The height of compressed zone in each case is determined from the quadratic equation solution. It is shown that the iterative calculation converges very quickly. At the same time, the accuracy of calculations by the approximate method is sufficient for carrying out practical calculations. An algorithm for the iterative calculation of the combined beam is given.
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组合梁的计算方法
建议在计算时考虑材料的非线性特性,类似于钢筋混凝土梁按高度逐层划分截面的计算,但考虑到沿截面宽度存在两层。在这种情况下,采用迭代方法,在组合截面的边缘压缩纤维中,应变的幅度依次增加。采用伯努利假设,即认为沿截面高度的应变按线性规律分布,根据材料图确定沿截面高度考虑的各层应力。同时,由于这些材料的图的不同,在截面的相同高度,钢筋混凝土板和石材部分的应力是不同的。为简化计算,材料图采用普朗特图的形式。结果表明,由于在截面上存在两种不同的材料,可以有四种可能的情况来确定压缩区的高度。它取决于迭代时指定的边缘纤维的变形值与层(石头部分和钢筋混凝土板)的最大变形的比值。每一种情况下压缩区的高度由二次方程的解确定。结果表明,迭代计算的收敛速度很快。同时,近似方法的计算精度足以进行实际计算。给出了组合梁的迭代计算算法。
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