应用数值模拟和结构设计对不同高度的横向和纵向加强筋板

Q2 Materials Science Engineering Solid Mechanics Pub Date : 2021-01-01 DOI:10.5267/J.ESM.2020.12.001
C. M. Nogueira, V. Pinto, L. Rocha, E. D. Santos, L. Isoldi
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引用次数: 2

摘要

摘要:本研究采用结构设计方法(CDM)与有限元法(FEM)相结合的方法,通过计算模型对受均匀横向荷载作用的矩形加筋钢板进行几何分析,以最小化其最大面外挠度和中心面外挠度。以非加筋板为参比,保持钢材的总体积不变,将其厚度减去的部分材料体积通过φ参数转化为加筋板,φ参数表示加筋板的材料体积与参比板的体积之比。采用φ = 0.30,建立27种加筋板几何布置,采用3种不同加劲板厚度,ts = 6.35 mm, ts = 12.70 mm, ts = 25.40 mm,各9种布置。对于每个ts值,纵向(Nls)和横向(Nts)加强筋的数量从2到4不等。因此,在每种板配置中,考虑值为0.50,分析了横向加强筋与纵向加强筋高度之比(hts/hls)的影响;0.75;1.00;1.25;1.50;1.75和2.00,关于最大和中心挠度。结果表明,将一部分钢从非加筋基准板转变为加筋板可使最大挠度和中心挠度降低90%以上。此外,当hts/hls = 2.00时,所分析的情况下力学性能较好,考虑hts/hls为减小挠度更有效。
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Numerical simulation and constructal design applied to plates with different heights of traverse and longitudinal stiffeners
Martins Nogueira, Vinícius Torres Pinto, Luiz Alberto Oliveira Rocha, Elizaldo Domingues dos Santos and Liércio André Isoldi Right click to download the paper PDF (550K) Abstract: This study applied the Constructal Design Method (CDM) associated with the Finite Element Method (FEM) through computational models to perform a geometric analysis on rectangular stiffened plates of steel subjected to a uniform transverse loading, in order to minimize its maximum and central out-of-plane deflections. Considering a non-stiffened plate as reference and maintaining the total volume of steel constant, a portion of material volume deducted from its thickness was transformed into stiffeners through the ϕ parameter, which represents the ratio between the material volume of the stiffeners and the reference plate. Adopting ϕ = 0.30, 27 geometric arrangements of stiffened plates were established, being 9 arrangements for each 3 different stiffeners' thicknesses adopted: ts = 6.35 mm, ts = 12.70 mm and ts = 25.40 mm. For each ts value, the number of longitudinal (Nls) and transverse (Nts) stiffeners were varied from 2 to 4. Thus, in each plate arrangement configured, the influence of the ratio between the height of the transverse and longitudinal stiffeners (hts/hls) was analyzed, taking into account the values 0.50; 0.75; 1.00; 1.25; 1.50; 1.75 and 2.00, regarding to the maximum and central deflections. The results have shown that transforming a portion of steel from a non-stiffened reference plate into stiffeners can reduce the maximum and central deflections by more than 90%. Moreover, it was observed that to reduce the deflections it is more effective consider hts > hls, once the ratio hts/hls = 2.00 was the one that led to the better mechanical behavior among the analyzed cases.
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来源期刊
Engineering Solid Mechanics
Engineering Solid Mechanics Materials Science-Metals and Alloys
CiteScore
3.00
自引率
0.00%
发文量
21
期刊介绍: Engineering Solid Mechanics (ESM) is an online international journal for publishing high quality peer reviewed papers in the field of theoretical and applied solid mechanics. The primary focus is to exchange ideas about investigating behavior and properties of engineering materials (such as metals, composites, ceramics, polymers, FGMs, rocks and concretes, asphalt mixtures, bio and nano materials) and their mechanical characterization (including strength and deformation behavior, fatigue and fracture, stress measurements, etc.) through experimental, theoretical and numerical research studies. Researchers and practitioners (from deferent areas such as mechanical and manufacturing, aerospace, railway, bio-mechanics, civil and mining, materials and metallurgy, oil, gas and petroleum industries, pipeline, marine and offshore sectors) are encouraged to submit their original, unpublished contributions.
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