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Stability of thin-walled metal tubes with elastic uni-lateral internal restraint.

机译:具有弹性单侧内部约束的薄壁金属管的稳定性。

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摘要

This thesis presents a theoretical study into the behaviour of thin-walled metal tubes that are filled with elastic material. The study has considered the behaviour and design of concrete-filled steel columns by analysing the effect of the combined actions of axial compression and bending on closed stainless steel cross-sections with a concrete infill as well as the elastic buckling of square, circular and elliptical thin-walled steel tubes, when filled with elastic material. The elastic local buckling of a rectangular plate having four edges clamped and subjected to in-plane linearly varying uniaxial loading with and without juxtaposition with a rigid infill has also been studied. Concrete-filled composite columns find widespread use globally in engineering structures because of their optimal strength and ease of construction. Enhancing the strength of filled columns by utilising newer materials such as stainless steel or shape memory alloys for the skin of the cross-section of the column will increase the construction cost of the column. In order to circumvent this increased construction cost, or to minimise it, the metal skin should be as thin as possible. Members with thin-walled cross-section are prone to lateral torsional buckling, and in particular they are prone to local buckling, with the latter buckling mode playing an important role in the strength of a composite column with a concrete infill. The local buckling coefficient is enhanced by the provision of a rigid concrete infill, and efficient design must make use of this fact to minimise the cost of the skin. The initial portions of this thesis demonstrate the beneficial effects that the rigid concrete core has on the overall strength, and also on the local buckling behaviour of thin-walled metal tubes. The local buckling of the metal skin has been modelled in this thesis by using a Ritz-based energy method. In bi-lateral and uni-lateral buckling studies of rectangular plates, a more general trigonometric function has been selected by application of boundary conditions to the chosen shape function, with these boundary conditions being implemented to make the chosen shape function satisfy the edge conditions for the problem under consideration. The restraining medium is modelled as a tensionless foundation and this restraint condition is introduced through a penalty method formulation. Extensive comparative, convergence, and parametric studies have been carried out by considering a wide range of uni-laterally constrained plates. Following a concise review of the available literature, techniques for analysing the elastic local buckling of thin-walled square tubes, fully filled with elastic materials and subjected to concentric uni-axial compression, are formulated by means of a simple stiffness approach and a proper Ritz-based technique. This method is then extended to account for the local buckling of thin-walled circular and elliptical cylinders with elastic infill. By representation of a proper trigonometric displacement function in the formulation which is capable of incorporating the effects of the penetration zone in a harmonic form, in addition to satisfying all the necessary boundary conditions, it is shown that the buckling solution reduces to a dimensionless representation for which the relevant geometrical and material properties that govern the local buckling coefficient can be identified. It was found that the provision of lightweight and low density infill is functional and attractive with respect to an increase in the efficacy of the restraint. A comparison was made, and good agreement was found to exist, between the results obtained from this study and results that are available in the literature. Finally, a strength to weight index is introduced that quantifies the enhancement in the local buckling coefficient for a number of materials with a wide range of stiffness and density. This index has potential applications for optimal design in aerospace and other specialized engineering applications.
机译:本文对填充弹性材料的薄壁金属管的行为进行了理论研究。该研究通过分析轴向压缩和弯曲的组合作用对带有混凝土填充物的封闭不锈钢截面的影响以及方形,圆形和椭圆形的弹性屈曲,从而考虑了钢管混凝土的性能和设计薄壁钢管,当填充有弹性材料时。还研究了矩形板的弹性局部屈曲,该矩形板的四个边缘被夹紧,并在有和没有与刚性填充物并置的情况下承受面内线性变化的单轴载荷。填充混凝土的复合柱因其最佳的强度和易于施工而在全球范围内广泛用于工程结构中。通过使用诸如不锈钢或形状记忆合金的较新材料来增加填充柱的强度,这将增加柱的建造成本。为了避免这种增加的建造成本或使其最小化,金属蒙皮应尽可能薄。具有薄壁横截面的构件易于发生横向扭转屈曲,特别是易于局部屈曲,后者的屈曲模式在具有混凝土填充物的复合柱的强度中起着重要作用。通过提供刚性的混凝土填充物可以提高局部屈曲系数,有效的设计必须利用这一事实来最小化蒙皮的成本。本文的初始部分证明了刚性混凝土芯对整体强度以及薄壁金属管的局部屈曲行为具有有益的作用。本文利用基于Ritz的能量方法对金属蒙皮的局部屈曲进行了建模。在矩形板的双边和单边屈曲研究中,通过将边界条件应用于所选形状函数来选择更通用的三角函数,并实施这些边界条件以使所选形状函数满足以下条件:正在考虑的问题。约束介质被建模为无张力基础,并且通过惩罚方法公式介绍了该约束条件。通过考虑广泛的单边约束板,进行了广泛的比较,收敛和参数研究。在简要回顾了现有文献之后,通过简单的刚度方法和适当的Ritz公式,提出了用于分析薄壁方管的弹性局部屈曲的技术,该方管已充满弹性材料,并受到同心单轴压缩基于技术。然后将此方法扩展到考虑到具有弹性填充物的薄壁圆形和椭圆形圆柱体的局部屈曲。通过在配方中表示适当的三角位移函数,该函数能够以谐波形式吸收穿透区的影响,除了满足所有必要的边界条件外,还表明屈曲解可简化为可以确定控制局部屈曲系数的相关几何和材料特性。已经发现,提供轻量和低密度的填充物对于提高约束的功效是有效的并且具有吸引力。从该研究获得的结果与文献中可获得的结果之间进行了比较,并发现存在良好的一致性。最后,引入了强度对重量指数,该强度对许多具有宽范围的刚度和密度的材料量化了局部屈曲系数的增强。该索引具有在航空航天和其他专业工程应用中进行最佳设计的潜在应用。

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