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AUTOMATIC GENERATION OF STATICALLY ADMISSIBLE STRESS FIELDS IN MASONRY VAULTS

机译:在砌体拱顶中自动生成静态允许的应力字段

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The objective of the present work is to develop an automated numerical method for the analysis of thin masonry shells. The material model for masonry that we adopt is the so-called "normal rigid no-tension" (NRNT) material; and for such a material, the kinematical and the safe theorems of limit analysis are valid. The present study focuses on the application of the second theorem to masonry vaults and domes, being devoted to the determination of a class of purely compressive stress regimes, which are balanced with the load. The mere existence of such a class is a proof that the structure is safe, and members of this class may be used to assess the geometric degree of safety of the structure and to estimate bounds on the thrust forces exerted by the structure on its boundary. The problem is reduced to the equilibrium of a membrane S and can be formulated in terms of projected stresses defined on the planform Omega of S. The search of the stress reduces to the solution of a second-order pde, in terms of the stress potential F. In order that the membrane stress on S be compressive, the potential F must be concave. As for the thrust line in an arch, the surface S is not fixed and may be changed, given that it remains inside the masonry. Under these simplifying assumptions, the whole class of equilibrated stress regimes for a masonry shell is obtained by moving and deforming S inside the masonry, and also, for any fixed shape, by changing the boundary data for F, that is the distribution of thrust forces along the boundary. The search for a feasible stress state on a convenient membrane surface, to be chosen with a trial and error procedure, requires a substantial effort and may be unrewarded. Then, the main object of the present work, is to produce a computer code that can handle numerically the interplay of the shape controlled by a function f, and of the stress potential F, by developing a convergent optimization scheme able to give a safe state under the given material and geometrical constraints, namely the concavity of F and the inclusion of f within the masonry. Two simple cases, are exposed in detail to illustrate the method.
机译:本作工作的目的是开发一种自动数值方法,用于分析薄砌体壳。砌体的材料模型是我们采用的是所谓的“正常刚性无张力”(NRNT)材料;对于这种材料,电流和极限分析的安全定理是有效的。本研究侧重于将第二本定理应用于砌体拱顶和圆顶,致力于确定一类纯粹压缩应力制度,这些压缩应力制度与负载相平衡。仅仅存在这样的类是一种证据,即该结构是安全的,并且该类的构件可用于评估结构的几何安全性和估计由其边界上的结构施加的推力力的界限。该问题减少到膜S的平衡,并且可以在S的平坦变形ω上限定的投影应力方面配制。在应力电位方面,应力的搜索降低到二阶PDE的溶液F.为了使膜胁迫是压缩的,潜在的F必须是凹形的。至于拱形中的推力线,表面S未固定并且可以改变,鉴于它仍然在砖石内部。在这些简化的假设下,通过改变F的边界数据,通过改变推力的边界数据,通过改变边界数据,通过改变边界数据来获得砌体壳的全类平衡应力制度。沿着边界。在方便的膜表面上搜索可行的应力状态,以试验和误差程序选择,需要大量的努力,并且可能是未奖励的。然后,目前工作的主要目的是通过开发能够提供安全状态的收敛优化方案来生成可以以数字方式处理由函数F控制的形状的相互作用的计算机代码。在给定的材料和几何约束下,即F的凹陷和砌体内的F的凹陷。有两个简单的情况,详细暴露,以说明该方法。

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