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Nonlinear geometric and material computational technique : higher-order element with refined plastic hinge approach

机译:非线性几何和材料计算技术:采用精致塑料铰链方法的高阶元素

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摘要

This paper addresses of the advanced computational technique of steel structures for both simulation capacities simultaneously; specifically, they are the higher-order element formulation with element load effect (geometric nonlinearities) as well as the refined plastic hinge method (material nonlinearities). This advanced computational technique can capture the real behaviour of a whole second-order inelastic structure, which in turn ensures the structural safety and adequacy of the structure. Therefore, the emphasis of this paper is to advocate that the advanced computational technique can replace the traditional empirical design approach. In the meantime, the practitioner should be educated how to make use of the advanced computational technique on the second-order inelastic design of a structure, as this approach is the future structural engineering design. It means the future engineer should understand the computational technique clearly; realize the behaviour of a structure with respect to the numerical analysis thoroughly; justify the numerical result correctly; especially the fool-proof ultimate finite element is yet to come, of which is competent in modelling behaviour, user-friendly in numerical modelling and versatile for all structural forms and various materials. Hence the high-quality engineer is required, who can confidently manipulate the advanced computational technique for the design of a complex structure but not vice versa.
机译:本文同时针对两种模拟能力探讨了钢结构的先进计算技术;具体来说,它们是具有单元载荷效应(几何非线性)以及精细的塑料铰链方法(材料非线性)的高阶元素公式。这种先进的计算技术可以捕获整个二阶非弹性结构的真实行为,从而确保结构的安全性和结构的充分性。因此,本文的重点是主张先进的计算技术可以代替传统的经验设计方法。同时,应该对从业人员进行如何在结构的二阶非弹性设计中利用先进的计算技术的教育,因为这种方法是未来的结构工程设计。这意味着未来的工程师应该清楚地了解计算技术;充分了解结构在数值分析方面的行为;正确证明数值结果的正确性;特别是防呆的最终有限元尚未到来,它具有出色的建模行为,对数值建模的用户友好性以及对所有结构形式和各种材料的通用性。因此,需要高素质的工程师,他们可以自信地操纵先进的计算技术来设计复杂的结构,反之则不行。

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