钢结构用于建筑物和构筑物的现代发展的主要方向

Bilyk S.І., Bilyk А.S.
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引用次数: 0

摘要

钢结构制造和设计技术的发展,加上计算机技术的发展,使得提高建筑工业的生产率成为可能。通过对这些因素的分析和概括,可以确定金属结构创造和改进的主要趋势和方向,同时考虑到其制造过程的自动化和BIM技术的使用。这些突出的趋势既为科学研究的发展指明了新的方向,也为确定钢结构体系应力-应变状态规律的实用方法的发展指明了方向。主要趋势有:金属建筑行业的数字化;制造和装配过程的自动化和机器人化;设计和生产过程的科学强度;绿色生产,从环境安全角度评价设计方案;复杂优化设计方案。作者强调了创造有效金属结构的下一个重要任务和发展前景:高强度钢C960等的创造和使用,各种金属厚度超高强度钢的自动化和机器人焊接工艺的改进;发展和完善薄壁结构和组合结构计算理论,确定长期运行后金属结构的实际资源;根据长期运行和寿命周期的要求,介绍合理和优化设计方法创建新结构的实践,包括渐进倒塌,降低钢结构的火灾成本和防腐盖;完善建筑规范和金属结构设计规范;实施国外领先的标准和经验;培养现代专业工程技术人员;在建立高精度结构系统信息模型的基础上,开展全尺寸结构样品的实验和理论研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
MAIN DIRECTIONS OF MODERN DEVELOPMENT OF STEEL CONSTRUCTIONS FOR BUILDINGS AND STRUCTURES
The development of technologies for the manufacture and design of steel structures, together with the development of computer technologies, makes it possible to increase productivity in the building industry. The analysis and generalization of such factors made it possible to identify the main trends and directions of the creation and improvement of metal structures, taking into account the automation of their manufacturing processes and the use of BIM technologies. The highlighted tendencies make it possible to show both new directions for the development of scientific research and directions for the development of practical methodologies for determining the regularities of the stress-strain state of structural systems using steel. Among the main trends, the following are highlighted: digitalization of the metal construction industry; automation and robotization of the manufacturing and assembling processes; science intensity of design and production processes; greening production, evaluating design solutions from the standpoint of environmental safety; complex optimization of design solutions. The authors highlight the next important tasks and prospects for the development of the creation of effective metal structures: the creation and use of high-strength steels C960 and more, the improvement of automated and robotic welding processes for ultra-high-strength steels with various metal thicknesses; development and improvement of the theory of calculation of thin-walled and composite structures, determination of the actual resource of metal structures after long-term operation; introduction into the practice of creating new structures of rational and optimal design approaches with the requirements of long-term operation and life cycle, including progressive collapse, reduction in the cost of fire and anti-corrosion covers for steel structures; improvement of building codes and rules for the design of metal structures; implementation of leading foreign standards and experience; training of modern professional engineers and technicians; development of experimental and theoretical studies of full-scale samples of structures on the basis of creating high-precision information models of structural systems.
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