钛合金环形加固圆柱体坍塌的实验和数值研究

IF 4.4 2区 工程技术 Q1 ENGINEERING, MECHANICAL Engineering Failure Analysis Pub Date : 2024-09-28 DOI:10.1016/j.engfailanal.2024.108928
Bowen Zhang , Yu Zhao , Junfeng Zhang , Aifeng Zhang , Zhengquan Wan
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引用次数: 0

摘要

本文通过实验和数值方法研究了用于海底资源勘探的环形加固钛合金圆柱体在静水压力下的坍塌问题。首先对钛合金试样进行了广泛的材料测试,以获得其基本机械性能和变化特征。然后,制作了一个 4236 毫米长的试验圆柱体,其内半径为 650 毫米,厚度(ts)为 18.85 毫米。用千分表测量了轴向均匀分布位置和圆周 48 个位置的初始几何缺陷。然后,将试验圆筒转移到定制的高压氧压力容器中,加压至塌陷。在数值分析方面,开发了一个用户定义的材料子程序,该子程序采用增量 J2 变形理论来预测塑性分叉压力。此外,还使用了一个非线性有限元(FE)模型来重现实验,该模型包含了测量到的几何缺陷和材料非线性。结果发现,数值结果与试验数据的一致性相当好。此外,还就材料特性、几何参数和缺陷大小对钛合金环形加固圆柱体承载能力的影响进行了参数研究。
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Experimental and numerical studies on the collapse of Titanium alloy ring-stiffened cylinder
This paper investigates the collapse of ring-stiffened Titanium alloy cylinders used for subsea resource exploration under hydrostatic pressure through experimental and numerical methods. Extensive material tests were first conducted on Titanium alloy specimens to obtain the fundamental mechanical properties and variation characteristics. Then, a 4236 mm-long test cylinder was fabricated with an inner radius of 650 mm and a thickness (ts) of 18.85 mm. The initial geometric imperfection was measured at evenly-spaced positions in the axial direction and 48 locations around the circumference by dial gauges. Afterward, the test cylinder was transferred into a custom hyperbaric pressure vessel and pressurized to collapse. As to the numerical analysis, a user-defined material subroutine implementing the incremental J2 deformation theory was developed to predict plastic bifurcation pressure. Moreover, a nonlinear finite element (FE) model, which incorporated the measured geometric imperfection and material nonlinearity, was used to reproduce the experiment. The numerical results were found to exhibit reasonably good agreement with the test data. In addition, parametric studies were conducted regarding material properties, geometric parameters, and imperfection sizes on the load-carrying capacity of Titanium alloy ring-stiffened cylinders.
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来源期刊
Engineering Failure Analysis
Engineering Failure Analysis 工程技术-材料科学:表征与测试
CiteScore
7.70
自引率
20.00%
发文量
956
审稿时长
47 days
期刊介绍: Engineering Failure Analysis publishes research papers describing the analysis of engineering failures and related studies. Papers relating to the structure, properties and behaviour of engineering materials are encouraged, particularly those which also involve the detailed application of materials parameters to problems in engineering structures, components and design. In addition to the area of materials engineering, the interacting fields of mechanical, manufacturing, aeronautical, civil, chemical, corrosion and design engineering are considered relevant. Activity should be directed at analysing engineering failures and carrying out research to help reduce the incidences of failures and to extend the operating horizons of engineering materials. Emphasis is placed on the mechanical properties of materials and their behaviour when influenced by structure, process and environment. Metallic, polymeric, ceramic and natural materials are all included and the application of these materials to real engineering situations should be emphasised. The use of a case-study based approach is also encouraged. Engineering Failure Analysis provides essential reference material and critical feedback into the design process thereby contributing to the prevention of engineering failures in the future. All submissions will be subject to peer review from leading experts in the field.
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