压力容器的理论和有限元分析

Ishwar Gophane, Narayan Dharashivkar, P. Mulik, Prashant Patil
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引用次数: 0

摘要

目标:本研究使用 Ansys APDL 测试压力容器在内部压力、喷嘴载荷和水压试验下的强度和性能,按照规则设计(分析)和分析设计(有限元分析)精确弹性分析方法,验证设计与 ASME 第 VIII 章的一致性。方法:本研究采用 ASME 方法验证容器在各种载荷下的完整性。通过分析公式和使用 ANSYS APDL 的有限元分析 (FEA) 确认强度,与石油天然气行业广泛使用的 ASME BPVC 规范保持一致。有限元分析模型采用六边形元素,确保了结果的准确性,整个厚度至少有三个元素。通过比较有限元分析中的箍应力与分析计算值,对边界条件进行了验证。ASME 的计算效率弹性分析采用线性方法,包括不连续和非不连续位置的应力线性化,通过分析验证容器设计。结果:壳体和锥体的初始厚度超过了分析计算的最小值,通过 ASME 的规则设计方法确认了容器结构的完整性。在关键点(如喷嘴连接处和其他不连续区域)进行有限元分析(FEA)应力分析,通过箍应力检查验证了准确性。对设计和测试负载情况的分析表明,应力类别完全符合 ASME 第 VIII 章的限制,从而确认了容器的安全性,并符合弹性应力分析标准。新颖性:该方法是一种可靠的容器设计工具,可确保安全并符合 ASME 标准,尤其适用于石油和天然气等行业。它利用六边形网格提供精确的指导,通过箍筋应力比较验证边界条件,并通过弹性应力分析全面评估关键和非关键区域的应力。该方法解决了文献综述中发现的共同难题,提高了压力容器设计的准确性和可靠性,使其符合 ASME 标准的设计和测试载荷要求。关键词压力容器、流程工业、应力、载荷、压力、热、设计验证、ASME、FE 分析
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Theoretical and Finite Element Analysis of Pressure Vessel
Objectives: This study tests the vessel strength and performance of pressure vessel under Internal pressure, Nozzle loads, and Hydro-test using Ansys APDL, validating design alignment with ASME Section VIII following the Design by rule (Analytical) and Design by Analysis (FEA) accurate elastic analysis approach. Methods: This study employs ASME methods to validate vessel integrity under various loads. Strength is confirmed through analytical formulas and Finite Element Analysis (FEA) using ANSYS APDL, aligned with widely used ASME BPVC codes in the oil and gas industry. The FE model, utilizing hex elements, ensures result accuracy with a minimum of three elements across thickness. Boundary conditions are validated by comparing hoop stress in FEA with analytically calculated values. ASME's computationally efficient elastic analysis, employing a linear approach, includes stress linearization at discontinuity and non-discontinuity locations, verifying vessel design through analysis. Findings: Initial thicknesses for the shell and cone exceeded analytically calculated minimums, affirming vessel structural integrity through ASME's design by rule approach. Finite Element Analysis (FEA) stress analysis at critical points, such as nozzle junctions and other discontinuity areas, validates accuracy through hoop stress checks. Analysis of design and test load cases reveals stress categories well within ASME Sec VIII limits, confirming the vessel's safety and compliance with elastic stress analysis standards. Novelty: This method emerges as a reliable tool for vessel design, ensuring safety and ASME compliance, particularly beneficial for industries like oil and gas. It provides precise guidelines utilizing hex mesh, validates boundary conditions through hoop stress comparison, and comprehensively assesses stress in critical and non-critical zones through elastic stress analysis. Addressing common challenges identified in the literature review, this approach enhances the accuracy and reliability of pressure vessel designs in compliance with ASME standards for design and test loadings. Keywords: Pressure Vessels, Process Industries, Stress, Loads, Pressure, Thermal, Design Validation, ASME, FE analysis
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