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INVESTIGATION INTO THE EFFECT OF POST WELD HEAT TREATMENT ON THERMO-MECHANICALLY CONTROLLED ROLLED PIPELINE STEELS

机译:焊接热处理对热机械控制轧制钢材钢材的影响研究

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Practical options for routing new or diverted pipelines are often limited, which in some cases can lead to the construction of pipelines in potentially seismic or land-slip areas. Designers have advocated the use of heavy wall pipe in these areas; with the potential requirement for girth weld post weld heat treatment (PWHT) to reduce the residual stresses and temper any hard microstructures created during construction welding. A large proportion of high strength, heavy wall pipe is manufactured using thermo-mechanically controlled processed (TMCP) steel plate. It is generally accepted that these steels are not designed for subsequent PWHT and may suffer some degradation in their mechanical properties when re-heated above critical temperatures. A number of standards, specifications and technical publications acknowledge the influence of PWHT on mechanical properties of TMCP plate, but provide limited guidance on how it will affect the properties. Others refer directly to a detrimental effect, such as BS 4514-1, which states "when PWHT is carried out it may be necessary to verify the properties of the pipe and the welded joints affected by the heat treatment" and EN 10208-2 which states "subsequent heating of TMCP material above 580°C may lower the strength". The response to PWHT of two TMCP pipeline steels used within the UK gas transmission network has been investigated to confirm if the expected degradation in properties occurs and attempt to quantify the scale of any effect. The pipe material tested was L450MB and L555MB (equivalent grade to API5L X65 and X80), with dimensions 1219 mm x 25.4 mm and 1219 mm x 22.9 mm respectively, manufactured using the UOE process and submerged arc welding. The girth welds were manufactured using a manual metal arc process at the National Grid Pipeline Maintenance Centre in the UK. The PWHT parameters were selected to represent the top end of the temperature and time ranges available in existing standards and literature, theoretically testing the worst case scenario in terms of any possible deleterious effect. The project incorporated a detailed test program of the pipe, longitudinal weld and girth weld in both the as-welded and PWHT condition. The paper describes the tests performed and the results obtained. The mechanical properties of both pipe grades met the minimum requirements of the associated specifications after PWHT. However, a general deleterious effect of PWHT was observed, most significantly for the L555MB material and particularly the longitudinal seam weld. The magnitude of any effect is considered a function of the material chemistry, TMCP parameters, welding consumable and PWHT parameters. PWHT on TMCP pipe materials should be restricted. Where PWHT cannot be avoided, testing should be performed on the specific material to clearly define the magnitude of any deterioration in properties at the proposed PWHT temperature and thermal cycle.
机译:用于路由新的或转向管道的实用选择通常是有限的,这在某些情况下可能导致潜在地震或陆滑块的管道建设。设计师主张在这些领域使用重型壁管;随着环形焊接焊接热处理(PWHT)的潜在要求,以减少施工焊接期间产生的残余应力和发脾气。使用热机械控制的加工(TMCP)钢板制造了大量的高强度,重型壁管。通常接受这些钢不是设计用于随后的PWHT并且在重新加热高于临界温度时,可能在其机械性能下遭受一些降低。许多标准,规格和技术出版物承认PWHT对TMCP板的机械性能的影响,但为如何影响性质提供有限的指导。其他人直接提及有害效果,例如BS 4514-1,这些状态“当进行PWHT时,可能需要验证管道的性质和受热处理影响的焊接接头”和EN 10208-2 “随后加热TMCP材料以上580℃可以降低强度”。对英国气体传输网络中使用的两个TMCP管道钢的响应已经研究过,以确认是否发生了属性中的预期劣化并试图量化任何效果的规模。测试的管材料是L450MB和L555MB(相当于级到API5L X65 X80和),其尺寸1219毫米X 25.4分别毫米和1219毫米X22.9毫米,采用UOE工艺制造,埋弧焊。在英国国家网格管道维修中心的手动金属弧过程中使用手动金属弧过程制造。选择了PWHT参数以表示现有标准和文献中可用的温度和时间范围的顶端,从理论上就任何可能的有害效果理论上测试最坏情况。该项目在焊接和PWHT条件下纳入了管道,纵向焊接和周长焊接的详细测试程序。本文描述了所执行的测试和获得的结果。两种管道等级的机械性能符合PWHT后相关规格的最低要求。然而,对于L555MB材料,特别是纵向焊缝,最显着地观察到PWHT的一般有害效果。任何效果的大小都被认为是材料化学,TMCP参数,焊接消耗品和PWHT参数的函数。应限制TMCP管材上的PWHT。如果不能避免PWHT,则应在特定材料上执行测试,以清楚地定义所提出的PWHT温度和热循环处的性质的任何劣化的大小。

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