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GIRTH WELD STRENGTH MATCHING EFFECT ON TENSILE STRAIN CAPACITY OF GRADE X70 HIGH STRAIN LINE PIPE

机译:宽度焊接强度匹配对X70级高应变线管拉伸应变能力的影响

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Recently high grade pipeline project have been planned in hostile environment like landslide in mountain area, liquefaction in reclaimed land or the frost heave in Polar Regions. Geohazards bring large scale ground deformation and effect on the varied pipeline to cause large deformation. Therefore, strain capacity is important for the pipeline and strain based design is also needed to keep gas transportation project in safe. High grade steel pipe for linepipe tends to have higher yield to tensile (Y/T) ratio and it has been investigated that the lower Y/T ratio of the material improves strain capacity in buckling and tensile limit state. In onshore pipeline project, pipe usually transported in 12 or 18m each and jointed in the field. Girth weld (GW) is indispensable so strength matching of girth weld towards pipe body is important. In this study strain capacity of Grade X70 high strain pipes with size of 36" OD and 23mm WT was investigated with two types of experiments, which are full scale pipe bending tests and curved wide plate tests. The length of the specimen of full scale bending tests were approximately 8m and girth weld was made in the middle of joint length. A fixed internal pressure was applied during the bending test. Actual pipe situation in work was simulated and both circumferential and longitudinal stress occurred in this test. Test pipes were cut and welded, GTAW in first two layer and then finished by GMAW. In one pipe, YS-TS over-matching girth weld (OVM) joint was prepared considering the pipe body grade. For the other pipe, intentionally under-matching girth weld (UDM) joint was prepared. After the girth welding, elliptical EDM notch were installed in the GW HAZ as simulated weld defect. In both pipe bending tests, the buckling occurred in the pipe body at approximately 300mm apart from the GW and after that, deformation concentrated to buckling wrinkle. Test pipe breaking locations were different in the two tests. In OVM, tensile rupture occurred in pipe body on the backside of buckling wrinkle. In UDM, tensile rupture occurred from notch in the HAZ. In CWP test, breaking location was the HAZ notch. There were significant differences in CTOD growth in HAZ notch in these tests.
机译:最近的高档管道项目计划在山地地区的滑坡等敌对环境中,再生陆地液化或极地地区的霜冻。地质曲柱为各种管道带来大规模的地面变形和影响,以引起大变形。因此,还需要应变能力对管道和基于应变的设计来说,也需要在安全的情况下保持煤气运输项目。用于线管的高级钢管往往具有更高的拉伸(Y / T)比率,并且已经研究了材料的较低Y / T比率提高了屈曲和拉伸极限状态的应变能力。在陆上管道项目中,管道通常在12或18米处运输,并在该领域接合。环焊(GW)是必不可少的,因此周长焊接朝向管体的强度匹配很重要。在这项研究中,用两种类型的实验研究了X70级高应变管,具有36英寸OD和23mm wt的高应变管的应变能力,这是满量程管道弯曲试验和弯曲的宽板测试。全规模弯曲的标本的长度测试约为8米,在关节长度的中间进行围绕焊缝。在弯曲试验期间施加固定内部压力。模拟工作中的实际管道情况,并在该测试中发生圆周和纵向应力。试验管道焊接,前两层的GTAW,然后通过GMAW完成。在一个管道中,考虑到管体等级,准备了YS-TS过匹配的环焊(OVM)接头。对于其他管道,有意地呈现匹配的周长焊接(UDM )编写联合。在焊接焊接之后,椭圆形EDM凹口被安装在GW HAZ中作为模拟焊接缺陷。在两个管道弯曲试验中,在管体内发生在远离GW的管体中发生弯曲之后,变形集中到屈曲皱纹。试验管断裂位置在两个测试中不同。在OVM中,在屈曲皱纹背面的管体内发生拉伸破裂。在UDM中,避难所中的凹口发生拉伸破裂。在CWP测试中,打破位置是HAZ缺口。在这些测试中HAZ中的CTOD增长存在显着差异。

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