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首页> 外文期刊>Journal of Nondestructive Evaluation >Acoustic Emission and Fractographic Analysis of Seamless Steel Pressure Cylinders with Artificial Flaws Under Hydrostatic Burst Testing
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Acoustic Emission and Fractographic Analysis of Seamless Steel Pressure Cylinders with Artificial Flaws Under Hydrostatic Burst Testing

机译:静水爆发试验下人工缺陷的无缝钢压力缸的声学发射和分接

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摘要

Eight 34CrMo4 high-pressure seamless steel cylinders (HPSC) with a nominal water-containing capacity of 80 l for a working pressure of 300 bar and an artificially manufactured flaw in each cylinder were subjected to a hydrostatic burst test with an additional monitoring of the acoustic emissions throughout the pressurization process. The use of water as a pressurizing medium makes the post-processing of acoustic emission data more difficult compared to pneumatic burst tests. Therefore, an artificial flaw has been utilized as a stress concentration element with the intent to situate the material damage process with the associated activity of the acoustic emission into a specific part of the geometry. With regards to the cylinder dimensions and the acquisition of an acoustic emission (AE) signal, the artificial flaw was, in all cases, milled in the middle of the cylindrical section and the remaining wall thickness under the flaw was equal to 1 mm. The presented results show the existence of three regions within the material damage process, namely void nucleation by cavitation, including the initiation of micro cracks, the stabilization of the cracks and the region with a further propagation of the previously stabilized cracks resulting in the final rupture of the cylinder wall under the notch. A complex analysis of the AE data, recorded at two different distances from the center of the flaw, in conjunction with the results from fractographic examination, enables the authors to perform a complex study of the material damage process evolution.
机译:含有标称水容量的八个34crmo4高压无缝钢缸(HPSC)为300巴的工作压力和每个气缸中的人工制造的缺陷的含水电压突发测试,并进行额外的声学监测整个加压过程的排放。与加压介质一起使用水使声发射数据的后处理与气动突发测试相比更加困难。因此,人造缺陷已被用作应力浓缩元件,其意图与声发射的相关活动分配到几何形状的特定部分中。关于汽缸尺寸和声发射(AE)信号的获取,在所有情况下,人工缺陷在圆柱形部分的中间研磨,并且缺陷下的剩余壁厚等于1mm。所呈现的结果表明,在材料损伤过程中存在三个区域,即通过空化的空化,包括微裂缝的启动,裂缝和区域的稳定性,以前稳定的裂缝的进一步繁殖导致最终破裂在凹口下的圆柱墙。对AE数据的复杂分析,录制在漏洞中心的两个不同距离中,与Fractography检查的结果结合,使作者能够对材料损坏过程演变进行复杂的研究。

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