Evaluation and Performance Analysis of Liquefied Petroleum Gas Cylinders

Abdulnnaser H. Fadel, Musa M. Abdullrhman, Mohamed Y. Elsagisli
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Abstract

This paper presents the experimental results of the tensile, bending, hardness, hydrostatic testing, and microstructural properties of liquefied petroleum gas cylinders from local sources. The burst pressure and fracture sites were also investigated. In addition, know how LPG cylinders are compliant with ISO 4706 requirements as per standard to get approval and acceptance. The tests were performed on three samples (C1, C2, and C3), and all the tests were according to the specification. Tensile testing was carried out at room temperature (23C°) as per ISO 6892-2016. Tensile test specimens with a gauge length of 50 mm were prepared from the sidewall of cylinders. The equipment used is built up around a 250 KN maximum capacity of (Instron Servo-Hydraulic Testing Machine Model 1332). At the same time, micro-hardness testing was carried out as per ASTM A384. Diamond indenter (pyramid) with a face angle of 136° was used. During testing (1kg) load was applied on the sample with a dwell time of 15 seconds. As for bending tests were carried out in accordance with ISO 7438 for all cylinders to evaluate their welding qualities. The results of microstructural characterization show that the carbon content for all samples averaged ~ 0.067 wt.% and manganese ~ 0.46 wt.% and the microstructure was largely ferritic. The tensile strength of the parent metal showed that LPG gas cylinders recorded high tensile strength of ~ 418 MPa on average, yield strength of ~ 291 MPa on average, a % elongation 26.6 (for parent metal), the tensile strength of ~ 449 MPa as average, yield strength of ~ 314 MPa as average, % elongation 32 (for weld metal) and hardness of ~ 143 (kg/mm2) as average by Vickers scale. Moreover, in the hydrostatic pressure test, the computer controlled electro-hydraulic servo pressure test machine was used. The results of the hydrostatic pressure test were as follows, pressure burst (BP) 103 bar, nominal hoop stress 528 MPa, volumetric expansion 25%, hydrostatic extend ratio 3.9%, sites of failure exist out of welding, and finally no fragmentation observed regarding to fracture types. All samples tested exhibited high resilience to crack propagation which showed ductile fracture after burst and tensile tests.
液化石油气钢瓶的评估和性能分析
本文介绍了本地来源液化石油气钢瓶的拉伸、弯曲、硬度、静水压测试和微观结构特性的实验结果。还对爆破压力和断裂部位进行了调查。此外,还了解了液化石油气钢瓶如何按照标准符合 ISO 4706 的要求,以获得批准和验收。对三个样本(C1、C2 和 C3)进行了测试,所有测试均符合规范要求。根据 ISO 6892-2016 标准,拉伸测试在室温(23℃)下进行。拉伸测试试样从圆柱体的侧壁上制备,长度为 50 毫米。所使用的设备是围绕最大容量为 250 KN 的 Instron 伺服液压试验机(型号 1332)制造的。同时,还按照 ASTM A384 标准进行了显微硬度测试。使用了面角为 136°的金刚石压头(金字塔)。在测试过程中,在样品上施加(1 千克)载荷,停留时间为 15 秒。所有钢瓶的弯曲测试均按照 ISO 7438 标准进行,以评估其焊接质量。微观结构表征结果表明,所有样品的碳含量平均约为 0.067 wt.%,锰含量约为 0.46 wt.%,微观结构主要为铁素体。母体金属的抗拉强度显示,液化石油气钢瓶的抗拉强度平均约为 418 兆帕,屈服强度平均约为 291 兆帕,伸长率为 26.6%(母体金属),抗拉强度平均约为 449 兆帕,屈服强度平均约为 314 兆帕,伸长率为 32%(焊缝金属),维氏硬度平均约为 143(kg/mm2)。此外,在静水压力试验中,使用了计算机控制的电液伺服压力试验机。静水压力测试的结果如下:爆破压力(BP)103 巴,公称箍筋应力 528 兆帕,体积膨胀率 25%,静水扩展率 3.9%,失效部位存在于焊接之外,最终没有观察到断裂类型方面的碎片。所有测试样品在爆裂和拉伸测试后都表现出较高的裂纹扩展弹性,并显示出延展性断裂。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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