首页> 外文会议>PVP2011;ASME Pressure Vessels and Piping conference >HYDROGEN AND HIGH TEMPERATURE RESISTANT V-MODIFIED 9CR-1MO HEAVY PLATES DEVOTED TO NEW GENERATION HIGH PERFORMANCE PETROCHEMICAL REACTORS.
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HYDROGEN AND HIGH TEMPERATURE RESISTANT V-MODIFIED 9CR-1MO HEAVY PLATES DEVOTED TO NEW GENERATION HIGH PERFORMANCE PETROCHEMICAL REACTORS.

机译:氢和耐高温的V改性9CR-1MO重质板,专门用于新一代高性能石油化学反应器。

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The efficiency of petrochemical reactors is intimately related to process parameters, i.e. service temperatures and pressures. Low alloyed ferritic materials, such as 2ViCrlMo(V) and 3CrlMo(V) steel grades, are widely used for many years to build heavy wall reactors. This is mainly due to their good mechanical properties at high temperatures under high hydrogen partial pressures and good resistance to High Temperature Hydrogen Attack (HTHA). Depending on the grades, the ASME Code gives limitations in terms of maximum temperature that can limit the use of these low alloy grades. Moreover, above a given temperature, maximum allowable stresses are driven by the creep behaviour, leading to a strong lowering of the assumed resistance and hence to extra-thickness and weight. Many developments were done concurrently to increase the efficiency of petrochemical processes. In particular, this can lead to increase service temperatures and therefore actual pressure vessel wall temperatures. Indeed, more and more temperatures around 500°C are likely to be used, leading to reduced choice in terms of permitted steel grades. The low alloy vanadium-enhanced grades are not allowed (except using specific code case) whereas the usual grades have reduced creep allowable stresses. With a view to allowing strong improvements in admissible process parameters, a vanadium-modified 9CrlMo creep strength enhanced material with advanced hydrogen resistance and improved toughness was developed. Very thick plates (up to 200mm thick) were produced and tested. This contribution reports both mechanical and metallurgical assessments performed on these heavy plates. Evaluations of hydrogen resistance (HTHA) as well as creep resistance under high hydrogen pressure are also reported. The V-modified 9CrlMo grade exhibits an excellent behaviour in hydrogen rich environment, showing therefore some advantages in terms of service conditions. The manufacturing of heavy plates has made significant progress in the recent years, allowing thick products to be manufactured with good homogeneity and mechanical behaviour. Taking into account the maximum use temperature as well as the allowable stresses as described in the ASME BPV Code section VIII division 2~([1,2]), the V-modified 9Cr1Mo grade will clearly be of great interest to companies wishing to enhance the efficiency of their refining/petrochemical processes. The question of welding must also be addressed more specifically to finish validating the 9Cr1MoV option.
机译:石化反应器的效率与工艺参数,即使用温度和压力密切相关。低合金铁素体材料,例如2ViCrlMo(V)和3CrlMo(V)钢牌号,已被广泛用于建造厚壁反应堆。这主要是由于它们在高温,高氢分压下的良好机械性能以及对高温氢侵蚀(HTHA)的良好抵抗力。根据等级,ASME规范对最高温度进行了限制,可能会限制使用这些低合金等级的产品。此外,在给定温度以上,蠕变行为会驱动最大允许应力,从而导致假定电阻大大降低,从而导致厚度和重量增加。同时进行了许多开发,以提高石化工艺的效率。特别是,这可能导致使用温度升高,从而导致压力容器壁的实际温度升高。确实,越来越多的温度可能会在500°C左右使用,从而导致在允许的钢种方面的选择减少。不允许使用低合金钒增强钢种(除非使用特殊代号),而普通钢种降低了蠕变许用应力。为了允许在可接受的工艺参数方面的重大改进,开发了具有先进的耐氢性和韧性的钒改性的9CrlMo蠕变强度增强材料。生产并测试了非常厚的板(最大厚度为200mm)。该贡献报告了在这些厚板上进行的机械和冶金评估。还报道了在高氢气压力下的耐氢性(HTHA)和抗蠕变性的评估。 V改性的9CrlMo牌号在富氢环境中表现出出色的性能,因此在使用条件方面显示出一些优势。近年来,厚板的制造取得了重大进展,使得厚板产品可以具有良好的均质性和机械性能。考虑到ASME BPV规范第VIII节2〜([1,2])中所述的最高使用温度以及允许的应力,V改性9Cr1Mo等级显然是希望增强其性能的公司所感兴趣的精炼/石化工艺的效率。还必须更具体地解决焊接问题,以完成对9Cr1MoV选件的验证。

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