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首页> 外文期刊>International Journal of Pressure Vessels and Piping >Extension of the semi-empirical correlation for the effects of pipe diameter and internal surface roughness on the decompression wave speed to include High Heating Value Processed Gas mixtures
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Extension of the semi-empirical correlation for the effects of pipe diameter and internal surface roughness on the decompression wave speed to include High Heating Value Processed Gas mixtures

机译:将半经验相关性扩展到管直径和内表面粗糙度对减压波速的影响,以包括高热值处理气体混合物

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The decompression wave speed, which is used throughout the pipeline industry in connection with the Battelle two-curve method for the control of propagating ductile fracture, is typically calculated using GASDECOM (GAS DECOMpression). GASDECOM, developed in the 1970's, idealizes the decompression process as isentropic and one-dimensional, taking no account of pipe wall frictional effects or pipe diameter. Previous shock tube tests showed that decompression wave speeds in smaller diameter and rough pipes are consistently slower than those predicted by GASDECOM for the same conditions of mixture composition and initial pressure and temperature. Previous analysis based on perturbation theory and the fundamental momentum equation revealed a correction term to be subtracted from the 'idealized' value of the decompression speed calculated by GASDECOM. One parameter in this correction term involves a dynamic spatial pressure gradient of the outflow at the rupture location. While this is difficult to obtain without a shock tube or actual rupture test, data from 14 shock tube tests, as well as from 14 full scale burst tests involving a variety of gas mixture compositions, were analyzed to correlate the variation of this pressure gradient with two characteristics of the gas mixture, namely; the molecular weight and the higher heating value (HHV). For lean to moderately-rich gas mixes, the developed semi-empirical correlation was found to fit very well the experimentally determined decompression wave speed curve. For extremely rich gas mixes, such as High Heating Value Processed Gas (HHVPG) mixtures of HHV up to 58 MJ/m~3, it was found that it overestimates the correction term. Therefore, additional shock tube tests were conducted on (HHVPG) mixes, and the previously developed semi-empirical correlation was extended (revised) to account for such extremity in the richness of the gas mixtures. The newly developed semi-empirical correlation covers a wider range of natural gas mixtures from as lean as pure methane up to HHVPG mixtures of HHV = 58 MJ/m~3.
机译:通常使用GASDECOM(GAS DECOMpression)来计算减压波速,该减压波速在整个管道行业中都与Battelle两曲线法一起用于控制传播性延性断裂。 GASDECOM(开发于1970年代)将减压过程理想化为等熵和一维,而无需考虑管壁的摩擦效应或管径。先前的冲击管测试表明,在相同的混合物成分和初始压力和温度条件下,较小直径和粗管中的减压波速度始终比GASDECOM预测的慢。先前基于微扰理论和基本动量方程式的分析表明,要从GASDECOM计算的减压速度的“理想化”值中减去一个校正项。该校正项中的一个参数涉及破裂位置处流出物的动态空间压力梯度。尽管没有冲击管或实际的破裂测试很难做到这一点,但分析了14个冲击管测试以及14个涉及多种混合气体成分的满量程爆破测试的数据,以将压力梯度的变化与混合气体的两个特征,即;分子量和较高的发热量(HHV)。对于稀薄到中等浓厚的混合气,发现已建立的半经验相关性非常适合实验确定的减压波速曲线。对于极其丰富的气体混合物,例如高达58 MJ / m〜3的HHV的高热值处理气体(HHVPG)混合物,发现它高估了校正项。因此,对(HHVPG)混合物进行了额外的冲击管测试,并扩展了(修订)了先前开发的半经验相关性,以说明混合气体的丰富程度如此极端。新开发的半经验相关性涵盖了范围更广的天然气混合物,从稀薄的纯甲烷到HHV = 58 MJ / m〜3的HHVPG混合物。

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