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Time-Dependent Rheology of a Model Waxy Crude Oil with Relevance to Gelled Pipeline Restart

机译:与胶凝管道重启相关的蜡质原油模型的时变流变学

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摘要

When ambient temperatures are low, paraffinic crude oils being transported in pipelines may form gels composed of wax crystals. If pipeline flow ceases, these waxy gels may make it difficult to restart the flow without breaking the pipe. To predict the severity of this problem, we consider the rheology of a transparent model waxy crude oil for which pipeline flow visualization results are presented elsewhere. We investigate characteristics of the model oil determined by cone-plate shear flow measurements, such as the viscosity and wax appearance temperature, the gelation temperature, the elastic modulus, and the yielding behavior of the gel. The yielding behavior is a critical determinant of pipeline restart, and the time-dependent yielding behavior observed for this model oil is similar to that reported previously for North Sea crude oils. In particular, at sufficiently low-stress levels, the gel never yields, whereas the gel yields or "fractures" immediately at sufficiently high-stress levels. At intermediate-stress levels, the gel "creeps" with a delay time to fracture that ranges from seconds to hours, depending upon the imposed stress value. Some authors have suggested that waxy gels slowly degrade as they creep and that this gives rise to the very long delay times to fracture that may be observed. However, a creep-response hysteresis test on the model oil studied here shows that the gel elastic modulus does not vary with time during creep, a result which is inconsistent with the degradation mechanism.
机译:当环境温度较低时,在管道中运输的石蜡油可能会形成由蜡晶体组成的凝胶。如果管道流停止,这些蜡状凝胶可能会导致难以重新启动流而不破坏管道。为了预测此问题的严重性,我们考虑了透明模型蜡质原油的流变学,该模型的管线流可视化结果在其他地方给出。我们研究通过锥板剪切流测量确定的模型油的特性,例如粘度和蜡的出现温度,胶凝温度,弹性模量和凝胶的屈服行为。屈服行为是管道重启的关键决定因素,这种模型油所观察到的随时间变化的屈服行为与先前报道的北海原油相似。特别地,在足够低的应力水平下,凝胶永不屈服,而在足够高的应力水平下,凝胶立即屈服或“断裂”。在中等应力水平下,凝胶“蠕变”,其断裂延迟时间从数秒到数小时不等,具体取决于施加的应力值。一些作者建议蜡质凝胶随着蠕变缓慢降解,这会导致很长的断裂延迟时间。但是,此处研究的模型油的蠕变响应滞后测试表明,蠕变过程中凝胶弹性模量不会随时间变化,这与降解机理不一致。

著录项

  • 来源
    《Energy & fuels》 |2009年第2期|1311-1315|共5页
  • 作者单位

    Department of Chemical Engineering, University of Utah, Salt Lake City, Utah 84112;

    Department of Chemical Engineering, University of Utah, Salt Lake City, Utah 84112;

    Department of Chemical Engineering, University of Utah, Salt Lake City, Utah 84112;

    Department of Chemical Engineering, University of Utah, Salt Lake City, Utah 84112;

    Chevron Energy Technology Company, Houston, Texas 77002;

    Chevron Energy Technology Company, Houston, Texas 77002;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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