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EXPERIENCES IN MAXIMIZING PERFORMANCE OF ULSD UNITS

机译:最大化ULSD单位性能的体验

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Refiners in the US and Europe, as well as many other countries, have been producing ULSD for at least 3 years. While some problems were encountered in the transition to ULSD, the vast majority of these new ULSD units and unit revamps have performed as well or better than expected. As these units reach the end of their first cycle, it's worthwhile to review their operating experiences and investigate opportunities to further optimize performance. One area of significant progress in the past 3 years is in understanding the chemistry of hydroprocessing for ULSD. It turns out that there are more significant differences in the desulfurization chemistry for these units than can be accurately understood by using average bed temperature and basic kinetics. What is needed is a look inside the reactor in order to develop an understanding of the discrete reactions taking place. Albemarle has developed a methodology and a model to accomplish just that. This technology, designated STAX~?, predicts the required catalyst functionality for each section of the reactor based on key parameters for the particular ULSD unit. The result is a catalyst system design which delivers maximum performance within the constraints of the unit and objectives of the refiner. In this paper we review the development of the concepts and methods for STAX~? technology. Commercial experience, where the STAX~? design techniques have been successfully applied, will also be discussed.
机译:美国和欧洲以及许多其他国家的炼油厂一直在生产ulsd至少3年。虽然在过渡到ULSD的情况下遇到了一些问题,但绝大多数这些新的ULSD单位和单位改造也比预期的更好。随着这些单位达到他们的第一个周期的结束,审查他们的经历并调查进一步优化性能的机会是值得的。过去3年的一个重要进展领域是了解ULSD加氢处理的化学。事实证明,这些单元的脱硫化学存在更大的差异,而不是通过使用平均床温和基本动力学来精确地理解。所需要的是反应堆内部的外观,以便了解发生的离散反应。 Albemarle开发了一种方法和模型,以实现这一点。这项技术,指定了STAX〜?,基于特定ULSD单元的关键参数预测反应器的每个部分所需的催化剂功能。结果是一种催化系统设计,可在炼油厂的单位和目标的约束内提供最大性能。在本文中,我们审查了STAX概念和方法的开发〜?技术。商业经验,Stax〜?设计技术已成功应用,也将讨论。

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