Novel H2S Scavenger Testing Methodology to Meet the Ever-Present Challenge of Simulating Scavenger Application Methods with Laboratory Testing Protocols

G. Taylor, J. Wylde, Bridgette Allan
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Abstract

The design methodology for H2S scavengers relies heavily on developing a test protocol that most closely simulates field applications. These include gas contact towers, direct gas production injection and multiphase treatments, such as subsea umbilical delivery lines to sea floor well heads, hydrocarbon flow lines and sour storage tank treatments. There are very few testing standards and while there are industry accepted methods, the novel methods presented fill the gaps that exist. A thorough review is made of existing test methodologies such as the static gas breakthrough test and the multiphase Parr Autoclave. Each of these has become an accepted, albeit unofficial, industry standard. Novel methods recently developed comprise the "Direct Injection Laboratory Simulator" (DILS) which, as the name suggests, represents a laboratory method of evaluating a direct gas injection application. Also included is a unique modification of the gas breakthrough test, known as the "miniature Ultrafab tower" which simulates a regenerative tower-based system, commonly in operation in the field. The results showed fascinating validation of gas direct injection and dynamic tower interactions. In some cases, the results are as expected and in others fresh insight has been obtained into any observed discrepancy between a scavenger's field performance and how it performs in the laboratory development studies. In the case of the "miniature Ultrafab tower", this ingenious piece of equipment has been proven to accurately simulate the packing typically seen in the gas contactor to enhance gas/liquid interaction as well as provides the ability to continually replenish the tower with fresh chemical during the test using an accurately controlled flow rate from an HPLC pump. These have been shown to be vitally important parameters for accurate lab to field correlation and are uniquely available from this test, for example gleaning the minimum flow rate of fresh scavenger which can control the H2S concentration to the predetermined level; exactly as is done in field operations. This novel apparatus also has a separator chamber where the spent chemical can be collected, analyzed and evaluated, exactly as is done in a field trial for a dynamic contact gas tower. Armed with a new series of test methodologies, the development of H2S scavengers can enjoy a much higher success rate in the all-important transition from laboratory to field. The test methods also give invaluable tools to trouble shooting and investigate unexpected deficiencies in products which have in the past performed as expected. This includes providing a validation method for changes and enhancements desired during the manufacture process and raw material sourcing for chemical scavengers.
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新的H2S清除剂测试方法,以满足实验室测试方案模拟清除剂应用方法的挑战
H2S清除剂的设计方法在很大程度上依赖于开发最接近现场应用的测试协议。其中包括气接触塔、直接注气和多相处理,如海底脐带输送管线到海底井口、碳氢化合物流动管线和酸储罐处理。测试标准很少,虽然有行业公认的方法,但提出的新方法填补了存在的空白。全面审查了现有的测试方法,如静态气体突破测试和多相Parr高压灭菌器。这些标准虽然是非官方的,但都已成为公认的行业标准。最近开发的新方法包括“直接注入实验室模拟器”(DILS),顾名思义,它代表了一种评估直接注气应用的实验室方法。还包括对气体突破测试的独特修改,称为“微型Ultrafab塔”,它模拟了一种基于再生塔的系统,通常在现场运行。结果证明了直接注气和塔间动态相互作用的有效性。在某些情况下,结果符合预期,而在另一些情况下,对于清除剂的现场性能与实验室开发研究中的表现之间的任何观察到的差异,研究人员获得了新的见解。在“微型Ultrafab塔”的情况下,这种巧妙的设备已被证明可以准确地模拟通常在气体接触器中看到的填料,以增强气/液相互作用,并提供在测试期间使用HPLC泵精确控制的流量不断向塔中补充新鲜化学物质的能力。这些已被证明是实验室与现场精确关联的至关重要的参数,并且是该测试中唯一可用的参数,例如,收集新鲜清除剂的最小流量,可以将H2S浓度控制在预定水平;就像外勤行动一样。这种新型装置还有一个分离室,在那里可以收集、分析和评估废化学品,就像在动态接触气塔的现场试验中所做的那样。有了一系列新的测试方法,H2S清除剂的开发可以在从实验室到现场的重要过渡中享有更高的成功率。测试方法也提供了宝贵的工具,以排除故障,并调查意外的缺陷,在过去的产品表现如预期。这包括为化学清除剂的生产过程和原材料采购过程中所需的更改和增强提供验证方法。
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