Abstract The key objective of this paper is to optimize the thermal production system's efficiency by controlling scale formation within the steam generation process at Petroleum Development Oman LLC (PDO). Scale buildup in boiler tubes significantly impairs heat transfer, leading to thermal inefficiency and increased risk of equipment failure. This project focuses on assessing historical scale accumulation, evaluating the effectiveness of chemical treatments, and implementing innovative solutions to mitigate scale formation. The ultimate goal is to enhance operational reliability, improve steam generation efficiency, and reduce the risk of costly maintenance interventions. A comprehensive analysis was conducted on historical scale accumulation in the Fields-A and Field-B. This included a detailed composition analysis of scales, and a review of the chemical treatments previously employed to manage scale formation. Measurements of scale deposits were refined to distinguish between hard and soft scales, recognizing that hard scales are the primary contributor to thermal inefficiency. Additionally, the ion exchange process for removing hardness (calcium and magnesium) from Aquifer Pump-Off (APO) water was scrutinized, revealing limitations in carbonate removal. To mitigate scale deposition, a systematic approach was developed, including the proactive injection of scale inhibitors as a safeguard against inadequacies in ion exchange performance. The results of this work indicate that the implementation of optimized scale measurement practices substantially improved the accuracy of data reflecting scale quantity within the boiler. Initial findings show that the most significant scale accumulation occurred in the first five tubes from the radiant outlet, with contamination levels characterized by both soft (1-2 mm) and medium (1-3 mm) scales. The analyses determined that without the necessary chemical intervention, there was a high likelihood of equipment failure due to localized overheating. Moreover, the effective use of scale inhibitors, in conjunction with refined monitoring and maintenance practices, is expected to reduce scale-related downtime and improve the overall reliability of the steam generation system. This project introduces a novel framework for managing scale control in thermal production systems, emphasizing the necessity of integrating advanced monitoring techniques with proactive chemical treatments. The findings highlight the importance of continuous innovation in the oil and gas sector to enhance steam generation efficiency while minimizing environmental impact. By addressing scale formation effectively, PDO can achieve significant improvements in both operational performance and sustainability.
Fazari et al. (Mon,) studied this question.
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