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基于丙烯酰基的聚合物对酸性(HS)环境中碳钢的缓蚀作用

Corrosion Inhibition of Carbon Steel in a Sour (HS) Environment by an Acryloyl-Based Polymer.

作者信息

Imran Ulhaq Muhammad, Saleem Qasim, Ajwad Hassan, Aleisa Rashed M, Alanazi Nayef M, Leoni Matteo, Zahrani Ibrahim, Makogon Taras

机构信息

Saudi Aramco, Research and Development Center, Dhahran 31311, Saudi Arabia.

出版信息

ACS Omega. 2023 May 1;8(20):18047-18057. doi: 10.1021/acsomega.3c01290. eCollection 2023 May 23.

Abstract

Corrosion poses safety and operational challenges in the oil and gas field, particularly in a sour environment. Corrosion inhibitors (CIs) are thus employed to protect the integrity of industrial assets. However, CIs have the potential to dramatically impair the effectiveness of other co-additives, such as kinetic hydrate inhibitors (KHIs). Here, we propose an acryloyl-based copolymer, previously used as a KHI, as an effective CI. The copolymer formulation provided a corrosion inhibition efficiency of up to 90% in a gas production environment, implying that it can reduce or even eliminate the need for an additional dedicated CI in the system. It also demonstrated a corrosion inhibition efficiency of up to 60% under field-simulated conditions for a wet sour crude processing environment. Molecular modeling suggests that the enhanced corrosion protection is imparted by the favorable interaction of the heteroatoms of the copolymer with the steel surface, potentially displacing adhered water molecules. All in all, we show that an acryloyl-based copolymer with dual functionalities can potentially overcome issues caused by incompatibilities in a sour environment, resulting in significant cost savings and operational ease.

摘要

腐蚀给油气田带来了安全和运营方面的挑战,尤其是在酸性环境中。因此,人们使用缓蚀剂(CIs)来保护工业资产的完整性。然而,缓蚀剂有可能极大地削弱其他共添加剂的效果,比如动力学水合物抑制剂(KHIs)。在此,我们提出一种以前用作动力学水合物抑制剂的丙烯酰基共聚物,作为一种有效的缓蚀剂。该共聚物配方在采气环境中提供了高达90%的缓蚀效率,这意味着它可以减少甚至消除系统中额外使用专用缓蚀剂的需求。在模拟现场的湿酸性原油加工环境条件下,它也表现出高达60%的缓蚀效率。分子模拟表明,共聚物的杂原子与钢表面的良好相互作用赋予了增强的腐蚀防护能力,有可能取代附着的水分子。总而言之,我们表明具有双重功能的丙烯酰基共聚物有可能克服酸性环境中不相容性所导致的问题,从而大幅节省成本并简化操作。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2e63/10210039/2ded5a928cb0/ao3c01290_0002.jpg

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