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首页> 外文期刊>International Journal of Oil, Gas and Coal Engineering >Experimental Study on Foamy Viscosity by Analysing CO2 Micro-Bubbles in Hexadecane
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Experimental Study on Foamy Viscosity by Analysing CO2 Micro-Bubbles in Hexadecane

机译:通过分析十六烷中的CO2微气泡对泡沫粘度的实验研究

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摘要

Continuous desorbing gas in the heavy oil generates lower viscosity with dispersing gas micro-bubbles. In this study, laboratory experiments were carried out to measure the viscosity of foamy hexadecane, typical component of heavy oil, and to investigate the CO2 gas micro-bubbles at ranged temperature of 20 – 50 °C and depressurization pressure of 1.0 – 6.0 MPa. Apparently, hexadecane mobility increases with increasing foam swelling. The viscosity ratio of foam vs. original hexadecane showed 0.90 – 0.70 with increasing foam swelling in the swelling range of 3.0 – 4.8%. The foam swelling is caused by dispersed gas micro-bubbles, and its viscosity was more reducible at either low temperature or high foam swelling based on present measurement results. The bubble distribution showed the large bubbles (approximately 50 µm in diameter) were coalesced but the micro-bubbles (approximately 5 µm in diameter) were stable under the shear of 1575 s-1, within 3 minutes of measuring. It shows that the micro-bubbles in smaller diameter have higher stability against the high shear rate. Therefore, generating foam by creating CO2 micro-bubbles is capable to make flow through the pore throats with viscosity reduction and improves oil recovery from non-mobile domain, such as aggregate and fine pores, by its swelling.
机译:重油中的连续解吸气体通过分散的气体微气泡产生较低的粘度。在这项研究中,进行了实验室实验以测量重油中典型成分泡沫十六烷的粘度,并研究了20至50°C的温度和1.0至6.0 MPa的降压压力下的CO2气体微气泡。显然,十六烷的迁移率随泡沫膨胀的增加而增加。泡沫与原始十六烷的粘度比显示为0.90-0.70,而在3.0-4.8%的溶胀范围内,泡沫的溶胀增加。泡沫膨胀是由分散的气体微气泡引起的,根据目前的测量结果,在低温或高泡沫膨胀下其粘度都更可降低。气泡分布表明,在测量的3分钟内,在1575 s-1的剪切力下,大气泡(直径约50μm)聚结,而微气泡(直径约5μm)稳定。结果表明,直径较小的微泡对高剪切速率具有较高的稳定性。因此,通过产生CO 2微气泡来产生泡沫能够使流体流过孔喉而降低粘度,并通过其溶胀而改善了从非流动区域如聚集体和细孔的采收率。

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