Sort:
Issue
Development of CO2 visualization loop experimental device concerning the “Dual Carbon” strategy
Experimental Technology and Management 2025, 42(1): 169-175
Published: 20 January 2025
Abstract PDF (2.7 MB) Collect
Downloads:6
[Objective]

Transporting CO2 through pipelines is essential for large-scale, long-distance carbon movement, playing a crucial role in the carbon capture, utilization, and storage industry. This method helps achieve “dual carbon” targets. To understand phase transitions and flow parameters in CO2 pipeline transportation, which are essential for ensuring safe and efficient design and operation, we have designed and constructed a CO2 visualization loop experimental device.

[Methods]

This state-of-the-art CO2 visualization loop experimental device comprises four key components: gas supply and phase transition, circulation pipeline, depressurization and release, and advanced data and image acquisition systems. Each component is strategically integrated to address the inherent challenges in CO2 transportation experiments, mainly in controlling crucial initial conditions such as temperature, pressure, and phase states. These factors often present substantial obstacles by causing significant data collection inconsistencies and complicating operational procedures. To overcome these challenges, the device utilizes high-precision and stable instruments alongside cutting-edge equipment to precisely control the initial experimental conditions. This setup significantly enhances the accuracy of capturing flow parameters, including in situ temperature and pressure readings throughout the transportation pipeline. A sophisticated control software was developed for the CO2 visualization loop experimental device, complementing its physical hardware. This software provides researchers with real-time monitoring by continuously recording pipeline parameters such as pressure, temperature, and flow rate. Furthermore, it allows dynamic control over the initiation, cessation, and operational frequency of crucial components such as booster and circulation pumps. These features offer significant convenience to researchers, significantly enhance experimental safety, and streamline the operational workflow, creating an ideal environment for conducting rigorous scientific investigations.

[Results]

Empirical investigations utilizing this device have explored gaseous and supercritical CO2 pipeline release scenarios. The findings reveal that during discharge, pipelines experience pronounced changes in pressure and temperature. The data also reveals that pressure response curves converge across various axial nodes along the pipeline, indicating a uniform pressure drop distribution. Conversely, temperature variations are significant across different nodes, with regions closer to the release endpoint experiencing more pronounced temperature reductions. This is attributed to the progressively intense Joule-Thomson cooling effect near the outlet. Moreover, during the release of supercritical CO2, a notable gas–liquid phase transition occurs, primarily driven by the sustained vaporization of the supercritical fluid, which modifies the fluid dynamics within the pipeline.

[Conclusions]

This study highlights the development and capabilities of a CO2 visualization loop experimental device that adeptly simulates steady-state transportation and transient release conditions within CO2 pipeline systems. Practical applications and tests confirm the remarkable device measurement accuracy, safety, and ease of use. Beyond CO2 pipeline research, this versatile device is also well-suited for educational purposes in fields such as oil and gas storage and transportation engineering, carbon storage science, and environmental engineering. The adaptability of the device underscores its immense potential for widespread adoption in various laboratory and educational contexts.

Open Access Original Paper Issue
Wax deposition modeling in oil-water stratified pipe flow
Petroleum Science 2023, 20(1): 526-539
Published: 30 September 2022
Abstract PDF (2.6 MB) Collect
Downloads:3

Wax deposition in oil-water stratified flow is commonly encountered onshore and offshore oil production pipe systems, and typically reduces transportation capacity of oil. The accurate predicted model of wax deposition has becomes an indispensable approach to design effective remediation strategies. However, a reliable mechanistic model for wax deposition prediction in oil-water two-phase stratified pipe flow is lacking to validate the deposition process. In this work, a three-dimensional (axial, radial, and angular) robust wax deposit model for oil-water stratified circular pipe flow was developed. The model of formation of a gel deposit based on the first principles of rheology was developed, associated with the results obtained from hydrodynamics and heat/mass transfer simulations. The predictions for wax deposition are found to compare satisfactorily with experimental data with two different oils for single phase and four different water cuts for oil-water stratified pipe flow. It can be seen from the wax gelation mechanism that an increase in water cut can help to reduce the wall/oil-deposit interface shear stress, thereby leading to an increase in the degree of gelation as well as the deposit rate. Furthermore, a local deposit analysis in the circumferential direction was conducted, for water cut 75% and total flow rate 5 m3/h, which provided insights to understand that the thickness on pipe wall was roughly uniformly distributed locates near the top of the pipe and the nearer the position gets close to two points, where the oil-water interface contacts the inner wall, the deposition thickness quickly dropped to 0. It was attributed to the fact that a roughly uniformly thickness far away from the oil-water interface contact the inner wall resulted in the slowly changes temperature along the circumferential pipe wall wetted by oil.

Total 2