PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 16, 2026Energy & Fuels0 citationsOpen Access

Mapping and Validation of Multiphase Flow Patterns in the Rock-Flow Cell as a Robust Tool for Flow Assurance

View Full Paper
CCConrado ChiarelloASAmadeu K. Sum

Key Points

  • The study aims to validate the rock-flow cell as a tool for accurately representing multiphase flow conditions akin to those in oil and gas production.
  • Utilized a visual rock-flow cell and a stirred beaker to analyze flow patterns.
  • Investigated the impact of turbulence on droplet breakup.
  • Adjusted rocking conditions, including angle and rate, to reproduce flow patterns.
  • The rock-flow cell successfully replicated flow patterns from flow loops under tested shear conditions.
  • Demonstrated droplet size distributions matched those reported in existing literature.
  • Provided evidence supporting the rock-flow cell's efficiency and robustness for flow assurance applications.

Abstract

As the name implies, flow assurance in oil and gas production must consider flow, that is, flow regimes/patterns for the distribution of the phases as those encountered in field flowlines. To fully translate and scale up laboratory studies for flow assurance, experimental data collected must be able to closely represent the thermohydraulic conditions of flowlines. To that end, flow loops are the closest representation but costly and resource-intensive, necessitating a more efficient alternative, which the rock-flow cell offers. In this paper, we provide data and analysis of the flow patterns in the rock-flow cell to demonstrate its ability to scale up and translate the thermohydraulic conditions equivalent to flow loops as well as those in flowlines. The one fundamental premise in multiphase flow is the link between shear (turbulence) and flow patterns in terms of dispersion of phases, as described by the Kolmogorov–Hinze dispersion theory and modern extensions of the field such as Brauner’s model. We use a visual rock-flow cell and a stirred beaker to study and understand turbulence and how it impacts droplet breakup. The data presented herein supports the claim that, by adjusting rocking conditions (angle and rate), the rock-flow cell is capable of reproducing flow patterns and droplet size distributions from flow loops as reported in the literature, showing that it is able to match the shear conditions of such systems. Considering the evidence presented herein and in the context of multiphase flow and flow assurance with phase change and solid precipitation, the rock-flow cell is a robust and efficient setup and, in many ways, the best setup available to that end.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Chiarello et al. (2026) studied this question.

synapsesocial.com/papers/6a08093ca487c87a6a40b367https://doi.org/10.1021/acs.energyfuels.6c00787
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Redefining the Criteria and Testing for Gas Hydrate Slurry Transportability with an Anti-Agglomerant in Condensate Systems2024 · 12 citations
  2. 2Hydrate blockage observation and removal using depressurization in a fully visual flow loop2021 · 42 citations
  3. 3Experimental investigation on the process of hydrate deposition using a rock-flow cell2021 · 12 citations
  4. 4Effect of drops on turbulence of kerosene–water two-phase flow in vertical pipe2015 · 7 citations
  5. 5Investigation into the formation, blockage and dissociation of cyclopentane hydrate in a visual flow loop2021 · 27 citations