PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 4, 20260 citations

Yapılandırılmış Dolgularda Kuru Basınç Düşümü için Temsili Eleman Birimlerinin CFD Tabanlı Kalibrasyonu

View Full Paper
VTVolkan TopaloğluHDHakan Demir

Key Points

  • This research aims to improve the calibration of Representative Elementary Units for predicting pressure drop in structured packings.
  • Calibrated REU model for Mellapak 500.Y against semi-empirical correlations and experimental data.
  • Conducted single-phase simulations using SST k-ω turbulence model with a gas-load range of 0.72–4.32 Pa0.5.
  • Performed domain-sensitivity analysis with one, four, and six REUs.
  • Pressure drop underprediction was observed with a nominal 2.00 mm sheet spacing.
  • An effective spacing of 0.24 mm aligned CFD predictions with Tsai's measurements within a ±20% error band.
  • Identified effective sheet spacing as the key calibration parameter for hydrodynamics simulations.

Abstract

Representative Elementary Unit (REU) simplification has become a standard approach for CFD modeling of structured packings; however, its reliability in predicting dry pressure drop remains a critical yet underexplored issue. In particular, the sensitivity of hydraulic performance to internal geometric parameters is often overlooked in the current literature. This study addresses this gap by calibrating an REU model for Mellapak 500.Y against the semi-empirical correlation of Stichlmair et al. (1989) and experimental data from Tsai (2010). Single-phase simulations were conducted using the SST 𝑘−𝜔 turbulence model over a gas-load range of 0.72–4.32 Pa0.5. Grid independence was established at 0.53 million cells per REU. A domain-sensitivity analysis using one, four, and six REUs yielded deviations below 10%, confirming that a single-unit domain provides sufficient accuracy for dry-flow calibration. The results show that the nominal 2.00 mm sheet spacing leads to substantial underprediction of pressure drop, whereas an effective spacing of 0.24 mm brings the CFD predictions into agreement with Tsai’s measurements within a ±20% error band and consistent with the Stichlmair correlation across the operating window. These findings identify the effective sheet spacing as the dominant geometric calibration parameter and provide a reproducible, computationally efficient baseline REU for subsequent hydrodynamics simulations in Mellapak 500.Y.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Topaloğlu et al. (2025) studied this question.

synapsesocial.com/papers/69f836aa3ed186a739980f01https://doi.org/10.47480/isibted.1833958
Ask AI
Helpful
Bookmark
Share
View Full Paper