Related Experiment Video
Updated: May 1, 2026

Experimental Multiscale Methodology for Predicting Material Fouling Resistance
Experimental and numerical study on pyrolysis performance of waste salt in moving bed reactor
1School of Future Technology, Xi'an Jiaotong University, Xi'an, Shaanxi, 710049, China.
Abstract:
The efficient removal of organic impurities is critical for the reuse of industrial waste chlorine salt. The present paper proposes a moving bed reactor for the pyrolysis of organic impurities in waste salt. A three-dimensional multiphysics model was developed by coupling the pyrolysis reaction model and the heat and mass transfer model. The results of the study indicate that the pyrolysis process commenced at 574.92 K, with a pyrolysis reaction order of 2, an activation energy of 121.16 kJ/mol, and a pre-exponential factor of 3.59 × 106 s-1. On this basis, the effects of reactor outer diameter (Dout), initial temperature (T0) and heating temperature (Th) on the pyrolysis process were investigated. The effect of Dout on the pyrolysis energy consumption per unit mass (Qm) is negligible. Conversely, an increase in T0 can effectively reduce Qm. The increase of Th was effective in accelerating the pyrolysis, but the Qm increased 64.34 % as Th increased from 673.15 K to 973.15 K. Concurrently, the best moving rate (ub) and Qm were precisely predicted by establishing a multi-parameter regression model. This work provides critical design parameters for waste salt moving bed pyrolysis systems.
Related Concept Videos
Determining the pH of Salt Solutions
Common Ion Effect
Ionic Strength: Effects on Chemical Equilibria
In this solution, the primary...
Chemical Equilibria: Redefining Equilibrium Constant
To calculate the equilibrium constants of solutions of moderately high ionic strength, one must account for the salt effect. This redefined...
The Response of Equilibria to the Conditions
Transport Number

