A New High Charge Density Superplasticizer Regulates the Rheological Properties of Tailings Slurry and Cemented Paste Backfill Materials

- Organization:
- Society for Mining, Metallurgy & Exploration
- Pages:
- 11
- File Size:
- 1000 KB
- Publication Date:
- Jan 5, 2022
Abstract
To improve the pumping capacity and engineering efficiency of fresh thickened tailings slurry, a high charge density superplasticizer
was developed to improve the rheological properties of tailings slurry. The effects of superplasticizer content, the
concentration and fineness of tailings, the proportion and type of cementitious materials, temperature, and hydration time
on the rheological properties of unclassified tailings slurry and backfill materials were studied. The variation characteristics
of the slurry yield stress, plastic viscosity, and thixotropy with different factors were measured by a Brookfield R/S-SST
plus rheometer. The experimental results of fresh thickened tailings illustrated that the higher the concentration of the slurry
and the finer the tailings, the worse the rheological properties of the slurry. The results of cemented paste backfill materials
indicated that the rheological parameters increased as binder content and time increased. The rheological parameters
decreased as the temperature increased. The addition of a superplasticizer reduced the rheological parameters and improved
the rheological behavior of the fresh thickened tailings and cemented paste backfill materials, which was beneficial to the
slurry’s pipeline transportation. This paper can provide technical guidance for slurry transportation in the backfill system
and provide a reference for designing the superplasticizer used in tailings.
Citation
APA:
(2022) A New High Charge Density Superplasticizer Regulates the Rheological Properties of Tailings Slurry and Cemented Paste Backfill MaterialsMLA: A New High Charge Density Superplasticizer Regulates the Rheological Properties of Tailings Slurry and Cemented Paste Backfill Materials. Society for Mining, Metallurgy & Exploration, 2022.