Experimental and mechanistic investigation of synergistic effects of particle size distribution and xanthan gum on rheological and infiltration properties of bentonite slurries
The properties of slurry are crucial for pressure conversion efficiency and excavation face stability in slurry shield tunneling. It is essential to investigate the impact of additives and material properties on the performance of bentonite slurry. This study systematically explores the multifactori...
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| Published in | Physics of fluids (1994) Vol. 37; no. 8 |
|---|---|
| Main Authors | , , , , , , , |
| Format | Journal Article |
| Language | English |
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Melville
American Institute of Physics
01.08.2025
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| Subjects | |
| Online Access | Get full text |
| ISSN | 1070-6631 1089-7666 |
| DOI | 10.1063/5.0282452 |
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| Abstract | The properties of slurry are crucial for pressure conversion efficiency and excavation face stability in slurry shield tunneling. It is essential to investigate the impact of additives and material properties on the performance of bentonite slurry. This study systematically explores the multifactorial interactions governing slurry performance through an experimental approach. A Box–Behnken experimental design incorporating three key factors—particle size distribution, bentonite content, and xanthan gum content—each evaluated at three distinct levels, was implemented within the framework of response surface methodology. The experimental approach enabled a quantitative assessment of their synergistic effects on two critical engineering parameters: rheological yield stress and infiltration distance. The microstructure of four slurries was examined using a scanning electron microscope to reveal the modification mechanism of xanthan gum in bentonite slurry. The analytical results showed that the rheological and infiltration properties of the slurry are influenced by the interacting effects of multiple factors. The addition of xanthan gum significantly improved the rheological performance of the bentonite slurry. When the xanthan gum content was increased from 0 to 4 g/l, the yield stress of the slurry increased by over 200%. Concurrently, under the same ratio, the use of bentonite with different particle gradations reduced the penetration distance from 25 cm to as low as 5 cm. The developed regression models demonstrated exceptional predictive capability (R2 > 0.97). These results establish a quantitative method providing actionable insights for the evaluation of rheological and infiltration performance in slurry shield tunneling. |
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| AbstractList | The properties of slurry are crucial for pressure conversion efficiency and excavation face stability in slurry shield tunneling. It is essential to investigate the impact of additives and material properties on the performance of bentonite slurry. This study systematically explores the multifactorial interactions governing slurry performance through an experimental approach. A Box–Behnken experimental design incorporating three key factors—particle size distribution, bentonite content, and xanthan gum content—each evaluated at three distinct levels, was implemented within the framework of response surface methodology. The experimental approach enabled a quantitative assessment of their synergistic effects on two critical engineering parameters: rheological yield stress and infiltration distance. The microstructure of four slurries was examined using a scanning electron microscope to reveal the modification mechanism of xanthan gum in bentonite slurry. The analytical results showed that the rheological and infiltration properties of the slurry are influenced by the interacting effects of multiple factors. The addition of xanthan gum significantly improved the rheological performance of the bentonite slurry. When the xanthan gum content was increased from 0 to 4 g/l, the yield stress of the slurry increased by over 200%. Concurrently, under the same ratio, the use of bentonite with different particle gradations reduced the penetration distance from 25 cm to as low as 5 cm. The developed regression models demonstrated exceptional predictive capability (R2 > 0.97). These results establish a quantitative method providing actionable insights for the evaluation of rheological and infiltration performance in slurry shield tunneling. |
| Author | Guo, Shaoxuan Li, Xiuhao Zhang, Mi Li, Xianghui Li, Rui Liu, Yankai Zhang, Qingsong Zheng, Dongzhu |
| Author_xml | – sequence: 1 givenname: Shaoxuan surname: Guo fullname: Guo, Shaoxuan organization: 4School of Civil Engineering and Architecture, University of Jinan, Jinan, Shandong 250022, China – sequence: 2 givenname: Rui surname: Li fullname: Li, Rui organization: 4School of Civil Engineering and Architecture, University of Jinan, Jinan, Shandong 250022, China – sequence: 3 givenname: Mi surname: Zhang fullname: Zhang, Mi organization: 4School of Civil Engineering and Architecture, University of Jinan, Jinan, Shandong 250022, China – sequence: 4 givenname: Qingsong surname: Zhang fullname: Zhang, Qingsong organization: Institute of Geotechnical and Underground Engineering, Shandong University – sequence: 5 givenname: Xianghui surname: Li fullname: Li, Xianghui organization: School of Civil Engineering, Shandong University – sequence: 6 givenname: Xiuhao surname: Li fullname: Li, Xiuhao organization: 4School of Civil Engineering and Architecture, University of Jinan, Jinan, Shandong 250022, China – sequence: 7 givenname: Yankai surname: Liu fullname: Liu, Yankai organization: 4School of Civil Engineering and Architecture, University of Jinan, Jinan, Shandong 250022, China – sequence: 8 givenname: Dongzhu surname: Zheng fullname: Zheng, Dongzhu organization: School of Civil Engineering and Architecture, University of Jinan |
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| Title | Experimental and mechanistic investigation of synergistic effects of particle size distribution and xanthan gum on rheological and infiltration properties of bentonite slurries |
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