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Role of critical parameters on the rheology and pipeline transportation of concentrated non-Newtonian iron ore slurry Cover

Role of critical parameters on the rheology and pipeline transportation of concentrated non-Newtonian iron ore slurry

By: Vighnesh Prasad and  Anil Dubey  
Open Access
|Mar 2026

References

  1. Abulnaga, B., 2002. Slurry systems handbook, New York: McGraw-Hill.
  2. Assefa, K.M., Kaushal, D.R., 2017. A new model for the viscosity of highly concentrated multi-sized particulate Bingham slurries. Part. Sci. Technol. 35, 77–85. https://doi.org/10.1080/02726351.2015.1131789
  3. Assefa, K.M., Kaushal, D.R., 2014. A comparative study of friction factor correlations for high concentrate slurry flow in smooth pipes. J. Hydrol. Hydromechanics 63. https://doi.org/10.1515/johh-2015-0008
  4. Au, P.I., Leong, Y.K., 2016. Surface chemistry and rheology of slurries of kaolinite and montmorillonite from different sources. KONA Powder Part. J. 2016, 17–32. https://doi.org/10.14356/kona.2016007
  5. Aude, T.C., Thompson, T.L., Wasp, E.J., 1974. Economics of slurry pipeline system. In: Fifteenth Annual Meeting of Transportation Research Forum; Theme- Transportation in Focus. 1st ed. San Francisco, 194–202.
  6. Baas, J.H., Baker, M.L., Buffon, P., Strachan, L.J., Bostock, H.C., Hodgson, D., Eggenhuisen, J.T., Spychala, Y.T., 2022. Blood, lead and spheres: A hindered settling equation for sedimentologists based on metadata analysis. The Depositional Record, 2, 603-615. https://doi.org/10.1002/dep2.176
  7. Bose, A.N., Raju K.S., 2001. Slurry transportation in Indian mines, Ministry of Mines, Govt. of India: 8–17.
  8. Brown, N., Heywood, N., 1991. Slurry Handling: Design of solid-liquid systems. Springer Science & Business Media, London.
  9. Chhabra, R., Richardson, J., 2011. Non-Newtonian flow and applied rheology: engineering applications. Butterworth- Heinemann.
  10. Coussot, P., 2014. Yield stress fluid flows: A review of experimental data. J. Non-Newtonian Fluid Mech. 211, 31-49. https://doi.org/10.1016/j.jnnfm.2014.05.006
  11. Dabak, Y., Yucel, O., 1986. Shear viscosity behavior of highly concentrated suspensions at low and high shear-rates, Rheol Acta 25, 527-533.
  12. Darby, R., Chhabra, R., 2016. Chemical engineering fluid mechanics. CRC Press.
  13. Darbya, R., Melson, J., 1981. How to predict the friction for flow of Bingham plastics. Chem Engg. 88.
  14. Farris, M., Shrock, D., 1978. The Economics of Coal Slurry Pipelining: Transportation and Non-Transportation Factors. Transp. J. 18, 45-57.
  15. Goto, H., Kuno, H., 1984. Flow of Suspensions Containing Particles of Two Different Sizes through a Capillary Tube. II. Effect of the Particle Size Ratio. J. Rheol. 28, 197-205. https://doi.org/10.1122/1.549740
  16. Goto, H., Kuno, H., 1982. Flow of Suspensions Containing Particles of Two Different Sizes through a Capillary Tube. J. Rheol. 26, 387-398. https://doi.org/10.1122/1.549682
  17. Hanks, R.W., 1967. On the Flow of Bingham Plastic Slurries in Pipes and Between Parallel Plates. Soc. Pet. Eng. J. 7, 342-346. https://doi.org/10.2118/1682-pa
  18. He, M., Wang, Y., Forssberg, E., 2006. Parameter studies on the rheology of limestone slurries. Int. J. Miner. Process. 78, 63–77. https://doi.org/10.1016/j.minpro.2005.07.006
  19. Holmes, R.J., Lu, Y., Lu, L., 2022. Introduction: Overview of the global iron ore industry. Iron Ore Mineral. Process. Environ. Sustain. 1–56. https://doi.org/10.1016/B978-0-12-820226-5.00023-9
  20. Irfan, D., Varadharajan, S., Mateen, S., Mobasshir, S.M., Kumar, A., Shukla, B.K., 2023. Study of Growth of Steel, Steel Infrastructure and Steel Industries in India, in: AIP Conference Proceedings. https://doi.org/10.1063/5.0163369
  21. Kania, J.J., 1984. Economics of coal transport by slurry pipeline versus unit train. A case study. Energy Econ. 6, 131–138. https://doi.org/10.1016/0140-9883(84)90028-8
  22. Kaushal, D.R., Sato, K., Toyota, T., Funatsu, K., Tomita, Y., 2005. Effect of particle size distribution on pressure drop and concentration profile in pipeline flow of highly concentrated slurry. Int. J. Multiph. Flow 31, 809–823. https://doi.org/10.1016/j.ijmultiphaseflow.2005.03.003
  23. Kulkarni, S., Verma, A., Mishra, N.S., Thareja, P., 2017. Partitioning and self assembly of silica and hematite particles at grain boundaries of hexagonal liquid crystals: Implications on rheology. J. Rheol. 61, 311-25. https://doi.org/10.1122/1.4975333
  24. Larsson, M., Hill, A., Duffy, J., 2012. Suspension stability: Why particle size, zeta potential and rheology are important Product Technical Specialists Rheometry Products Malvern Instruments Limited. Annu. Trans. Nord. Rheol. Soc. 20, 6-12.
  25. Leong, Y.K., 2021. Controlling the rheology of iron ore slurries and tailings with surface chemistry for enhanced beneficiation performance and output, reduced pumping cost and safer tailings storage in dam. Miner. Eng. 166, 106874. https://doi.org/10.1016/j.mineng.2021.106874
  26. Li, Y., Zyl, D., 2022. Hindered settling of flocculated multi-sized particle suspension, part I: Segregation mechanism of nonflocculated particles. Powder Technol. 407, 117683. https://doi.org/10.1016/j.powtec.2022.117683
  27. Liu, Y., Zhang, Q., Liu, R., 2021. Effect of particle size distribution and shear rate on relative viscosity of concentrated suspensions. Rheol. Acta 60, 763–774. https://doi.org/10.1007/S00397-021-01301-4
  28. Logos, C., Nguyen, Q.D., 1996. Effect of particle size on the flow properties of a South Australian coal-water slurry. Powder Technol. 88, 55–58. https://doi.org/10.1016/0032-5910(96)03103-8
  29. Luo, L., Ingrid T., 2018. Experimental investigation of particle agglomeration effects on slurry settling in viscous fluid. Transp. Porous Med. 2, 333-352. https://doi.org/10.1007/s11242-017-0956-3
  30. Mangesana, N., Chikuku, R.S., Mainza, A.N., Govender, I., Van Der Westhuizen, A.P., Narashima, M., 2008. The effect of particle sizes and solids concentration on the rheology of silica sand based suspensions. J. South. African Inst. Min. Metall. 108, 237–243.
  31. Michaelides, E., Crowe, C.T., Schwarzkopf, J.D., 2016. Multiphase Flow Handbook. CRC Press, New York.
  32. Mwale, A.H., Musonge, P., Fraser, D.M., 2005. The influence of particle size on energy consumption and water recovery in comminution and dewatering systems. Miner. Eng. 18, 915-926. https://doi.org/10.1016/j.mineng.2005.02.014
  33. Ndlovu, B., Becker, M., Forbes, E., Deglon, D., Franzidis, J.P., 2011. The influence of phyllosilicate mineralogy on the rheology of mineral slurries. Miner. Eng. 24, 1314–1322. https://doi.org/10.1016/J.MINENG.2011.05.008
  34. Ohki, A., Fukuda, S., Naka, K., Maeda, S., 1996. Studies on coal slurry fuel (part 4) effects of additive and particle size distribution on characteristics of coal-water mixture (CWM). Sekiyu Gakkaishi (Journal Japan Pet. Institute) 39, 129-36. https://doi.org/10.1627/jpi1958.39.129
  35. Phillips, R.J., Armstrong, R.C., Brown, R.A., Graham, A.L., Abbott, J.R., 1992. A constitutive equation for concentrated suspensions that accounts for shear‐induced particle migration. Physics of Fluids 1, 30-40. https://doi.org/10.1063/1.858498
  36. Prasad, V., 2024. Influence of rheology on the hydraulic conveying of red mud slurries through the pipeline for ecofriendly and safe disposal. Part. Sci. Technol. 42, 1073-1084. https://doi.org/10.1080/02726351.2024.2320103
  37. Prasad, V., Mehrotra, S.P., Thareja, P., 2019. Influence of additives, particle size, and incorporation of coarse particles on the shear rheology of concentrated Indian coal ash slurries. Asia-Pacific J. Chem. Eng. 14, e2358. https://doi.org/10.1002/apj.2358
  38. Rawat, A., Singh, S.N., Seshadri, V., 2019. Variation of physical and rheological properties of fly ash slurries with particle size and its effect on hydraulic transportation at high concentrations. Part. Sci. Technol. 37, 151-160. https://doi.org/10.1080/02726351.2017.1352636
  39. Senapati, P.K., Mishra, B.K., 2012. Design considerations for hydraulic backfilling with coal combustion products (CCPs) at high solids concentrations. Powder Technol. 229, 119–125. https://doi.org/10.1016/j.powtec.2012.06.018
  40. Senapati, P.K., Mishra, B.K., Parida, A., 2013. Analysis of friction mechanism and homogeneity of suspended load for high concentration fly ash & bottom ash mixture slurry using rheological and pipeline experimental data. Powder Technol. 250, 154–163. https://doi.org/10.1016/j.powtec.2013.10.014
  41. Senapati, S., Pothal, J.K., Mohanty, A., 2019. Effect of particle size distribution on rheology of high concentration limestone–water slurry for economic pipeline transportation. Part. Sci. Technol. 37,707-715. https://doi.org/10.1080/02726351.2018.1436103
  42. Singh, H., Kumar, S., Mohapatra, S.K., Prasad, S.B., Singh, J., 2021. Slurryability and flowability of coal water slurry: Effect of particle size distribution. J. Clean. Prod. 323, 129183. https://doi.org/10.1016/J.JCLEPRO.2021.129183
  43. Singh, M.K., Ratha, D., Kumar, S., Kumar, D., 2016. Influence of Particle-Size Distribution and Temperature on Rheological Behavior of Coal Slurry. Int. J. Coal Prep. Util. 36, 44–54. https://doi.org/10.1080/19392699.2015.1049265
  44. Sofrá, F., Boger, D. V., 2002. Environmental rheology for waste minimisation in the minerals industry. Chem. Eng. J. 86, 319–330. https://doi.org/10.1016/S1385-8947(01)00225-X
  45. Standard I. IS 2386‐3, 1963. Methods of test for aggregates for concrete, Part 3: Specific gravity, density, voids, absorption and bulking, New Delhi: Indian Standard.
  46. Swamee, P.K., Aggarwal, N., 2011. Explicit equations for laminar flow of Bingham plastic fluids. J. Pet. Sci. Eng. 76, 178-184. https://doi.org/10.1016/j.petrol.2011.01.015
  47. Zhao, L.A., Jian, C., Cai, R., He, P., 2024. Study of rheological parameters due to coal particle size change in pipeline transported coal slurry. Sci. Rep. 14, 29333. https://doi.org/10.1038/s41598-024-79696-2
  48. Zhu, Z., Xiong, X., Liang, C., Zhao, M., 2018. On the flocculation and settling characteristics of low-and highconcentration sediment suspensions: effects of particle concentration and salinity conditions. Environ. Sci. Pollut. Res. 14, 14226-14243. https://doi.org/10.1007/s11356-018-1668-0
DOI: https://doi.org/10.2478/johh-2026-0001 | Journal eISSN: 1338-4333 | Journal ISSN: 0042-790X
Language: English
Page range: 1 - 10
Submitted on: Oct 8, 2025
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Accepted on: Dec 17, 2025
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Published on: Mar 25, 2026
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2026 Vighnesh Prasad, Anil Dubey, published by Slovak Academy of Sciences, Institute of Hydrology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.