Have a personal or library account? Click to login
Concentration distribution and deposition limit of medium-coarse sand-water slurry in inclined pipe Cover

Concentration distribution and deposition limit of medium-coarse sand-water slurry in inclined pipe

Open Access
|Feb 2020

References

  1. Clift, R., Clift, D.H.M., 1981. Continuous measurement of the density of flowing slurries. International Journal of Multiphase Flow, 7, 5, 555–561.10.1016/0301-9322(81)90058-6
  2. Doron, M., Simkhis, M., Barnea, D., 1997. Flow of solid-liquid mixtures in inclined pipes. International Journal of Multiphase Flow, 23, 313–323.10.1016/S0301-9322(97)80946-9
  3. Durand, R., Condolios, E., 1952. Étude expérimentale du refoulement des matériaux en conduite. 2émes Journées de l´Hydralique, SHF, Grenoble.
  4. Gillies, R.G., Schaan, J., Summer, R.J., Mc Kibben, M.J., Shook, C.A., 2000. Deposition velocities for Newtonian Slurries in Turbulent Flow. Can. J. Chemical Engineering, 78, 704–708.10.1002/cjce.5450780412
  5. De Hoog, E., in’t Veld, M., Van Wijk, J., Talmon, A., 2017. An experimental study into flow assurance of coarse inclined slurries. In: Proceedings of 18th Transport and Sedimentation of Solids Particles, Prague, Czech Republic, pp. 113–120.
  6. Kao, D.T.Y., Hwang, L.Y., 1979. Critical slope for slurry pipeline transporting coal and other solid particles. In: Proc. HYDROTRANSPORT, Canterbury, UK, Pap A5, pp. 57–74.
  7. Krupicka, J., Matousek, V., 2014. Gamma-ray-based measurement of concentration distribution in pipe flow of settling slurry: vertical profiles and tomographic maps. Journal of Hydrology and Hydromechanics, 62, 2, 126–132.10.2478/johh-2014-0012
  8. Matousek, V., 1996. Internal structure of slurry flow in inclined pipe. Experiments and mechanistic modelling. In: Proc. HYDROTRANSPORT 13, BHRG, Cranfield, UK, pp. 187–210.
  9. Matousek, V., Krupicka, J., Kesely, M., 2018a. A layered model for inclined pipe flow of settling slurry. Powder Technology, 333, 317–326.10.1016/j.powtec.2018.04.021
  10. Matousek, V., Kesely, M., Chara, Z., 2019a. Effect of pipe inclination on internal structure of settling surry flow at and close to deposition limit. Powder Technology, 343, 533–541.10.1016/j.powtec.2018.11.035
  11. Matousek, V., Kesely, M., Konfst, J., Vlasak, P., 2018b. Effect of pipe inclination on settling slurry flow near deposition velocity. In: Proc. ASME 2018 5th Joint US-European Fluids Engineering Summer Conference, Montreal, Canada, paper FEDSM2018-83423.
  12. Matousek, V., Zrostlik, S., 2018. Laboratory testing of granular kinetic theory for intense bed load transport. Journal of Hydrology and Hydromechanics, 66, 3, 330–336.10.2478/johh-2018-0012
  13. Messa, G.V., De Lima Branco, R., Filho, J.G.D., Malavasi, S., 2018. A combined CFD-experimental method for abrasive erosion testing of concrete. Journal of Hydrology and Hydromechanics, 66, 1, 121–128.10.1515/johh-2017-0042
  14. Michalik, A., 1973. Density patterns of the inhomogeneous liquids in the industrial pipe-lines measured by means of radiometric scanning. La Houille Blanche, 1, 53–57.10.1051/lhb/1973003
  15. Parzonka, W., Kenchinton, J.M., Charles, M.E., 1981. Hydrotransport of solids in horizontal pipes: Effects of solids concentration and particle size on deposit velocity. The Canadian Journal of Chemical Engineering, 59, 3, 291–296.10.1002/cjce.5450590305
  16. Przewlocki, K., Michalik, A., Korbel, K., Wolski, K., Parzonka, W., Sobota, J., Pac-Pomarnacka, M., 1979. A radiometric device for the determination of solids concentration distribution in a pipeline. In: Proc. HYDROTRANSPORT 6, Pap B3, pp. 105–112.
  17. Shook, C.A., Roco, M.C., 1991. Slurry Flow. Principles and Practice. Butterworth-Heinemann, Stoneham, USA.
  18. Sobota, J., Plewa, F., 2000. Global and local characteristics of ash mixture flows. Electronic Journal of Polish Agricultural Universities, 3, 2, #01.
  19. Spelay, R.B., Gillies, R.G., Hashemi, S.A., Sanders, R.S., 2016. Effect of pipe inclination on the deposition velocity of settling slurries. The Canadian Journal of Chemical Engineering, 94, 1032–1039.10.1002/cjce.22493
  20. Vlasak, P., Chara, Z., Konfrst, J., 2017. Flow behaviour and local concentration of course particles-water mixture in inclined pipes. Journal of Hydrology and Hydromechanics, 65, 2, 183–191.10.1515/johh-2017-0001
  21. Vlasak, P., Chara, Z., Krupicka, J., Konfrst, J., 2014. Experimental investigation of coarse particles-water mixture flow in horizontal and inclined pipes. Journal of Hydrology and Hydromechanics, 62, 3, 241–247.10.2478/johh-2014-0022
  22. Vlasak, P., Chara, Z., Konfrst, J., Krupicka, J., 2016. Distribution of concentration of coarse particle-water mixture in horizontal smooth pipe. Canadian Journal of Chemical Engineering, 94, 1040–1047.10.1002/cjce.22484
  23. Vlasak, P., Chara, Z., Matousek, V., Kesely, M., Konfrst, J., 2018a. Experimental investigation of settling slurry flow in inclined pipe sections. In: Proc. 24th Int. Conf. Eng. Mech., Svratka, Czech Republic, Pap. #64, pp. 909–912.
  24. Vlasak, P., Chara, Z., Matousek, V., Konfrst, J., Kesely, M., 2018b. Effect of pipe inclination on flow behaviour of finegrained settling slurry. In: Proc. Experimental fluid mechanics 2018,, Prague, Czech Republic, pp. 664–670.
  25. Vlasak, P., Chara, Z., Matousek, V., Konfrst, J., Kesely, M., 2019a. Experimental investigation of fine-grained settling slurry flow behaviour in inclined pipe sections. Journal of Hydrology and Hydromechanics, 67, 2, 113–120.10.2478/johh-2018-0039
  26. Vlasak, P., Chara, Z., Matousek, V., Kesely, M., Konfrst, J., Mildner, M., 2019b. Effect of pipe inclination on local concentration and flow behaviour of settling slurry. In: Proc. 25th Int. Conf. Eng. Mech., Svratka, Czech Republic, pp. 391–394.
  27. Vlasak, P., Chara, Z., Matousek, V., Kesely, M., Krupicka, J., Konfrst, J., 2019c. Local concentration distribution of settling slurry flow in inclined pipe sections. In: Proc. 19th Int. Conf. on Transport and Sedimentation of Solid Particles, Cape Town, S. Africa, pp. 229–236.
  28. Wilson, K.C., 1976. A unified physically based analysis of solid-liquid pipeline flow. In: Stephens, H.S., Streat, M., Clark, J., Coles, N.G. (eds.): Proc. HYDROTRANSPORT 4 B.H.R.A., Cranfield, UK, Pap. A1, pp. 1–16.
  29. Wilson, K.C. Tse, J.K.P., 1984. Deposition limit for coarseparticle transport in inclined pipes. In: Proc. HYDROTRANSPORT 9, BHRA Fluid Engineering, Cranfield, UK, pp. 149–161.
  30. Wilson, K.C., Addie, G.R., Sellgren, A., Clift, R., 2006. Slurry Transport Using Centrifugal Pumps. Springer, US.
  31. Worster, R.C., Denny, D.F., 1955. Hydraulic transport of solid materials in pipelines. P. I. Mech. Eng., 169, 563–586.10.1243/PIME_PROC_1955_169_064_02
DOI: https://doi.org/10.2478/johh-2019-0023 | Journal eISSN: 1338-4333 | Journal ISSN: 0042-790X
Language: English
Page range: 83 - 91
Submitted on: Sep 2, 2019
|
Accepted on: Oct 25, 2019
|
Published on: Feb 13, 2020
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2020 Pavel Vlasák, Václav Matoušek, Zdeněk Chára, Jan Krupička, Jiří Konfršt, Mikoláš Kesely, published by Slovak Academy of Sciences, Institute of Hydrology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.