يعرض 1 - 18 نتائج من 18 نتيجة بحث عن '"ball size distribution"', وقت الاستعلام: 0.71s تنقيح النتائج
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    Academic Journal
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    Academic Journal

    المؤلفون: Panjipour, Rasoul, Barani, Kianoush

    المساهمون: Drzymała, Jan. Redakcja, Kowalczuk, Przemysław B. Redakcja

    وصف الملف: application/pdf

    Relation: oai:dbc.wroc.pl:publication:45671; Politechnika Wrocławska. Wydział Geoinżynierii, Górnictwa i Geologii; Physicochemical Problems of Mineral Processing; Physicochemical Problems of Mineral Processing. Vol. 54, 2018; Physicochemical Problems of Mineral Processing. Vol. 54, 2018, Issue 2; Fizykochemiczne Problemy Mineralurgii; Fizykochemiczne Problemy Przeróbki Kopalin; https://dbc.wroc.pl/dlibra/docmetadata?showContent=true&id=40889; oai:dbc.wroc.pl:40889

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    Dissertation/ Thesis
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    Periodical
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    Electronic Resource

    Additional Titles: Estudio sobre la distribución de tamaño de bola de alúmina en molienda de cemento blanco

    المصدر: DYNA; Vol. 88 Núm. 218 (2021): July-September, 2021; 19-23; DYNA; Vol. 88 No. 218 (2021): DYNA; 19-23; 2346-2183; 0012-7353

    URL: https://revistas.unal.edu.co/index.php/dyna/article/view/89805/80440
    https://revistas.unal.edu.co/index.php/dyna/article/view/89805/80440
    *ref*/Yunqing, Z., Effect of ball size distribution on grinding efficiency. Grind. Technol, pp. 37-39, 2000. [2] Cook, T.M. and Courtney, T.H., The effects of ball size distribution on attritor efficiency. Metallurgical and Materials Transactions A, 26, pp. 2389-2397, 1995. DOI: 10.1007/BF02671252. [3] Katubilwa, F.M., Effect of ball size distribution on milling parameters, MSc. Thesis, Faculty of Engineering and the Built Environment, University of the Witwatersrand, Johannesburg, South Africa, 2008. [4] Shin, H., Lee, S., Jung, H.J. and Kim, J-B., Effect of ball size and powder loading on the milling efficiency of a laboratory-scale wet ball mill. Ceramics International, 39, pp. 8963-8968, 2013. DOI: 10.1016/j.ceramint.2013.04.093. [5] François, M., Katubilwa, M. and Moys, M.H., Effect of ball size distribution on milling rate. Minerals Engineering, 22, pp.1283-1288, 2009. DOI: 10.1016/j.mineng.2009.07.008. [6] Hlabangana, N., Danha, G. and Muzenda, E., Effect of ball and feed particle size distribution on the milling efficiency of a ball mill: an attainable region approach. South African Journal of Chemical Engineering, 25, pp. 79-84, 2018. DOI: 10.1016/j.sajce.2018.02.001. [7] Chimwani, N., Mulenga, F.K. and Hildebrandt, D., Ball size distribution for the maximum production of a narrowly-sized mill product. Powder Technology, 284, pp. 12-18, 2015. DOI: 10.1016/j.powtec.2015.06.037. [8] Bwalya, M.M., Moys, M.H., Finnie, G.J. and Mulenga, F.K., Exploring ball size distribution in coal grinding mills. Powder Technology, 257, pp. 68-73, 2014. DOI: 10.1016/j.powtec.2014.02.044. [9] Razavi-Tousi, S.S. and Szpunar, J.A., Effect of ball size on steady state of aluminum powder and efficiency of impacts during milling. Powder Technology, 284, pp. 149-158, 2015. DOI: 10.1016/j.powtec.2015.06.035. [10] Cho, H., Kwon, J., Kim, K. and Mun, M., Optimum choice of the make-up ball sizes for maximum throughput in tumbling ball mills. Powder Technology, 246, pp. 625-634, 2013. DO

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    Electronic Resource
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    Electronic Resource

    Additional Titles: Comparación de la distribución de tamaño de bolas de alúmina en dos unidades de molienda de cemento blanco utilizando la función Swebrec

    المصدر: DYNA; Vol. 86 Núm. 209 (2019): April-June, 2019; 25-29; DYNA; Vol. 86 No. 209 (2019): April-June, 2019; 25-29; 2346-2183; 0012-7353

    URL: https://revistas.unal.edu.co/index.php/dyna/article/view/73970/71023
    https://revistas.unal.edu.co/index.php/dyna/article/view/73970/71023
    *ref*/Zhang, J., Bai, Y., Dong, H., Wu, Q. and Ye, X., Influence of ball size distribution on grinding effect in horizontal planetary ball mill. Advanced Powder Technology, 25(3), pp. 983-990, 2014. DOI: 10.1016/j.apt.2014.01.018 [2] Razavi-Tousi, S.S. and Szpunar, J.A., Effect of ball size on steady state of aluminum powder and efficiency of impacts during milling. Powder Technology, 284, pp. 149-158, 2015. DOI: 10.1016/j.powtec.2015.06.035 [3] Kolacz, J., Measurement system of the mill charge in grinding ball mill circuits. Minerals Engineering, 10(12), pp 1329-1338, 1997. DOI: 10.1016/S0892-6875(97)00124-6 [4] Menacho, J.M. and Concha, F., Mathematical model of ball wear in grinding mills II. General solution, Powder Technology, 52(3), pp. 267-277, 1987. DOI: 10.1016/0032-5910(87)80116-X [5] Menacho, J.M. and Concha, F., Mathematical model of ball wear in grinding mills I. Zero order wear rate. Powder Technology, 47(1), pp. 87-96, 1986. DOI: 10.1016/0032-5910(86)80013-4 [6] Concha, F., Magne, L. and Austin, L.G., Optimization of the make-up ball charge in a grinding mill. International Journal of Minerals Processing, 34(3), pp. 231-241, 1992. DOI: 10.1016/0301-7516(92)90076-9 [7] Herbst, J.A. and Fuerstenau, D.W., Scale-up procedures for continuous grinding mill design using population balance models. International Journal of Minerals Processing, 7(1), pp. 1-31, 1981. DOI: 10.1016/0301-7516(80)90034-4 [8] Chimwani, N., Mulenga, F.K. and Hildebrandt, D., Ball size distribution for the maximum production of a narrowly-sized mill product. Powder Technology, 284, pp. 12-18, 2015. DOI: 10.1016/j.powtec.2015.06.037 [9] Austin, L.G., Klimpe, R.R. and Luckie, P., Process engineering of size reduction: ball milling. New York: SME/AIME, 1984. [10] Katubilwa, F.M. and Moys, M.H., Effect of ball size distribution on milling rate. Minerals Engineering, 22(15), pp. 1283-1288, 2009. DOI: 10.1016/j.mineng.2009.07.008 [11] Bwalya, M., Moys, M.H., Finnie, G.J. and Mulenga, F.K.