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PUBMED FOR HANDHELDS

Journal Abstract Search


120 related items for PubMed ID: 1812281

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  • 3. Utility of Microcrystalline Cellulose for Improving Drug Content Uniformity in Tablet Manufacturing Using Direct Powder Compression.
    Nakamura S, Tanaka C, Yuasa H, Sakamoto T.
    AAPS PharmSciTech; 2019 Mar 22; 20(4):151. PubMed ID: 30903317
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  • 4. A simple predictive model for the tensile strength of binary tablets.
    Wu CY, Best SM, Bentham AC, Hancock BC, Bonfield W.
    Eur J Pharm Sci; 2005 Jun 22; 25(2-3):331-6. PubMed ID: 15911230
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  • 6. To Study Capping or Lamination Tendency of Tablets Through Evaluation of Powder Rheological Properties and Tablet Mechanical Properties of Directly Compressible Blends.
    Dudhat SM, Kettler CN, Dave RH.
    AAPS PharmSciTech; 2017 May 22; 18(4):1177-1189. PubMed ID: 27422654
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  • 8. A study of a novel coprocessed dry binder composed of α-lactose monohydrate, microcrystalline cellulose and corn starch.
    Mužíková J, Srbová A, Svačinová P.
    Pharm Dev Technol; 2017 Dec 22; 22(8):964-971. PubMed ID: 26758475
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  • 9. An experimental investigation of temperature rise during compaction of pharmaceutical powders.
    Krok A, Mirtic A, Reynolds GK, Schiano S, Roberts R, Wu CY.
    Int J Pharm; 2016 Nov 20; 513(1-2):97-108. PubMed ID: 27601333
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  • 11. A new tablet brittleness index.
    Gong X, Sun CC.
    Eur J Pharm Biopharm; 2015 Jun 20; 93():260-6. PubMed ID: 25907006
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  • 16. Predictions of tensile strength of binary tablets using linear and power law mixing rules.
    Michrafy A, Michrafy M, Kadiri MS, Dodds JA.
    Int J Pharm; 2007 Mar 21; 333(1-2):118-26. PubMed ID: 17097245
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  • 20. Comparative analyses of flow and compaction properties of diverse mannitol and lactose grades.
    Paul S, Chang SY, Dun J, Sun WJ, Wang K, Tajarobi P, Boissier C, Sun CC.
    Int J Pharm; 2018 Jul 30; 546(1-2):39-49. PubMed ID: 29705102
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