首页> 外文期刊>International Journal of Pharmaceutics >Comparative evaluations of powder and mechanical properties of low crystallinity celluloses, microcrystalline celluloses, and powdered celluloses.
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Comparative evaluations of powder and mechanical properties of low crystallinity celluloses, microcrystalline celluloses, and powdered celluloses.

机译:低结晶度纤维素,微晶纤维素和粉末状纤维素的粉末和机械性能的比较评估。

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摘要

The purpose of this study was to examine and compare the powder and mechanical properties of different batches of low crystallinity powdered cellulose (LCPC-S1 to LCPC-S5) with those of commercial microcrystalline celluloses (MCC) (Avicel PH-101, Avicel PH-102, Avicel PH-103, Avicel PH-301, Avicel PH-302, and Emcocel 90m) and powdered celluloses (PC) (Solka Floc BW-40 and Solka Floc BW-100). Both the LCPC and MCC products were aggregated powders, whereas, the PC materials showed a fibrous structure. The primary particles forming the LCPC aggregates, however, were smaller in size and showed a greater degree of coalescence between boundaries, than those forming the MCC aggregates. The LCPC materials had significantly higher bulk and tap densities and lower porosity values compared with the MCC materials. The yield pressure value calculated from the linear region of the Heckel curve for LCPC varied between 48 and 70 MPa, for Avicel and PC materials between, 80 and 106 MPa, and for Emcocel 90m was 48 MPa. These results suggest that the LCPC products and Emcocel 90m, compared with commercial MCC and PC excipients, undergo plastic deformation at relatively lower compression pressures. The total volume reduction (i.e. compressibility), determined by calculating the area under the Heckel curve (AUHC), however, was comparable for all materials, with the exception of the LCPC-S3, which owing to the low yield pressure value, showed the largest reduction in volume. With the exception of LCPC-S1 and Solka Floc BW-40, all the other materials formed compacts, whose strength ranged from about 522 to 799 MPa2. The strengths of LCPC-S1 and Solka Floc BW-40 compacts, in contrast, were 214 and 257 MPa2, respectively. Irrespective of the solid fraction levels, the LCPC compacts, in general, disintegrated much faster than the MCC and PC compacts. In conclusion, the results suggest that the new LCPC materials reported herein have powder properties that are quite different from the MCC and PC materials evaluated, and show clear potential as direct compression excipients.
机译:这项研究的目的是检查和比较不同批次的低结晶度粉状纤维素(LCPC-S1至LCPC-S5)与商用微晶纤维素(MCC)(Avicel PH-101,Avicel PH- 102,Avicel PH-103,Avicel PH-301,Avicel PH-302和Emcocel 90m)和粉末状纤维素(PC)(Solka Floc BW-40和Solka Floc BW-100)。 LCPC和MCC产品都是聚集的粉末,而PC材料显示出纤维状结构。然而,与形成MCC聚集体的颗粒相比,形成LCPC聚集体的初级颗粒尺寸较小,边界之间的结合程度更高。与MCC材料相比,LCPC材料具有显着更高的堆积密度和振实密度,以及更低的孔隙率值。对于LCPC,从Heckel曲线的线性区域计算的屈服压力值在48到70 MPa之间变化;对于Avicel和PC材料,在80到106 MPa之间;对于Emcocel 90m,屈服压力值为48 MPa。这些结果表明,与市售的MCC和PC赋形剂相比,LCPC产品和Emcocel 90m在相对较低的压缩压力下会发生塑性变形。通过计算Heckel曲线(AUHC)下的面积确定的总体积减少量(即可压缩性),除LCPC-S3(由于屈服压力值低)外,对所有材料都是可比的,表明最大的减少量。除LCPC-S1和Solka Floc BW-40外,其他所有材料均形成压坯,其强度范围约为522至799 MPa2。相比之下,LCPC-S1和Solka Floc BW-40压块的强度分别为214和257 MPa2。不论固体含量如何,LCPC压块的分解速度通常都比MCC和PC压块快得多。总之,结果表明,本文报道的新型LCPC材料具有与所评估的MCC和PC材料完全不同的粉末性质,并显示出作为直接压制赋形剂的明显潜力。

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