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Application of thermal effusivity as a process analytical technology tool for monitoring and control of the roller compaction process

机译:热效率作为过程分析技术工具在辊压实过程的监控中的应用

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摘要

The aim of this study was to examine the relationship between physical characteristics of compacted ribbons and their thermal effusivity in an attempt to evaluate the feasibility of using effusivity for in-process monitoring of roller compaction. In this study, thermal effusivity, solid fraction, tensile strength, and Young's modulus of ribbons of microcrystal-line cellulose (MCC), anhydrous lactose, and placebo (PBO) formulations containing various ratios of MCC to anhydrous lactose (75∶20, 55∶40, 40∶55, and 20∶75) were determined at various compaction pressures (25–150 bars). The effusivity-square root of solid fraction relationship was linear for MCC and all the PBO formulations but was a second-order polynomial function for lactose. This could be due to the predominant deformation of lactose by brittle fracture, which might have significantly increased the number and size of contact points between particles, causing a change in thermal conductivity along with a density change. The effusivitytensile strength and effusivity-Young's modulus relationships were best described by logarithmic functions for MCC but were linear for lactose up to a compaction pressure of 65 bars. There were similar relationships for effusivity with tensile strength and Young's modulus for all PBO formulations except PBO IV, which might have been due to the deformation of lactose, the largest component in this formulation. Strong correlations between effusivity and physical properties of ribbons were established. Although these correlations were formulation-dependent, they demonstrate the possibility of using effusivity as a tool in monitoring roller compaction.
机译:这项研究的目的是检查压实带材的物理特性与其热效率之间的关系,以评估将效率用于辊压过程的在线监测的可行性。在这项研究中,微晶线纤维素(MCC),无水乳糖和安慰剂(PBO)配方的热效率,固体分数,拉伸强度和带的杨氏模量包含各种比例的MCC与无水乳糖(75∶20,55在各种压实压力(25–150巴)下确定∶40、40∶55和20∶75)。对于MCC和所有PBO配方,固体分数关系的效率平方根是线性的,但对于乳糖则是二阶多项式函数。这可能是由于脆性断裂引起的乳糖主要变形所致,这可能显着增加了颗粒之间接触点的数量和大小,从而导致导热率随密度变化而变化。用MCC的对数函数可以最好地描述密度系数,拉伸强度和杨氏模量之间的关系,但对于压实压力最高为65 bar的乳糖来说,线性关系是线性的。除PBO IV外,所有PBO制剂的效用率与抗张强度和杨氏模量之间都存在相似的关系,这可能是由于乳糖(该制剂中的最大成分)变形所致。碳带的喷射率与物理性能之间建立了很强的相关性。尽管这些相关性取决于配方,但它们证明了使用效率作为监测辊压实度的工具的可能性。

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