CIESC Journal ›› 2021, Vol. 72 ›› Issue (1): 508-520.DOI: 10.11949/0438-1157.20201192
• Thermodynamics • Previous Articles Next Articles
JI Yuanhui(),CHEN Qiao,WENG Jingyun
Received:
2020-08-20
Revised:
2020-12-02
Online:
2021-01-05
Published:
2021-01-05
Contact:
JI Yuanhui
通讯作者:
吉远辉
作者简介:
吉远辉(1982—),女,博士,教授,基金资助:
CLC Number:
JI Yuanhui, CHEN Qiao, WENG Jingyun. Nonequilibrium thermodynamic modeling and prediction of the effect of polymer excipients on aspirin crystallization kinetics[J]. CIESC Journal, 2021, 72(1): 508-520.
吉远辉, 陈俏, 翁靖云. 聚合物辅料对阿司匹林结晶动力学影响机制的非平衡热力学建模及预测[J]. 化工学报, 2021, 72(1): 508-520.
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Substance | ri | qi | Vm/(cm3/mol) |
---|---|---|---|
aspirin | 6.06 | 4.792 | 133.45 |
water | 0.92 | 1.4 | 18.01 |
PEG 6000 | 153.57 | 122.86 | 5244.76 |
PEG 400 | 10.41 | 8.33 | 355.40 |
PVP K25 | 614.29 | 491.43 | 20979.02 |
HPMC E3 | 128.33 | 102.66 | 4382.73 |
Table 1 Group contribution parameters of different substances[29]
Substance | ri | qi | Vm/(cm3/mol) |
---|---|---|---|
aspirin | 6.06 | 4.792 | 133.45 |
water | 0.92 | 1.4 | 18.01 |
PEG 6000 | 153.57 | 122.86 | 5244.76 |
PEG 400 | 10.41 | 8.33 | 355.40 |
PVP K25 | 614.29 | 491.43 | 20979.02 |
HPMC E3 | 128.33 | 102.66 | 4382.73 |
聚合物 | u12-u22/ (J/mol) | u21-u11/(J/mol) | u13-u33/(J/mol) | u31-u11/(J/mol) | u23-u33/(J/mol) | u32-u22/(J/mol) |
---|---|---|---|---|---|---|
水 | 1550.6 | -478.0 | — | — | — | — |
PEG6000 | -863.6 | 1204.0 | -1095.3 | 2093.6 | 6499.4 | 693.9 |
PEG400 | -3519.8 | 527.7 | -70.3 | 793.5 | 19384.3 | -3247.7 |
PVP K25 | -388.8 | 404.2 | -344.9 | 966.5 | 8917.7 | 290.1 |
HPMC E3 | 5281.8 | 9436.2 | 11811.2 | -1986.7 | 6731.0 | -5450.8 |
Table 2 Interaction parameters of UNIQUAC model for aspirin[29]
聚合物 | u12-u22/ (J/mol) | u21-u11/(J/mol) | u13-u33/(J/mol) | u31-u11/(J/mol) | u23-u33/(J/mol) | u32-u22/(J/mol) |
---|---|---|---|---|---|---|
水 | 1550.6 | -478.0 | — | — | — | — |
PEG6000 | -863.6 | 1204.0 | -1095.3 | 2093.6 | 6499.4 | 693.9 |
PEG400 | -3519.8 | 527.7 | -70.3 | 793.5 | 19384.3 | -3247.7 |
PVP K25 | -388.8 | 404.2 | -344.9 | 966.5 | 8917.7 | 290.1 |
HPMC E3 | 5281.8 | 9436.2 | 11811.2 | -1986.7 | 6731.0 | -5450.8 |
结晶条件 | 平衡浓度/(g/L) | 生长机制 | ARD/% |
---|---|---|---|
纯水溶液,283.15 K,200 r/min | 2.11 | 粗糙生长机制 | 4.32 |
纯水溶液,288.15 K,200 r/min | 2.74 | 粗糙生长机制 | 3.43 |
纯水溶液,288.15 K,100 r/min | 2.74 | 粗糙生长机制 | 3.86 |
2% PEG 6000水溶液,288.15 K,200 r/min | 3.22 | 粗糙生长机制 | 1.93 |
5% PEG 6000水溶液,288.15 K,200 r/min | 3.59 | 粗糙生长机制 | 1.21 |
2% PEG 400水溶液,288.15 K,200 r/min | 3.11 | 粗糙生长机制 | 1.50 |
2% HPMC E3水溶液,288.15 K,200 r/min | 4.33 | 二维成核生长机制 | 0.76 |
2% PVP K25水溶液,288.15 K,200 r/min | 4.13 | 二维成核生长机制 | 0.61 |
Table 3 The equilibrium concentration and growth mechanism of aspirin under different crystallization conditions and the ARD between the calculated and experimental values
结晶条件 | 平衡浓度/(g/L) | 生长机制 | ARD/% |
---|---|---|---|
纯水溶液,283.15 K,200 r/min | 2.11 | 粗糙生长机制 | 4.32 |
纯水溶液,288.15 K,200 r/min | 2.74 | 粗糙生长机制 | 3.43 |
纯水溶液,288.15 K,100 r/min | 2.74 | 粗糙生长机制 | 3.86 |
2% PEG 6000水溶液,288.15 K,200 r/min | 3.22 | 粗糙生长机制 | 1.93 |
5% PEG 6000水溶液,288.15 K,200 r/min | 3.59 | 粗糙生长机制 | 1.21 |
2% PEG 400水溶液,288.15 K,200 r/min | 3.11 | 粗糙生长机制 | 1.50 |
2% HPMC E3水溶液,288.15 K,200 r/min | 4.33 | 二维成核生长机制 | 0.76 |
2% PVP K25水溶液,288.15 K,200 r/min | 4.13 | 二维成核生长机制 | 0.61 |
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