| Literature DB >> 31850301 |
Abstract
Studies of the Ketalization reaction using trivalent alcohol glycerol in combination withEntities:
Keywords: HZSM-5 zeolites; MCM-41; glycerol; ketalization reaction; kinetic study; reaction rate
Year: 2019 PMID: 31850301 PMCID: PMC6902044 DOI: 10.3389/fchem.2019.00799
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
Figure 1Condensation reaction between glycerol and acetone.
Figure 2Mechanism for the formation of solketal reaction.
Different commercial samples.
| ZSM-5 (Si/Al = 35) and ZSM-5 (Si/Al = 160) | The PQ corporation Valley Forge, Philadelphia |
| ZSM-5 (Si/Al = 90) | Süd-Chemie AG, München |
| p-Toluenesulfonic acid | Merck |
Textural properties of various HZSM-5 with different of SiO2/Al 2O3 ratios.
| ZSM-5 (35) | 0.05 | 0.02 | 0.07 | 388.4 |
| ZSM-5 (90) | 0.06 | 0.04 | 0.1 | 425.6 |
| ZSM-5 (160) | 0.08 | 0.05 | 0.13 | 460.3 |
Textural properties of various MCM-41 samples.
| MCM 41 (pure) | 820 | 0.69 | 2.50 |
| MCM 41 (TD) | 988 | 0.76 | 2.54 |
| MCM 41 (SU) | 1,382 | 1.10 | 2.81 |
Figure 3Reaction of glycerol and acetone using p-toluenesulfonic acid (PTSA), as a homogeneous catalyst, at 60°C.
Figure 4Conversion (%) to Solketal using HZSM-5 with different ratio (SiO2/Al2O3); 35 (), 90 (), and 160 (), at reaction temperature 50°C.
Figure 5Conversion of the condensation reaction using HZSM-5 with a modulus of M = 90 at temperature of 25°C (), 50°C (), and 60°C ().
Figure 6Conversions of condensation reaction between glycerol and acetone at room temperature using modified and unmodified MCM-41; MCM-41pure (), MCM 41- TD (), and MCM 41- SU ().
Figure 7Plot of log reaction rate vs. log concentrations, for different modulus of HZSM-5; (A) 35; (B) 90; and (C) 160, by the condensation reaction between glycerol and acetone.
Rate constant (k) and overall rate (n), for three types of HZMS-5 zeolite and with different silica to alumina modules (ratios) and at the reaction temperature of 25°C.
| M = 35 | 0.6320 | n = 1/2 |
| M = 90 | 0.7415 | n = 1/2 |
| M = 160 | 0.6500 | n = 1/2 |
Kinetic constant (k) and rate order (n) over HZSM-5 (M = 90), at different reaction temperatures.
| 25 | 0.74478 | |
| 50 | 4.436 × 103 | |
| 60 | 1.3256 × 102 |
Figure 8Plot of log initial reaction rate (before 10 min of the reaction) vs. log concentrations, at various reaction temperatures; (A) room temperature 25°C, (B) 50°C, and (C) 60°C.
Figure 9Arrhenius Energy (EA) for HZSM-5 at different reaction temperatures; of 25°C, 50°C, and 60°C.
Figure 10Plot of log initial reaction rate (before 10 min of reaction) vs. log concentrations, of the MCM-41 series; (A) MCM-41(pure); (B) MCM 41-TD, and (C) MCM 41-SU.
Kinetic parameter (k1 and k−1, L mol−1 min−1) responses calculated using R2W for the ketalization reaction of glycerol with acetone and the H-BEA catalyst (Rossa et al., 2017).
| k1 | 0.0082 | 0.0085 | 0.0082 | 0.0115 | 0.0213 |
| k−1 | 0.0158 | 0.0159 | 0.0159 | 0.0205 | 0.0372 |
| K | 0.5159 | 0.5366 | 0.5179 | 0.5598 | 0.5720 |
| XA EXP | 76.01 | 75.17 | 74.16 | 74.52 | 75.54 |
| XA CAL | 70.70 | 71.16 | 70.80 | 71.90 | 72.00 |
| X | 70.75 | 71.18 | 70.81 | 71.90 | 72.05 |
| Residue Q | 254.22 | 154.77 | 193.22 | 100.50 | 56.58 |
(X.
Figure 11Plot of 1/T vs. ln Keq, using Gibbs free equation energy.
Testing the proposed kinetic model and its correlation with the literature (Rossa et al., 2017).
| 25 | 0.4830 | 0.4115 | 2.28 |
| 50 | 0.5348 | 0.4205 | 2.26 |
| 60 | 0.5488 | 0.4236 | 2.25 |
Comparison of the k1 values, equilibrium constant values, and equilibrium conversion values of the present study and values from Rossa et al. (2017).
| 25 | 0.74478 | – | 0.4830 | – | 0.4115 | – |
| 50 | 4.436 × 103 | 0.0085 | 0.5348 | 0.5366 | 0.4205 | 0.7517 |
| 60 | 1.3256 × 102 | 0.0082 | 0.5488 | 0.5279 | 0.4236 | 0.7452 |