Acetone‐stable nanofiltration membranes in deacidifying vegetable oil
Ацетон-стойкие нанофильтрационные мембраны для декислотизации растительного масла
1999-01-01
SCID: 54.1/h692fkup
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PEBAX membranesacetone-stable nanofiltration membranesfree fatty acid separationtriglyceride rejectionvegetable oil deacidification
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Abstract (AI)
Abstract The separation of different vegetable oil/solvent mixtures with two types of nanofiltration membranes was studied. One type had a PEBAX [poly(amide‐b‐ether) copolymer] top layer, and the other had a cellulose‐type top layer. These membranes were stable in acetone, ethanol, 2‐propanol, and hexane, all important to the oleochemical industry. Permeabilities were highest for acetone, ±140 L/m2 · h · MPa, and lowest for hexane, which had negligible flux at 2 MPa. Permeabilities decreased with increasing triglyceride or free fatty acid (FFA) concentration. Rejection of triglycerides was constant over the concentration range tested, about 80–95%±5%, depending on the type of membrane used. These properties make membranes applicable for separating triglycerides from acetone by enhancing acetone recovery. Deacidification of triglycerides and FFA mixtures was possible (e.g., fatty acids were retained less than triglycerides). The permeate consisted almost entirely of fatty acids in acetone, and only small traces of triglycerides were found. This makes it feasible to selectively remove the fatty acids and reduce loss of triglycerides normally associated with deacidification.
Key Findings
1
Acetone showed the highest permeability, approximately 140 L/m²·h·MPa, whereas hexane produced negligible flux at 2 MPa.
2
Deacidification was selective: fatty acids permeated more readily than triglycerides, producing a permeate consisting almost entirely of fatty acids in acetone with only trace triglycerides.
3
Permeability decreased as triglyceride or free fatty acid concentration increased, while triglyceride rejection remained approximately 80–95% ±5%.
4
The membranes enabled triglyceride–acetone separation, potentially enhancing acetone recovery in oleochemical processing.
5
Two nanofiltration membrane types with PEBAX or cellulose top layers remained stable in acetone, ethanol, 2-propanol, and hexane.
Research Object
Acetone-stable PEBAX and cellulose-type nanofiltration membranes used to separate vegetable oil/solvent mixtures and deacidify triglyceride–free fatty acid mixtures
Research Subject
Solvent-dependent permeability and selective rejection of triglycerides versus free fatty acids for acetone recovery and low-triglyceride deacidification
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1999-01-01
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