CA2940958C

Fluid emulsion purification processes using microporous membranes having filtration and adsorption properties

Abstract

The present invention is directed to methods of separating a fluid emulsion stream into a hydrocarbon stream and an aqueous stream, by contacting the stream with a microporous membrane to yield a hydrocarbon product stream and an aqueous product stream. The membrane comprises a substantially hydrophobic, polymeric matrix, and substantially hydrophilic, finely divided, particulate, substantially water-insoluble filler distributed throughout the matrix. The polymeric matrix has a mean pore size less than 1.0 micron, and the purities of the product streams are independent of the flux rate of the aqueous product stream and the pore size of the membrane.

Term

8.4 yearsleft in the term

Expires 26 February 2035.

  1. Priority
  2. Filed
  3. Granted
  4. Today
  5. Expires

8 claims: 6 independent, 2 dependent

  1. 1
    A method of separating a fluid emulsion stream comprising crude oil well effluent and having a continuous hydrocarbon phase and an aqueous phase into a hydrocarbon stream and an aqueous stream, said method comprising contacting the fluid emulsion stream with a microporous membrane, wherein the fluid emulsion stream is passed through the microporous membrane at a flux rate of 0.05 to 20 Gallons/(ft2 x psi x day), wherein the aqueous phase passes through the microporous membrane thereby forming an aqueous product stream and wherein the hydrocarbon phase does not pass through the microporous membrane thereby forming a hydrocarbon product stream, wherein the hydrocarbon product stream contains less than 10% water by weight, and the aqueous product stream contains less than 5% hydrocarbon by weight, and wherein the membrane comprises a microporous material, said microporous material comprising:(a) a polyolefin matrix present in an amount of at least 2 percent by weight, (b) a finely divided, particulate, substantially water-insoluble silica filler distributed throughout said matrix, said filler constituting from about 10 percent to about 90 percent by weight of said microporous material wherein the weight ratio of filler to polyolefin is greater than 0.3, and (c) at least 35 percent by volume of a network of interconnecting pores communicating throughout the microporous material;wherein said microporous material is prepared by the following steps: -40Date Reçue/Date Received 2021-01-06 (i) mixing the polyolefin matrix (a), silica (b), and a processing plasticizer until a substantially uniform mixture is obtained;(ii) introducing the mixture into a heated barrel of a screw extruder and extruding the mixture through a sheeting die to form a continuous sheet;(iii) forwarding the continuous sheet formed by the die to a pair of heated calender rolls acting cooperatively to form a continuous sheet of lesser thickness than the continuous sheet exiting from the die;(v) passing the sheet to a first extraction zone where the processing plasticizer is substantially removed by extraction with an organic extraction liquid;(vi) passing the continuous sheet to a second extraction zone where residual organic extraction liquid is substantially removed by steam and/or water;and (vii) passing the continuous sheet through a dryer for substantial removal of residual water and remaining residual organic extraction liquid.
  2. 4
    The method of any one of claims 1 to 3, wherein the fluid emulsion stream does not undergo any separation processes prior to contacting the microfiltration membrane.
  3. 5
    The method of any one of claims 1 to 3, wherein the hydrocarbon product stream is recirculated through the microfiltration membrane at least once.
  4. 6
    The method of any one of claims 1 to 3, wherein the polymeric matrix has pores with a volume average diameter ranging from 0.02 to 1.0 microns.
  5. 7
    The method of any one of claims 1 to 3, wherein the microporous material has a thickness ranging from 0.5 mil to 18 mil (12.7 to 457.2 microns).
  6. 8
    The method of any one of claims 1 to 3, wherein the silica (b) has been surface modified with functional groups that react with or adsorb one or more materials in the fluid stream.