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Reduction of fouling in high pressure reactors

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  • Publication Date:
    December 01, 2015
  • Additional Information
    • Patent Number:
      9,202,014
    • Appl. No:
      14/078576
    • Application Filed:
      November 13, 2013
    • Abstract:
      The Application of equations of state to experimental and literature data permits the formation of a model and phase diagram(s) that show under what conditions polyethylene is likely to precipitate out of a high pressure solution of polyethylene in supercritical ethylene. This then permits a better definition to run a high pressure reactor to reduce the likelihood of phase separation, loss of cooling and potentially decomposition of the reactor contents.
    • Inventors:
      NOVA Chemicals (International) S.A. (Fribourg, CH)
    • Assignees:
      NOVA Chemicals (International) S.A. (Fribourg, CH)
    • Claim:
      1. A method to determine the curve of the liquid liquid equilibrium boundary as a function of molecular weight distribution (MWD) for a multitude of different products comprising from about 80 to about 100 wt. % of ethylene and about 0 up to about 20 weight % of one or more C 3-8 alpha olefins having a molecular weight from about 8,000 to about 500,000 produced in super critical ethylene in a high pressure reactor at temperatures from about 80° C. to about 350° C. and pressures from about 100 MPa to about 350 MPa comprising: a) modeling experimental or literature data for the liquid liquid equilibrium using an equation of state model to describe the effects of the molecular weight and the polydispersity of the polyethylene on the liquid liquid equilibrium curve b) determining the composition-specific parameters of the model from a); and, c) applying the resultant Sanchez-Lacombe equation of state model to the temperature, pressure and composition conditions of the reaction to generate the liquid liquid equilibrium boundary and optionally the critical polymer concentration.
    • Claim:
      2. The process according to claim 1 wherein the reactor is a tubular reactor.
    • Claim:
      3. A process to prepare a liquid polymer lean/liquid polymer rich and liquid liquid phase diagram for a reactor for polymerizing a system comprising a polymer having a weight average molecular weight from about 8,000 to about 500,000 comprising from about 80 to about 100 wt % of ethylene and about 0 to about 20 wt % of one or more C 3-8 alpha olefins in super critical liquid ethylene at temperatures from about 80° C. to about 350° C. and pressures from about 100 MPa to about 350 MPa to define operating conditions at which the polymer is substantially dissolved in the liquid phase comprising: preparing a phase diagram for liquid polymer lean/liquid polymer rich for said reactor and process at temperatures from about 150° C. to about 350° C. and pressures from about 100 to about 350 MPa; A) inserting into said phase diagram a liquid liquid phase boundary determined according to claim 1 .
    • Claim:
      4. A method for conducting the polymerization of a polymer having a weight average molecular weight from about 8,000 to about 500,000 comprising about 80 to about 100 wt % of ethylene and about 0 to about 20 wt. % of one or more C 3-8 alpha olefins in super critical liquid ethylene at temperatures from about 80° C. to about 350° C. and pressures from about 100 MPa to about 350 MPa to define operating conditions at which the polymer is substantially dissolved in the liquid phase comprising monitoring the heat balance of said reaction and determining when there is an apparent loss of cooling and comparing the operating conditions to the phase diagram according to claim 3 , and adjusting one or more of the temperature and pressure conditions to bring the operating conditions more than about 5% more within the liquid area of the phase diagram.
    • Claim:
      5. The method according to claim 4 , wherein the operating conditions are adjusted to bring them within the liquid area of the phase diagram by more than about 10%.
    • Claim:
      6. The method according to claim 5 , wherein the phase diagram is digitized and stored on a microprocessor and heat balance for the reaction is monitored using a microprocessor and the operating conditions are adjusted using a microprocessor.
    • Claim:
      7. A method to extend the run time between cleanings of a high pressures reactor for the polymerization of a polymer having a weight average molecular weight from about 8,000 to about 500,000 comprising about 80 to about 100 wt % of ethylene and about 0 to about 20 wt % of one or more C 3-8 alpha olefins in super critical ethylene at temperatures from about 80° C. to about 350° C. and pressures from about 100 MPa to about 350 MPa comprising operating according to claim 5 , so that not more than about 30 minutes elapse between the apparent loss of cooling and achieving the new operating conditions within the liquid area within the phase diagram.
    • Claim:
      8. The method according to claim 7 , wherein the time to achieve the adjusted operating conditions is less than about 15 minutes.
    • Claim:
      9. A method to dissolve precipitated polymer in a high pressures reactor for the polymerization of a polymer having a weight average molecular weight from about 8,000 to about 500,000 comprising about 80 to about 100 wt % of ethylene and about 0 to about 20 wt % of one or more C 3-8 alpha olefins in super critical liquid ethylene at temperatures from about 80° C. to about 350° C. and pressures from about 100 MPa to about 350 MPa comprising operating according to claim 7 , so that not more than about 30 minutes elapse between the apparent loss of cooling and achieving the new operating conditions within the liquid area within the phase diagram.
    • Claim:
      10. The method according to claim 9 , wherein the phase diagram is digitized and stored on a microprocessor and heat balance for the reaction is monitored using a microprocessor and the operating conditions are adjusted using a microprocessor.
    • Claim:
      11. The method according to claim 10 wherein the time to achieve the adjusted operating conditions is less than about 15 minutes.
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    • Other References:
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      Lacombe, Robert H. and Sanchez, Isaac C.; Statistical Thermodynamics of Fluid Mixtures; The Journal of Physical Chemistry, vol. 80, No. 23, 1976, pp. 2568-2580. cited by applicant
      Sanchez, Isaac C. and Lacombe, Robert H.; Statistical Thermodynamics of Polymer Solutions; Macromolecules, vol. 11, No. 6, Nov.-Dec. 1978, pp. 1145-1156. cited by applicant
      Gross, Joachim and Sadowski, Gabriele; Perturbed—Chain SAFT: An Equation of State Based on a Perturbation Theory for Chain Molecules; Ind. Eng. Chem. Res. 2001, 40, pp. 1244-1260; Published on Web Jan. 18, 2001. cited by applicant
      Orbey, Hasan; Bokis, Costas P. and Chen, Chau-Chyun; Equation of State Modeling of Phase Equilibrium in the Low-Denisty Polyethylene Process: The Sanchez-Lacombe, Statistical Associating Fluid Theory and Polymer-Soave-Redlich-Kwong Equations of State; Ind. Eng. Chem. Res. 1998, 37, pp. 4481-4491; published on Web Sep. 30, 1998. cited by applicant
      Chan, Alan Ka Chun; Adidharma, Hertanto and Radosz, Maciej; Fluid-Liquid Transitions of Poly(ethylene-co-octene-1) in Supercritical Ethylene Solutions; Ind. Eng. Chem. Res. 2000, 39, pp. 4370-4375; Published on Web Oct. 4, 2000. cited by applicant
      Trumpi, H.; De Loos, Th. W.; Krenz, R.A. and Heidemann, R.A.; High pressure phase equilibria in the system linear low density polyethylene + ethylene: experimental results and modelling; J. of Supercritical Fluids 27 (2003); pp. 205-214. cited by applicant
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      Boublik, Tomas; Hard-Sphere Equation of State; AIP/The Journal of Chemicals Physics 53, (1970); pp. 471-472. cited by applicant
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      Barker, J.A. and Henderson, D.; Perturbation Theory and Equation of State for Fluids. II. A Successful Theory of Liquids; The Journal of Chemical Physics, vol. 47, No. 11, Dec. 1, 1967; pp. 4714-4721. cited by applicant
    • Primary Examiner:
      Cheung, William
    • Attorney, Agent or Firm:
      Heinrich, Julie L.
    • Accession Number:
      edspgr.09202014