EP3246089A2

Pressure control to reduce pump power fluctuations

Abstract

A polymerization process comprises circulating, with a pump, a reaction mixture slurry in a polymerization loop reactor during a polymerization process, detecting a pressure change in the reaction mixture slurry downstream of the pump, generating, by a pressure controller, a takeoff valve actuation signal for a takeoff valve based on the pressure change, generating, by the pressure controller, a correction to the takeoff valve actuation signal, generating, by the pressure controller, a time delay for the correction, applying the correction to the takeoff valve actuation signal to generate a corrected takeoff valve actuation signal, providing the corrected takeoff valve actuation signal to the takeoff valve after the time delay, and adjusting a position of the takeoff valve in response to providing the corrected takeoff valve actuation signal. The reactor pressure is based on the takeoff valve position.

EP3246089A2, drawing sheet 1
Sheet 1 of 9

Term

10.4 yearsto projected expiry

Projected expiry 1 March 2037, counted from filing; an application has no term until it is granted.

  1. Priority
  2. Filed
  3. Published
  4. Today
  5. Projected expiry

26 claims: 13 independent, 13 dependent

  1. 1
    A polymerization process comprising:circulating, with a pump, a reaction mixture slurry in a polymerization loop reactor during a polymerization process, wherein the reaction mixture slurry comprises an olefin, a catalyst, and polymer particles;detecting a pressure change in the reaction mixture slurry downstream of the pump;generating, by a pressure controller, a takeoff valve actuation signal for a takeoff valve based on the pressure change, wherein a portion of the reaction mixture slurry is continually removed from the polymerization reactor in proportion to the takeoff valve position, and wherein the reaction mixture slurry is retained in the polymerization reactor when the takeoff valve is in a closed position, wherein the reactor pressure is based on the takeoff valve position;generating, by the pressure controller, a correction to the takeoff valve actuation signal;generating, by the pressure controller, a time delay for the correction;applying the correction to the takeoff valve actuation signal to generate a corrected takeoff valve actuation signal;providing the corrected takeoff valve actuation signal to the takeoff valve after the time delay;and adjusting a position of the takeoff valve in response to providing the corrected takeoff valve actuation signal.
  2. 4
    The polymerization process of any one of claims 1 to 3, wherein the time delay is based on a time for the reaction mixture to flow from the pump to the takeoff valve in the polymerization reactor.
  3. 5
    The polymerization process of any one of claims 1 to 4, wherein a magnitude of the correction is based on a change in a pump power of the pump relative to a time average of the pump power, wherein the time average of the pump power is an average pump power over a time corresponding to between 1 and 10 circulation periods of the reaction mixture slurry through the polymerization loop reactor.
  4. 6
    The polymerization process of any one of claims 1 to 5, wherein applying the correction reduces a pump power fluctuation of the pump compared to adjusting the position of the takeoff valve using the takeoff valve actuation signal without applying the correction.
  5. 7
    The polymerization process of any one of claims 1 to 6, wherein the correction is between about 0.1% and about 1% of a signal range of the takeoff valve actuation signal.
  6. 9
    The polymerization process of any one of claims 1 to 8, wherein the pump is at least one of an axial flow pump, a mix flow pump, or a radial flow pump.
  7. 10
    The polymerization process of any one of claims 1 to 9, wherein a concentration of the polymer particles in the reaction mixture slurry is greater than about 40 wt%.
  8. 12
    A polymerization process comprising:circulating a reaction mixture slurry in a polymerization loop reactor during a polymerization process;wherein the reaction mixture slurry comprises an olefin, a catalyst, and a polymer product, and wherein the polymerization loop reactor comprises a pump, wherein the pump is disposed in-line in the polymerization loop reactor, wherein a pressure sensor is disposed downstream of the pump, wherein a first takeoff valve is disposed downstream of the pump, and wherein a second takeoff valve is disposed downstream of the first takeoff valve;detecting a pressure change in the reaction mixture slurry at the pressure sensor;generating, by a pressure controller in signal communication with the pressure sensor, a first takeoff valve actuation signal for the first takeoff valve and a second takeoff valve actuation signal for the second takeoff valve based on the pressure change;generating, by the pressure controller, a first correction to the first takeoff valve actuation signal;generating, by the pressure controller, a first time delay for the first correction, wherein the first time delay is based on a distance between the first takeoff control valve and the pump;applying the first correction to the first takeoff valve actuation signal after the first time delay to generate a first corrected takeoff valve actuation signal;generating, by the pressure controller, a second correction to the second takeoff valve actuation signal;generating, by the pressure controller, a second time delay for the second correction, wherein the second time delay is based on a distance between the second takeoff control valve and the pump;applying the second correction to the second takeoff valve actuation signal after the second time delay to generate a second corrected takeoff valve actuation signal;and adjusting a position of the takeoff valve during the polymerization process in response to the first corrected takeoff valve actuation signal and the second corrected takeoff valve actuation signal.
  9. 15
    The polymerization process of any one of claims 12 to 14, wherein a magnitude of the one or more corrections is based on a change in a pump power of the pump.
  10. 16
    The polymerization process of any one of claims 12 to 15, wherein the one or more corrections comprise a portion of a signal range of the takeoff valve actuation signal.
  11. 18
    A method of controlling a polymerization process, the method comprising:circulating a reaction mixture slurry in a polymerization reactor during a polymerization process, wherein the reaction mixture slurry comprises an olefin, a catalyst, and a polymer product;detecting, by sensor, at least one condition within the polymerization reactor during the polymerization process;detecting, by a pump power sensor, a pumping power fluctuation of at least one pump used in the circulating of the reaction mixture slurry;developing, by a processor, a probability network;transferring the at least one condition and the pumping power fluctuation to the probability network;determining, by the processor, the probability that the at least one condition is a cause of the pumping power fluctuation;determining that the probability that the at least one condition is a cause of the pumping power fluctuation is above a threshold;controlling the at least one condition when the probability that the at least one condition is a cause of the pumping power fluctuation is above a threshold;and reducing the pumping power fluctuation in response to controlling the at least one condition.
  12. 25
    The method of any one of claims 18 to 24, wherein the at least one condition comprises one or more of:a concentration of the olefin in the reaction mixture slurry, a concentration of the catalyst in the reaction mixture slurry, a concentration of the alpha olefin reaction product in the reaction mixture slurry, a composition of the catalyst, a composition of the olefin, a composition of the alpha olefin reaction product, a density of the reaction mixture slurry, a composition of the diluent, a pressure within the polymerization reactor, an average temperature of the reaction mixture slurry, a flowrate of the reaction mixture, a temperature of a coolant inlet in a heat transfer portion of the polymerization reactor, or any combination thereof.
  13. 26
    The method of any one of claims 18 to 25, wherein the polymerization reactor is a loop slurry reactor, a continuous stirred tank reactor, or a plug flow reactor.