Nova Patents
CA2498034C

Flow control system

Abstract

Method and apparatus for providing liquid flow at a controlled rate less than 100 microliters/minute, and for varying the flow rate in a desired way. A liquid is driven through a conduit by pressure. The rate of flow of the liquid through the conduit is measured and compared to a desired value. The resulting information is then used to make any desirable changes in the driving pressure. In one embodiment, which is particularly suitable for a mixture of liquids to be supplied to a gradient liquid chromatography column, the rate of flow of each of two or more different liquids is controlled individually, and the liquids are then mixed together.

CA2498034C, drawing sheet 1
Sheet 1 of 6

Term

Term ended

Expired 17 September 2023, 3 years ago.

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

10 claims: 9 independent, 1 dependent

  1. 1
    CA 02498034 2011-11-14 THE EMBODIMENTS OF THE INVENTION IN WHICH AN EXCLUSIVE PROPERTY OR PRIVILEGE IS CLAIMED ARE DEFINED AS FOLLOWS:1. A method of supplying a liquid to a liquid outlet at a flow rate of less than 100 microliters/minute, the method comprising 1) applying pressure from a first pressure source to a first liquid, thus causing the first liquid to flow through a first conduit;
  2. 2
    2) detecting a first measured rate at which the first liquid is flowing through the first conduit;
  3. 3
    3) comparing the first measured rate with a first desired rate of flow of the first liquid through the first conduit;and
  4. 4
    4) using information obtained in step 3 to adjust the pressure applied to the first liquid by the first pressure source to adjust the rate at which the first liquid flows through the first conduit towards the first desired rate of flow;the method having at least one of the following characteristics A) the method includes
  5. 5
    5) applying pressure from a second pressure source to a second liquid, thus causing the second liquid to flow through a second conduit;
  6. 6
    6) detecting a second measured rate at which the second liquid is flowing through the second conduit;
  7. 7
    7) comparing the second measured rate with a second desired rate of flow of the second liquid through the second conduit;
  8. 8
    8) using information obtained in step 7 to adjust the pressure applied to the second liquid by the second pressure source to adjust the rate at which the second liquid flows through the second conduit towards the second desired rate of flow;
  9. 9
    9) mixing the first liquid from the first conduit with the second liquid from the second conduit;and
  10. 10
    10) supplying the mixture obtained in step 9 to the liquid outlet B) the first pressure source comprises a first pneumatic-to-hydraulic booster, and step 4 is carried out by a controller connected to the first booster; CA 02498034 2011-11-14 C) the first pressure source comprises a first pneumatic pressure source, a first pneumatic-to-hydraulic booster, and a first pressure modulator which is located between the first pneumatic pressure supply and the first booster and which controls the amounts of pneumatic pressure supplied to the first booster; step 2 is carried out by a first flowmeter which measures the rate at which the first liquid flows from the first booster to the liquid outlet; and step 4 is earned out by a first controller which instructs the first pressure modulator; and D) the first pressure source comprises a first pneumatic pressure source, a first pneumatic-to-hydraulic booster, a first pressure modulator which is located between the first pneumatic pressure supply and the first booster and which controls the pneumatic pressure supplied to the first booster, and a first pressure sensor which is located between the first pneumatic pressure supply and the first booster; step 2 is carried out by a first flowmeter which measures the rate at which the first liquid flows from the first booster to the liquid outlet; and steps 3 and 4 are carried out by a combination of a first inner servo-loop which communicates with the first pressure sensor and the first pressure modulator, and a first outer servo-loop which communicates with the first flowmeter and the first inner servo-loop, the first outer servo-loop comparing the first measured flowrate to the first desired flowrate and outputting a first pressure set point to the first inner servo-loop, and the first inner servo-loop instructing the first pressure modulator to adjust the first pneumatic pressure supply. 2. A method according to claim 1 wherein any change in the rate at which the first liquid flows through the first conduit results solely from a change in the pressure applied to the first liquid by the first pressure source. 3. A method according to claim 1 or 2 wherein the first pressure source comprises pressure generated by an electrokinetic pump or an electrokinetic flow controller or both. CA 02498034 2011-11-14 4. A method according to any one of claims 1 to 3 wherein the system has a response time, when the desired rate changes from a first value equal to the first measured rate to a second value which is from 0.2 to 5 times the first measured rate, of less than 1 second. 5. A method according to any one of claims 1 to 4 wherein step 2 is carried out using a flowmeter comprising (i) a first capillary tube whose length and diameter are such that the pressure drop across the first capillary tube is at least one of (a) 50 psi (3.5 kg/cm 2 ) and (b) at least 5% of the pressure applied to the first liquid by the first pressure source, and (ii) a first pressure sensor which measures the pressure drop across the first capillary tube. 6. A method according to claim 5 wherein the capillary tube is part of the first conduit. 7. A method according to any of claims 1 to 6 which has characteristic A and which also has at least one the following characteristics B2) the second pressure source comprises a second pneumatic-to-hydraulic booster, and step 3 is carried out by a servo-loop connected to the second booster; C2) the second pressure source comprises a second pneumatic pressure source, a second pneumatic-to-hydraulic booster, and a second pressure modulator which is located between the second pneumatic pressure supply and the second booster and which controls the amounts of pneumatic pressure supplied to the second booster; step 6 is carried out by a second flowmeter which measures the rate at which the second liquid flows from the second booster to the liquid outlet; and step 7 is carried out by a second servo-loop which instructs the second pressure modulator; and D2) the second pressure source comprises a second pneumatic pressure source, a second pneumatic-to-hydraulic booster, a second pressure modulator which is located between the second pneumatic pressure supply and the second booster and which controls the pneumatic pressure supplied to the second booster, and a second pressure sensor which is located between the second pneumatic pressure supply and the second booster; step 6 is carried out by a second flowmeter which measures the rate at which CA 02498034 2011-11-14 the second liquid flows from the second booster to the liquid outlet; and step 7 is carried out by a combination of a second inner servo-loop which communicates with the second pressure sensor and the second pressure modulator, and a second outer servo-loop which communicates with the second flowmeter and the second inner servo-loop, the second outer servo-loop comparing the second measured flowrate to the second desired flowrate and outputting a second pressure set point to the second inner servo-loop, and the second inner servo-loop instructing the second pressure modulator to adjust the second pneumatic pressure supply; E) any change in the rate at which the first liquid flows through the first conduit results solely from a change in the pressure applied to the first liquid by the first pressure source; F) the second pressure source comprises pressure generated by an electrokinetic pump or an electrokinetic flow controller or both; G) the time taken to adjust the flow rate of the second liquid from the second measured rate to the second desired rate is less than 1 second; and H) step 6 is carried out using a flowmeter comprising (i) a second capillary tube whose length and diameter are such that the pressure drop across the second capillary tube is at least one of (a) 50 psi (3.5 kg/cm 2 ) and (b) at least 5% of the pressure applied to the second liquid by the second pressure source, and (ii) a second pressure sensor which measures the pressure drop across the second capillary tube. 8. A method according to claim 1 having characteristic A or according to claim 7 wherein the first and second desired flow rates vary as a function of time, and the sum of the first and second desired flow rates remains substantially constant. 9. A method according to any one of claims 1 to 8 wherein the liquid outlet communicates with a liquid chromatography column. CA 02498034 2011-11-14 10. A method according to any one of claims 1 to 9 wherein the liquid is supplied to the liquid outlet at the flow rate of less than 10 microliters/minute. 11. Apparatus suitable for carrying out the method of any one of claims 1 to 10, the apparatus comprising (a) first and second liquid inlets; (b) a liquid outlet in liquid communication with the first and second liquid inlets; (c) first and second pneumatic pressure supplies; (d) a first pneumatic-to-hydraulic booster located between the first liquid inlet and the liquid outlet and in operative communication with the first pneumatic pressure supply, whereby the first pneumatic to hydraulic booster forces liquid out through the liquid outlet; (e) a second pneumatic-to-hydraulic booster located between the second liquid inlet and the liquid outlet and in operative communication with the second pneumatic pressure supply, whereby the second pneumatic to hydraulic booster forces liquid out through the liquid outlet; (f) a first pressure modulator located between the first pneumatic pressure supply and the first pneumatic to hydraulic booster, wherein the first pressure modulator controls the amount of pneumatic pressure supplied to the first pneumatic-tohydraulic booster; (g) a second pressure modulator located between the second pneumatic pressure supply and the second pneumatic to hydraulic booster, whereby the second pressure modulator controls the amount of pneumatic pressure supplied to the second pneumatic to hydraulic booster; (h) a first flowmeter which is located between the first pneumatic-to-hydraulic booster and the liquid outlet and which measures the flow rate of a first liquid flowing from the first booster to the liquid outlet; (i) a second flowmeter which is located between the second pneumatic-tohydraulic booster and the liquid outlet and which measures the flow rate of a second liquid flowing from the second booster to the liquid outlet; CA 02498034 2011-11-14 (j) a first pressure sensor located between the first pneumatic pressure supply and the first pneumatic-to-hydraulic booster; (k) a second pressure sensor located between the second pneumatic pressure supply and the second pneumatic-to-hydraulic booster; (l) a first inner servo-loop controller in communication with the first pressure sensor and the first pressure modulator; (m) a second inner servo-loop controller in communication with the second pressure sensor and the second pressure modulator; (n) a first outer servo-loop controller in communication with the first flowmeter and the first inner servo-loop controller, whereby the first outer servo-loop compares the measured flow rate of the first liquid to a first desired flow rate and outputs the comparison to the first inner servo-loop, and the first inner servo-loop instructs the first pressure modulator to adjust the first pneumatic pressure supply so that the first liquid flows out of the liquid outlet at the first desired flow rate; (o) a second outer servo-loop controller in communication with the second flowmeter and the second inner servo-loop controller, whereby the second outer servo- loop compares the measured flow rate of the second liquid to a second desired flow rate and outputs the comparison to the second inner servo-loop, and the second inner servo-loop instructs the second pressure modulator to adjust the second pneumatic pressure supply so that the second liquid flows out of the liquid outlet at the first desired flow rate. 12. A low flow rate precision flow controller comprising:(a) a pneumatic to hydraulic booster connected to a pressure supply for pressurizing a fluid so that it flows out of a fluid outlet;(b) a flowmeter for measuring the flow rate of the fluid between the pneumatic to hydraulic booster and the outlet;and (c) a servo-loop controller in communication with the flowmeter and the pneumatic to hydraulic booster, wherein the servo-loop compares the measured flow rate to a desired flow rate and adjusts the pressure from the pressure supply so that the fluid flows out of the fluid CA 02498034 2011-11-14 outlet at the desired flow rate, wherein the flow rate of the fluid is controlled solely by the controller adjusting the pressure;wherein the desired flow rate is less than approximately 100 microliters/minute. 13. The flow controller of claim 12 wherein the desired flow rate is less than approximately 10 microliters/minute. 14. The flow controller of claim 12 wherein the flow controller has a time response of less than one second so that when the measured flow rate does not substantially equal the desired flow rate, the measured flow rate will substantially equal the desired flow rate within one second. 15. The system of claim 12 wherein the flowmeter comprises: (i) a metering capillary having a sufficiently long length and a sufficiently small inner diameter so that the pressure drop across the metering capillary is at least 5% of the input pressure to the metering capillary at the desired flow rate;and (ii) a pressure sensor for measuring the pressure drop across the metering capillary. 16. The system of claim 12 wherein each flowmeter comprises: (i) a metering capillary having a sufficiently long length and a sufficiently small inner diameter so that the pressure drop across the metering capillary is at least 50 psi at the desired flow rate and so that the flow rate of the fluid flowing from the booster to the fluid outlet is controlled to the desired flow rate;and (ii) a pressure sensor, for measuring the pressure across the metering capillary. 17. A low flow rate precision flow controller comprising: (a) a fluid inlet;(b) a fluid outlet in fluid communication with the fluid inlet;(c) a pneumatic pressure supply;CA 02498034 2011-11-14 (d) a pneumatic to hydraulic booster located between the fluid inlet and the fluid outlet and in operative communication with the pneumatic pressure supply, wherein the pneumatic pressure supply causes the booster to force fluid out through the fluid outlet;(e) a pressure modulator located between the pneumatic pressure supply and the booster, wherein the pressure modulator controls the amount of pneumatic pressure supplied to the booster;(f) a flowmeter located between the booster and the fluid outlet wherein the flowmeter measures the flow rate of a fluid flowing from the booster to the fluid outlet;and (g) a servo-loop controller in communication with the flowmeter and the pressure modulator, wherein the servo-loop compares the measured flow rate to a desired flow rate and instructs the pressure modulator to adjust the pneumatic pressure supply so that the fluid flows out of the fluid outlet at the desired flow rate, wherein the flow rate of the fluid is controlled solely by the controller adjusting the pneumatic pressure supply;wherein the desired flow rate is less than approximately 100 microliters/minute. 18. The flow controller of claim 17 further comprising a check valve between the fluid inlet and the booster so that the fluid flows unidirectionally from the fluid inlet to the booster. 19. The flow controller of claim 17 wherein the desired flow rate is less than approximately 10 microliters/minute. 20. The flow controller of claim 17 wherein the flow controller has a time response of less than one second so that when the measured flow rate does not substantially equal the desired flow rate, the measured flow rate will substantially equal the desired flow rate within one second. 21. A low flow rate precision flow controller comprising: (a) a fluid inlet;(b) a fluid outlet in fluid communication with the fluid inlet;(c) a pneumatic pressure supply;CA 02498034 2011-11-14 (d) a pneumatic to hydraulic booster located between the fluid inlet and the fluid outlet and in operative communication with the pneumatic pressure supply, wherein the pneumatic pressure supply causes the booster to force fluid through the fluid outlet;(e) a pressure modulator located between the pneumatic pressure supply and the booster, wherein the pressure modulator controls the amount of pneumatic pressure supplied to the booster;(f) a flowmeter located between the booster and the fluid outlet wherein the flowmeter measures the flow rate of a fluid flowing from the booster to the fluid outlet;(g) a pressure sensor located between the pneumatic pressure supply and the booster;(h) an inner servo-loop controller in communication with the pressure sensor and the pressure modulator, and (i) an outer servo-loop controller in communication with the flowmeter and the inner servo-loop controller, wherein the outer servo-loop compares the measured flow rate to a desired flow rate and outputs a pressure setpoint to the inner servo-loop, and wherein the inner servo-loop instructs the pressure modulator to adjust the pneumatic pressure supply so that the fluid flows out of the fluid outlet at the desired flow rate, wherein the flow rate of the fluid is controlled solely by the controllers adjusting the pneumatic pressure supply, wherein the desired flow rate is less than approximately 100 microliters/minute. 22. The flow controller of claim 21 wherein the flow controller has a time response of less than one second so that when the measured flow rate does not substantially equal the desired flow rate, the measured flow rate will substantially equal the desired flow rate within one second. 23. The system of claim 21 wherein the flowmeter comprises: (i) a metering capillary having a sufficiently long length and a sufficiently small inner diameter so that the pressure drop across the metering capillary is at least 5% of the input pressure to the metering capillary at the desired flow rate;and (ii) a pressure sensor for measuring the pressure drop across the metering capillary. CA 02498034 2011-11-14 24. The system of claim 23 wherein the metering capillary has an inside diameter of less than approximately 50 microns. 25. A low flow rate precision flow controller comprising: (a) a fluid inlet;(b) a fluid outlet in fluid communication with the fluid inlet;(c) a pneumatic pressure supply;(d) a pneumatic to hydraulic booster located between the fluid inlet and the fluid outlet and in operative communication with the pneumatic pressure supply, wherein the pneumatic pressure supply causes the booster to force fluid out through the fluid outlet;(e) a pressure modulator located between the pneumatic pressure supply and the booster, wherein the pressure modulator controls the amount of pneumatic pressure supplied to the booster;(f) a flowmeter located between the booster and the fluid outlet wherein the flowmeter measures the flow rate of a fluid flowing from the booster to the fluid outlet;(g) a pressure sensor located between the booster and the flowmeter;(h) an inner servo-loop controller in communication with the pressure sensor and the pressure modulator, and (i) an outer servo-loop controller in communication with the flowmeter and the inner servo-loop controller, wherein the outer servo-loop compares the measured flow rate to a desired flow rate and outputs a pressure setpoint to the inner servo-loop, and wherein the inner servo-loop instructs the pressure modulator to adjust the pneumatic pressure supply so that the fluid flows out of the fluid outlet at the desired flow rate, and wherein the flow rate of the fluid is controlled solely by the controllers adjusting the pneumatic pressure supply, wherein the desired flow rate is less than approximately 100 microliters/minute. 26. The flow controller of claim 25 wherein the flow controller has a time response of less than one second so that when the measured flow rate does not substantially equal the desired flow rate, the measured flow rate will substantially equal the desired flow rate within one second. CA 02498034 2011-11-14 27. The system of claim 25 wherein the flowmeter comprises: (i) a metering capillary having a sufficiently long length and a sufficiently small inner diameter so that the pressure drop across the metering capillary is at least 5% of the input pressure to the metering capillary at the desired flow rate;and (ii) a pressure sensor for measuring the pressure drop across the metering capillary. 28. A low flow rate precision flow controller system comprising: (a) a first and a second fluid inlet for first and second fluids respectively;(b) a fluid outlet in fluid communication with the first and second fluid inlets;(c) a first and a second pneumatic pressure supply;(d) a first pneumatic to hydraulic booster located between the first fluid inlet and the fluid outlet and in operative communication with the first pneumatic pressure supply, wherein the first pneumatic pressure supply causes the first pneumatic to hydraulic booster to force the first fluid out through the fluid outlet;(e) a second pneumatic to hydraulic booster located between the second fluid inlet and the fluid outlet and in operative communication with the second pneumatic pressure supply, wherein the second pneumatic pressure supply causes the second pneumatic to hydraulic booster to force the second fluid out through the fluid outlet;(f) a first pressure modulator located between the first pneumatic pressure supply and the first pneumatic to hydraulic booster, wherein the first pressure modulator controls the amount of pneumatic pressure supplied to the first pneumatic to hydraulic booster;(g) a second pressure modulator located between the second pneumatic pressure supply and the second pneumatic to hydraulic booster, wherein the second pressure modulator controls the amount of pneumatic pressure supplied to the second pneumatic to hydraulic booster;(h) a first flowmeter located between the first pneumatic to hydraulic booster and the fluid outlet wherein the first flowmeter measures the flow rate of the first fluid flowing from the first booster to the fluid outlet;CA 02498034 2011-11-14 (i) a second flowmeter located between the second pneumatic to hydraulic booster and the fluid outlet wherein the second flowmeter measures the flow rate of the second fluid flowing from the second booster to the fluid outlet;(j) a first pressure sensor located between the first pneumatic pressure supply and the first pneumatic to hydraulic booster;(k) a second pressure sensor located between the second pneumatic pressure supply and the second pneumatic to hydraulic booster;(l) a first inner servo-loop controller in communication with the first pressure sensor and the first pressure modulator;(m) a second inner servo-loop controller in communication with the second pressure sensor and the second pressure modulator;(n) a first outer servo-loop controller in communication with the first flowmeter and the first inner servo-loop controller, wherein the first outer servo-loop compares the measured flow rate of the first fluid to a first desired flow rate and outputs the comparison to the first inner servo-loop, and wherein the first inner servo-loop instructs the first pressure modulator to adjust the first pneumatic pressure supply so that the first fluid flows out of the fluid outlet at the first desired flow rate;(o) a second outer servo-loop controller in communication with the second flowmeter and the second inner servo-loop controller, wherein the second outer servo-loop compares the measured flow rate of the second fluid to a second desired flow rate and outputs the comparison to the second inner servo-loop, and wherein the second inner servoloop instructs the second pressure modulator to adjust the second pneumatic pressure supply so that the second fluid flows out of the fluid outlet at the first desired flow rate, wherein the first and second fluids mix before flowing out of the fluid outlet and wherein the first and second fluids flow out of the fluid outlet at a flow rate of less than approximately 100 microliters/minute;and wherein the flow rates of the first and second fluids are controlled only by their respective controllers. CA 02498034 2011-11-14 29. The system of claim 28 wherein the first flowmeter is comprised of a first upstream pressure sensor, a downstream pressure sensor;and a first metering capillary located between the first upstream pressure sensor and the downstream pressure sensor;and wherein the second flowmeter is comprised of a second upstream pressure sensor;the downstream pressure sensor;and a second metering capillary located between the second upstream pressure sensor and the downstream pressure sensor;wherein the metering capillaries each have a sufficiently long length and a sufficiently small inner diameter so that the pressure drop across each metering capillary is at least 5% of the input pressure to the metering capillary at the desired flow rate. 30. The system of claim 28 further comprising a separation column in fluid communication with the fluid outlet. 31. The system of claim 30 further comprising an injector between the fluid outlet and the separation column. 32. The system of claim 30 further comprising a detector in fluid communication with the separation column. 33. The system of claim 28 wherein the system has a time response of less than one second so that when a measured flow rate does not substantially equal a respective desired flow rate, the measured flow rate will substantially equal the respective desired flow rate within one second. 34. A low flow rate precision flow controller system comprising: (a) a plurality of fluid supplies in fluid communication with a fluid outlet so that a plurality of fluids mix to yield mixed fluids before flowing through the outlet;(b) a pressure source for each fluid, each pressure source applying pressure to the respective fluid for pressuring the respective fluid through the outlet;(c) a flowmeter for each fluid located between the fluid supply and the outlet, each flowmeter measuring the flow rate of the respective fluid;and CA 02498034 2011-11-14 (d) a controller for each pressure source in communication with the respective flowmeter and the respective pressure source wherein the controller compares the respective measured flow rate to a respective desired flow rate and adjusts the respective pressure source so that the respective fluid flows at the respective desired flow rate, wherein the flow rate of each fluid is controlled solely by its respective controller adjusting the respective pressure source, and wherein the fluids flow out of the fluid outlet at a flow rate of less than approximately 100 microliters/minute;wherein at least one pressure source comprises: (i) a pneumatic to hydraulic booster in operative fluid communication with the fluid supply;and (ii) a check valve between the fluid supply and the booster so that fluid flows unidirectionally from the fluid supply to the booster. 35. The system of claim 34 wherein at least one of the controllers comprises: (i) a pneumatic pressure supply in operative communication with the booster;(ii) a pressure modulator located between the pneumatic pressure supply and the booster, wherein the pressure modulator controls the amount of pneumatic pressure supplied to the booster;and (iii) a servo-loop controller in communication with a flowmeter and the pressure modulator, wherein the servo-loop controller compares the measured flow rate to the respective desired flow rate and instructs the pressure modulator to adjust the pneumatic pressure supply so that the fluid flows at the desired flow rate.