Liquid delivery pump
The liquid feed pump addresses the challenge of achieving high flow accuracy in liquid chromatographs by incorporating a control unit that adjusts plunger movement speeds based on measured pressure and flow rate parameters, effectively managing solvent expansion and leaks.
Patent Information
- Application Number
- JP2021214281
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-12-28
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2041-12-28
AI Technical Summary
Conventional liquid feed pumps for liquid chromatographs struggle to achieve high flow accuracy due to the lack of consideration for solvent expansion and both pressure-dependent and flow-dependent leaks.
A liquid feed pump design that includes a first and second plunger pump connected in series, a pressure sensor to measure liquid feed pressure, and a control unit that calculates and adjusts the movement speed of the plungers based on parameters related to liquid feed pressure, target flow rate, and leakage corrections.
This design enables the liquid feed pump to deliver liquid with high flow accuracy by accounting for solvent expansion, pressure-dependent leaks, and flow-dependent leaks, thereby maintaining consistent flow rates despite varying conditions.
Smart Images

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Abstract
Description
[Technical field]
[0001] The present invention relates to a pump for pumping a liquid. [Background technology]
[0002] A liquid delivery pump is a pump for delivering a fixed amount of liquid, and is used, for example, in liquid chromatographs. In analyses using liquid chromatographs, high reproducibility is required for the analysis results, and therefore liquid delivery pumps are required to have high flow rate accuracy.
[0003] In general, a liquid chromatograph is equipped with a liquid delivery pump that delivers a liquid solvent, an injector for introducing a sample into the liquid chromatograph, a separation column, a detector, a waste liquid container, and a system control unit that controls these devices. A liquid delivery pump used in a liquid chromatograph is generally composed of two plunger pumps connected in series. The upstream plunger pump (first plunger pump) draws in the solvent, compresses it, and discharges it. Since the first plunger pump alone cannot deliver a constant flow rate, another plunger pump (second plunger pump) is connected downstream of the first plunger pump. The second plunger pump operates to cancel the pulsating flow of the first plunger pump (i.e., when the first plunger pump draws in and compresses the solvent, it discharges the solvent). The liquid delivery pump can deliver a constant flow rate of the solvent by such operations of the first plunger pump and the second plunger pump.
[0004] The sample to be analyzed is injected by an injector into the solvent discharged from the liquid delivery pump. The solvent with the injected sample is introduced into a separation column and separated into its components, after which a detector detects the characteristics of the sample components, such as absorbance, fluorescence intensity, and refractive index. The separation column is filled with microparticles. Due to the fluid resistance when the solvent flows through the gaps between the microparticles, a load pressure of several tens of megapascals to over a hundred megapascals is generated on the liquid delivery pump. The magnitude of this load pressure varies depending on the diameter of the separation column (e.g., on the order of several millimeters), the size of the microparticles (e.g., on the order of several micrometers), and the flow rate through the column.
[0005] The solvent is compressed to the load pressure and discharged from the liquid delivery pump. At the detector downstream of the separation column, the pressure of the solvent is almost atmospheric pressure. Therefore, the solvent at the detector is expanded relative to the state inside the liquid delivery pump. Also, in the liquid delivery pump, minute amounts of solvent may leak from seals and connections of components. Therefore, to obtain high flow rate accuracy with the liquid delivery pump, it is necessary to control the liquid delivery pump taking into account the expansion and leakage of the solvent. There are two types of solvent leakage: leakage that depends on the pressure and leakage that depends on the flow rate.
[0006] Examples of conventional liquid delivery pumps that take into consideration the expansion or leakage of a solvent are disclosed in, for example, Patent Documents 1 and 2.
[0007] Patent Document 1 discloses a technique for correcting the effect of solvent compression. The liquid delivery device described in Patent Document 1 includes a discharge speed calculation unit that calculates the discharge speed of a plunger pump such that the converted value of the flow rate of a mobile phase (fluid) discharged from a pump unit to a discharge flow path under atmospheric pressure becomes a set flow rate, and a discharge operation control unit that operates the plunger pump during a discharge stroke at the discharge speed calculated by the discharge speed calculation unit, so that the drive speed of the plunger can be accurately controlled so that the volumetric flow rate of the mobile phase under atmospheric pressure becomes the set flow rate, and deviations in the liquid delivery flow rate caused by the compressibility of the mobile phase can be reduced.
[0008] Patent Document 2 discloses a technology for detecting and correcting leaks. In the device described in Patent Document 2, a pump is driven so that the flow rate becomes zero at a certain predetermined pressure, and leaks are detected by analyzing the displacement of the plunger at this time, and the pump flow rate is adjusted to correct the detected leak. [Prior art documents] [Patent documents]
[0009] [Patent Document 1] International Publication No. 2019 / 082243 [Patent Document 2] European Patent No. 2244091 Summary of the Invention [Problem to be solved by the invention]
[0010] In the technology disclosed in Patent Document 1, the liquid delivery pump is controlled by considering only the expansion of the solvent, and the leakage of the solvent is not considered. Therefore, when the magnitude of the leakage cannot be ignored with respect to the flow rate accuracy required for the liquid delivery pump, it is difficult to achieve the required flow rate accuracy.
[0011] In the technology disclosed in Patent Document 2, the pump flow rate is adjusted taking into account solvent leakage, but only leakage dependent on the solvent pressure is considered, and leakage dependent on the flow rate is not considered. Therefore, in cases where the change in leakage caused by a change in flow rate cannot be ignored with respect to the flow rate accuracy required for the liquid delivery pump, it is difficult to achieve the required flow rate accuracy.
[0012] As described above, conventional techniques do not take into account the expansion of the solvent, leakage that depends on the solvent pressure, and leakage that depends on the solvent flow rate, so there is a demand for a liquid delivery pump that can take these factors into account and deliver liquid with high flow rate accuracy.
[0013] The present invention aims to provide a liquid delivery pump that can take into account solvent expansion, leakage depending on the solvent pressure, and leakage depending on the solvent flow rate, and is capable of delivering liquid with high flow rate accuracy. [Means for solving the problem]
[0014] The liquid delivery pump according to the present invention is a liquid delivery pump that discharges liquid, and includes a first plunger pump having a movable first plunger, a second plunger pump having a movable second plunger and connected to the first plunger pump, a pressure sensor disposed downstream of the second plunger pump and measuring a liquid delivery pressure that is the pressure of the liquid discharged from the second plunger pump, and a control unit that inputs the liquid delivery pressure measured by the pressure sensor and controls the driving of the first plunger and the second plunger. The control unit calculates the moving speed of the first plunger and the moving speed of the second plunger using a parameter that depends on the liquid delivery pressure, the liquid delivery pressure, and a target flow rate that is a preset flow rate of the liquid. The parameter is a parameter of an equation that represents the relationship between the liquid delivery pressure and the flow rate of the liquid. Effect of the Invention
[0015] According to the present invention, it is possible to provide a liquid delivery pump capable of delivering liquid with high flow rate accuracy by taking into account solvent expansion, leakage depending on the solvent pressure, and leakage depending on the solvent flow rate. [Brief description of the drawings]
[0016] [Figure 1] FIG. 1 is a schematic diagram showing the configuration of a liquid chromatograph equipped with a liquid delivery pump according to a first embodiment of the present invention. [Diagram 2] 11 is a graph showing the displacement of a first plunger and a second plunger, and the discharge flow rate and discharge pressure of a solvent during normal delivery of the solvent. [Diagram 3] FIG. 1 is a schematic diagram showing the configuration of a liquid chromatograph equipped with two liquid delivery pumps. [Figure 4]FIG. 1 is a diagram for explaining a schematic relationship between factors that affect the flow rate accuracy of a liquid feed pump. [Diagram 5] FIG. 13 is a diagram showing a schematic diagram of a solvent flow rate at a detector versus a liquid delivery pressure. [Figure 6A] FIG. 13 is a diagram showing a schematic example of the measured value of the solvent flow rate at the detector versus the liquid delivery pressure when the base flow rate is Qb1. [Figure 6B] FIG. 13 is a diagram showing a schematic example of the measured value of the flow rate of the solvent at the detector versus the liquid delivery pressure when the base flow rate is Qb2. [Figure 7A] FIG. 13 is a diagram showing a schematic example of a plot of parameter C1 obtained from equation (5) against liquid delivery pressure. [Figure 7B] FIG. 13 is a diagram showing a schematic example of a plot of the parameter C0 obtained from the formula (6) against the liquid delivery pressure. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0017] The liquid delivery pump according to the present invention is a pump that discharges and delivers a liquid solvent, and can be applied to, for example, a liquid chromatograph. The liquid delivery pump according to the present invention determines pump operation (more specifically, the plunger movement speed) taking into account the expansion of the solvent, leakage depending on the solvent pressure, and leakage depending on the solvent flow rate, and is capable of delivering liquid with high flow rate accuracy. In the liquid delivery pump according to the present invention, the pump control unit determines the value of a parameter in an equation that represents the relationship between the liquid delivery pressure and the solvent flow rate at the detector, and drives the plunger at a speed determined using this parameter. Furthermore, the liquid delivery pump according to the present invention can also adjust the parameter during liquid delivery by feeding back the pressure during liquid delivery.
[0018] In the following, a liquid feed pump according to an embodiment of the present invention will be described. Note that the flow rate described below refers to a volumetric flow rate unless otherwise specified. EXAMPLES
[0019] <Configuration example of liquid delivery pump and liquid chromatograph> 1 is a schematic diagram showing the configuration of a liquid chromatograph 100 including a liquid delivery pump 1 according to a first embodiment of the present invention. The liquid chromatograph 100 includes the liquid delivery pump 1, an injector 2 for introducing a sample into the liquid chromatograph 100, a separation column 3, a detector 4, a waste liquid container 5, and a system controller 7 for controlling these devices.
[0020] The injector 2, separation column 3, detector 4, and waste liquid container 5 can be those generally used in liquid chromatographs, and therefore in this embodiment, detailed explanations of the configurations of these devices will be omitted.
[0021] The liquid delivery pump 1 includes a controller 10, which is a pump control unit, a pressure sensor 110, a first plunger pump 101, a second plunger pump 102, a connecting flow path 103, a first solenoid valve 81, a second solenoid valve 82, a motor driver 210, a purge valve driver 310, a purge valve 311, a waste liquid tank 312, and a solenoid valve driver 410. The liquid delivery pump 1 discharges a liquid (for example, a solvent). The liquid delivery pump 1 can be connected to an injector 2, a separation column 3, a detector 4, and a waste liquid container 5 on its downstream side. In this embodiment, the injector 2, the separation column 3, the detector 4, and the waste liquid container 5 are connected downstream of the liquid delivery pump 1. The detector 4 detects the characteristics of a sample contained in the liquid (solvent) discharged by the liquid delivery pump 1.
[0022] The first plunger pump 101 and the second plunger pump 102 are connected in series to each other. The first plunger pump 101 is disposed on the upstream side, and the second plunger pump 102 is disposed on the downstream side. Note that the first plunger pump 101 and the second plunger pump 102 may be connected in parallel to each other. In this embodiment, an example in which the first plunger pump 101 and the second plunger pump 102 are connected in series will be described.
[0023] The pressure sensor 110 is installed downstream of the second plunger pump 102. The pressure sensor 110 measures the pressure (discharge pressure) of the solvent (liquid) discharged from the second plunger pump 102, and outputs the measured pressure value to the controller 10.
[0024] Although details will be described later, the controller 10 operates the motor driver 210 and the solenoid valve driver 410 by providing command values based on the discharge pressure measured by the pressure sensor 110 and a predetermined operation sequence. The controller 10 also operates the purge valve driver 310 by providing command values based on the predetermined operation sequence.
[0025] The first plunger pump 101 includes a first pump head 111 having a first pressurizing chamber 11, a first plunger 21, a first suction passage 31, a first discharge passage 41, a first check valve 51, a second check valve 52, a first seal 61, and a bearing 71. The first check valve 51 is disposed in the flow path of the first suction passage 31. The second check valve 52 is disposed in the flow path of the first discharge passage 41. The first check valve 51 and the second check valve 52 restrict the flow direction of the solvent. The first plunger 21 is a pressurizing member, and is held by the bearing 71 so as to be slidable and movable within the first plunger pump 101. The first seal 61 prevents liquid leakage from the first pressurizing chamber 11.
[0026] The second plunger pump 102 includes a second pump head 112 having a second pressurizing chamber 12, a second plunger 22, a second suction passage 32, a second discharge passage 42, a second seal 62, and a bearing 72. The second check valve 52 and the second suction passage 32 are connected to each other by a connecting flow path 103. That is, the first plunger pump 101 and the second plunger pump 102 are connected in series, and the first plunger pump 101 is installed on the upstream side. The second plunger 22 is a pressurizing member, and is held by the bearing 72 so as to be slidable and movable within the second plunger pump 102. The second seal 62 prevents liquid from leaking from the second pressurizing chamber 12.
[0027] In this specification, "ascending" of the plungers (first plunger 21 and second plunger 22) refers to the movement of the plungers in the direction in which the solvent inside the pressurized chambers (first pressurized chamber 11 and second pressurized chamber 12) is compressed or discharged (movement to the right in Figure 1). On the other hand, "descending" of the plungers refers to the movement of the plungers in the direction in which the solvent is sucked into the pressurized chambers (movement to the left in Figure 1). Also, the "upper limit" refers to the highest position within the range in which the plungers can move inside the pressurized chambers. The "lower limit" refers to the lowest position within the range in which the plungers can move inside the pressurized chambers.
[0028] The reciprocating motion of the first plunger 21 is controlled by the first electric motor 211, the reduction gear 221, and the linear motion device 231. More specifically, the first plunger 21 is controlled by the controller 10 as follows. The motor driver 210 applies driving power to the first electric motor 211 based on a command value of the controller 10 to rotate the first electric motor 211. The rotation of the first electric motor 211 is slowed down by the reduction gear 221, and converted into linear motion by the linear motion device 231. The first plunger 21 reciprocates in accordance with this linear motion of the linear motion device 231.
[0029] Similarly, the reciprocating motion of the second plunger 22 is controlled by the second electric motor 212, the reduction gear 222, and the linear motion device 232. More specifically, the second plunger 22 is controlled by the controller 10 as follows. The motor driver 210 applies driving power to the second electric motor 212 based on a command value of the controller 10 to rotate the second electric motor 212. The rotation of the second electric motor 212 is slowed down by the reduction gear 222 and converted into linear motion by the linear motion device 232. The second plunger 22 reciprocates in accordance with this linear motion of the linear motion device 232.
[0030] The reduction gear 221 and the linear motion device 231 can be broadly called a power transmission mechanism device because the combination of these amplifies the rotational power of the first electric motor 211 and converts it into linear motion force. The same applies to the reduction gear 222 and the linear motion device 232.
[0031] Specific examples of the reduction gears 221, 222 include spur gears, pulleys, planetary gears, and worm gears. The main reason for providing the reduction gears 221, 222 is to increase the torque of the first and second electric motors 211, 212. If the first and second electric motors 211, 212 have the capacity to generate sufficient torque, it is not necessarily necessary to provide the reduction gears 221, 222.
[0032] Specific examples of the linear motion devices 231 and 232 include a ball screw, a cam, and a rack and pinion.
[0033] The purge valve driver 310 applies driving power to the purge valve 311 based on a command value of the controller 10. The purge valve 311 is connected to the downstream side of the second plunger pump 102. The purge valve 311 switches the direction in which the solvent discharged from the second plunger pump 102 flows to either the injector 2 side or the waste tank 312 side.
[0034] The solenoid valve driver 410 applies driving power to the first solenoid valve 81 and the second solenoid valve 82 based on a command value of the controller 10. A solvent container for accommodating a first solvent 511 and a solvent container for accommodating a second solvent 512 are installed outside the liquid feed pump 1. The first solvent 511 and the second solvent 512 are fed to the liquid feed pump 1 by opening and closing the first solenoid valve 81 and the second solenoid valve 82 and driving the first plunger pump 101 and the second plunger pump 102 (the first plunger 21 and the second plunger 22).
[0035] When the first plunger pump 101 sucks in the solvent, one of the first solenoid valve 81 and the second solenoid valve 82 is opened and the other is closed, so that one of the first solvent 511 and the second solvent 512 is sucked in. The sucked solvent passes through the junction 90, the first check valve 51, and the first suction passage 31 and flows into the first pressurized chamber 11. The solvent that has been sucked and flowed into the first pressurized chamber 11 is compressed as the first plunger 21 rises.
[0036] When the solvent is compressed and the pressure inside the first pressurized chamber 11 becomes greater than the pressure inside the second pressurized chamber 12, the solvent passes through the first discharge passage 41, the second check valve 52, the connecting passage 103, and the second suction passage 32, flows into the second pressurized chamber 12, and is discharged from the second discharge passage 42.
[0037] A sample to be analyzed is injected by an injector 2 into the solvent discharged from a liquid delivery pump 1. The solvent with the sample injected is introduced into a separation column 3 and separated into its components, after which a detector 4 detects the absorbance, fluorescence intensity, refractive index, and other properties according to the sample components. The separation column 3 is filled with microparticles, and a load pressure of several tens of megapascals to over a hundred megapascals is generated on the liquid delivery pump 1 due to the fluid resistance generated when the solvent flows through the gaps between the microparticles. The magnitude of this load pressure varies depending on the diameter and length of the separation column 3, the type and size of the microparticles, the flow rate through the column, and other factors.
[0038] The liquid delivery pump 1 may be equipped with a flow meter 8 on the upstream or downstream side of the detector 4. In FIG. 1, as an example, the flow meter 8 is installed on the upstream side of the detector 4. The flow meter 8 measures the flow rate at the detector 4 of the solvent discharged by the liquid delivery pump 1. The value measured by the flow meter 8 is input to the controller 10. It is to be noted that the liquid delivery pump 1 does not necessarily have to be equipped with the flow meter 8.
[0039] <Liquid delivery method> An outline of a liquid delivery method for normal delivery of a solvent using the liquid delivery pump 1 according to this embodiment will be described below. "Normal liquid delivery" refers to a liquid delivery method for analyzing a sample by causing the solvent discharged by the liquid delivery pump 1 to flow to the injector 2, separation column 3, and detector 4. Note that the liquid delivery method when a sample is not analyzed (when the solvent is delivered to the waste liquid tank 312) is the same as when a sample is analyzed, and therefore a description thereof will be omitted.
[0040] FIG. 2 is a graph showing the displacement of the first plunger 21 and the second plunger 22, and the discharge flow rate and discharge pressure of the solvent when the solvent is normally delivered by the liquid delivery pump 1. In the four graphs shown in FIG. 2, the horizontal axis indicates time, and the vertical axis indicates, from the top, the displacement of the first plunger 21, the displacement of the second plunger 22, the discharge flow rate of the solvent, and the discharge pressure of the solvent. Here, the discharge flow rate is the flow rate of the solvent delivered by the liquid delivery pump 1 (the flow rate of the solvent immediately after it is delivered by the liquid delivery pump 1), and the discharge pressure is the pressure detected by the pressure sensor 110, that is, the pressure of the solvent delivered from the liquid delivery pump 1. The upward direction (to the right in FIG. 1) of the displacement of the first plunger 21 and the displacement of the second plunger 22 is the positive direction, and the downward direction (to the left in FIG. 1) is the negative direction. The discharge flow rate is positive for discharge and negative for suction.
[0041] In normal liquid delivery, the first plunger 21 and the second plunger 22 both operate based on the lower limit point.
[0042] In normal liquid transfer, both the first plunger pump 101 and the second plunger pump 102 operate periodically. Four cycles of operation are shown in Fig. 2. In one liquid transfer cycle, there are four sections, in chronological order, section a, section b, section c, and section d.
[0043] Section a is a section in which the first plunger 21 descends to suck in the solvent. Section b is a section in which the first plunger 21 ascends to compress the solvent. In sections a and b, the solvent is not discharged from the first pressurizing chamber 11, so the second plunger 22 ascends to discharge the solvent. Details will be described later, but section b includes section b1 in which the first plunger 21 ascends, and section b2 in which the first plunger 21 then stops. Section c is a section in which the second plunger 22 descends to suck in the solvent. In section c, the first plunger 21 ascends to discharge the amount of solvent sucked in by the second plunger 22 and the amount discharged by the liquid delivery pump 1. In section d, the first plunger 21 ascends to discharge the solvent, and the second plunger 22 stops.
[0044] By performing such operations, the first plunger pump 101 and the second plunger pump 102 can keep the discharge flow rate from the liquid feed pump 1 almost constant, and can also keep the discharge pressure almost constant.
[0045] The first plunger 21 operates differently in section b1 and section b2. The timing at which the first plunger 21 switches between these operations can be, for example, the timing at which the pressure sensor 110 detects the pulsation of the discharge pressure. Specifically, when the first plunger 21 rises and continues the compression operation in section b1, the pressure of the solvent inside the first pressurizing chamber 11 exceeds the discharge pressure, causing the discharge flow rate to momentarily increase, and accordingly, the discharge pressure also momentarily increases. FIG. 2 shows the discharge flow rate and discharge pressure pulsation that occur in this way.
[0046] The controller 10 switches the operation of the first plunger 21 from operation in section b1 to operation in section b2 at the timing when the pressure sensor 110 detects pulsation of the discharge pressure.
[0047] Hereinafter, the volumetric flow rate of the solvent in a compressed state (high pressure state) discharged from the liquid delivery pump 1 when there is no leakage will be referred to as the "basic flow rate Qb." The basic flow rate Qb is divided into sections a, b and c, d and is expressed by the following formulas (1) and (2). Qb = v2 × A (section a, b) (1) Qb=(v1+v2)×A (interval c, d) (2) v1 is the moving speed of the first plunger 21. v2 is the moving speed of the second plunger 22. A is the cross-sectional area of the first plunger 21 and the second plunger 22, and is a known value. However, it is assumed that the cross-sectional areas of the first plunger 21 and the second plunger 22 are the same.
[0048] In sections a and b, the basic flow rate Qb is approximately equal to the volume of the solvent displaced by the second plunger 22 rising, divided by the time of the section, and in sections c and d, it is approximately equal to the difference between the volume of the solvent displaced by the first plunger 21 rising and the volume of the solvent drawn in by the second plunger 22 falling, divided by the time of the section. In other words, the basic flow rate Qb is the volumetric flow rate of the compressed solvent discharged from the liquid delivery pump 1 when there is no leakage (however, pulsation is not taken into consideration). The discharge flow rate shown in FIG. 2 is the volumetric flow rate when there is no leakage, i.e., the basic flow rate Qb, and pulsation is also shown.
[0049] When the basic flow rate Qb is known, since the cross-sectional area A is known, v1 and v2 in sections a, b and sections c, d, that is, the speeds at which the first plunger 21 and the second plunger 22 are moved, can be obtained from equations (1) and (2). However, the ratio of v1 and v2 must be determined in advance. Specifically, v2 can be obtained from equation (1) in sections a and b. At this time, since the operation of the first plunger 21 does not affect the discharge flow rate, the speed at which the solvent is sucked in in section a and the speed at which the solvent is compressed in section b can take any value within the time range of sections a and b. In section d, v2=0 from the displacement of the second plunger 22 in FIG. 2, v1 can be obtained from equation (2). In section c, v2 is obtained so that the second plunger 22 returns to the lower limit point in the time of section c, and v1 can be obtained from equation (2).
[0050] <Other examples of liquid chromatograph configurations> Fig. 3 is a schematic diagram showing the configuration of a liquid chromatograph 200 including two liquid delivery pumps 1001 and 1002. The liquid chromatograph 200 shown in Fig. 3 includes the liquid delivery pump 1001, the liquid delivery pump 1002, an injector 2, a separation column 3, a detector 4, a waste liquid container 5, and a system control unit 7. The liquid delivery pumps 1001 and 1002 have the same configuration as the liquid delivery pump 1 according to this embodiment (Fig. 1).
[0051] 3 has two liquid delivery pumps 1001 and 1002 connected in parallel, and is configured to perform so-called high-pressure gradient analysis. The liquid delivery pumps 1001 and 1002 deliver different solvents. That is, the liquid delivery pump 1001 delivers a first solvent 511 and a second solvent 512, and the liquid delivery pump 1002 delivers a third solvent 513 and a fourth solvent 514. The flow path from the liquid delivery pump 1001 and the flow path from the liquid delivery pump 1002 join at a junction 6 located upstream of the injector 2.
[0052] The solvent delivered from the liquid delivery pump 1001 and the solvent delivered from the liquid delivery pump 1002 are mixed downstream of the confluence 6 and delivered to the separation column 3. The flow rates of the liquid delivery pumps 1001 and 1002 are appropriately set by the system control unit 7 according to the analysis items.
[0053] In high-pressure gradient analysis, the total flow rate of the liquid delivery pumps 1001 and 1002 is generally kept constant, and the flow rates of the individual liquid delivery pumps 1001 and 1002 are changed to change the concentration of the solvent flowing through the separation column 3. Therefore, in one analysis, the flow rates of the individual liquid delivery pumps 1001 and 1002 change successively. For this reason, it is necessary to correct the pump operation (plunger drive speed) according to the target flow rate (target flow rate at the detector 4).
[0054] <Factors that affect flow rate accuracy> FIG. 4 is a diagram for explaining the relationship between factors that affect the flow rate accuracy of the liquid delivery pump 1. In FIG. 4, the flow rate is indicated by rectangles that are long in the left-right direction of the page. The left-right length of each rectangle indicates the magnitude of the flow rate (volumetric flow rate). The liquid delivery pressure (discharge pressure) of the solvent is indicated by P2, and the pressure of the solvent at the detector 4 is indicated by P0. The liquid delivery pressure P2 is the pressure of the solvent inside the liquid delivery pump 1, and is the pressure measured by the pressure sensor 110. The solvent pressure P0 at the detector 4 is approximately equal to atmospheric pressure and is lower than the liquid delivery pressure P2.
[0055] The flow rate of the solvent changes due to the leakage and expansion of the solvent. The following describes the flow rate change due to the leakage of the solvent and the flow rate change due to the expansion of the solvent.
[0056] The solvent is compressed when the pressure is the liquid delivery pressure (discharge pressure) P2. The first plunger 21 and the second plunger 22 push away the solvent in this state at the basic flow rate Qb. If there is no leakage of the solvent, the solvent is discharged from the liquid delivery pump 1 at this basic flow rate Qb. In reality, the solvent leaks from the gaps between the plungers 21, 22 and the seals 61, 62, the connections of the check valves 51, 52, etc., and the flow rate discharged from the liquid delivery pump 1 is smaller than the basic flow rate Qb by the amount of this leakage.
[0057] There are two types of solvent leakage: leakage that depends on pressure and leakage that depends on flow rate. The amount of leakage that depends on pressure is represented by QleakP, and the amount of leakage that depends on flow rate is represented by QleakQ.
[0058] As shown in Fig. 4, when there is no leakage of a solvent with a pressure of P2, the flow rate is the basic flow rate Qb. When there is leakage that depends on the pressure and leakage that depends on the flow rate, the flow rate is smaller by the sum of QleakP and QleakQ. In other words, when there is leakage, the flow rate Q2 of the solvent (pressure is P2) discharged from the liquid delivery pump 1 is smaller than the basic flow rate Qb by (QleakP + QleakQ), without taking into account the expansion of the solvent.
[0059] The pressure-dependent leakage is a phenomenon in which the solvent leaks from the above-mentioned leakage location due to the pressure difference between the pressure of the solvent inside the liquid delivery pump 1 and the pressure (atmospheric pressure) outside the liquid delivery pump 1. The pressure-dependent leakage is larger as the pressure difference is larger.
[0060] Leakage that depends on the flow rate is, for example, a phenomenon in which the solvent adheres to the plungers 21, 22 when the plungers 21, 22 descend, causing the solvent to leak from the gap between the seals 61, 61 and the plungers 21, 22. Leakage that depends on the flow rate occurs, for example, when the second plunger 22 descends in section c shown in Fig. 2. When the flow rate is large, the descending distance of the second plunger 22 in section c is large, which causes a large amount of solvent to leak.
[0061] Several other pressure-dependent and flow-dependent leak mechanisms are believed to exist.
[0062] 4, the flow rate changes due to the expansion of the solvent in the detector 4. The pressure of the solvent in the detector 4 is P0, which is approximately equal to atmospheric pressure and is lower than the liquid delivery pressure P2. Therefore, the solvent in the detector 4 is more expanded than the solvent inside the liquid delivery pump 1. Due to this expansion, the flow rate Q0 of the solvent in the detector 4 is greater than Q2 (the flow rate of the solvent discharged from the liquid delivery pump 1 at the liquid delivery pressure P2).
[0063] The liquid delivery pump 1 of this embodiment takes into account leakage that depends on the solvent pressure, leakage that depends on the solvent flow rate, and solvent expansion, and compensates for changes in the solvent flow rate due to these influences, thereby enabling liquid delivery with high flow rate accuracy.
[0064] 5 is a diagram showing a schematic diagram of the solvent flow rate Q0 at the detector 4 versus the liquid delivery pressure P2, and shows how the solvent flow rate Q0 at the detector 4 changes due to the correction of the solvent flow rate. In the graph of FIG. 5, lines 1 to 4 show cases where the solvent flow rate is large (high flow rate), and lines 5 to 8 show cases where the solvent flow rate is smaller than the high flow rate (low flow rate). As already mentioned, the liquid delivery pressure P2 is the pressure of the solvent inside the liquid delivery pump 1, and is the pressure measured by the pressure sensor 110.
[0065] The dashed line 1 indicates the flow rate Q0 at the detector 4 when the flow rate of the solvent discharged from the liquid delivery pump 1 is the basic flow rate Qb, i.e., the flow rate Q0 at the detector 4 before there is no solvent leakage and flow rate correction (correction of the change in flow rate due to the expansion of the solvent) is performed. The higher the pressure, the more the solvent is compressed and the greater the expansion at the detector 4 (the pressure at the detector 4 is P0, which is approximately equal to atmospheric pressure). Therefore, the higher the liquid delivery pressure P2, the greater the flow rate Q0 of the solvent at the detector 4. Note that when the liquid delivery pressure P2 is equal to atmospheric pressure, there is no compression or expansion of the solvent, so the flow rate Q0 at the detector 4 is the basic flow rate Qb.
[0066] Dotted line 2 indicates the flow rate Q0 at detector 4 before flow rate correction is performed when the solvent has a pressure-dependent leak but no flow-dependent leak. The flow rate indicated by dotted line 2 is smaller than the flow rate indicated by dashed line 1 by the amount of pressure-dependent leak. However, since pressure-dependent leak does not occur when the liquid delivery pressure P2 is equal to atmospheric pressure, when the liquid delivery pressure P2 is equal to atmospheric pressure, the flow rate Q0 at detector 4 is the basic flow rate Qb.
[0067] The dashed-dotted line 3 indicates the flow rate Q0 at the detector 4 before flow rate correction is performed when the solvent has both pressure-dependent and flow-dependent leaks. The flow rate indicated by the dashed-dotted line 3 is smaller than the flow rate indicated by the dotted line 2 by the amount of flow-dependent leak. The flow-dependent leak is independent of pressure, and occurs even when the liquid delivery pressure P2 is equal to atmospheric pressure. For this reason, the flow rate Q0 at the detector 4 when the liquid delivery pressure P2 is equal to atmospheric pressure does not match the basic flow rate Qb.
[0068] A solid line 4 indicates a target flow rate, which is a target flow rate Q0 at the detector 4. The target flow rate indicated by the solid line 4 is a flow rate obtained by correcting changes in flow rate due to solvent expansion, leakage depending on the solvent pressure, and leakage depending on the solvent flow rate, with respect to the flow rate indicated by the dashed and dotted line 3. The value of the target flow rate can be set in advance.
[0069] The flow rates indicated by dashed line 5, dotted line 6, dashed dotted line 7, and solid line 8 are smaller than the flow rates indicated by lines 1 to 4, but show flow rate characteristics similar to those of dashed line 1, dotted line 2, dashed dotted line 3, and solid line 4, respectively.
[0070] In the liquid delivery pump 1 according to this embodiment, the controller 10 drives the first plunger 21 and the second plunger 22 so that the flow rate Q0 at the detector 4 is constant at a target flow rate with respect to the liquid delivery pressure P2, i.e., so that the flow rate characteristics shown by the solid lines 4 and 8 in Fig. 5 are achieved. The flow rate characteristics shown by the solid lines 4 and 8 are obtained by changing the basic flow rate Qb for each liquid delivery pressure P2 (i.e., by compensating for changes in flow rate due to expansion and leakage of the solvent).
[0071] <Leakage correction formula> The flow rate characteristic shown by the dashed line 3 in FIG. 5 is approximated by equation (3). Q0=exp(f(P2))×(Qb-Cleakp×P2-Cleakq×Qb) +Qoffset (3) In equation (3), Q0 is the flow rate at the detector 4, P2 is the liquid delivery pressure, f(P2) is a function of the expansion rate with respect to the liquid delivery pressure P2 (the ratio of the volume of the solvent at atmospheric pressure to the volume of the solvent at the liquid delivery pressure P2), Qb is the basic flow rate, Cleakp is a proportionality coefficient for pressure-dependent leakage, Cleakq is a proportionality coefficient for flow-dependent leakage, and Qoffset is an adjustment coefficient for the approximation equation.
[0072] The liquid delivery pressure P2 is measured by the pressure sensor 110. The value given by the function f(P2) may be a known value such as a value described in a literature, or may be a value obtained by actual measurement. Qoffset is a parameter for fitting the measured flow rate to equation (3) by adjusting for the effects of pulsation and the like not included in the concept explained using Figures 4 and 5, and flow rate measurement errors.
[0073] Transforming equation (3) into Qb = C1 × Q0 + C0 (4) However, the parameters C1 and C0 are as follows: C1=1 / ((1-Cleakq)×exp(f(P2))) (5) C0=(1 / (1-Cleakq)) ×(Cleakp×P2-Qoffset / exp(f(P2)) (6) In addition, if C1 and C0 are parameters that change linearly with respect to the liquid delivery pressure P2 (parameters that are expressed as a linear function of the liquid delivery pressure P2), then C1 = C1a × P2 + C1b (7) C0 = C0a × P2 + C0b (8) This is expressed as:
[0074] In the liquid delivery pump 1 according to this embodiment, the controller 10 uses the parameters C1 and C0 and the target flow rate Q0 (i.e., the target flow rate) at the detector 4 to determine the basic flow rate Qb for the target flow rate (Q0) at the detector 4 from equation (4), and determines the movement speed v1 of the first plunger 21 and the movement speed v2 of the second plunger 22 from equations (1) and (2) using this basic flow rate Qb, and drives the first plunger 21 and the second plunger 22 at the determined movement speeds v1 and v2, respectively. The parameters C1 and C0 depend on the liquid delivery pressure P2, and can be determined using the liquid delivery pressure P2.
[0075] In the liquid delivery pump 1 according to this embodiment, by changing the parameters C1 and C0, i.e., the basic flow rate Qb obtained from equation (4), for each liquid delivery pressure P2, it is possible to obtain the flow rate characteristics shown by the solid lines 4 and 8 in Fig. 5 (flow rate characteristics in which the flow rate Q0 at the detector 4 is constant at the target flow rate for the liquid delivery pressure P2). In this manner, the liquid delivery pump 1 according to this embodiment is capable of delivering liquid with high flow rate accuracy by driving the first plunger 21 and the second plunger 22 to correct the flow rate.
[0076] The parameters C1 and C0 are parameters (correction parameters) used to correct the flow rate, and are parameters of an equation (equation (4) obtained by modifying equation (3)) that expresses the relationship between the liquid delivery pressure P2 and the solvent flow rate Q0 at the detector 4. The correction parameters C1 and C0 are set according to equations (5) and (6), or according to equations (7) and (8). That is, there are two ways to calculate the correction parameters C1 and C0. When the correction parameters C1 and C0 are calculated using equations (5) and (6), the controller 10 stores the coefficients Cleakp, Cleakq, Qoffset, and function f(P2), and when the correction parameters C1 and C0 are calculated using equations (7) and (8), the controller 10 stores the coefficients C1a, C1b, C0a, and C0b.
[0077] The value of each parameter in formulas (5) to (8) varies depending on the physical properties of the solvent (e.g., viscosity, compressibility, etc.). The controller 10 stores the value of each parameter in formulas (5) to (8) for each solvent (e.g., as a table), and can change the values of parameters C1 and C0 depending on the solvent. Alternatively, the controller 10 can store the values of coefficients representing parameters C1 and C0 as functions relative to the physical properties of the solvent, determine the values of parameters C1 and C0 for each solvent, and change the values of parameters C1 and C0 depending on the solvent.
[0078] How to obtain Cleakp, Cleakq, and Qoffset in equation (3) will be described later.
[0079] <Pressure feedback> As shown in formulas (5) and (6) (or formulas (7) and (8)), the correction parameters C1 and C0 depend on the liquid delivery pressure P2. The liquid delivery pressure P2 varies depending on the state of the separation column 3 and piping, and on changes in the viscosity of the solvent due to temperature. For this reason, it is desirable to adjust the parameters C1 and C0 in accordance with the liquid delivery pressure P2, and to drive the liquid delivery pump 1 based on the adjusted parameters C1 and C0. Therefore, it is desirable to feed back the measured value of the pressure sensor 110 to the controller 10, which then recalculates (adjusts) the parameters C1 and C0.
[0080] The controller 10 inputs a measured value (liquid delivery pressure P2) from the pressure sensor 110 in real time (actually, in the control period of the controller 10) as feedback of the liquid delivery pressure P2 while the liquid delivery pump 1 is discharging the solvent. The controller 10 uses the liquid delivery pressure P2 obtained by this feedback to calculate and obtain parameters C1 and C0 based on formula (5) and formula (6) (or formula (7) and formula (8)) while the liquid delivery pump 1 is discharging the solvent, calculates a basic flow rate Qb for the target flow rate (Q0) from formula (4) using the obtained C1 and C0, and uses this basic flow rate Qb to obtain the moving speeds v1 and v2 of the first plunger 21 and the second plunger 22 to drive the first plunger 21 and the second plunger 22. In this way, the liquid delivery pump 1 according to this embodiment can adjust the flow rate Q0 at the detector 4 to be constant at the target flow rate even if the liquid delivery pressure P2 changes.
[0081] The liquid delivery pressure P2 can be fed back at any timing, for example, in real time as described above, or for each drive cycle of the liquid delivery pump 1. When the feedback is performed for each drive cycle of the liquid delivery pump 1, the time interval for calculating the parameters C1 and C0 becomes large, so that the flow rate can be easily corrected even if the calculation capacity of the controller 10 is low. Therefore, it is not necessary to use an expensive controller 10, and the cost of the device can be reduced.
[0082] <How to determine correction parameters> The correction parameters C1 and C0 represented by Formula (5) and Formula (6) can be determined for each solvent by measuring the flow rate Q0 of the solvent at the detector 4 with respect to the liquid feed pressure P2 for a plurality of basic flow rates Qb. The flow rate Q0 of the solvent at the detector 4 can be measured by the flow meter 8. Note that the more the number of basic flow rates Qb to be measured, the more accurately the correction parameters C1 and C0 can be obtained.
[0083] FIGS. 6A and 6B are diagrams schematically showing examples of measured values of the flow rate Q0 of the solvent at the detector 4 with respect to the liquid feed pressure P2. In the present embodiment, as an example, the case where there are two basic flow rates Qb will be described. FIG. 6A shows an example where the basic flow rate is Qb1, and FIG. 6B shows an example where the basic flow rate is Qb2 (<Qb1).
[0084] As shown in FIGS. 6A and 6B, for a plurality (two in this embodiment) of basic flow rates Qb (Qb1, Qb2), the measured values are plotted with the liquid feed pressure P2 on the horizontal axis and the flow rate Q0 at the detector 4 on the vertical axis to obtain a flow rate characteristic diagram. Then, by fitting the flow rate characteristic diagram (FIGS. 6A and 6B) to Formula (3) using known values obtained from the literature or the like for the values of the function f(P2) of the expansion ratio, the values of Cleakq, Cleakp, and Qoffset can be obtained. The values of Cleakq, Cleakp, and Qoffset can be obtained, for example, by fitting the measured values of the basic flow rate Qb of the flow rate characteristic diagram and the flow rate Q0 with respect to the liquid feed pressure P2 to Formula (3) using a numerical optimization method. Then, by substituting these obtained values into Formula (5) and Formula (6), the parameters C1 and C0 can be obtained.
[0085] As described above, the controller 10 can obtain the parameters C1 and C0 based on the relationship between the liquid feed pressure P2 measured by the pressure sensor 110 and the flow rate Q0 of the solvent at the detector 4 measured by the flow meter 8.
[0086] The controller 10 can also obtain the correction parameters C1 and C0 from Formulas (7) and (8) as follows.
[0087] Fig. 7A is a diagram showing an example of a plot of the parameter C1 obtained from the formula (5) against the liquid delivery pressure P2. Fig. 7B is a diagram showing an example of a plot of the parameter C0 obtained from the formula (6) against the liquid delivery pressure P2. The values of Cleakq, Cleakp, and Qoffset were obtained by the above method.
[0088] Parameters C1a and C1b representing parameter C1 in equation (7) can be obtained by linearly approximating the plot line shown in Fig. 7A. Parameters C0a and C0b representing parameter C0 in equation (8) can be obtained by linearly approximating the plot line shown in Fig. 7B.
[0089] The timing for measuring the flow rate Q0 of the solvent at the detector 4 with the flowmeter 8 and determining or updating the correction parameters C1, C0 can be determined arbitrarily, and examples of such timing include immediately after the liquid delivery pump 1 is assembled (initial state), immediately after the liquid delivery pump 1 is installed at the location of use, and when regular maintenance of the liquid delivery pump 1 at the location of use is performed. If the liquid delivery pump 1 does not have a flowmeter 8, the user installs the flowmeter 8 and measures the flow rate Q0 of the solvent.
[0090] When the liquid feed pump 1 includes a flow meter 8, the controller 10 can update the correction parameters C1 and C0 at any time while the liquid feed pump 1 is in operation.
[0091] The system control unit 7 can record the values measured by the flowmeter 8 automatically or by user input. The system control unit 7 can also calculate each parameter by the above-mentioned calculations and input them to the controller 10.
[0092] In addition, the user can also input the values of each parameter into the system control unit 7.
[0093] In addition, if the liquid chromatograph 100 system is connected to a network environment such as the Internet, the user or device manufacturer can input the measurement values of the flow meter 8 or the values of each parameter to the system control unit 7 via the network.
[0094] As described above, the liquid delivery pump 1 of this embodiment can take into account the expansion of the solvent, leakage depending on the solvent pressure, and leakage depending on the solvent flow rate, and can correct the basic flow rate Qb according to the target flow rate, enabling liquid delivery with high flow rate accuracy.
[0095] The present invention is not limited to the above-described embodiments, and various modifications are possible. For example, the above-described embodiments have been described in detail to clearly explain the present invention, and the present invention is not necessarily limited to an embodiment having all of the configurations described. It is also possible to replace a part of the configuration of one embodiment with the configuration of another embodiment. It is also possible to add the configuration of another embodiment to the configuration of one embodiment. It is also possible to delete a part of the configuration of each embodiment, or to add or replace another configuration. [Explanation of symbols]
[0096] 1...liquid delivery pump, 2...injector, 3...separation column, 4...detector, 5...waste liquid container, 6...junction, 7...system control unit, 8...flow meter, 10...controller, 11...first pressurized chamber, 12...second pressurized chamber, 21...first plunger, 22...second plunger, 31...first suction passage, 32...second suction passage, 41...first discharge passage, 42...second discharge passage, 51...first check valve, 52...second check valve, 61...first seal, 62...second seal, 71, 72...bearing, 81...first solenoid valve, 82...second solenoid valve, 90...junction, 100...liquid chromatograph, 101...first plunger pump pump, 102...second plunger pump, 103...connecting flow path, 110...pressure sensor, 111...first pump head, 112...second pump head, 200...liquid chromatograph, 210...motor driver, 211...first electric motor, 212...second electric motor, 221...reduction gear, 222...reduction gear, 231...linear motion device, 232...linear motion device, 310...purge valve driver, 311...purge valve, 312...waste tank, 410...solenoid valve driver, 511...first solvent, 512...second solvent, 513...third solvent, 514...fourth solvent, 1001, 1002...liquid delivery pump.
Claims
1. A liquid delivery pump that discharges a liquid, a first plunger pump having a movable first plunger; a second plunger pump including a movable second plunger and connected to the first plunger pump; a pressure sensor disposed downstream of the second plunger pump and configured to measure a liquid delivery pressure, which is a pressure of the liquid discharged from the second plunger pump; a control unit that receives the liquid delivery pressure measured by the pressure sensor and controls the driving of the first plunger and the second plunger; Equipped with the control unit determines a moving speed of the first plunger and a moving speed of the second plunger by using a parameter that depends on the liquid delivery pressure, the liquid delivery pressure, and a target flow rate that is a preset flow rate of the liquid; the parameter is a parameter of an equation expressing a relationship between the liquid sending pressure and a flow rate of the liquid, and is also a parameter of an equation for determining a basic flow rate from the flow rate of the liquid, The base flow rate is the flow rate of the liquid in a compressed state discharged from the liquid delivery pump when there is no leakage. A liquid delivery pump characterized by:
2. the control unit inputs the liquid delivery pressure from the pressure sensor while the liquid delivery pump is discharging the liquid, calculates and obtains the parameters, and obtains a moving speed of the first plunger and a moving speed of the second plunger using the obtained parameters. The liquid delivery pump according to claim 1.
3. The parameter is a parameter that changes linearly with respect to the liquid delivery pressure. The liquid delivery pump according to claim 1.
4. a flow meter for measuring a flow rate of the liquid; The control unit determines the parameter based on a relationship between the liquid delivery pressure and the flow rate measured by the flow meter. The liquid delivery pump according to claim 1.
Citation Information
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