Liquid delivery pump and liquid delivery method

The liquid delivery pump system addresses pressure fluctuations in liquid chromatographs by using internal feedback control to adjust compressibility parameters, enhancing analytical accuracy and reducing wear on the separation column.

JP7756594B2Active Publication Date: 2025-10-20HITACHI HIGH TECH CORP
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Patent Information

Application Number
JP2022068588
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-04-19
Publication Date
2025-10-20
Estimated Expiration
2042-04-19

AI Technical Summary

Technical Problem

Liquid delivery pumps in liquid chromatographs experience pressure fluctuations due to external disturbances like injection shocks and valve switching, leading to erroneous feedback control and increased pressure pulsation, which degrade analytical accuracy and accelerate wear on the separation column.

Method used

A liquid delivery pump system that includes a first and second plunger pump connected in series, with a pressure sensor downstream of the second pump, a control unit, and a memory unit to calculate and adjust the compressibility parameter based on measured pressure values, excluding disturbances from feedback control without external signals.

Benefits of technology

The system effectively determines and excludes pressure fluctuations caused by external disturbances, ensuring accurate feedback control and reducing pressure pulsation, thereby improving analytical accuracy and extending the lifespan of the separation column.

✦ Generated by Eureka AI based on patent content.

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Abstract

To determine a disturbance without acquiring a control signal of an external device and to properly perform feedback control on a compression rate parameter.SOLUTION: A controller of a liquid feed pump calculates a first compression amount of a solvent by a first plunger in one drive cycle based on a compression rate parameter, controls so that the first plunger compresses the solvent with the first compression amount in the one drive cycle. In the case where a value regarding a pressure value measured by a pressure sensor in the one drive cycle is smaller than a threshold value (S305:No, S311:No), the compression rate parameter is changed according to the value regarding the pressure value (S306, S312), and based on the compression rate parameter after change, a second compression amount of the solvent by the first plunger in the next drive cycle is calculated. In the case where a value regarding the pressure value in the one drive cycle is larger than the threshold value (S305:Yes, S311:Yes), based on the compression rate parameter, a third compression amount of the solvent by the first plunger in the next drive cycle is calculated.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] The present disclosure relates to a liquid delivery pump and a liquid delivery method. [Background technology]

[0002] A liquid chromatograph typically comprises a liquid delivery pump, an injector for introducing a sample into the liquid chromatograph, a separation column, a detector, a waste container, and a system controller for controlling these components. Furthermore, the liquid delivery pump used in a liquid chromatograph typically comprises two plunger pumps connected in series. The upstream plunger pump (first plunger pump) draws in, compresses, and discharges the solvent. Because the first plunger pump alone cannot deliver a constant flow rate, another plunger pump (second plunger pump) is connected downstream. The second plunger pump counteracts the pulsating flow of the first plunger pump (discharging the solvent as the first plunger pump draws in and compresses the solvent), allowing the entire liquid delivery pump to deliver a constant flow rate.

[0003] The compression of the solvent during the operation of the first plunger pump is a process that increases the pressure of the drawn solvent from atmospheric pressure to the pressure at which the second plunger pump is discharging (discharge pressure). The compression operation must end when the solvent pressure reaches the discharge pressure. If the compression operation continues beyond the discharge pressure (overcompression), both the first and second plunger pumps will discharge during that period, increasing the flow rate of the liquid delivery pump and correspondingly increasing the discharge pressure. Furthermore, if the compression operation ends before the discharge pressure is reached due to insufficient compression (undercompression), a moment occurs in the subsequent process when neither the first nor second plunger pumps discharge, resulting in a decrease in discharge pressure. Fluctuations in flow rate not only degrade the analytical accuracy of the liquid chromatograph, but also place a strain on the separation column due to the accompanying pressure pulsation, accelerating its wear. It is desirable to reduce pressure pulsation throughout the entire liquid delivery pump by optimizing the compression process.

[0004] The amount of solvent compression by the first plunger pump is determined by the discharge pressure, the compressibility of the solvent, and the volume of the first plunger pump. The discharge pressure is constantly measured by a pressure gauge located downstream of the second plunger pump, and the volume of the first plunger pump is fixed at a design value. On the other hand, the compressibility of the solvent varies slightly depending on the type of solvent and its temperature, making it difficult to use a fixed value. Therefore, liquid delivery pumps typically use feedback correction of the compressibility parameter value for each operating cycle. For example, a liquid delivery pump repeats three phases as one cycle: the single liquid delivery section, the compression section, and the cross-liquid delivery section. In the single liquid delivery section, the downstream second plunger pump delivers the liquid, and the upstream first plunger pump suctions it. In the compression section, the control unit calculates the compression amount based on the current discharge pressure and the compressibility parameter, and then performs the compression process of the first plunger pump. If excessive compression occurs at this point and the discharge pressure rises significantly, feedback control is performed to reduce the compressibility parameter in the next cycle. After the compression section ends, the first plunger pump delivers liquid and the second plunger pump suctions in the cross-flow section. If the pressure drops due to insufficient compression during this period, feedback control is performed to increase the compressibility parameter in the next cycle. By performing this type of feedback control every cycle, over-compression and under-compression are reduced.

[0005] As a technique for reducing over-compression or under-compression, Patent Document 1 discloses a liquid feed pump equipped with a pressure sensor that measures the pressure of the solvent in a first plunger pump and a pressure sensor that measures the pressure of the solvent discharged by a second plunger pump. This liquid feed pump controls the operation of the first plunger pump by comparing the values ​​measured by each pressure sensor during the compression process. Patent Document 2 discloses a liquid feed pump configured in such a way that a first plunger pump and a second plunger pump are connected in series, with a pressure sensor provided only downstream of the second plunger pump. Patent Document 3 discloses a liquid feed pump that corrects and controls the flow rate based on the history of the compressed volume during the compression process and the pressure at the completion of compression (compression pressure). [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Patent No. 5624825 [Patent Document 2] Japanese Patent Application Laid-Open No. 2008-291848 [Patent Document 3] International Publication No. 2019 / 082243 [Patent Document 4] Japanese Patent Publication No. 7-280787 Summary of the Invention [Problem to be solved by the invention]

[0007] Typically, liquid delivery pumps are equipped with injectors for introducing samples and valves for switching flow paths, generating pressure fluctuations when these components operate. For example, when an injection valve switches and a liquid sample at atmospheric pressure enters a high-pressure flow path, a significant pressure drop occurs in a short period of time (injection shock). If such pressure fluctuations caused by external influences on the liquid delivery pump coincide with the compression section or cross-flow section of the liquid delivery pump, the liquid delivery pump may interpret the pressure fluctuations caused by the disturbance as excessive or insufficient compression and perform erroneous feedback control. Erroneous feedback control may result in an incorrect calculation of the compression amount, resulting in increased pressure pulsation. Therefore, it is desirable to exclude pressure fluctuations caused by disturbances such as injection shocks and valve switching from the feedback control of pump liquid delivery. Patent Document 4 discloses a control method that acquires valve control signals and excludes pressure fluctuations that occur simultaneously with valve switching. However, building a system that handles the control signals of multiple valves as exceptions is complex and leads to high development costs. Therefore, it is desirable that the liquid feed pump be able to determine the presence of a disturbance without obtaining a control signal from an external device.

[0008] Therefore, the present disclosure provides a liquid feed pump that is capable of determining a disturbance without obtaining a control signal from an external device and appropriately feedback-controlling a compressibility parameter. [Means for solving the problem]

[0009] The liquid delivery pump of the present disclosure includes a first plunger pump having a first plunger, a second plunger pump connected in series to the first plunger pump and having a second plunger, a pressure sensor located downstream of the second plunger pump, a control unit that controls the driving of the first plunger and the driving of the second plunger, and a memory unit that stores a compressibility parameter for calculating the amount of compression of the solvent by the first plunger, wherein the control unit calculates a first compression amount of the solvent by the first plunger in one drive cycle based on the compressibility parameter, controls the first plunger to compress the solvent by the first compression amount in one drive cycle, and if a value related to a pressure value measured by the pressure sensor in one drive cycle is smaller than a threshold value, changes the compressibility parameter in accordance with the value related to the pressure value, and calculates a second compression amount of the solvent by the first plunger in a drive cycle following the one drive cycle based on the changed compressibility parameter, and if the value related to the pressure value in one drive cycle is greater than the threshold value, calculates a third compression amount of the solvent by the first plunger in the next drive cycle based on the compressibility parameter. [Effects of the Invention]

[0010] According to the present disclosure, it is possible to determine a disturbance without obtaining a control signal from an external device and to appropriately feedback-control the compression ratio parameter. [Brief explanation of the drawings]

[0011] [Figure 1A] 1 is a schematic diagram showing the configuration of a liquid chromatograph equipped with a liquid delivery pump according to Example 1. FIG. [Figure 1B] FIG. 2 is a hardware block diagram of a controller according to the first embodiment. [Figure 2] 10 is a graph showing the displacement of each plunger when a solvent is normally fed by a feed pump. [Figure 3] 4 is a flowchart showing the operation of the liquid feed pump including the feedback control of the compressibility parameter in the first embodiment. [Figure 4] 4 is a graph showing pressure values ​​measured by the pressure sensor of Example 1. [Figure 5] 4 is a graph showing pressure values ​​measured by the pressure sensor of Example 1. [Figure 6] 10 is a flowchart showing the operation of a liquid feed pump including feedback control of a compressibility parameter according to a second embodiment. [Figure 7] 10 is a flowchart showing the operation of a liquid feed pump including feedback control of a compressibility parameter according to a third embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0012] The embodiments of the present invention will be described in detail with reference to the drawings. In the following embodiments, it goes without saying that the components (including element steps, etc.) are not necessarily essential unless otherwise specified or considered to be obviously essential in principle. [Example]

[0013] <Configuration example of liquid delivery pump and liquid chromatograph> Fig. 1A is a schematic diagram showing the configuration of a liquid chromatograph equipped with a liquid delivery pump according to Example 1. As shown in Fig. 1A, the liquid chromatograph 100 includes a 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 them. The injector 2, separation column 3, detector 4, and waste liquid container 5 can be those generally used in liquid chromatographs 100, and therefore their detailed configurations will not be described here.

[0014] The liquid feed pump 1 includes a controller 10 (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, a solenoid valve driver 410, and a memory unit 510. The first plunger pump 101 and the second plunger pump 102 are connected in series, with the first plunger pump 101 disposed on the upstream side and the second plunger pump 102 disposed on the downstream side.

[0015] 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 pressure value to the controller 10.

[0016] The controller 10 operates the motor driver 210 and the solenoid valve driver 410 by issuing 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 issuing command values ​​based on the predetermined operation sequence.

[0017] The first plunger pump 101 has a first pump head 111 formed with 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, and the second check valve 52 is disposed in the flow path of the first discharge passage 41, thereby restricting the flow direction of the solvent liquid. The first plunger 21 (pressurizing member) is slidably held within the first plunger pump 101 by the bearing 71. The first seal 61 prevents liquid from leaking from the first pressurizing chamber 11.

[0018] The second plunger pump 102 has a second pump head 112 in which the second pressurizing chamber 12, the second plunger 22, the second suction passage 32, the second discharge passage 42, the second seal 62, and the bearing 72 are formed. The second check valve 52 and the second suction passage 32 are connected by a connecting flow path 103. That is, the first plunger pump 101 and the second plunger pump 102 are arranged in series, with the first plunger pump 101 installed upstream. The second plunger 22 (pressurizing member) is slidably held within the second plunger pump 102 by the bearing 72. The second seal 62 prevents liquid from leaking from the second pressurizing chamber 12.

[0019] In this specification, the "lower limit" refers to the lowest position within the range in which the plunger can move within the pressurized chamber. On the other hand, the "upper limit" refers to the highest position within the range in which the plunger can move within the pressurized chamber. Furthermore, the "upward movement" of the plunger refers to movement in the direction in which the solvent in the pressurized chamber is compressed or ejected (movement to the right in FIG. 1A), and the "downward movement" of the plunger refers to movement in the direction in which the solvent is sucked into the pressurized chamber (movement to the left in FIG. 1A).

[0020] 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 motor driver 210 applies drive power to the first electric motor 211 to rotate it based on a command value from the controller 10. 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, causing the first plunger 21 to reciprocate.

[0021] 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 motor driver 210 applies drive power to the second electric motor 212 to rotate it based on a command value from the controller 10. 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, causing the second plunger 22 to reciprocate.

[0022] The reduction gear 221 and the linear motion device 231 can be broadly called a power transmission mechanism device because, when combined, they amplify the rotational power of the first electric motor 211 and convert it into linear motion power. The same applies to the reduction gear 222 and the linear motion device 232.

[0023] Specific examples of the reduction gears 221 and 222 include spur gears, pulleys, planetary gears, and worm gears. The main reason for providing the reduction gears 221 and 222 is to increase the torque of the first and second electric motors 211 and 212. If the first and second electric motors 211 and 212 are capable of generating sufficient torque, it is not necessary to provide the reduction gears 221 and 222. Specific examples of the linear motion devices 231 and 232 include ball screws, cams, and rack and pinions.

[0024] The purge valve driver 310 applies drive power to the purge valve 311 based on a command value from the controller 10. The purge valve 311 is connected downstream of the second plunger pump 102. The purge valve 311 switches the flow direction of the solvent discharged from the liquid delivery pump 1 to either the injector 2 side or the waste liquid tank 312 side.

[0025] The solenoid valve driver 410 applies drive power to the first solenoid valve 81 and the second solenoid valve 82 based on a command value from the controller 10. A solvent container that stores a first solvent 511 and a solvent container that stores a second solvent 512 are installed outside the liquid feed pump 1. The first solvent 511 or the second solvent 512 is 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 (first plunger 21 and second plunger 22).

[0026] When the first plunger pump 101 sucks the solvent, one of the first solenoid valve 81 and the second solenoid valve 82 is open while the other is closed, and either the first solvent 511 or the second solvent 512 is sucked in. The sucked solvent passes through the confluence 90, the first check valve 51, and the first suction passage 31 and is sucked into the first pressurizing chamber 11. The solvent sucked into the first pressurizing chamber 11 is compressed as the first plunger 21 rises.

[0027] As the solvent is compressed, the pressure inside the first pressurized chamber 11 becomes greater than the pressure inside the second pressurized chamber 12, and the solvent passes through the first discharge passage 41, the second check valve 52, the connecting flow path 103 and the second suction passage 32, flows into the second pressurized chamber 12, and is discharged from the second discharge passage 42.

[0028] The sample to be analyzed is injected by injector 2 into the solvent discharged from solvent delivery pump 1. The solvent with the injected sample is introduced into separation column 3 and separated into its components, after which detector 4 detects the absorbance, fluorescence intensity, refractive index, etc. according to the sample components. Separation column 3 is filled with microparticles, and the fluid resistance when the solvent flows through the gaps between the microparticles generates a load pressure of several tens of megapascals to over a hundred megapascals on solvent delivery pump 1. The magnitude of this load pressure varies depending on the diameter of separation column 3 and the flow rate passing through it.

[0029] <Hardware configuration of Controller 10> FIG. 1B is a hardware block diagram of a controller according to the first embodiment. The configuration of a controller 10 according to the first embodiment will be described with reference to FIG. 1B. The controller 10 reads out and executes a program stored in a storage unit 510 to execute each process in a flowchart described below. The controller 10 includes a processor 411, a main storage unit 412, an auxiliary storage unit 413, an input / output interface (hereinafter, interface will be abbreviated as I / F) 414, a communication I / F 415, and a bus 416 that communicatively connects the above-mentioned modules.

[0030] The processor 411 is a central processing unit. The processor 411 is, for example, a CPU (Central Processing Unit), a DSP (Digital Signal Processor), or an ASIC (Application Specific Integrated Circuit). The processor 411 deploys a program stored in the storage unit 510 in an executable manner in a work area of ​​the main storage unit 412 and executes the program. The main storage unit 412 temporarily stores the program executed by the processor 411, data processed by the processor (for example, compression ratio parameters), and the like. The main storage unit 412 is, for example, a flash memory, a RAM (Random Access Memory), or the like. The auxiliary storage unit 413 is, for example, a ROM (Read Only Memory) and stores a boot program for the controller 10, and the like. The storage unit 510 is, for example, an HDD (Hard Disk Drive), an SSD (Solid State Drive), or the like.

[0031] The input / output I / F 414 is communicably connected to the pressure sensor 110, the motor driver 210, the solenoid valve driver 410, and the purge valve driver 310. The communication I / F 415 is communicably connected to external devices via a network.

[0032] The controller 10 may be an embedded controller built into the liquid feed pump 1, or may be a controller on the cloud.

[0033] <Liquid transfer method> An outline of a liquid delivery method for normal solvent delivery using the liquid delivery pump 1 of Example 1 will be described. Here, "normal liquid delivery" refers to a liquid delivery method for analyzing a sample by flowing the solvent discharged from the liquid delivery pump 1 to the injector 2, separation column 3, and detector 4. Note that the same operation is performed when no sample is analyzed (when the solvent is delivered to the waste liquid tank 312), and therefore a description thereof will be omitted.

[0034] 2 is a graph showing the displacement of each plunger when a solvent is normally delivered by a delivery pump. In both graphs shown in FIG. 2, the horizontal axis indicates time, and the vertical axis indicates, from top to bottom, the displacement of the first plunger 21 and the displacement of the second plunger 22. The upward direction (to the right in FIG. 1A) of the displacement of the first plunger 21 and the displacement of the second plunger 22 is defined as the positive direction, and the downward direction (to the left in FIG. 1A) is defined as the negative direction. In normal delivery, the first plunger 21 and the second plunger 22 both operate based on their lower limit points.

[0035] In normal liquid transfer, both the first plunger pump 101 and the second plunger pump 102 operate periodically. Two cycles are shown in Figure 2. The drive cycle a is composed of three sections b, c, and d, which are repeated. The length of the drive cycle a is, for example, 2 seconds, 4 seconds, or 6 seconds. Each section will be explained below.

[0036] Section b is called the single liquid delivery section. In this section, the second plunger pump 102 delivers the amount of liquid delivery specified by the device user. The first plunger 21 moves to the lower limit and then stops until section b ends. Although the first plunger 21 is displaced in the negative direction, the second check valve 52 closes the flow path, so the movement of the first plunger 21 does not affect the delivery flow rate.

[0037] Section c is called the compression section. In this section, the second plunger pump 102 discharges the amount of solvent to be delivered specified by the device user. The controller 10 retrieves the compression ratio parameters stored in the memory unit 510 and calculates the amount of solvent compression (plunger displacement) by the first plunger 21 required for compression by the first plunger pump 101, along with the pressure value received from the pressure sensor 110. Thereafter, under the control of the controller 10, the first plunger 21 moves forward by the calculated compression amount. Until the pressure in the first pressurizing chamber 11 of the first plunger pump 101 exceeds the discharge pressure, the second check valve 52 is closed, so the movement of the first plunger 21 does not affect the discharge flow rate. When excessive compression occurs, the second check valve 52 is opened, and the discharge flow rate and discharge pressure begin to increase.

[0038] The detailed feedback control method will be described later, but if over-compression occurs when the first plunger 21 moves by the calculated compression amount and the pressure value of the pressure sensor 110 increases, the controller 10 reduces the compression ratio parameter stored in the memory unit 510 as necessary.

[0039] Section d is called the cross-flow section. In this section, the second plunger 22 moves to its lower limit. The flow rate value is the sum of the flow rate at which the second plunger pump 102 suctions, which occurs when the second plunger 22 moves in the negative direction, and the flow rate specified by the device user. The first plunger 21 moves in the positive direction, and the first plunger pump 101 discharges the flow rate. As a result, the entire liquid delivery pump discharges the amount of liquid delivered, which is specified by the device user. Details of the feedback control method will be described later. When transitioning from the compression section c to the cross-flow section d, if the pressure value received from the pressure sensor 110 drops due to insufficient compression of the first pressurizing chamber 11, the controller 10 increases the compression ratio parameter stored in the memory unit 510 as necessary.

[0040] After the cross liquid feeding section d is completed, the process moves to the single liquid feeding section b, and the same cyclic operation is repeated.

[0041] <Feedback control> The feedback control of the compressibility parameter in Example 1 will be described. As described above in the <Liquid Delivery Method>, the liquid delivery pump 1 repeats a drive cycle a including a single liquid delivery section b, a compression section c, and a cross-liquid delivery section d. Feedback control of the compressibility parameter is required to correctly calculate the amount of compression in the compression section c. Feedback control is performed for two conditions: over-compression and under-compression. Over-compression occurs in the compression section c, and under-compression occurs when moving to the cross-liquid delivery section d. When over-compression occurs, the compressibility parameter is decreased, and when under-compression occurs, the compressibility parameter is increased. When over-compression occurs, a momentary pressure increase occurs, and when under-compression occurs, a momentary pressure drop occurs. If the amount of change (increase or decrease) in each case exceeds the pressure fluctuation threshold, it is determined to be a disturbance. If this is the first determination within the disturbance determination time, the compressibility parameter is not modified. However, if this occurs two or more times within the disturbance determination time, the compressibility parameter is modified from the second time onward.

[0042] The pressure fluctuation threshold is set, for example, to a change of 0.5 MPa or more in 10 milliseconds, or a change of 1 MPa or more in 20 milliseconds, etc. It is preferable to measure in advance the magnitude of disturbances caused by the operation of the injector 2 or the switching valve, and set the pressure fluctuation of disturbances empirically expected in accordance with the usage conditions of the device user.

[0043] The disturbance determination time is preferably set to a time several times to several tens of times longer than the drive cycle time. For example, a predetermined time such as 30 seconds or 1 minute is set. The compression ratio parameter is generally modified linearly based on the pressure increase value caused by over-compression or the pressure decrease value caused by under-compression, and a preset modification coefficient.

[0044] <Feedback control flowchart> 3 is a flowchart showing the operation of the liquid feed pump including the feedback control of the compressibility parameter in Example 1. Each step of this flowchart is executed by the controller 10 executing a program stored in the storage unit 510.

[0045] (Step S301) In the single liquid feeding section b, the controller 10 controls the operation of the second electric motor 212 etc. to move the second plunger 22 in the forward direction from the lower limit point and discharge the amount of liquid fed designated by the device user. The controller 10 also controls the operation of the first electric motor 211 etc. to move the first plunger 21 to the lower limit point, and then stops it until the end of section b.

[0046] (Step S302) The controller 10 calls up the compression ratio parameters stored in the memory unit 510, and calculates the compression amount (plunger displacement amount) of the first plunger 21 required for compression of the first plunger pump 101 together with the pressure value received from the pressure sensor 110.

[0047] (Step S303) In the compression section c, the controller 10 controls the operation of the second electric motor 212 etc. to move the second plunger 22 further in the forward direction and discharge the amount of liquid specified by the device user. The controller 10 also controls the operation of the first electric motor 211 etc. to move the first plunger 21 in the forward direction by the calculated compression amount.

[0048] (Step S304) The controller 10 determines whether or not over-compression has occurred based on the pressure value received from the pressure sensor 110. For example, the controller 10 may determine that over-compression has occurred when the pressure value received from the pressure sensor 110 is greater than a threshold value, or may determine that over-compression has occurred when the amount of change (increase) in the pressure value received from the pressure sensor 110 is greater than a threshold value.

[0049] (Step S305) When the controller 10 determines that over-compression has occurred (step S304: Yes), the controller 10 determines whether or not the amount of pressure change related to this over-compression is equal to or greater than a pressure change threshold value.

[0050] (Step S306) When the controller 10 determines that the amount of pressure change related to over-compression is not a change equal to or greater than the pressure fluctuation threshold (step S305: No), it decreases the compressibility parameter so that the amount of compression of the solvent by the first plunger 21 decreases.

[0051] (Step S307) When the controller 10 determines that the pressure change amount related to over-compression is equal to or greater than the pressure fluctuation threshold (step S305: Yes), it determines whether this pressure change related to over-compression is the first (first) change within the disturbance determination time. If multiple pressure changes occur within the disturbance determination time, it determines that the pressure change is caused by an internal factor of the liquid feed pump 1. If only one pressure change occurs within the disturbance determination time, it determines that the pressure change is caused by an external factor of the liquid feed pump 1. When the controller 10 determines that the pressure change related to over-compression is not the first change within the disturbance determination time (it is the second or subsequent change) (step S307: No), it executes the process of decreasing the compression ratio parameter in step S306 described above. On the other hand, when the controller 10 determines that the pressure change related to over-compression is the first change within the disturbance determination time (step S307: Yes), it does not change the compression ratio parameter.

[0052] (Step S308) The controller 10 determines whether or not compression by the first plunger 21 has ended. Until compression by the first plunger 21 has ended (step S308: No), the controller 10 repeats the process of determining whether over-compression has occurred (step S304).

[0053] (Step S309) When compression by the first plunger 21 is completed (step S308: Yes), the controller 10 controls the operation of the second electric motor 212, etc. in the cross liquid feed section d to move the second plunger 22 in the negative direction to the lower limit point. The controller 10 also controls the operation of the first electric motor 211, etc. to move the first plunger 21 in the positive direction and discharge a flow rate that is the sum of the flow rate at which the second plunger pump 102 sucks and the flow rate designated by the device user.

[0054] (Step S310) The controller 10 determines whether or not insufficient compression has occurred based on the pressure value received from the pressure sensor 110. For example, the controller 10 may determine that insufficient compression has occurred when the pressure value received from the pressure sensor 110 is smaller than a threshold value, or may determine that insufficient compression has occurred when the amount of change (amount of decrease) in the pressure value received from the pressure sensor 110 is larger than a threshold value.

[0055] (Step S311) When the controller 10 determines that insufficient compression has occurred (step S310: Yes), it determines whether the amount of pressure change related to the insufficient compression is equal to or greater than the pressure change threshold value. Note that the pressure change threshold value used in step S311 and the pressure change threshold value used in the above-described step S305 may be the same or different values.

[0056] (Step S312) When the controller 10 determines that the amount of pressure change related to insufficient compression is not equal to or greater than the pressure fluctuation threshold (step S311: No), it increases the compressibility parameter so that the amount of solvent compressed by the first plunger 21 increases.

[0057] (Step S313) When the controller 10 determines that the pressure change amount related to insufficient compression is equal to or greater than the pressure fluctuation threshold (step S311: Yes), it determines whether this pressure change related to insufficient compression is the first change (first change) within the disturbance determination time. If multiple pressure changes occur within the disturbance determination time, it determines that the pressure change is caused by an internal factor of the liquid feed pump 1. If only one pressure change occurs within the disturbance determination time, it determines that the pressure change is caused by an external factor of the liquid feed pump 1. When the controller 10 determines that the pressure change related to insufficient compression is not the first change within the disturbance determination time (it is the second or subsequent change) (step S313: No), it executes the process of increasing the compression ratio parameter in step S312 described above. On the other hand, when the controller 10 determines that the pressure change related to insufficient compression is the first change within the disturbance determination time (step S313: Yes), it does not change the compression ratio parameter.

[0058] (Step S314) The controller 10 determines whether or not the crossover liquid transfer has been completed. Until the crossover liquid transfer has been completed (step S314: No), the controller 10 repeats the process of determining whether or not insufficient compression has occurred (step S310).

[0059] <Effect of feedback control (when insufficient compression occurs for the first time within the disturbance determination time)> Next, we will explain the effect of feedback control of the compressibility parameter when insufficient compression occurs for the first time within the disturbance judgment time. Figure 4 is a graph showing pressure values ​​measured by the pressure sensor of Example 1. The horizontal axis represents time, and the vertical axis represents pressure values ​​measured by the pressure sensor 110. As described above, the liquid delivery pump 1 repeats a drive cycle a consisting of an individual liquid delivery section b, a compression section c, and a cross liquid delivery section d. When the pump 1 operates correctly, the pressure value measured by the pressure sensor 110 remains constant. Here, assume that at the start of the cross liquid delivery section d1 in a certain drive cycle a1, the injection valve in the injector 2 is switched and a sample at atmospheric pressure is injected into the flow path. In this case, a large pressure drop occurs as an injection shock 600.

[0060] According to the feedback control of a typical liquid feed pump, if a pressure drop occurs at the start of the cross-flow section d, a determination is made that there is insufficient compression, and the compressibility parameter is corrected. However, the injection shock 600 occurs due to the switching of a valve external to the liquid feed pump 1, and is not a pressure drop due to insufficient compression. Therefore, ideally, the injection shock 600 should be excluded from the feedback control.

[0061] Therefore, in the first embodiment, as shown in step S311 in FIG. 3, after determining whether there is insufficient compression (step S310: Yes), it is determined whether the pressure change amount related to the insufficient compression is a change equal to or greater than the pressure fluctuation threshold. The injection shock 600 is clearly a large pressure drop, resulting in a change amount equal to or greater than the pressure fluctuation threshold. Therefore, in the feedback control shown in FIG. 3, the compression ratio parameter is not modified in accordance with the determination of Yes in step S313. Therefore, in the drive cycle a2 in FIG. 4, the compression amount is calculated based on the compression ratio parameter used in the drive cycle a1. As a result, correct pump control is performed from drive cycle a2 onwards without unnecessary tracking of the injection shock 600.

[0062] 4 illustrates a case in which only injection shock 600 occurs. However, if over-compression or under-compression occurs in addition to injection shock 600, the compression ratio parameters may be modified. For example, even if the compression ratio parameters are not modified as described above (step S313: Yes), if over-compression occurs before the determination of under-compression (step S304: Yes) and the compression ratio parameters are modified in step S306, the modified compression ratio parameters are used to calculate the compression amount in drive cycle a2. In other words, calculating the compression amount based on the compression ratio parameters used in drive cycle a1 includes calculating the compression amount using the same parameters as the compression ratio parameters used in drive cycle a1, and calculating the compression ratio using compression ratio parameters that have been modified from the compression ratio parameters used in drive cycle a1 due to a factor other than the disturbance determination.

[0063] <Effect of feedback control (when insufficient compression occurs two or more times within the disturbance judgment time)> Next, the effect of feedback control of the compressibility parameter will be explained in the case where insufficient compression occurs two or more times within the disturbance determination time. FIG. 5 is a graph similar to FIG. 4, showing pressure values ​​measured by the pressure sensor of Example 1. As described above, the liquid feed pump 1 repeats a drive cycle a consisting of an individual liquid feed section b, a compression section c, and a cross liquid feed section d. When correct operation is repeated, the pressure value measured by the pressure sensor 110 is constant.

[0064] Now, suppose that during a certain drive cycle a3, the device user mistakenly changes the setting value of the liquid feed pump 1. For example, suppose that pure water is installed in the liquid feed pump 1, but the solvent setting is mistakenly changed to methanol. Because the compressibility of methanol is lower than that of water, the compressibility parameter inside the device is temporarily changed to a smaller value. During the compression section c3 in the drive cycle a3, the amount of compression is calculated and executed based on the compressibility parameter of methanol. However, because the solvent actually connected to the liquid feed pump is pure water, insufficient compression occurs. As a result, a large pressure drop 701 occurs at the start of the cross-liquid feed section d3.

[0065] As illustrated in FIG. 3, the large pressure drop 701 is a change equal to or greater than the pressure fluctuation threshold, and therefore is not subject to feedback control, and the compressibility parameter is not changed. Therefore, in the next drive cycle a4, control is performed using the same compressibility parameter as in drive cycle a3. As a result, in compression section c4, a compression step similar to compression section c3 is performed, and at the start of cross-flow section d4, a large pressure drop 702 similar to large pressure drop 701 occurs.

[0066] Here, large pressure drop 702 occurs after a drive cycle time, for example, 4 seconds, has elapsed since large pressure drop 701. Since the second large pressure drop 702 is detected before the disturbance determination time (for example, 30 seconds) has elapsed, it is determined (step S313: No) according to the flowchart of FIG. 3 that this is not the first change within the disturbance determination time. Therefore, large pressure drop 702 is subject to feedback control, and the compression ratio parameter is increased based on the amount of pressure drop. As a result, the next drive cycle a5 is controlled using a compression ratio parameter greater than that of drive cycle a4.

[0067] The compression ratio parameter may not be adjusted to the optimum value in one go. In drive cycle a5, insufficient compression still remains, resulting in a small compression drop 703. Therefore, in the first embodiment, steps S311 (No) and S312 in FIG. 3 are executed to increase the compression ratio parameter based on the small compression drop 703. This is expected to result in more accurate control of the liquid feed pump 1 from drive cycle a6 onward.

[0068] In this way, according to the first embodiment, it is possible to exclude disturbances such as the injection shock 600 from the targets of feedback control.

[0069] Furthermore, if the liquid feed pump 1 has made a large compression error due to an internal factor, it will be subject to feedback control from the second cycle onwards, which has the effect of correcting the compression ratio parameter. This takes advantage of the fact that disturbances such as injection shock 600 occur infrequently, and that over-compression and under-compression occur at drive cycle intervals (approximately every few seconds).

[0070] Furthermore, in the first embodiment, it is possible to determine the occurrence of a disturbance such as an injection shock 600 based on the pressure value measured by the pressure sensor 110. That is, in the first embodiment, it is possible to determine the occurrence of a disturbance based on the pressure value measured by the pressure sensor 110 without receiving a valve control signal from an external device as in Patent Document 4. [Example]

[0071] In the first embodiment, the compression ratio parameter was not changed if the change in the pressure value was equal to or greater than the pressure fluctuation threshold value. However, in the second embodiment, the compression ratio parameter is not changed if the change in the compression ratio parameter that is changed in accordance with the change in the pressure fluctuation value is equal to or greater than the compression ratio parameter change threshold value.

[0072] For example, if the threshold for changing the compression ratio parameter is set to ±30%, if the compression ratio parameter fluctuates by 30% or more during a single feedback control, it is determined to be a disturbance and the compression ratio parameter is not changed. The threshold for changing the compression ratio parameter is preferably determined based on the usage conditions of the device user, and is preferably 30%, 50%, 70%, or the like. Furthermore, the threshold for changing the compression ratio parameter is not limited to a percentage, and may also be determined as an absolute value.

[0073] 6 is a flowchart showing the operation of the liquid feed pump including the feedback control of the compressibility parameter in Example 2. Descriptions that overlap with Example 1 will be omitted as appropriate.

[0074] (Step S601) When the controller 10 determines that over-compression has occurred (step S304: Yes), the controller 10 calculates a compression ratio parameter based on the pressure value detected by the pressure sensor 110. Then, the controller 10 calculates the difference between the calculated compression ratio parameter and the compression ratio parameter before calculation. Note that the controller 10 may calculate the compression ratio parameter based on the amount of change in the pressure value detected by the pressure sensor 110.

[0075] (Step S602) The controller 10 determines whether the difference in the compression ratio parameter is a change equal to or greater than a threshold value for changing the compression ratio parameter.

[0076] (Step S306) If the controller 10 determines that the difference in the compressibility parameter is not a change equal to or greater than the compressibility parameter change threshold (step S602: No), the controller 10 decreases the compressibility parameter so as to reduce the amount of solvent compressed by the first plunger 21. On the other hand, if the controller 10 determines that the difference in the compressibility parameter is a change equal to or greater than the compressibility parameter change threshold (step S602: Yes), the controller 10 does not change the compressibility parameter.

[0077] (Step S603) When the controller 10 determines that insufficient compression has occurred (step S310: Yes), the controller 10 calculates a compression ratio parameter based on the pressure value detected by the pressure sensor 110. Then, the controller 10 calculates the difference between the calculated compression ratio parameter and the compression ratio parameter before calculation. Note that the controller 10 may calculate the compression ratio parameter based on the amount of change in the pressure value detected by the pressure sensor 110.

[0078] (Step S604) The controller 10 determines whether the difference in the compression ratio parameter is a change equal to or greater than a threshold value for changing the compression ratio parameter.

[0079] (Step S312) If the controller 10 determines that the difference in the compression ratio parameter is not a change equal to or greater than the compression ratio parameter change threshold (step S604: No), the controller 10 increases the compression ratio parameter so as to increase the amount of compression by the first plunger 21. On the other hand, if the controller 10 determines that the difference in the compression ratio parameter is a change equal to or greater than the compression ratio parameter change threshold (step S604: Yes), the controller 10 does not change the compression ratio parameter.

[0080] In the second embodiment, too, a determination such as that in steps S307 or S313 in FIG. 3 may be made, and the compression rate parameter may remain unchanged if the change in the difference in the compression rate parameter within the disturbance determination time is the first time that the difference is greater than or equal to the threshold, but may be changed if the change is the second time or later.

[0081] In the second embodiment, similarly to the first embodiment, it is possible to determine a disturbance without acquiring a control signal from an external device and to appropriately feedback-control the compression ratio parameter. [Example]

[0082] In the first embodiment, it is determined whether or not a pressure fluctuation equal to or greater than a threshold value within a disturbance determination time is the first time, as in steps S307 and S313 in Fig. 3, but in the third embodiment, these determinations are omitted. Fig. 7 is a flowchart showing the operation of the liquid feed pump including feedback control of the compressibility parameter in the third embodiment. Descriptions that overlap with those in the first embodiment will be omitted as appropriate.

[0083] (Step S305) When the controller 10 determines that over-compression has occurred (step S304: Yes), the controller 10 determines whether or not the amount of pressure change related to this over-compression is equal to or greater than a pressure change threshold value.

[0084] (Step S306) If the controller 10 determines that the amount of pressure change related to over-compression is not a change equal to or greater than the pressure fluctuation threshold (step S305: No), it decreases the compression rate parameter so as to reduce the amount of compression by the first plunger 21. On the other hand, if the controller 10 determines that the amount of pressure change related to over-compression is a change equal to or greater than the pressure fluctuation threshold (step S305: Yes), it does not change the compression rate parameter.

[0085] (Step S311) Furthermore, when it is determined that insufficient compression has occurred (step S310: Yes), the controller 10 determines whether or not the amount of pressure change related to this insufficient compression is equal to or greater than the pressure change threshold value.

[0086] (Step S312) If the controller 10 determines that the amount of pressure change related to insufficient compression is not a change equal to or greater than the pressure fluctuation threshold (step S311: No), it increases the compression rate parameter so as to increase the amount of compression by the first plunger 21. On the other hand, if the controller 10 determines that the amount of pressure change related to insufficient compression is a change equal to or greater than the pressure fluctuation threshold (step S311: Yes), it does not change the compression rate parameter.

[0087] In the third embodiment, even if a disturbance occurs periodically, the disturbance can be determined without acquiring a control signal from an external device, and the compression ratio parameter can be appropriately feedback-controlled.

[0088] <Modification> The present invention is not limited to the above-described embodiments and includes various modifications. The above-described embodiments have been described in detail to clearly explain the present invention, and the present invention is not necessarily limited to those including all of the described configurations. Furthermore, it is possible to replace part of the configuration of one embodiment with the configuration of another embodiment, or to add the configuration of another embodiment to the configuration of one embodiment. Furthermore, it is also possible to add, delete, or replace part of the configuration of each embodiment with other configurations.

[0089] In Examples 1 and 2, examples have been described in which the compressibility parameter is feedback-controlled when there is over-compression in the compression section c and under-compression in the cross-liquid-feeding section d. That is, in Examples 1 and 2, the compressibility parameter is not feedback-controlled when there is over-compression or under-compression in the single liquid-feeding section b, when there is under-compression in the compression section c, and when there is over-compression in the cross-liquid-feeding section d. However, in the present disclosure, When excessive compression occurs in the single liquid feeding section b, the compression ratio parameter may be feedback controlled in accordance with steps S305 to S307 in FIG. 3, When compression is insufficient in the single liquid feeding section b, the compression ratio parameter may be feedback controlled in accordance with steps S311 to S313 in FIG. 3, When compression is insufficient in the compression section c, the compression ratio parameter may be feedback controlled in accordance with steps S311 to S313 in FIG. 3. When excessive compression occurs in the crossing liquid feeding section d, the compressibility parameter may be feedback controlled in accordance with steps S305 to S307 in FIG.

[0090] In addition, in the first embodiment, the amount of pressure change is compared with the pressure fluctuation threshold in steps S305 and S311, but the pressure value measured by the pressure sensor 110 may also be compared with the pressure threshold. That is, in the present disclosure, if a value related to the pressure value measured by the pressure sensor 110 (including the amount of pressure change and the pressure value) is smaller than the threshold, the compressibility parameter may be changed.

[0091] Furthermore, in the first embodiment, if the first pressure fluctuation occurs within the disturbance determination time, the compressibility parameters are not corrected, but if two or more pressure fluctuations occur within the disturbance determination time, the compressibility parameters are corrected from the second fluctuation onwards. However, the number of times described above is not limited to one, and it is also possible to not correct the compressibility parameters if the pressure fluctuations occur within a predetermined number N (N is an integer equal to or greater than 2) of times within the disturbance determination time, but to correct the compressibility parameters if the pressure fluctuations occur (N+1) times or more within the disturbance determination time.

[0092] In addition, in Examples 1 to 3, examples have been described in which the compression ratio parameter is feedback-controlled both when over-compression occurs and when under-compression occurs. However, in the present disclosure, the compression ratio parameter may be feedback-controlled only when over-compression occurs, or may be feedback-controlled only when under-compression occurs.

[0093] In addition, in the first to third embodiments, the measurement value detected by the detector 4 when the pressure fluctuation is large may be notified separately from the measurement value during normal times. [Explanation of symbols]

[0094] 1...liquid transfer pump, 2...injector, 3...separation column, 4...detector, 5...waste liquid container, 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, 100...liquid chromatograph, 101...first plunger pump, 102...second plunger pump, 103...connecting flow path, 110...pressure sensor, 210...motor driver, 310...purge valve driver, 410...solenoid valve driver, 510...storage unit

Claims

1. a first plunger pump having a first plunger; a second plunger pump connected in series with the first plunger pump and having a second plunger; a pressure sensor disposed downstream of the second plunger pump; a control unit that controls driving of the first plunger and driving of the second plunger; a storage unit that stores a compressibility parameter for calculating the amount of compression of the solvent by the first plunger, The control unit calculating a first compression amount of the solvent by the first plunger in one drive cycle based on the compressibility parameter, and controlling the first plunger to compress the solvent by the first compression amount in the one drive cycle; when a value relating to the pressure value measured by the pressure sensor in the one drive cycle is smaller than a threshold value, changing the compressibility parameter in accordance with the value relating to the pressure value, and calculating a second compression amount of the solvent by the first plunger in a drive cycle next to the one drive cycle based on the changed compressibility parameter; If the value related to the pressure value in the one driving cycle is greater than the threshold value, a third compression amount of the solvent by the first plunger in the next driving cycle is calculated based on the compressibility parameter. A liquid delivery pump characterized by:

2. The control unit If the number of times that the value relating to the pressure value becomes greater than the threshold value during a predetermined time is less than a predetermined number, the compressibility parameter is not changed.

2. The liquid feed pump according to claim 1.

3. The control unit If the number of times that the value related to the pressure value becomes greater than the threshold value during the predetermined time period is greater than the predetermined number, the compressibility parameter is changed.

3. The liquid transfer pump according to claim 2.

4. The predetermined time is longer than the drive period.

4. The liquid transfer pump according to claim 2 or 3.

5. the driving cycle includes a compression section in which the first plunger compresses the solvent, The control unit When the increase in the pressure value measured by the pressure sensor in the compression section of the one drive cycle is smaller than the threshold value, the compressibility parameter is changed so that the amount of compression of the solvent by the first plunger in the next drive cycle becomes smaller.

2. The liquid feed pump according to claim 1.

6. the drive cycle includes a compression section in which the first plunger compresses the solvent and a liquid delivery section in which the first plunger delivers the solvent compressed in the compression section downstream, The control unit When the amount of decrease in the pressure value measured by the pressure sensor in the liquid sending section of the one drive cycle is smaller than the threshold value, the compressibility parameter is changed so that the amount of compression of the solvent by the first plunger in the next drive cycle is increased.

2. The liquid feed pump according to claim 1.

7. A method for delivering a solvent in a delivery pump including: a first plunger pump having a first plunger; a second plunger pump connected in series with the first plunger pump and having a second plunger; and a pressure sensor disposed downstream of the second plunger pump, the method comprising: calculating a first compression amount of the solvent by the first plunger in one drive cycle based on a compressibility parameter for calculating a compression amount of the solvent by the first plunger, and controlling the first plunger to compress the solvent by the first compression amount in the one drive cycle; When a value related to the pressure value measured by the pressure sensor in the one drive cycle is smaller than a threshold value, changing the compressibility parameter according to the value related to the pressure value, and calculating a second compression amount of the solvent by the first plunger in a drive cycle next to the one drive cycle based on the changed compressibility parameter; and if the value related to the pressure value in the one driving cycle is greater than the threshold value, calculating a third compression amount of the solvent by the first plunger in the next driving cycle based on the compressibility parameter. A liquid transfer method characterized by:

8. a first plunger pump having a first plunger; a second plunger pump connected in series with the first plunger pump and having a second plunger; a pressure sensor disposed downstream of the second plunger pump; a control unit that controls driving of the first plunger and driving of the second plunger; a storage unit that stores a compressibility parameter for calculating the amount of compression of the solvent by the first plunger, The control unit calculating a first compression amount of the solvent by the first plunger in one drive cycle based on the compressibility parameter, and controlling the first plunger to compress the solvent by the first compression amount in the one drive cycle; when a change amount of the compressibility parameter that is changed in accordance with the pressure value measured by the pressure sensor in the one drive cycle is smaller than a threshold value, the compressibility parameter is changed in accordance with the pressure value, and a second compression amount of the solvent by the first plunger in a drive cycle next to the one drive cycle is calculated based on the changed compressibility parameter; If the change amount of the compressibility parameter is greater than the threshold value, a third compression amount of the solvent by the first plunger in the next driving cycle is calculated based on the compressibility parameter. A liquid delivery pump characterized by:

9. The control unit If the number of times that the change amount of the compression ratio parameter becomes greater than the threshold value during a predetermined time is less than a predetermined number, the compression ratio parameter is not changed.

9. The liquid feed pump according to claim 8.

10. The control unit If the number of times that the amount of change in the compression ratio parameter becomes greater than the threshold value during the predetermined time period is greater than the predetermined number, the compression ratio parameter is changed. The liquid feed pump according to claim 9 .

11. The predetermined time is longer than the drive period.

11. The liquid feed pump according to claim 9 or 10.

12. the driving cycle includes a compression section in which the first plunger compresses the solvent, The control unit When an increase amount of the compressibility parameter, which is changed according to the pressure value measured by the pressure sensor in the compression section of the one drive cycle, is smaller than the threshold value, the compressibility parameter is changed so that the compression amount of the solvent by the first plunger in the next drive cycle becomes smaller.

9. The liquid feed pump according to claim 8.

13. the drive cycle includes a compression section in which the first plunger compresses the solvent and a liquid delivery section in which the first plunger delivers the solvent compressed in the compression section downstream, The control unit When a decrease in the compressibility parameter, which is changed in accordance with the pressure value measured by the pressure sensor in the liquid sending section of the one drive cycle, is smaller than the threshold value, the compressibility parameter is changed so that the amount of compression of the solvent by the first plunger in the next drive cycle is increased.

9. The liquid feed pump according to claim 8.

14. A method for delivering a solvent in a delivery pump including: a first plunger pump having a first plunger; a second plunger pump connected in series with the first plunger pump and having a second plunger; and a pressure sensor disposed downstream of the second plunger pump, the method comprising: calculating a first compression amount of the solvent by the first plunger in one drive cycle based on a compressibility parameter for calculating a compression amount of the solvent by the first plunger, and controlling the first plunger to compress the solvent by the first compression amount in the one drive cycle; when a change amount of the compressibility parameter that is changed in accordance with the pressure value measured by the pressure sensor in the one drive cycle is smaller than a threshold value, changing the compressibility parameter in accordance with the pressure value, and calculating a second compression amount of the solvent by the first plunger in a drive cycle next to the one drive cycle based on the changed compressibility parameter; and if the change amount of the compressibility parameter is greater than the threshold value, calculating a third compression amount of the solvent by the first plunger in the next driving cycle based on the compressibility parameter. A liquid transfer method characterized by:

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