Autosampler and fluid chromatograph
11543390 · 2023-01-03
Assignee
Inventors
Cpc classification
F16K11/07
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/076
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An autosampler sets an injection valve to be in a sample filling state when a sample loop is filled with a sample, and, after completion of filling with the sample, switches the injection valve to an intermediate state and first connects only one end of the sample loop to a liquid delivery channel and an analysis channel. After the above, the injection valve is switched to the sample injection state and the sample loop is interposed between the liquid delivery channel and the analysis channel, so that the sample is injected into the analysis channel.
Claims
1. An autosampler comprising: a sample collection part comprising a needle and sampling channel and configured to collect a sample by sucking the sample from a sample container; a sample loop for holding a sample collected by the sample collection part; and an injection valve that has a plurality of connection ports and a rotor having a channel that make the connection ports communicate with each other, the injection valve is configured to switch a communication state between each of the connection ports by rotation of the rotor, the plurality of connection ports includes a pump port, a column port, a first loop port, a second loop port, and a syringe port to which a syringe channel connected to a syringe pump is connected, the pump port is connected to a liquid delivery channel having a liquid delivery pump that feeds a mobile phase, the column port is connected to an analysis channel leading to an analysis column, the first loop port connected to one end of the sample loop, the second loop port connected to the other end of the sample loop, wherein the injection valve is configured to be selectively switched to any one state of a sample filling state, an intermediate state, and a sample injection state, the sample filling state is a state in which the pump port and the column port communicate with each other and the syringe port and the sample loop communicate with each other while the first loop port and the second loop port do not communicate with any of the pump port and the column port, the intermediate state is a state in which the pump port and the column port communicate with each other while the first loop port communicates with the pump port and the column port, the second loop port do not communicate with any other connection ports or the second loop port communicate with a port to which no channel or a closed channel is connected so that the second loop port is closed to pressurize the sample loop, and the syringe port do not communicate with the sample loop, the sample injection state is a state in which the pump port communicates with a connection port of one of the first loop port and the second loop port while the column port communicates with a connection port of the other one of the first loop port and the second loop port, and the syringe port do not communicate with the sample loop.
2. The autosampler according to claim 1, wherein the injection valve is configured to be switched from the sample filling state to the intermediate state while the pump port and the column port communicate with each other via the channel of the rotor.
3. The autosampler according to claim 1, wherein the injection valve is configured to be switched from the intermediate state to the sample injection state in a state where communication between the pump port and the first loop port is maintained, or a state where communication between the column port and the first loop port is maintained.
4. The autosampler according to claim 1, further comprising: a drive mechanism that drives the rotor; and a control part configured to control operation of the drive mechanism, wherein the control part includes a pressure fluctuation alleviating operation part configured to control a drive speed of the rotor by the drive mechanism so that time required for switching from the sample filling state to the intermediate state is longer than time required for switching from the intermediate state to the sample injection state.
5. The autosampler according to claim 1, further comprising: a drive mechanism that drives the rotor; and a control part configured to control operation of the drive mechanism, wherein the control part includes a pressure recovery operation part configured to control operation of the drive mechanism so that the injection valve is switched from the intermediate state to the sample injection state after being switched from the sample filling state to the intermediate state and temporarily stopped after being switched to the intermediate state.
6. A fluid chromatograph comprising: a liquid delivery channel provided with a liquid delivery pump for feeding a mobile phase; an analysis channel on which an analysis column for separating a sample into each component and a detector for detecting the component separated by the analysis column are provided; and the autosampler according to claim 1 comprising a sample loop and an injection valve, the sample loop is for holding a sample, the injection valve is configured to be selectively switched to any one state of a sample filling state, a sample injection state, and an intermediate state, the sample filling state is a state in which the liquid delivery channel and the analysis channel are connected without the sample loop interposed therebetween, the sample injection state is a state in which the liquid delivery channel and the analysis channel are connected to each other via the sample loop, the intermediate state is a state in which only one end of the sample loop is connected to the liquid delivery channel and the analysis channel while the liquid delivery channel and the analysis channel are connected to each other and the other end of the sample loop is closed.
7. The fluid chromatograph according to claim 6, wherein the liquid delivery pump is configured to make a liquid delivery flow rate larger when the injection valve of the autosampler is switched from the sample filling state to the intermediate state, or when the injection valve is in the intermediate state than when the injection valve is in another state.
8. The autosampler according to claim 1, wherein the injection valve is configured so that the second loop port do not communicate with any other connection port via any channels in the intermediate state.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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EMBODIMENTS OF THE INVENTION
(22) Hereinafter, an embodiment of an autosampler and a fluid chromatograph according to the present invention will be described using the drawings.
(23) First, a configuration of the embodiment of the autosampler and the fluid chromatograph will be described with reference to
(24) The liquid chromatograph of this embodiment includes an autosampler 2, and the autosampler 2 includes an injection valve 14. The injection valve 14 is a rotary type switching valve and has a plurality of connection ports A to F. A rotor (not shown in the diagram) of the injection valve 14 is provided with channels X, Y, and Z for making the connection ports communicate with each other. By rotating the rotor, a channel configuration of this fluid chromatograph can be switched.
(25) In addition to the injection valve 14, the autosampler 2 has a needle 20 at the tip, a sampling channel 16 having a sample loop 18 at the proximal end of the needle 20, and a drive mechanism (not shown) for driving the needle 20 in the vertical direction and the horizontal in-plane direction. These constitute a sample collection part that collects the sample accommodated in a sample container 22 by sucking the sample from the tip of the needle 20.
(26) The connection ports A to E of the injection valve 14 of the autosampler 2 are arranged in that order counterclockwise on the same circumference, and the connection port F is arranged at the center. Between the connection ports A and B, between the connection ports C and D, and between the connection ports A and E, an interval corresponding to a rotation angle of 90 degrees of the rotor is provided, and between the connection ports B and C and between the connection ports D and E, an interval corresponding to a rotation angle of 45 degrees of the rotor is provided.
(27) The connection port A of the injection valve 14 is connected to the proximal end of the sampling channel 16, the connection port B is connected to a syringe channel 26, the connection port C is connected to a channel leading to the drain, the connection port D is connected to an injection port 24, the connection port E is connected to a liquid delivery channel 4 through which a solvent is fed by liquid delivery pumps 6a and 6b, and the connection port F is connected to an analysis channel 8 leading to an analysis column 10.
(28) A detector 12 for detecting a sample component separated in the analysis column 10 is provided downstream of the analysis column 10 on the analysis channel 8. The syringe channel 26 is connected to a suction and discharge port of a syringe pump 30 via a three-way valve 28. A container 29 for accommodating washing liquid is also connected to the three-way valve 28 so that the washing liquid can be sucked by the syringe pump 30 and supplied through the syringe channel 26.
(29) In the present embodiment, the connection port E to which the liquid delivery channel 4 is connected forms a pump port, and the connection port F to which the analysis channel 8 is connected forms a column port. The connection port D to which the injection port 24 is connected is connected to one end of the sample loop 18 when the needle 20 is inserted in and connected to the injection port 24. The connection port A to which the proximal end of the sampling channel 16 is connected is connected to the other end of the sample loop 18. Therefore, either one of these connection ports A and D is a “first loop port”, and the other is a “second loop port”. In the present embodiment, since the connection port D is connected to the pump port E and the column port F when the injection valve 14 is in an intermediate state, the connection port D forms the “first loop port” and the connection port A forms the “second loop port”.
(30) The channel X provided in the rotor of the injection valve 14 has a substantially L-shape consisting of an arc having a length corresponding to a rotation angle of 45 degrees of the rotor provided on the same circumference as the circumference in which the connection ports A to E are provided and a straight line extending in the radial direction so as to connect one end (end portion on the channel Z side) of the arc and the connection port F at the center. The channels Y and Z are arc-shaped channels having a length corresponding to a rotation angle of 90 degrees of the rotor provided on the same circumference as the circumference where the connection ports A to E are provided. The channels X, Y, and Z have an interval corresponding to the rotation angle of the rotor of 45 degrees between each other.
(31) The injection valve 14 can be selectively switched to any of a sample filling state (state in
(32) When the injection valve 14 is in the sample filling state, as shown in
(33) When the injection valve 14 is in the intermediate state, the injection port 24 communicates with the liquid delivery channel 4 and the analysis channel 8 as shown in
(34) When the injection valve 14 is in the sample injection state, as shown in
(35) The intermediate state (the state shown in
(36) The sample injection state (the state shown in
(37) As shown in
(38) The normal analysis operation by the liquid chromatograph will be described with reference to the flowchart of
(39) Injection of a sample into the analysis channel 8 by switching the injection valve 14 from the sample filling state (state shown in
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(41) As shown in
(42) The pressure recovery operation part 34 is configured to cause the injection valve 14 to perform pressure recovery operation for recovering the pressure drop in the liquid delivery channel 4 and the analysis channel 8 due to the switching operation of the injection valve 14. The pressure recovery operation is operation that temporarily stops the injection valve 14, which is switched from the sample filling state (the state shown in
(43) The pressure fluctuation alleviating operation part 36 is configured to cause the injection valve 14 to perform the pressure fluctuation alleviating operation that alleviates a pressure fluctuation during the switching operation of the injection valve 14. The pressure fluctuation alleviating operation is operation that makes a time period required for switching the injection valve 14 from the sample filling state (state shown in
(44) The analysis by two-stage injection incorporating the above pressure recovery operation will be described with reference to the flowchart of
(45) First, in a similar manner as the analysis by the one-stage injection, the injection valve 14 is set to be in the sample filling state (state in
(46) In the analysis by the two-stage injection described above, the pressure in the liquid delivery channel 4 and the analysis channel 8 that is decreased when the injection valve is switched from the sample filling state to the intermediate state can be recovered while the injection valve 14 is stopped in the intermediate state. Then, by starting the analysis with the injection valve 14 in the sample injection state after the above, the analysis can be started in a state in which the influence of fluctuations in the liquid delivery flow rate of the mobile phase and the composition of the mobile phase caused by the switching by the inflow valve 14 is suppressed, and the reproducibility of the analysis results can be further improved compared to the analysis by the one-stage injection.
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(48) Note that, when the injection valve 14 is switched from the sample filling state to the intermediate state, or while the injection valve 14 is stopped in the intermediate state, the liquid delivery flow rate of the mobile phase by the liquid delivery pump 6 may be increased. In this manner, a recovery speed of the pressure in the liquid delivery channel and the analysis channel 8 is improved, the time for stopping the injection valve 14 in the intermediate state can be shortened, and acceleration in an analysis cycle can be achieved. The increase in the liquid delivery flow rate may be performed by constant pressure control using the pressure before the sample injection operation as a target value, or by a method of increasing a predetermined flow rate for a predetermined time.
(49) The analysis by three-stage injection incorporating the above pressure recovery operation and the pressure fluctuation alleviating operation will be described with reference to the flowchart of
(50) First, in a similar manner as the analysis by the one-stage injection and the analysis by the two-stage injection, the injection valve 14 is set to be in the sample filling state (state in
(51) In the analysis by the three-stage injection, in addition to the effect by the two-stage injection described above, the state immediately before the injection valve 14 is switched from the sample filling state (state in
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(54) As a further advantage of the pressure fluctuation alleviating operation, there is a combination with the operation of increasing the liquid delivery flow rate by the liquid delivery pump. That is, since the pressure in the liquid delivery channel 4 and the analysis channel 8 fluctuates over a longer time due to the pressure fluctuation alleviating operation, an increase in the liquid delivery flow rate for canceling the fluctuation can be suppressed to be small. For this reason, canceling the pressure fluctuation in the liquid feeding capacity of the liquid delivery pump becomes easy.
(55) Note that, in general, switching the switching valve 14 at a high speed has been considered preferable in order to suppress a pressure shock due to switching of the injection valve 14. On the other hand, the present inventors have found that the slower the rotation speed of the rotor at the moment when the pressure shock occurs, that is, at the stage where the sample loop 18 starts to be connected to the liquid delivery channel 4 or the analysis channel 8, the more the pressure shock due to the switching of the injection valve 14 is alleviated.
(56) Next, other examples of the autosampler and the liquid chromatograph will be described with reference to
(57) An injection valve 14a of an autosampler 2a of the present embodiment is also configured to be able to be selectively switched to the sample filling state (state of
(58) The connection ports A to E of the injection valve 14a are arranged in that order counterclockwise on the same circumference, and the connection port F is arranged at the center. Between the connection ports A and B, between the connection ports C and D, and between the connection ports D and E, an interval corresponding to a rotation angle of 90 degrees of the rotor is provided, and between the connection ports B and C and between the connection ports A and E, an interval corresponding to a rotation angle of 45 degrees of the rotor is provided.
(59) The connection port A of the injection valve 14a is connected to the proximal end of the sampling channel 16, the connection port B is connected to the syringe channel 26, the connection port C is connected to a channel leading to the drain, the connection port D is connected to the injection port 24, the connection port E is connected to the analysis channel 8, and the connection port F is connected to the liquid delivery channel 4.
(60) The connection port E forms a column port, and the connection port F forms a pump port. In the present embodiment, contrary to the embodiment shown in
(61) The channel X provided in the rotor of the injection valve 14a has a substantially L-shape consisting of an arc having a length corresponding to a rotation angle of 45 degrees of the rotor provided on the same circumference as the circumference in which the connection ports A to E are provided and a straight line extending in the radial direction so as to connect one end (end portion on the channel Y side) of the arc and the connection port F at the center. The channels Y and Z are arc-shaped channels having a length corresponding to a rotation angle of 90 degrees of the rotor provided on the same circumference as the circumference where the connection ports A to E are provided. The channels X, Y, and Z have an interval corresponding to the rotation angle of the rotor of 45 degrees between each other.
(62) In the present embodiment, the rotor of the injection valve 14a is rotated 45 degrees counterclockwise from the sample filling state (state of
(63) In contrast to the embodiment shown in
(64) The channel configuration when the injection valve 14a is in the sample filling state and the sample injection state is the same as that of the embodiment of
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(66) An injection valve 14b of an autosampler 2b of the present embodiment is also configured to be able to be selectively switched to the sample filling state (state of
(67) In the injection valve 14b of the present embodiment, all the connection ports A to F are arranged in that order counterclockwise on the same circumference. Between the connection ports A and B, and C and D, an interval corresponding to 80 degrees in terms of the rotation angle of the rotor is provided. Between the connection ports B and C, D and E, and E and F, an interval corresponding to 40 degrees in terms of the rotation angle of the rotor is provided.
(68) The rotor of the injection valve 14b is provided with the channels X, Y, and Z on three arcs. The channels X, Y, and Z all have a length corresponding to 80 degrees in terms of the rotation angle of the rotor, and have an interval corresponding to 40 degrees in terms of the rotation angle of the rotor between each other.
(69) The connection port A of the injection valve 14b is connected to the proximal end of the sampling channel 16, the connection port B is connected to the syringe channel 26, the connection port C is connected to a channel leading to the drain, the connection port D is connected to the injection port 24, the connection port E is connected to the analysis channel 8, and the connection port F is connected to the liquid delivery channel 4.
(70) The connection port E forms a column port, and the connection port F forms a pump port. In the present embodiment, as in the embodiment shown in
(71) In the present embodiment, the rotor of the injection valve 14b is rotated 40 degrees clockwise from the sample filling state (state of
(72) Also in the present embodiment, the analysis by multi-stage injection incorporating the pressure recovery operation and the pressure fluctuation alleviating operation as shown in the flowcharts of
(73)
(74) An injection valve 14c of an autosampler 2c of the present embodiment is also configured to be able to be selectively switched to the sample filling state (state of
(75) In the injection valve 14c of the present embodiment as well, as in the injection valve 14b of the autosampler 2b in the embodiment described with reference to
(76) The rotor of the injection valve 14b is provided with the channels X, Y, and Z on three arcs. The channels X, Y, and Z all have a length corresponding to 80 degrees in terms of the rotation angle of the rotor, and have an interval corresponding to 40 degrees in terms of the rotation angle of the rotor between each other.
(77) The connection port A of the injection valve 14b is connected to the proximal end of the sampling channel 16, the connection port B is connected to the syringe channel 26, the connection port C is connected to a channel leading to the drain, the connection port D is connected to the injection port 24, the connection port E is connected to the analysis channel 8, and the connection port F is connected to the liquid delivery channel 4.
(78) The connection port E forms a column port, and the connection port F forms a pump port. In the present embodiment, as in the embodiment shown in
(79) In the present embodiment, the rotor of the injection valve 14c is rotated 40 degrees counterclockwise from the sample filling state (state of
(80) Also in the present embodiment, the analysis by multi-stage injection incorporating the pressure recovery operation and the pressure fluctuation alleviating operation as shown in the flowcharts of
(81) The embodiments described above show the autosampler in a “total-volume injection system”, in which an entire amount of the sample with which the sample loop 18 is filled is injected into the analysis channel 8. However, the present invention is not limited to this, and can be similarly applied to an autosampler in a “loop injection system”.
DESCRIPTION OF REFERENCE SIGNS
(82) 2, 2a, 2b, 2c: Autosampler 4: Liquid delivery channel 6: Liquid delivery pump 8: Analysis channel 10: Analysis column 12: Detector 14: Injection valve 16: Sampling channel 18: Sample loop 20: Needle 22: Sample container 24: Injection port 26: Syringe channel 28: Three-way valve 30: Syringe pump 32: Control part 34: Pressure recovery operation part 36: Pressure fluctuation alleviating operation part