The present invention relates to a liquid feeder used for a liquid chromatograph.
Liquid chromatographs are analyzers configured to add a sample to be analyzed to solvent fed by a Pump, separate the sample into components by a separation column and detect each component fed at different timing by a detector such as a spectrometer to specify components of the sample. One known example of the Pump is in a mode such that solvent is fed using a plunger that reciprocates within a cylinder.
For some samples to be analyzed, a gradient method is used, feeding liquid using a plurality of solvents while changing the density (see Patent Document 1, for example). Such a liquid-feeding system is configured to feed liquid while changing the mixture ratio of the plurality of solvents, thus improving the Resolution of a sample to be analyzed at a separation column and so shortening the analysis time. In a gradient liquid-feeding system, repeatability of measurement data of a sample to be analyzed is dependent on the mix performance of solvents. When eluent hard to mix is used, repeatability of the measurement data may deteriorate. In order to improve the repeatability of measurement data, an attempt is made to use a mixer to mix solvents so as to improve the mix performance (see Patent Document 2, for example)
The attempt to connect a mixer for an improved mix performance of solvents in a liquid chromatograph of a gradient type, however, increases a flow passage volume due to the volume of the mixer, thus lengthening the analysis time. Especially in the case of a gradient system called a low-pressure gradient type having a feature of mixing solvents prior to a pump to feed solvent, the mixer connected will lengthen the analysis time because the volume in a cylinder is included in the flow passage volume.
It is an object of the present invention to provide a liquid chromatograph of a gradient type capable of promoting the mixture of solvents without increasing flow passage volume.
In order to solve the aforementioned problem, according to one embodiment of the present invention, a liquid chromatograph is configured to add a sample to be analyzed to the mixture of a plurality of solvents and detect a component separated by a separation column to analyze the components of the sample. The liquid chromatograph includes a control unit to control the open/close of valves provided to change the mixture ratio of the plurality of solvents and a Pump configured to suck the mixed plurality of solvents and discharge the solvents for feeding. The Pump includes a configuration in a cylinder for sucking and discharging the mixed plurality of solvents so as to generate a flow to promote the mixture of the solvents.
According to the present invention, a liquid chromatograph of a gradient type is provided, capable of promoting the mixture of solvents without increasing flow passage volume.
The following describes embodiments of the present invention, with reference to the drawings. Note here that the present invention is not limited to the below-described embodiments, and may include various modification examples. For instance, the entire detailed configuration of the embodiments described below for explanatory convenience is not always necessary for the present invention. A part of one embodiment may be replaced with the configuration of another embodiment, or the configuration of one embodiment may be combined with the configuration of another embodiment. The configuration of each embodiment may additionally include another configuration, or a part of the configuration may be deleted or replaced.
A controller 4 controls the flow amount of liquid fed by the Pump 3, the degree of opening of the switching valves 8, timing of sample injection by the sample injector 5, issuance of an operation signal of the detector 7 and the reception of detection data.
The flow amount of solvent in the containers 1 can be adjusted by the open/close timing and the degree of opening of the switching valves 8. In order to suck the solvents in the containers 1 to the Pump 3 via an intake passage 20, a check valve 21 is firstly opened so that the first plunger 23 in a first cylinder 22 moves downward of the drawing to start a suction operation of the solvents. When the first cylinder 22 becomes full of the solvents, the first plunger 23 moves upward of the drawing to start a pushing operation. At this time while the check valve 21 is closed, a check valve 24 is opened, and the second plunger 26 in a second cylinder 25 performs a suction operation in synchronization with the pushing operation of the first plunger 23 so that the second cylinder 25 is filled with the solvents. Next, when the second plunger 26 starts a pushing operation, the check valve 24 is closed so that the solvent in the second cylinder 25 is fed to the sample injector 5 of
The discharge passage 27 downstream of the second cylinder 25 includes piping provided with a pressure sensor 18 to measure the pressure in the piping, and a value of the pressure in the piping measured by the pressure sensor 18 is sent to a Pump control unit 19. The revolutions of the cam shaft 13 measured by the above-mentioned sensor 17 also is sent to the Pump control unit 19. On the basis of these two values, the Pump control unit 19 controls the revolutions of the motor 11. In a gradient system configured to gradually change the mixture ratio of a plurality of solvents over time, the Pump control unit 19 further controls the open/close timing and the degree of opening of the switching valves 8 corresponding to target solvents.
Similarly to
The rotary motion of a motor 42 moves a first plunger 45 linearly in a first cylinder 46 via a ball screw mechanism 44. As the revolutions of the motor 42 changes, the speed of the linear movement of the first plunger 45 changes, and as the rotation direction of the motor 42 is reversed, the linear movement direction of the first plunger 45 changes in the reverse direction.
The same goes for a second plunger 48, and the rotary motion of a motor 43 moves the second plunger 48 linearly in a second cylinder 49 via a ball screw mechanism 47. As the revolutions of a motor 43 changes, the speed of the linear movement of the second plunger 48 changes, and as the rotation direction of the motor 43 is reversed, the linear movement direction of the second plunger 48 changes in reverse direction.
In the case where a plurality of solvents having different properties such as viscosity is gradient-mixed, this mechanism allows the strokes and the speeds of the plungers to be set suitable for a mixture ratio including a large-viscosity solvent much or for a mixture ratio including a small-viscosity solvent much.
Similarly to
Similarly to
Similarly to
As stated above, according to embodiments of the present invention, there is no need to add a special device to mix solvents to a liquid chromatograph of a gradient type configured to mix a plurality of solvents. Therefore, the mixture of the solvents can be promoted in a plunger pump without increasing the flow passage volume, and so an improved liquid chromatograph of a gradient type can be provided.
1: Containers
2: Switching device
3: Pump
4: Controller
8: Switching valves
22: First cylinder
23: First plunger
25: Second cylinder
26: Second plunger
33: Uneven part
45: First plunger
46: First cylinder
48: Second plunger
49: Second cylinder
51: Cylinder
53: Plunger
55: Recesses
61: Cylinder
63: Plunger
65: Recess
Number | Date | Country | Kind |
---|---|---|---|
2010-012735 | Jan 2010 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/JP2011/051194 | 1/25/2012 | WO | 00 | 7/25/2012 |