Analysis Apparatus Having a Plurality of Liquid Chromatographs and Its Analysis Method
20210389287 · 2021-12-16
Inventors
- Daisuke Akieda (Tokyo, JP)
- Makoto NOGAMI (Tokyo, JP)
- Iwao Suzuki (Tokyo, JP)
- Masako KAWARAI (Tokyo, JP)
- Izumi OGATA (Tokyo, JP)
- Shinya Ito (Tokyo, JP)
Cpc classification
G01N2030/628
PHYSICS
G01N30/7233
PHYSICS
International classification
Abstract
The present invention makes it possible to realize an analysis apparatus having a plurality of liquid chromatographs capable of judging separation performance and the like at the right timing and improving analysis performance early. Analysis starts and a mixed sample is prepared by adding a non-retaining ingredient to a measurement object sample and is introduced into an analysis flow path (S401 to S404). The mixed sample is separated into components by a separation column, the components are outputted as chromatogram data by a detector, and the analysis finishes (S404 to S406). Retention time and peak information are acquired from the chromatogram outputted from the detector, whether or not a measurement result is within an allowable range is judged, and the process shifts to next analysis when the measurement result is within the allowable range (S407 to S409). An amount of transit time t.sub.0 of a non-retaining ingredient shifted from an allowable value is confirmed when separation performance is outside an allowable range at step S408 and a separation column replacement instruction is outputted to an output unit when fluctuation of the transit time t.sub.0 is within an allowable range (S410, S411). A device maintenance instruction is outputted to the output unit when the fluctuation is outside the allowable range at step S410 (S412).
Claims
1. An analysis apparatus having a plurality of liquid chromatographs, comprising: the multiple liquid chromatographs each of which has a separation column to receive a sample and separate the received sample into components; a detector to detect the components of the sample fed from each of the multiple liquid chromatographs; a data processing unit to process detection data detected by the detector; and a device control unit to control the multiple liquid chromatographs and the detector, wherein the device control unit judges a device status of the multiple liquid chromatographs in accordance with data that is obtained by detecting a non-retaining ingredient sample introduced into any one of the multiple liquid chromatographs and not retained by the separation columns by the detector and that is processed by the data processing unit.
2. An analysis apparatus having a plurality of liquid chromatographs according to claim 1, wherein the device control unit judges a device status of the multiple liquid chromatographs in accordance with data that is obtained by detecting a measurement object sample and the non-retaining ingredient sample introduced into any one of the multiple liquid chromatographs by the detector and that is processed by the data processing unit.
3. An analysis apparatus having a plurality of liquid chromatographs according to claim 1, wherein the data processing unit calculates a capacity after the non-retaining ingredient sample is introduced into any one of the multiple liquid chromatographs to the detector on the basis of retention time of the non-retaining ingredient sample and calculates a correction value from a difference between the calculated capacity and a reference capacity value, and wherein the device control unit adjusts a timing of introducing the non-retaining ingredient sample and a measurement object sample into the multiple liquid chromatographs and a timing of collecting data by the data processing unit on the basis of the correction value.
4. An analysis apparatus having a plurality of liquid chromatographs according to claim 2, wherein the analysis apparatus has a plurality of client PCs to which at least one of the multiple liquid chromatographs is connected and a server PC to which the multiple client PCs are connected.
5. An analysis apparatus having a plurality of liquid chromatographs according to claim 2, wherein the device control unit judges a device status of the multiple liquid chromatographs on the basis of peak separation performance of the measurement object sample and fluctuation of retention time of the non-retaining ingredient sample.
6. An analysis apparatus having a plurality of liquid chromatographs according to claim 5, wherein the analysis apparatus has an output unit, and wherein the device control unit judges whether or not peak separation performance of the measurement object sample is within a peak separation allowable range, outputs a separation column replacement instruction to the output unit when the peak separation performance is not within the peak separation allowable range but fluctuation of retention time of the non-retaining ingredient sample is within a fluctuation allowable range, and outputs a device maintenance instruction to the output unit when the peak separation performance is not within the peak separation allowable range and the fluctuation of the retention time of the non-retaining ingredient sample is not within the fluctuation allowable range.
7. An analysis apparatus having a plurality of liquid chromatographs according to claim 5, wherein the analysis apparatus has an output unit, and wherein the device control unit introduces the measurement object sample into any one of the multiple liquid chromatographs, judges whether or not peak separation performance of the measurement object sample is within a peak separation allowable range, introduces the non-retaining ingredient sample and the measurement object sample into any one of the multiple liquid chromatographs when the peak separation performance is not within the peak separation allowable range, outputs a separation column replacement instruction to the output unit when fluctuation of retention time of the non-retaining ingredient sample is within a fluctuation allowable range, and outputs a device maintenance instruction to the output unit when the peak separation performance is not within the peak separation allowable range and the fluctuation of the retention time of the non-retaining ingredient sample is not within the fluctuation allowable range.
8. An analysis apparatus having a plurality of liquid chromatographs according to claim 1, wherein the detector is a mass spectrometer.
9. An analysis method of a plurality of liquid chromatographs, including the multiple liquid chromatographs each of which has a separation column to receive a sample and separate the received sample into components, a detector to detect the components of the sample fed from each of the multiple liquid chromatographs, a data processing unit to process detection data detected by the detector, and a device control unit to control the multiple liquid chromatographs and the detector, the analysis method including the steps of: detecting a non-retaining ingredient sample introduced into any one of the multiple liquid chromatographs and not retained in the separation column by the detector; and judging a device status of the multiple liquid chromatographs in accordance with detected data.
10. An analysis method of a plurality of liquid chromatographs according to claim 9, the analysis method including the steps of: detecting a measurement object sample and the non-retaining ingredient sample introduced into any one of the multiple liquid chromatographs by the detector; and judging a device status of the multiple liquid chromatographs in accordance with detected data.
11. An analysis method of a plurality of liquid chromatographs according to claim 9, the analysis method including the steps of: calculating a capacity after the non-retaining ingredient sample is introduced into any one of the multiple liquid chromatographs to the detector on the basis of retention time of the non-retaining ingredient sample; calculating a correction value from a difference between the calculated capacity and a reference capacity value; and adjusting a timing of introducing the non-retaining ingredient sample and a measurement object sample into the multiple liquid chromatographs and a timing of collecting data on the basis of the correction value by the device control unit.
12. An analysis method of a plurality of liquid chromatographs according to claim 10, the analysis method including the steps of: connecting at least one of the multiple liquid chromatographs to a plurality of client PCs; and connecting the multiple client PCs to a server PC.
13. An analysis method of a plurality of liquid chromatographs according to claim 10, the analysis method including a step of: judging a device status of the multiple liquid chromatographs on the basis of peak separation performance of the measurement object sample and fluctuation of retention time of the non-retaining ingredient sample.
14. An analysis method of a plurality of liquid chromatographs according to claim 13, the analysis method including the steps of: judging whether or not peak separation performance of the measurement object sample is within a peak separation allowable range; outputting a separation column replacement instruction to an output unit when the peak separation performance is not within the peak separation allowable range but fluctuation of retention time of the non-retaining ingredient sample is within a fluctuation allowable range; and outputting a device maintenance instruction to the output unit when the peak separation performance is not within the peak separation allowable range and the fluctuation of the retention time of the non-retaining ingredient sample is not within the fluctuation allowable range.
15. An analysis method of a plurality of liquid chromatographs according to claim 13, the analysis method including the steps of: introducing the measurement object sample into any one of the multiple liquid chromatographs; judging whether or not peak separation performance of the measurement object sample is within a peak separation allowable range; introducing the non-retaining ingredient sample and the measurement object sample into any one of the multiple liquid chromatographs when the peak separation performance is not within the peak separation allowable range; outputting a separation column replacement instruction to an output unit when fluctuation of retention time of the non-retaining ingredient sample is within a fluctuation allowable range; and outputting a device maintenance instruction to the output unit when the peak separation performance is not within the peak separation allowable range and the fluctuation of the retention time of the non-retaining ingredient sample is not within the fluctuation allowable range.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
DESCRIPTION OF EMBODIMENTS
[0031] Below, as an embodiment of an analysis apparatus including multiple liquid chromatographs and an analysis method of the analysis apparatus related to the present invention, an LC system having a preprocessing function will be described.
[0032] Also, embodiments of the present invention are not limited to the first to the third embodiments described below, and application is possible within a range of their technical thought for example such as using a visible/ultraviolet absorptiometer, photodiode array detector, fluorodetector, mass spectrometer, and the like as the detector.
EMBODIMENTS
First Embodiment
[0033]
[0034] In
[0035] Also, the LC system includes a device control unit 116 and a data processing unit 121, the device control unit 116 controlling the respective LC units 101, 102, 103, the sample dispensing mechanism 104, the switching valve 105, and the detector 106, the data processing unit 121 processing the measurement result (detection data) outputted from the detector 106.
[0036] Flow passages connecting the LC units 101, 102, and 103 and the detector 106 are connected so that the design piping capacity becomes equal. The sample dispensing mechanism 104 introduces a mixed sample from the sample introduction units 110, 111, 112 to an analysis flow passage of the LC units (liquid chromatographs) 101, 102, 103 and the mixed sample introduced is separated into each component in the separation columns 113, 114, 115 according to the chemical property, the mixed sample being prepared by adding a non-retaining ingredient sample to a measurement object sample, the non-retaining ingredient sample being a non-retaining ingredient (ingredient not retained) in the separation columns 113, 114, 115. At this time, there is a case that the separation columns 113, 114, 115 are stored in a column oven in order to keep the temperature inside the column constant.
[0037] Also, the device control unit 116 includes a system capacity calculation unit 117, an injection timing adjustment unit 118, a gradient timing adjustment unit 119, and a maintenance timing judgment unit 120. Also, the data processing unit 121 includes a peak information acquisition unit 122, and an output unit 123 is connected to the data processing unit 121.
[0038]
[0039] On the other hand, (b) of
[0040] Thus, since the non-retaining ingredient has no interaction against the separation column, the time t.sub.0 and the peak shape of the non-retaining ingredient do not change unless the dead volume of the piping and the separation column and the liquid feeding rate of the solvent change, the non-retaining ingredient can be used as a parameter for judging the device status of the liquid chromatograph.
[0041]
[0042] In contrast to
[0043] Although the retention time and the passing time of each peak were assumed to be an index for judging the device status in
[0044]
[0045] In
[0046] After completion of preparation of the mixed sample, the volume of the mixed sample required for the analysis is weighed by the sample dispensing mechanism 104 (step S403) and is introduced into the analysis flow passage from the sample introduction units 110, 111, 112 (step S404). After the mixed sample is separated into each component by the separation columns 113, 114, 115, the separation result is outputted to the data processing unit 121 as a chromatogram data by the detector 106 (step S405), and the analysis finishes (step S406).
[0047] The peak information acquisition unit 122 of the data processing unit 121 acquires the peak information of each component starting with the retention time from the chromatogram outputted from the detector 106 (step S407), the device control unit 116 judges whether the measurement result of them is within the peak separation allowable range having been set (whether the separation time of the retention time t.sub.R1 and t.sub.R2 of every separated component is within the allowable range, and so on) (step S408), and the process is shifted to the next analysis by the device control unit 116 when the result is within the allowable range (step S409).
[0048] When the peak separation performance is out of the allowable range in the judgment work (step S408) of the allowable range, the device control unit 116 confirms the shift amount of the passing time t.sub.0 of the non-retaining ingredient having been added from the allowable value having been set (step S410).
[0049] When the fluctuation amount of the passing time (retention time) t.sub.0 is within the fluctuation allowable range in step S410, the device control unit 116 judges that the device status of the LC units 101, 102, 103 is normal and outputs (displays and so on) the command to replace the separation column to the output unit 123 (step S411).
[0050] When the fluctuation of the passing time t.sub.0 is out of the allowable range in step S410, the device control unit 116 outputs (displays and so on) the command of maintenance of the device to the output unit 123 (step S412).
[0051] In the process shown in
[0052]
[0053] The example shown in
[0054] In
[0055] The peak information acquisition unit 122 of the data processing unit 121 acquires peak information of each component starting with the retention time from the chromatogram outputted from the detector 106 (step S506), the device control unit 116 judges whether the measurement result (peak separation performance) of them is within the allowable range having been set (step S507), and the process is shifted to the next analysis by the device control unit 116 when the measurement result is within the allowable range (step S508).
[0056] When the peak separation performance is judged to be out of the allowable limit in step S507, the LC system is shifted to the performance confirmation mode (step S509), and the sample dispensing mechanism 104 adds the column non-retaining ingredient to the measurement object sample and prepares the mixed sample (step S510).
[0057] In the process shown in
[0058] Also, the analysis result is outputted to the data processing unit 121 as the chromatogram data by the detector 106 (step S513), and the peak information is acquired in the peak information acquisition unit 122 of the data processing unit 121 (step S514). The device control unit 116 compares the passing time t.sub.0 obtained from the calculated peak information and the passing time t.sub.0 acquired beforehand, stored, and becoming the reference, and judges whether the fluctuation is within the allowable range (step S515). When the fluctuation of the passing time t.sub.0 becoming the measured value is within the allowable range, the device status is judged to be normal, and the command of column replacement is outputted to the output unit 123 (step S516).
[0059] When the fluctuation of the passing time t.sub.0 becoming the measurement value with respect to the passing time t.sub.0 of the reference value is out of the allowable range in step S515, the device status is judged to be inadequate, and the command of device maintenance is outputted to the output unit 123 (step S517).
[0060] As described above, according to the first embodiment of the present invention, the peak separation performance of the measurement object sample and the fluctuation of the passing time of the non-retaining ingredient are judged, and the command of replacement of the separation column and the command of device maintenance of the LC system can be executed early and adequately.
[0061] Accordingly, it is possible to achieve an analysis apparatus having multiple liquid chromatographs capable of judging deterioration of the separation performance and the like at adequate timing and improving the analysis performance early and its analysis method.
Second Embodiment
[0062] Next, the second embodiment of the present invention will be explained.
[0063] Since the LC system has a similar configuration in the first embodiment and the second embodiment, illustration and detailed explanation will be omitted.
[0064] The second embodiment is an example of correcting the device difference of the retention time among the devices occurring in spite that the devices configuring the LC system are normal and the analysis is executed by the separation column of a same kind from the passing time t.sub.0 that is the retention time of the non-retaining ingredient of the separation column in the LC system shown in
[0065] Since the correction parameter is required to be acquired when the device is in a normal status, it is preferable to be acquired at the time of introducing the device of the LC system or after executing the maintenance.
[0066]
[0067] In
[0068] With respect to the mixed sample prepared in step S603, a volume portion required for acquisition of the correction parameter is weighed (step S604) and is introduced to the analysis flow passage from the sample introduction units 110, 111, 112 (step S605). Also, the mixed sample is separated into each component in the separation columns 113, 114, 115 and is detected as the chromatogram data by the detector 106 (step S606), and the analysis finishes (step S607).
[0069] The data processing unit 121 calculates the retention time (passing time) t.sub.0 of the column non-retaining ingredient from the chromatogram data having been acquired (step S608), and calculates the capacity (V.sub.RS) from the sample introduction units 110, 111, 112 to the detector 106 that is the detection unit (detector) by using the following expression (1) making the feeding liquid flow rate Q used in the analysis as the calculation condition (step S609). With respect to the capacity V.sub.RS, since the device difference of the LC units 101, 102, 103 having been connected should be corrected, the chromatogram is acquired for each of the LC units 101, 102, 103, and the capacity V.sub.RS is calculated. The correction parameter V.sub.C is calculated using the following expression (2) from the difference of the reference value V.sub.S of the capacity determined beforehand by the device configuration and the separation column used and V.sub.RS having been calculated (step S610).
V.sub.RS=t.sub.0[min]×Q[mL/min] (1)
V.sub.C=V.sub.S[mL]−V.sub.RS[mL] (2)
[0070] By the device control unit 116, the correction parameter V.sub.C having been calculated is compared to the allowable value having been set beforehand and is judged to be within the allowable range or not (step S611), is stored as the correction value (correction parameter) of the device capacity when the separation column used in acquiring the parameter is used only when the correction parameter V.sub.C is within the allowable range (step S612), and the correction parameter acquisition process is finished (step S613).
[0071] When the correction parameter V.sub.C having been calculated becomes a value out of the allowable range in step S611, it is judged that the device or the separation column is in an inadequate status and an error is outputted from the output unit 123 (step S614). As an example that the device or the separation column is in an inadequate status, there is a connection error of the flow passage piping.
[0072]
[0073] In
[0074] When it is judged that the correction value V.sub.C is within the specification range in step S702, it is judged that correction of the sample introduction timing is not required (step S703), and introduction of the sample and collection of the data are started to start the analysis (step S704).
[0075] When it is judged that the correction value V.sub.C is out of the specification range having been set in step S702, it is judged that correction of the sample introduction timing is required, and the correction process of the sample introduction timing is started (step S707). In the correction process of the sample introduction timing, whether the correction value V.sub.C is plus or minus is judged first (step S708). When the correction value V.sub.C is a value greater than 0, since it shows that the capacity V.sub.RS is less than the system capacity becoming the reference and the retention time t.sub.0 is detected in an early period of time, the sample introduction timing is delayed (step S709), data collection having been set is started (step S710), and the sample is thereafter introduced (step S711). Thus, adjustment is executed.
[0076] In step S708, when the correction value V.sub.C is a value equal to or less than 0, since it shows that the capacity V.sub.RS is greater than the system capacity becoming the reference and the retention time t.sub.0 is detected in a later period of time, the sample introduction timing is advanced (step S712), and the sample is introduced (step S713) before data collection having been set is started (step S714). Thus, adjustment of the retention time is executed.
[0077] Also, acquisition of the chromatogram data is executed after steps S704, S711, and S714 finish (step S705), and the analysis is finished (step S706).
[0078] Although adjustment of the device difference of the retention time is executed by adjusting the sample injection timing in the present second embodiment, when the liquid feeding devices 107, 108, 109 are operated by gradient liquid feeding of feeding liquid while changing the concentration ratio of the solvent fed, adjustment of the device difference of the retention time can be executed in a similar manner by adjusting the gradient liquid feeding start point (start point of changing the concentration ratio).
[0079]
[0080] In
[0081] With respect to the analysis start point 801, the analysis finish point 802, and the analysis section 803 having been set beforehand, when the correction value V.sub.C exceeds 0, the sample introduction timing 804 is set to be later than the analysis start point 801. Also, when the correction value V.sub.C is equal to or less than 0, by setting the sample introduction timing 805 earlier than the analysis start point 801, adjustment of the device difference of the retention time is executed.
[0082] According to the second embodiment of the present invention, since it is configured to correct the device difference of the retention time among the multiple LC units 101, 102, 103 from the passing time t.sub.0 of the non-retaining ingredient, the analysis performance can be improved.
[0083] Accordingly, in a manner similar to the first embodiment, it is possible to achieve an analysis apparatus having multiple liquid chromatographs capable of judging deterioration of the separation performance and the like at adequate timing and improving the analysis performance early and its analysis method.
[0084] Also, it is possible to combine the first embodiment and the second embodiment described above. That is to say, the device difference of the retention time is corrected based on the second embodiment, and, with respect to the LC unit where the device difference has been corrected, it is also possible to judge the peak separation performance of the measurement object sample and fluctuation of the passing time of the non-retaining ingredient and to execute the command of replacement of the separation column and the command of device maintenance of the LC system as done in the first embodiment.
[0085] Also, according to the present second embodiment, since the retention time of the column non-retaining ingredient acquired in a state the separation columns 113, 114, 115 are connected is used as the correction value (correction parameter) V.sub.C, the dead volume of the separation columns 113, 114, 115 is considered in the correction value V.sub.C. However, by acquiring the retention time in a state the separation columns 113, 114, 115 are not connected, it is also possible to calculate a correction parameter peculiar to a device excluding the dead volume of the separation columns 113, 114, 115.
Third Embodiment
[0086] Next, the third embodiment of the present invention will be explained.
[0087]
[0088] That is to say, by controlling the multiple LC systems 910, 923, 928 interposing a server PC 901 and multiple client PCs 902, 915 with respect to the LC systems having been independent from each other in the past, it is allowed to confirm the status of the LC systems by the first embodiment and to calculate the correction value of the device difference by the second embodiment.
[0089] In the system according to the present third embodiment, the client PCs 902, 915 for operating the independent LC systems 910, 923, 928 are connected to the server PC 901 that is for storing/sharing the data, and it is also possible to connect multiple LC systems to the client PCs 902, 915.
[0090] The LC system 910 is connected to a device control unit 903 that is for operating this LC system 910, and the LC systems 923 and 928 are connected to a device control unit 916 that is for operating each of the LC systems 923 and 928.
[0091] Also, the client PC 902 includes a data processing unit 908, and the client PC 915 includes a data processing unit 921. The LC system 910 is configured of a liquid feeding device 911, a sample dispensing mechanism 912, a separation column 913, and a detector 914, the liquid feeding device 911 being for feeding the mobile phase, the sample dispensing mechanism 912 including an introduction unit for introducing the measurement sample to the analysis flow passage, the separation column 913 separating the measurement sample into each component according to the chemical property, the detector 914 detecting the component having been separated.
[0092] Also, the LC system 923 is configured of a liquid feeding device 924, a sample dispensing mechanism 925, a separation column 926, and a detector 927, the liquid feeding device 924 being for feeding the mobile phase, the sample dispensing mechanism 925 including an introduction unit for introducing the measurement sample to the analysis flow passage, the separation column 926 separating the measurement sample into each component according to the chemical property, the detector 927 detecting the component having been separated.
[0093] Also, the LC system 928 is configured of a liquid feeding device 929, a sample dispensing mechanism 930, a separation column 931, and a detector 932, the liquid feeding device 929 being for feeding the mobile phase, the sample dispensing mechanism 930 including an introduction unit for introducing the measurement sample to the analysis flow passage, the separation column 931 separating the measurement sample into each component according to the chemical property, the detector 932 detecting the component having been separated.
[0094] The separation columns 913, 926, 931 are possibly stored in a column oven in order to keep the temperature inside the column constant, and it is possible to select a visible/ultraviolet absorptiometer, photodiode array detector, fluorodetector, mass spectrometer, and the like for the detectors 914, 927, 932.
[0095] The device control unit 903 includes a system capacity calculation unit 904, an injection timing adjustment unit 905, a gradient timing adjustment unit 906, and a maintenance timing judgment unit 907, and the data processing unit 908 includes a peak information acquisition unit 909.
[0096] The device control unit 916 includes a system capacity calculation unit 917, an injection timing adjustment unit 918, a gradient timing adjustment unit 919, and a maintenance timing judgment unit 920, and the data processing unit 921 includes a peak information acquisition unit 922.
[0097] In the system configuration according to the present third embodiment, the client PCs 902, 915 execute the confirmation process for the system status using the column non-retaining ingredient similarly to the first embodiment and the acquisition process of the correction value for correcting the device difference and the adjustment process for the sample induction timing similarly to the second embodiment. Also, the server PC 901 stores the measurement data of the LC systems 910, 932, 928 controlled between the different client PCs 902, 915, and the client PCs 902, 915 store the judgment reference value required for judging the timing of replacement of the column and maintenance of the device, the allowable range of the peak separation performance, the allowable range of the fluctuation of the passing time t.sub.0, and the reference value V.sub.S required in calculating the correction value.
[0098] In calculating the correction value correcting the device difference of the retention time of the separation columns 913, 926, 931, the client PCs 902, 915 acquire the reference value V.sub.S from the server PC 901, execute calculation of the correction value, adjust the sample introduction timing by the sample dispensing mechanisms 912, 925, 930 and the start timing of gradient liquid feeding by the liquid feeding devices 911, 924, 929, and thereby execute adjustment of the retention time.
[0099] Also, the client PCs 902, 915 acquire the judgment reference value required for judging the timing of replacement of the column and maintenance of the device, the allowable range of the peak separation performance, and the allowable range of the fluctuation of the passing time t.sub.0 from the server PC 901, and executes the command of replacement of the column and maintenance of the device. The command of replacement of the column and maintenance of the device is executed by an output unit connected to the data processing units 908, 921. Although it is not illustrated in
[0100] As described above, according to the third embodiment of the present invention, it is configured that the client PCs 902, 915 of the multiple LC systems 910, 923, 928 apart from each other are connected to the server PC 901 and executes adjustment of the passing time and so on using the judgment reference value required for judging the timing of replacement of the column and maintenance of the device, the allowable range of the peak separation performance, the allowable range of the fluctuation of the passing time t.sub.0, and the reference value V.sub.S required in calculating the correction value having been stored in the server PC 901.
[0101] Accordingly, by the allowable range and the like unified in the multiple LC systems 910, 923, 928 apart from each other, the command of replacement of the separation column and so on can be executed, and it is allowed to judge deterioration of the separation performance and the like at adequate timing and to improve the analysis performance early in the multiple LC systems 910, 923, 928 apart from each other.
[0102] Further, each of the multiple LC systems 910, 923, 928 may be connected to a separate client PC, and optional multiple LC systems may be connected to one client PC.
REFERENCE SIGNS LIST
[0103] 101, 102, 103 LC unit [0104] 104 sample dispensing mechanism [0105] 105 switching valve [0106] 106 detector [0107] 107, 108, 109, 911, 924, 929 liquid feeding device [0108] 110, 111, 112 sample introduction unit [0109] 113, 114, 115, 913, 926, 931 separation column [0110] 116, 903, 916 device control unit [0111] 117, 904, 917 system capacity calculation unit [0112] 118, 905, 918 injection timing adjustment unit [0113] 119, 906, 919 gradient timing adjustment unit [0114] 120, 907, 920 maintenance timing judgment unit [0115] 121, 908, 921 data processing unit [0116] 122, 909, 922 peak information acquisition unit [0117] 123 output unit [0118] 901 server PC [0119] 902, 915 client PC [0120] 910, 923, 928 LC system