ANALYTICAL MEASUREMENT DEVICE SYSTEM
20170248562 · 2017-08-31
Assignee
Inventors
Cpc classification
G01N2030/889
PHYSICS
G01N30/88
PHYSICS
International classification
Abstract
Provided is an analytical measurement device system 10 having a plurality of units (liquid-sending pump 12; detector 15) including: a sensor (flow sensor 121; light amount detector 151) provided in at least one unit among the plurality of units, for detecting the condition of a specific portion of the unit; a determination section (flow rate determiner 122; light amount determiner 152) provided in the unit, for receiving a signal from the sensor and for determining an overall condition of the unit based on a predetermined determination criterion; a storage section (flow-rate determination information storage section 123; light-amount determination information section 153) provided in the unit, for storing the determination criterion and a result of the determination by the determination section; and a display section (flow-rate determination result display section 124; light-amount determination result display section 154) provided in the unit, for displaying the determination result.
Claims
1. An analytical measurement device system including a plurality of units, comprising: a) a sensor provided in at least one unit among the plurality of units, for detecting a condition of a specific portion of the unit; b) a determination section provided in the unit, for receiving a signal from the sensor and for determining an overall condition of the unit based on a predetermined determination criterion; c) a storage section provided in the unit, for storing the determination criterion and a result of a determination by the determination section; and d) a display section provided in the unit, for displaying the result of the determination.
2. The analytical measurement device system according to claim 1, wherein the overall condition of the unit determined by the determiner is one of following conditions: a normal condition in which the unit can operate correctly; a defective condition in which the unit cannot provide required performance; and a deteriorating condition in which the unit is not yet defective but is approaching the defective condition.
3. The analytical measurement device system according to claim 1, wherein the reference criterion stored in the storage section is a criterion set by a user.
4. The analytical measurement device system according to claim 2, wherein the reference criterion stored in the storage section is a criterion set by a user.
5. The analytical measurement device system according to claim 1, wherein the analytical measurement device system further comprises a system controller for controlling the entire system, and the determination criterion stored in the storage section is provided from this system controller.
6. The analytical measurement device system according to claim 2, wherein the analytical measurement device system further comprises a system controller for controlling the entire system, and the determination criterion stored in the storage section is provided from this system controller.
7. The analytical measurement device system according to claim 1, wherein two of the plurality of units included in the analytical measurement device system have the sensor, the determination section, the storage section and the display section, and each of the two units further comprises a communicator for sending and receiving a signal to and from each other.
8. The analytical measurement device system according to claim 2, wherein two of the plurality of units included in the analytical measurement device system have the sensor, the determination section, the storage section and the display section, and each of the two units further comprises a communicator for sending and receiving a signal to and from each other.
9. The analytical measurement device system according to claim 3, wherein two of the plurality of units included in the analytical measurement device system have the sensor, the determination section, the storage section and the display section, and each of the two units further comprises a communicator for sending and receiving a signal to and from each other.
10. The analytical measurement device system according to claim 4, wherein two of the plurality of units included in the analytical measurement device system have the sensor, the determination section, the storage section and the display section, and each of the two units further comprises a communicator for sending and receiving a signal to and from each other.
11. The analytical measurement device system according to claim 5, wherein two of the plurality of units included in the analytical measurement device system have the sensor, the determination section, the storage section and the display section, and each of the two units further comprises a communicator for sending and receiving a signal to and from each other.
12. The analytical measurement device system according to claim 6, wherein two of the plurality of units included in the analytical measurement device system have the sensor, the determination section, the storage section and the display section, and each of the two units further comprises a communicator for sending and receiving a signal to and from each other.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0022]
[0023]
[0024]
[0025]
DESCRIPTION OF EMBODIMENTS
[0026] Embodiments of the analytical measurement device system according to the present invention are hereinafter described using
[0027]
[0028] The liquid-sending pump 12 is provided with a flow sensor 121, flow rate determiner 122, flow-rate determination information storage section 123, and flow-rate determination result display section 124. The flow sensor 122 detects the amount of flow per unit time of the mobile phase supplied by the liquid-sending pump 12. The flow rate determiner 122, which is embodied using a central processing unit (CPU), determines whether or not the magnitude of the temporal change in the flow rate detected with the flow sensor 121 is equal to or smaller than a predetermined reference value. The temporal change in the flow rate occurs when the liquid-sending pump 12 becomes unable to supply the mobile phase at a fixed flow rate due to a deterioration of some part of the pump. Such a change must be reduced since it unfavorably affects the baseline of the detection signal obtained with the detector 15. The flow-rate determination information storage section 123 is used to store the determination criterion, i.e. the reference value of the magnitude of the temporal change in the flow rate, and to save the result of the determination by the flow rate determiner 122. The flow-rate determination result display section 124 is a display (image display device) for showing the determination result. In place of the display, two lamps may also be provided, one of which indicates that the determination result is “normal” while the other indicates that the result is “defective”. Using only one lamp which informs of the “defective” state is also possible.
[0029] The reference value recorded in the flow-rate determination information storage section 123 can be inputted by the manufacturer of the analytical measurement device system 10 when the product is shipped, or a flow-rate reference value input section 125 (
[0030] In the wavelength-variable UV detector used as the detector 15 in the present embodiment, as shown in
[0031] The light amount determiner 152 determines the condition of the detector 15 as follows: If both the amount of sample light and that of the reference light are within their respective reference ranges, the light amount determiner 152 concludes that the detector 15 is in the normal condition. If both the amount of sample light and that of the reference light are out of their respective reference ranges, the light amount determiner 152 concludes that the problem is not associated with the flow cell C (through which only the sample light passes), but with an optical element which affects both the sample light and the reference light, such as the light source 15L, light amount detector 151 (if the reference light is detected with the light amount detector 151) or diffraction grating 15D. A possible cause of the problem with the light source 15L is the decrease in the amount of light due to aging, while that of the problem with the light amount detector 151 is the contamination of an optical element. If the amount of reference light is within the predetermined reference range and only the amount of sample light is out of the predetermined reference range, the light amount determiner 152 concludes that there is a problem with the flow cell C. A possible cause of the problem with the flow cell C is its contamination. If the amount of sample light is within the predetermined reference range and only the amount of reference light is out of the predetermined reference range, the light amount determiner 152 concludes that there is a problem with the alignment of the optical axis of the reference light.
[0032] As in the case of the flow-rate determination information storage section 123, the predetermined light-amount reference range recorded in the light-amount determination information storage section 153 may be inputted by the manufacturer of the analytical measurement device system 10 when the product is shipped, or inputted by users through a light-amount reference value input section 155 (
[0033] In the analytical measurement device system 10 of the present embodiment, a sensor is provided in each of the two aforementioned units, i.e. the liquid-sending pump 12 and the detector 15, making it possible for each unit to determine its condition and perform a self-diagnosis. The result of the self-diagnosis is saved in the storage section in each unit as well as displayed on the display section of each unit. Users can know the condition of each unit in the disconnected state and determine whether or not that unit is operable. When these units are used in another analytical measurement device system, the units can be managed and used in a correct and satisfactory manner in the new system, since the results of the self-diagnosis are stored in their storage sections.
[0034] As the detector 15, a photodiode array detector having an array of photodiodes may be used in place of the wavelength-variable UV detector. In the detector 15 having a photodiode array, the light which is cast from the light source into the flow cell C and transmitted through the sample S is dispersed into component wavelengths, which are individually detected by the photodiodes in the photodiode array. To determine the condition of this detector 15, two kinds of light are used, i.e. the sample light, which travels from the light source to the photodiode array along the same optical path as used in the measurement of the sample S, and the reference light, which is a portion of the light from the light source split at a point before the flow cell C, and which bypasses the flow cell C and follows the same optical path as the sample light eventually reaching the photodiode array along via the diffraction grating. The reference light may also be a portion of the light from the light source which is split at a point before the flow cell C, and which bypasses the flow cell C and follows an optical path eventually reaching a detector (photodiode) different from the one used for detecting the sample light, via a diffraction grating which may be the same as or different from the one used for diffracting the sample light. It is also possible to use, as the reference light, a beam of light detected by the detector 15 through the same optical path as the sample light with the flow cell C removed. Whether this detector 15 is in the normal or defective condition can be determined using these sample and reference lights in the same manner as in the case of the wavelength-variable UV detector.
[0035] In the previously described example, only one reference value of the magnitude of the temporal change in the flow rate is used in the determination of the condition of the liquid-sending pump 12. Instead, a second reference value greater than the first reference value may additionally be used with the first reference value. In this case, the flow rate determiner 122 can make a three-level judgment according to the value detected with the flow sensor 121, e.g. “normal” if the detected value is equal to or smaller than the first reference value, “deteriorating” or “time to replace parts approaching” if the detected value is larger than the first reference value and equal to or smaller than the second reference value, and “defective” or “part replacement required” if the detected value is larger than the second reference value. A similar three-level judgment can also be made in the determination of the amount of light detected with the detector 15.
[0036] In the case of the liquid-sending pump 12, it is possible to judge the temporal change in the pressure of the mobile phase M instead of judging the temporal change in the flow rate of the mobile phase M.
[0037] Hereinafter, an analytical measurement device system 20 of the second embodiment is described. As shown in
[0038] In the analytical measurement device system 20 of the second embodiment, the light amount determiner 152 makes a judgment based on the amounts of sample light and reference light detected by the light amount detector 151 as well as the detection signal of the flow sensor 121 received by the detector-side communicator 25, i.e. the flow rate of the mobile phase M. The judgment is made as follows: The amount of sample light does not only change due to a problem with the detector 15, such as the contamination of the flow cell C; it also changes due to a change in the flow rate of the mobile phase M, which is a problem with the liquid-sending pump 12. Accordingly, if the amount of sample light is out of a predetermined reference range, the light amount determiner 152 compares the temporal change in the amount of sample light with the temporal change in the flow rate of the mobile phase M, and calculates the correlation function between the two. If the degree of correlation between the temporal change in the amount of light and the temporal change in the flow rate is equal to or higher than a certain level, the light amount determiner 152 concludes that the problem is not associated with the detector 15 but the liquid-sending pump 12; the detector 15 is considered to be normal. Conversely, if the temporal change in the amount of light is not, or only poorly, correlated with the temporal change in the flow rate, the light amount determiner 152 subsequently determines whether or not there is a problem with the detector 15 by the same method as in the first embodiment.
[0039] In the analytical measurement device system 20 of the second embodiment, when the degree of correlation between the temporal change in the amount of light and the temporal change in the flow rate is equal to or higher than a certain level, a signal which signifies the fact may be sent from the detector-side communicator 25 to the pump-side communicator 22. Upon receiving this signal, the flow rate determiner 122 can conclude that there is a problem with the liquid-sending pump 12.
[0040] Thus far, the liquid-sending pump and the detector in a HPLC have been considered as the units to be examined for a problem. The present invention can also be similarly applied for a vacuum pump and detector in a gas chromatograph, as well as in various kinds of measurement devices having a plurality of detectors. If there is only one unit to be examined for a problem, the present invention is still useful because it enables the unit to perform a self-diagnosis.
[0041] The previously described embodiments and their variations are mere examples of the present invention, and any change, modification or addition appropriately made within the spirit of the present invention will naturally fall within the scope of claims of the present application.
REFERENCE SIGNS LIST
[0042] 10, 20 . . . Analytical Measurement Device System [0043] 11 . . . Passage [0044] 12 . . . Liquid-Sending Pump [0045] 121 . . . Flow Sensor [0046] 122 . . . Flow Rate Determiner [0047] 123 . . . Flow-Rate Determination Information Storage Section [0048] 124 . . . Flow-Rate Determination Result Display Section [0049] 125 . . . Flow-Rate Reference Value Input Section [0050] 13 . . . Sample Injector [0051] 14 . . . Analytical Column [0052] 15 . . . Detector [0053] 151, 151A . . . Light Amount Detector [0054] 152 . . . Light Amount Determiner [0055] 153 . . . Light-Amount Determination Information Storage Section [0056] 154 . . . Light-Amount Determination Result Display Section [0057] 155 . . . Light-Amount Reference Value Input Section [0058] 15D . . . Diffraction Grating [0059] 15L . . . Light Source [0060] 16 . . . System Controller [0061] 21 . . . Communication Line [0062] 22 . . . Pump-Side Communicator [0063] 25 . . . Detector-Side Communicator [0064] C . . . Flow Cell [0065] M . . . Mobile Phase [0066] S . . . Sample