Liquid inventory management system and data input method
The system integrates a liquid level gauge, flow meter, and POS terminal to manage liquid extraction and return data, addressing discrepancies in inventory management and providing accurate analysis by correcting inventory levels and detecting leaks.
Patent Information
- Application Number
- JP2023142510
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-09-01
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2043-09-01
AI Technical Summary
Conventional liquid inventory management systems fail to accurately manage discrepancies between sales volume and inventory volume due to activities like personal use or delivery, leading to potential errors, missed corrections, and incorrect analysis results, especially in facilities with liquid storage tanks.
A liquid inventory management system that integrates a liquid level gauge, flow meter, and POS terminal to track liquid extraction and return data, along with a system management terminal to manage and correct inventory levels, and includes a leakage analysis unit to detect leaks.
Ensures reliable management of liquid extraction and return data, prevents discrepancies, and automatically corrects inventory levels, reducing manual intervention and ensuring accurate statistical analysis.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a liquid inventory management system used to manage the inventory of oil and various liquids stored in oil storage tanks and the like, and a method of inputting data into the system. [Background technology]
[0002] At gas stations that store and sell petroleum and other gasoline in underground storage tanks, sales volumes, replenishment volumes, usage volumes, and remaining tank volumes are measured and recorded, and daily inventory levels are managed based on this data.Such inventory management is not limited to gas stations, but is also carried out in various facilities and manufacturing equipment that handle liquids. For example, the present applicant has developed a system for managing liquid storage tanks by connecting a liquid level sensor, a liquid level display device, a weighing machine, etc. to a point-of-sale information management (hereinafter referred to as "POS") system via a communication line, as described in Patent Document 1 (JP Patent Publication No. 2007-47087) and Patent Document 2 (JP Patent Publication No. 2009-68923) (see in particular paragraphs 0020-0021 and Figure 1 of Patent Document 1 and paragraphs 0021-0023 and Figure 1 of Patent Document 2). Furthermore, Patent Document 3 (JP Patent Publication No. 2020-60472) describes a method and device for measuring inventory levels in a liquid tank, as well as a monitoring system, in which the true inventory level is estimated from the inventory level detected by the liquid level gauge (4) based on past measurement data from the liquid level gauge (4) and a liquid level gauge (5) that measures the amount of inventory discharged from the liquid tank (see, in particular, the abstract, paragraphs 0022 to 0024).
[0003] However, in some facilities that use liquid storage tanks, activities such as the self-use of liquid or delivery of liquid by mini-lorry may be carried out, resulting in a reduction in inventory due to withdrawals that are not reflected in sales volume. Conversely, remaining liquid from the mini-lorry is also returned to the tank. Therefore, with conventional liquid inventory management systems, such as the systems for managing liquid storage tanks described in Patent Documents 1 and 2, and the liquid tank inventory monitoring system described in Patent Document 3, changes in sales volume and inventory volume do not necessarily match, and correct management may not be possible. Therefore, in order to correct the discrepancy between the changes in sales volume and inventory volume, the sales volume data input into the liquid inventory management system is manually corrected, but this has the following problems. (1) Since it is not clear whether manual corrections have been made, there is a possibility that corrections may be missed or double-corrected. (2) The details of the correction (amount removed and amount returned) are unknown. (3) There is a possibility that calculation or input errors may occur, making it impossible to manage the data correctly. Furthermore, in statistical inventory management analysis to detect leaks and water contamination in liquid storage tanks, sales volume data and inventory volume data are used as data for detailed analysis, and if there is a discrepancy in the changes in either data, it is not possible to derive correct analysis results. As a result, the system may require the administrator to manually correct the sales volume data, but responding to such requests requires a great deal of effort, such as conducting interviews. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] JP 2007-47087 A (Patent No. 4039579 A) [Patent Document 2] JP 2009-68923 A (Patent No. 4542576 A) [Patent Document 3] JP 2020-60472 A (Patent No. 7195512 A) Summary of the Invention [Problem to be solved by the invention]
[0005] In order to solve the above problems (1) to (3), the first objective of the present invention is to ensure that the amount of liquid extracted by personal use or loading onto a mini-lorry or the like, and the amount returned by unloading from a mini-lorry or the like, can be reliably managed. The second objective is to reflect the amount of sampled or returned data in the statistical inventory management analysis used to detect leaks in liquid storage tanks, thereby preventing correction requests. Furthermore, a third object is to provide a data input method for ensuring that data on the amount of liquid extracted and the amount of liquid returned is input into the liquid inventory management system. [Means for solving the problem]
[0006] The invention according to claim 1 for solving the above problem is a liquid inventory management system that manages the inventory amount of liquid stored in a liquid storage tank and the amount of liquid discharged from the liquid storage tank based on liquid level data measured by a liquid level gauge installed in the liquid storage tank, discharge amount data measured by a flow meter, or sales amount data grasped by a POS terminal, of the liquid stored in the liquid storage tank For personal use and loading onto mini lorries, etc. a sampling amount input means for inputting sampling amount data; of liquid to the liquid storage tank By unloading from mini lorries, etc. a return amount input means for inputting return amount data; The system is characterized by being provided with a system management terminal that manages the inventory amount and the discharge amount based on the liquid level data, the discharge amount data or the sales amount data, the sampling amount data input by the sampling amount input means, and the return amount data input by the return amount input means.
[0007] The invention according to claim 2 for solving the above problem is the liquid inventory management system according to claim 1, The device is characterized by further comprising a leakage analysis unit that detects leakage from the liquid storage tank based on the liquid level data, the discharge data or the sales volume data, the sampling volume data input by the sampling volume input means, and the return volume data input by the return volume input means.
[0008] The invention according to claim 3 for solving the above problem is a data input method for inputting the sampled amount data and the returned amount data into the liquid inventory management system according to claim 1 or 2, The aforementioned inputting the extraction amount data in association with the liquid storage tank number data and the date; The aforementioned The method is characterized by having a procedure for inputting the return amount data in association with the liquid storage tank number data and the date. [Effects of the Invention]
[0009] According to the invention of claim 1, the liquid level data, the discharge data or the sales amount data, and the sampling amount data input by the sampling amount input means are For personal use and loading onto mini lorries, etc. The extracted amount data and the returned amount data input by the input means By unloading from mini lorries, etc. The system is equipped with a system management terminal that manages inventory and discharge amounts based on returned amount data, so that the amount of liquid taken out for personal use or loading onto mini lorries, etc., and the amount returned by unloading from mini lorries, etc., can be reliably managed.
[0010] According to the invention of claim 2, in addition to the effects of the invention of claim 1, the invention further comprises a leakage analysis unit that detects leakage from the liquid storage tank based on the liquid level data, discharge data or sales volume data, extraction volume data and return volume data. Therefore, there is no discrepancy between the actual discharge volume and changes in the liquid level data due to factors other than leakage, and no correction request (such as an instruction to manually correct sales volume data) is issued from the leakage analysis unit.
[0011] According to the invention of claim 3, in the liquid inventory management system of the invention of claim 1 or 2, a data input method can be provided which has a procedure for inputting data on the amount of liquid extracted for personal use and for loading onto mini lorries, etc., in correspondence with liquid storage tank number data and a date, and a procedure for inputting data on the amount of liquid returned due to unloading from mini lorries, etc., in correspondence with liquid storage tank number data and a date, thereby ensuring that data on the amount of liquid extracted and the amount of liquid returned is input into the liquid inventory management system. [Brief explanation of the drawings]
[0012] [Figure 1] FIG. 1 is a block diagram of a liquid inventory management system according to a first embodiment. [Figure 2] 10 is a flowchart showing a processing procedure in the system management terminal according to the first embodiment. [Figure 3] 4 is a flowchart showing a processing procedure in the liquid inventory management system of the first embodiment. [Figure 4] FIG. 10 is a block diagram of a liquid inventory management system according to a second embodiment. [Figure 5] 10 is a flowchart showing a processing procedure in a leakage analysis unit according to the second embodiment. [Figure 6] FIG. 10 is a diagram for explaining an example of a data input screen in the first and second embodiments. DETAILED DESCRIPTION OF THE INVENTION
[0013] Hereinafter, embodiments of the present invention will be described with reference to examples. [Example]
[0014] FIG. 1 is a block diagram of a liquid inventory management system according to a first embodiment. As shown in FIG. 1, the liquid inventory management system according to the first embodiment has the following configuration. (1) A liquid storage tank 3 having a liquid discharge pipe 1 for discharging liquids such as gasoline, light oil, kerosene, heavy oil, solvents, etc., and a liquid injection pipe 2 for injecting the liquid. (2) A magnetostrictive liquid level gauge 4 that detects the liquid level of the stored liquid and the water level of the water accumulated at the bottom of the liquid storage tank 3 at predetermined intervals (for example, every hour) and transmits liquid level data LL regarding the liquid level and water level data WL regarding the water level. The magnetostrictive liquid level gauge 4 has a detection unit 5 installed above the liquid storage tank 3, a magnetostrictive wire 6 extending from the detection unit 5 to the bottom of the liquid storage tank 3, an upper float 7 and a lower float 8 which can slide up and down along the magnetostrictive wire 6 and have magnets built in, and a level data transmission unit 9 which transmits liquid level data LL and water level data WL. The specific gravity of the upper float 7 is set to be smaller than that of the liquid stored in the liquid storage tank 3, and the specific gravity of the lower float 8 is set to be larger than that of the liquid but smaller than that of water.
[0015] (3) A liquid measuring machine 10 that can pump up the liquid stored in the liquid storage tank 3 and discharge the liquid into the customer's vehicle or equipment, measures the amount of discharged liquid, and transmits discharge data DD after discharge is complete. A pump P is provided inside the liquid measuring device 10 and connected to one end of the liquid discharge pipe 1, and the amount of discharged liquid is measured using a flow meter M and displayed on a display unit on the front, along with transmitting discharge amount data DD when discharge is complete. In addition, for personal use, liquid may be poured from the liquid measuring machine 10 into a small container C or the like by an employee, or the liquid may be loaded onto a mini lorry V or the like to be delivered to a contracted customer, or the remaining liquid may be returned to the liquid storage tank 3 from the mini lorry V or the like after delivery has been completed, but data regarding the amount of liquid withdrawn or returned in connection with such actions is not transmitted from the liquid measuring machine 10 or the mini lorry V or the like.
[0016] (4) A POS terminal 11 that receives the discharge data DD transmitted from the liquid measuring machine 10, generates sales volume data SD, etc., and transmits it. The POS terminal 11 not only generates the sales volume data SD, but also generates and transmits liquid purchase volume data, sales price data, etc., but as this is not directly related to the contents of the present invention, detailed explanation will be omitted. (5) A liquid information database 12 that receives liquid level data LL and water level data WL transmitted from the level data transmission unit 9 of the magnetostrictive liquid level gauge 4, records the data in association with the date and time, receives discharge data DD transmitted from the liquid measuring device 10 or sales volume data SD transmitted from the POS terminal 11, records the data in association with the date and time, and receives unloading volume data ID of the liquid poured from the tank truck into the liquid storage tank 3, and records the data in association with the date and time.
[0017] (6) A system management terminal 13 that controls the liquid inventory management system and inputs data PD on the amount of liquid extracted for personal use or loading, in association with liquid storage tank number data TD and the date and time, and inputs data RD on the amount of liquid returned after delivery, in association with liquid storage tank number data TD and the date and time. The system management terminal 13 also has a private use database 14 that records the inputted extracted amount data PD and returned amount data RD in association with the liquid storage tank number data TD and the date and time. The system management terminal 13 then calculates the inventory amount for each date and time based on the liquid level data LL and water surface level data WL recorded in the liquid information database 12 in correspondence with the date and time, and can determine the discharge amount or sales amount for each date and time based on the discharge amount data DD or sales amount data SD recorded in the liquid information database 12 in correspondence with the date and time. Furthermore, the system management terminal 13 can grasp the extracted amount and returned amount for each date and time based on the extracted amount data PD and returned amount data RD recorded in the private use database 14 in association with the date and time.
[0018] The liquid inventory management system of Example 1 has the configurations (1) to (6) above, and therefore, by using the extraction amount data PD and return amount data RD for each date and time, correcting the discharge amount or sales amount for each date and time grasped by the system management terminal 13 and comparing it with the inventory amount, it is possible to appropriately manage the status of the discharge amount or sales amount and the state of the liquid storage tank 3. Therefore, the staff of the facility that uses the liquid storage tank 3 does not need to add up by themselves the amount taken out for personal use or loading or the amount returned due to unloading, and there is no need to make corrections, double corrections, calculation errors, or input errors.The system can reliably add up the amount taken out data PD and the amount returned data RD, and automatically correct the amount emitted or the amount sold.
[0019] 2 is a flowchart showing the processing procedure (procedures for inputting sampled amount data PD, returned amount data RD, etc., and recording them in the personal use database 14) in the system management terminal 13 of the first embodiment. The processing starts with an input start operation by the administrator, and ends by recording the date and time, liquid storage tank number data TD, sales adjustment amount data, sampled amount data PD, and returned amount data RD in the personal use database 14 according to the following steps 1 to 10. (Step 1) <Getting a list of tank number data> A list of tank number data for liquid storage tanks 3 that may be used for private use, loading, or unloading is obtained from the tank number data for liquid storage tanks 3 recorded in the private use database 14, and then proceed to step 2. (Step 2) <Entering required data on the system management terminal 13> Enter the data PD of the amount of liquid extracted for personal use or loading, the data RD of the amount of liquid returned after delivery, the liquid storage tank number data TD selected from the list of acquired tank number data, and the date and time, and proceed to step 3. The date and time may be input automatically, or the administrator may select and input the date and time from a date and time list. (Step 3) Determine whether the date and time are within the range that can be changed. If No, return to step 2; if Yes, proceed to step 4. (Step 4) Determine whether the sampled amount data PD and the returned amount data RD are within the allowable range. If No, return to step 2; if Yes, proceed to step 5. (Step 5) Based on the sampled amount data PD and the returned amount data RD, calculate the sales adjustment amount data (data for correcting the emission amount or sales amount), and proceed to step 6. (Step 6) Correct the emissions or sales amount and proceed to step 7. (Step 7) Determine whether the change in inventory amount matches the revised emissions or sales amount. If No, proceed to Step 8; if Yes, proceed to Step 10. (Step 8) After displaying a warning message on the system management terminal 13 informing that the change in inventory amount does not match the corrected emission amount or sales amount, the process proceeds to step 9. The warning message will request action to be taken if the values do not match, for example, "There is a discrepancy between the actual inventory amount and the calculated inventory amount after correcting the sales amount. If you want to correct the amount taken out or returned, select "correct" and re-enter it. If you want to leave the input values as they are and check other values such as the amount unloaded, proceed to "register." (Step 9) Confirm whether or not you want to correct the data entered in Step 2. If you answer Yes (correct), return to Step 2; if you answer No (do not correct), proceed to Step 10. (Step 10) The date and time entered or selected in step 2, the liquid storage tank number data TD, the extracted amount data PD and the returned amount data RD, and the sales adjustment amount data calculated in step 5 are recorded in the private use database 14, and the process is completed.
[0020] 3 is a flowchart showing the processing procedure for displaying the corrected discharge amount or sales amount (hereinafter referred to as "corrected sales amount"), inventory amount, unloaded amount, etc. in the liquid inventory management system of Example 1. The processing starts when the administrator starts inputting information on the system management terminal 13, and ends after displaying the corrected sales amount, etc. by the following steps A to E. (Procedure A) <Data acquisition at specified date and time in tank> The discharge data DD or sales volume data SD, liquid level data LL, water surface level data WL, and unloading volume data ID for the specified date and time tank recorded in the liquid information database 12 are obtained, and then step B is proceeded to. (Step B) <Acquire sales adjustment data for the specified date and time tank> The sales adjustment amount data for the specified date and time and tank recorded in the private use database 14 is obtained, and the process proceeds to step C. (Step C) Check whether sales volume adjustment is necessary (sales adjustment volume data is other than 0). If Yes (necessary), proceed to Step D. If No (not necessary), proceed to Step E. (Step D) Based on the emission data DD or sales volume data SD and sales adjustment volume data obtained in Steps A and B, calculate the corrected sales volume for the specified date and time and tank, and proceed to Step E. (Step E) Based on the data obtained in steps A and B and the revised sales volume calculated in step D, various data related to the specified date and time and tank (date and time, tank number, revised sales volume, inventory volume, and unloaded volume) are displayed on the system management terminal 13, and the process is completed. [Example]
[0021] FIG. 4 is a block diagram of a liquid inventory management system according to the second embodiment. As shown in FIG. 4, the liquid inventory management system according to the second embodiment is obtained by adding a leakage analysis unit 15 and an analysis database 16 to the liquid inventory management system according to the first embodiment. Therefore, the components other than the leakage analysis unit 15 and the analysis database 16 are given the same numbers in FIG. 4 as in FIG. 1, and detailed explanations will be omitted. Also in Example 2, the flowcharts showing the processing procedure in the system management terminal (the procedure for inputting the sampled amount data PD, returned amount data RD, etc. and recording them in the private use database 14) and the processing procedure in the liquid inventory management system (the procedure for displaying the corrected sales amount, inventory amount, unloaded amount, etc.) are the same as those in Figures 2 and 3, respectively. However, if information is sent from the leakage analysis unit 15 that there is a leak in the liquid storage tank 3 or that water has entered the liquid storage tank 3, that fact is displayed in step E in the liquid inventory management system.
[0022] The leakage analysis unit 15 imports various data recorded in the liquid information database 12 and sales adjustment volume data recorded in the private use database 14, transfers the data to the analysis database 16 for analysis, and detects leakage from the liquid storage tank 3 and water contamination into the liquid storage tank 3. Specifically, the imported sales adjustment data is used to calculate the corrected sales volume, and leakage analysis is performed based on the inventory volume and the corrected sales volume, making it possible to accurately analyze leakage from the liquid storage tank 3 and water contamination into the liquid storage tank 3. Therefore, even if the liquid is withdrawn and returned for personal use or delivery, there will be no discrepancy between the corrected sales volume and the change in the liquid level data LL due to factors other than leakage or water contamination, and no correction request (such as an instruction to manually correct the sales volume data SD) will be generated from the leakage analysis unit.
[0023] FIG. 5 is a flowchart showing a processing procedure in the leakage analysis unit 15 of the second embodiment. The process starts when the administrator operates the system management terminal 13 to start the analysis, and ends after outputting the analysis results according to the following steps F to K. (Step F) <Data acquisition at specified date and time and tank> The discharge data DD or sales volume data SD, liquid level data LL, water surface level data WL, and unloading volume data ID for the specified date and time tank recorded in the liquid information database 12 are obtained, and then the process proceeds to step G. (Step G) <Acquire sales adjustment data for the specified date and time tank> The sales adjustment amount data for the specified date and time and tank recorded in the private use database 14 is obtained, and the process proceeds to step H. (Step H) Check whether sales volume adjustment is necessary (sales adjustment volume data is other than 0). If Yes (necessary), proceed to Step I; if No (not necessary), proceed to Step J. (Step I) Based on the emission data DD or sales volume data SD and sales adjustment volume data obtained in Steps F and G, calculate the corrected sales volume for the specified date, time, and tank, and proceed to Step J. (Step J) <Transferring data to analysis database 16> Based on the data obtained in steps F and G and the revised sales volume calculated in step D, various data relating to the specified date and time and tank (date and time, tank number, revised sales volume, inventory volume, and unloaded volume) are transferred to the analysis database 16, and then step K is carried out. (Step K) Analysis is performed using the data transferred in step J to detect leakage from the liquid storage tank 3 and intrusion of water into the liquid storage tank 3. Information regarding the presence or absence of leakage and intrusion of water into the liquid storage tank 3 is then sent to the system management terminal 13, and the process ends.
[0024] FIG. 6 is a diagram illustrating an example of a data input screen used when inputting the sampled amount data PD, the returned amount data RD, etc., and recording them in the private use database 14 in the first and second embodiments. This example shows the screen that appears when you launch a home energy consumption input site that can be accessed from a personal computer (hereinafter referred to as "PC"), and when you launch it, you log in after entering your user ID and password on a dedicated website. This website is also designed so that it can be operated from smartphones and tablets. It is also possible to install a home energy usage input application on a PC, smartphone, etc., and launch the application to display a similar screen. As shown in Figure 6, when the target liquid storage tank 3 is selected using the tank selection field at the top center, a table with input fields for home use (amount withdrawn) and return amount is displayed to the right of the date display field for the current month (June 2023), and the two input fields for the current day are highlighted (entry from 0 to 99999 [L] is possible). Additionally, the home use amount input field and return amount input field in the past date display field for the current month display numbers indicating the home use amount and return amount previously entered. Clicking the "<Previous Month>" button displays the date display field for the previous month, but clicking the "Next Month>" button does not display the date display field for the next month. When the user enters the personal use amount or return amount into the highlighted personal use amount input field or return amount input field using the numeric keypad or the like and clicks the register button in the upper right corner, the sampling amount data PD or return amount data RD corresponding to the input value are recorded in association with the current date in the personal use database 14. In other words, even if an omission or error in data input for the current month or the previous month is discovered and correction is required, the data for the day discovered can be easily corrected by modifying it and clicking the register button. When you have finished recording, click the Logout button to exit.
[0025] Modifications of the liquid inventory management system according to the first and second embodiments will be listed below. (Modification 1) In the first and second embodiments, the magnetostrictive liquid level gauge 4 is used, but instead of the magnetostrictive liquid level gauge 4, a normal liquid level gauge may be used. Furthermore, if there is no need to detect water accumulating at the bottom of the liquid storage tank 3, the lower float 8 is unnecessary, and the level data transmitter 9 does not need to transmit the water surface level data WL. (Variant 2) In Examples 1 and 2, the liquid extraction amount data PD associated with the personal use or loading of the liquid was not transmitted from the liquid measuring device 10, and the returned amount data RD was not transmitted from the mini lorry V, etc. However, it is also possible to add a function for transmitting the extraction amount data PD and the returned amount data RD to the liquid measuring device 10 and the mini lorry V, etc., so that this data can be stored in the personal use database 14 together with the transmission date and time via the system management terminal 13. (Variant 3) Instead of adding a transmission function to the liquid measuring device, etc. as in Variation 2, a fixed camera may be placed around the tank to photograph the liquid measuring device 10 or the indicator of the mini tanker V, and the photographed data may be received by the system management terminal 13, converted into sample amount data PD and return amount data RD, and stored in the private use database 14 together with the transmission date and time. (Variant 4) In the liquid information database 12 and the personal use database 14 of Examples 1 and 2, various data were recorded in association with the date and time, but the data acquisition and data input periods may be limited to once a day, and various data may be recorded in association with the date. In the example shown in FIG. 6, the extracted amount data PD and the returned amount data RD are recorded in association with the date, but they may be recorded in association with the date and time. (Variant 5) The leakage analysis unit 15 in Example 2 detects leakage from the liquid storage tank 3 and the intrusion of water into the liquid storage tank 3, but if there is no need to detect water accumulating at the bottom as in Variant 1 above, it is not necessary to detect the intrusion of water into the liquid storage tank 3. [Explanation of symbols]
[0026] 1 Liquid discharge pipe 2 Liquid injection pipe 3 Liquid storage tank 4 Magnetostrictive liquid level gauge 5 Detector 6 Magnetostrictive wire 7 Upper float 8 Lower float 9 Level data transmitter 10 Liquid meter 11 POS terminal 12 Liquid information database 13 System management terminal 14 In-house database 15 Leak analysis section 16 Analysis database DD Discharge data ID Unloading amount data LL Liquid level data PD: Sampled quantity data RD: Returned quantity data SD: Sales quantity data TD Liquid storage tank number data WL Water level data
Claims
1. A liquid inventory management system that manages the inventory amount of liquid stored in a liquid storage tank and the amount of liquid discharged from the liquid storage tank based on liquid level data measured by a liquid level gauge installed in the liquid storage tank, discharge data measured by a flow meter, or sales volume data grasped by a POS terminal, a sampling amount input means for inputting data on the amount of liquid stored in the liquid storage tank that is sampled for personal use and for loading onto a mini lorry or the like; a return amount input means for inputting data on the amount of liquid returned from a mini tanker or the like to the liquid storage tank; a system management terminal for managing the inventory amount and the discharge amount based on the liquid level data, the discharge amount data or the sales amount data, the sampling amount data input by the sampling amount input means, and the return amount data input by the return amount input means; A liquid inventory management system characterized by:
2. The system further includes a leakage analysis unit that detects leakage from the liquid storage tank based on the liquid level data, the discharge data or the sales volume data, the sampling volume data input by the sampling volume input means, and the return volume data input by the return volume input means. The liquid inventory control system of claim 1 .
3. 3. A data input method for inputting the extracted amount data and the returned amount data into the liquid inventory management system according to claim 1, comprising: a step of inputting the extraction amount data in association with liquid storage tank number data and date; The return amount data is input in association with the liquid storage tank number data and the date. A data input method comprising:
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