Methods, devices, equipment, and storage media for monitoring analog quartz watches
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-11-10
- Publication Date
- 2026-08-11
AI Technical Summary
[0007]但是在实践中发现,现有技术中仅提出一些对手表实走状态下的指针式石英手表的电池更换周期进行计算的方案,但不能计算止秒状态中的指针式石英手表的电池更换周期,导致现有指针式石英手表监控方法不够精确
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Figure CN115684974B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the technical field of analog quartz watches, specifically relating to a method, device, equipment, and storage medium for monitoring analog quartz watches. Background Technology
[0002] A pointer quartz watch is a timepiece powered by a silver oxide button cell battery. After the silver oxide button cell battery provides a specific voltage to the integrated circuit, the quartz oscillator is made to oscillate through the oscillation circuit and quartz resonator, forming an oscillation circuit source. This generates alternating bidirectional pulse signals, which drive the stepper motor to rotate intermittently, further driving the transmission gear train so that the hands can accurately display the time.
[0003] Each quartz movement has its specific power consumption and a designated battery model, and each battery has a corresponding capacity. The larger the battery capacity, the lower the power consumption of the movement, and the longer its lifespan. Most analog quartz watches are typically stored while in running condition; the battery replacement cycle is calculated before storage.
[0004] Because some watches have been stored in warehouses for too long, the remaining battery capacity when they are sold is insufficient to maintain the manufacturer's warranty period. This causes consumers to frequently experience problems such as the watch stopping or running slow while wearing analog quartz watches. As a result, one of the most prominent quality issues in the after-sales service of domestic analog quartz watches is insufficient battery power.
[0005] However, since each watch of the same model is produced in different batches and enters the warehouse, each batch of watches needs to be stored separately upon entering the warehouse. Storing them separately not only takes up space but also makes it easy to confuse watch batches. Furthermore, since the sales volume of each watch is different, its inventory storage period is also different. This means that the watches that are released first may not be from the earliest batch of watches that entered the warehouse. As a result, it cannot be guaranteed that the customer's wearing time will exceed the manufacturer's promised warranty period. Therefore, the battery must be replaced when the watch is sold. Replacing the battery not only increases the cost of the battery but also increases the costs of labor and materials.
[0006] In addition to the power consumption of the movement itself, the power consumption of the hands during operation is also relatively large. If the second hand is stopped when the watch is put into storage, the power consumption during the storage period can be effectively reduced, thereby extending the customer's wearing time. Ideally, the customer's wearing time should be longer than the manufacturer's warranty period.
[0007] However, in practice, it has been found that existing technologies only propose some schemes for calculating the battery replacement cycle of analog quartz watches in running mode, but cannot calculate the battery replacement cycle of analog quartz watches in stopped-second mode, resulting in insufficient accuracy of existing analog quartz watch monitoring methods. Summary of the Invention
[0008] The purpose of this invention is to provide a method, device, equipment, and storage medium for monitoring analog quartz watches, which can calculate the battery replacement cycle of an analog quartz watch in a stopped-seconds state, thereby improving the accuracy of monitoring analog quartz watches.
[0009] The first aspect of this invention discloses a monitoring method for an analog quartz watch, comprising:
[0010] When an entry command is detected, the battery replacement cycle of the watch in the stop-second state is calculated.
[0011] The identification code of the watch entering the warehouse is obtained and associated with the battery replacement cycle and stored.
[0012] Set the inventory status corresponding to the identification code of the inbound watch to the current second inventory status;
[0013] Start the timer to obtain the duration of the stop second corresponding to the identification code of the watch in the warehouse;
[0014] When the duration of the stop-second countdown reaches the battery replacement cycle, the inventory status corresponding to the identification code of the in-stock watch is switched from the stop-second countdown inventory status to the battery replacement requirement status.
[0015] A second aspect of this invention discloses a monitoring device for an analog quartz watch, comprising:
[0016] The calculation unit is used to calculate the battery replacement cycle of the watch in the stop-second state when an entry command is detected;
[0017] The association unit is used to obtain the identification code of the watch entering the warehouse and associate it with the battery replacement cycle for storage;
[0018] The setting unit is used to set the inventory status corresponding to the identification code of the inbound watch to the current second inventory status.
[0019] The timing unit is used to start the timer to obtain the duration of the stop second corresponding to the identification code of the watch in the warehouse;
[0020] The switching unit is used to switch the inventory status corresponding to the identification code of the in-stock watch from the stop-second inventory status to the battery replacement status when the duration of the stop-second period reaches the battery replacement cycle.
[0021] A third aspect of the present invention discloses an electronic device, including a memory storing executable program code and a processor coupled to the memory; the processor calls the executable program code stored in the memory to execute the analog quartz watch monitoring method disclosed in the first aspect.
[0022] A fourth aspect of the present invention discloses a computer-readable storage medium storing a computer program, wherein the computer program causes a computer to execute the analog quartz watch monitoring method disclosed in the first aspect.
[0023] The beneficial effects of this invention are that the provided method, device, equipment, and storage medium for monitoring analog quartz watches can record and monitor the duration of the stop-seconds state when a watch is stored, by calculating the battery replacement cycle of the watch in the stop-seconds state. When the stop-seconds duration reaches the battery replacement cycle, the inventory status corresponding to the watch's identification code is switched from the stop-seconds inventory state to the battery-ready-to-replace state. This allows monitoring of whether the battery of an analog quartz watch needs to be replaced when it is stored in the stop-seconds state, facilitating the storage and monitoring management of analog quartz watches. It can effectively reduce the power consumption during the storage stage, extend the wearing time for customers, and avoid the quality problem of insufficient battery capacity when the watch is sold. Therefore, it can improve the accuracy of monitoring analog quartz watches, save resource costs, and reduce the emission of harmful substances. Attached Figure Description
[0024] The accompanying drawings illustrate specific examples of the technical solutions described in this invention and, together with the detailed embodiments, form part of the specification, serving to explain the technical solutions, principles, and effects of this invention.
[0025] Unless otherwise specified or defined, the same reference numerals in different figures represent the same or similar technical features, and different reference numerals may be used to represent the same or similar technical features.
[0026] Figure 1 A flowchart of a monitoring method for an analog quartz watch;
[0027] Figure 2 This is a schematic diagram of the structure of a pointer-type quartz watch monitoring device;
[0028] Figure 3 This is a schematic diagram of the structure of an electronic device.
[0029] Explanation of reference numerals in the attached figures:
[0030] 201. Calculation unit; 202. Association unit; 203. Setting unit; 204. Timing unit; 205. Switching unit; 301. Memory; 302. Processor. Detailed Implementation
[0031] To facilitate understanding of the present invention, specific embodiments of the present invention will be described in more detail below with reference to the accompanying drawings.
[0032] Unless otherwise specified or defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art. When combined with the technical solutions of the invention in a real-world scenario, all technical and scientific terms used herein may also have meanings corresponding to the purpose of achieving the technical solutions of the invention. The terms "first," "second," etc., used herein are merely for distinguishing names and do not represent a specific number or order. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0033] It should be noted that when a component is considered "fixed" to another component, it can be directly fixed to the other component or there can be an intervening component; when a component is considered "connected" to another component, it can be directly connected to the other component or there can be an intervening component; when a component is considered "mounted" on another component, it can be directly mounted on the other component or there can be an intervening component; when a component is considered "placed" on another component, it can be directly placed on the other component or there can be an intervening component.
[0034] Unless otherwise specified or defined, the terms “described” or “the” as used herein refer to the technical features or technical content mentioned or described above, which may be the same as or similar to the technical features or technical content mentioned above.
[0035] Undoubtedly, any technical content or feature that is contrary to or clearly contradicts the purpose of this invention should be excluded.
[0036] like Figure 1 As shown, this invention discloses a method for monitoring an analog quartz watch, which can be implemented through computer programming. The executing entity of this method can be an electronic device such as a computer, laptop, or tablet, or an analog quartz watch monitoring device embedded in an electronic device; this invention does not limit this. In this embodiment, an electronic device is used as an example. The method includes the following steps S10 to S50:
[0037] S10. When an entry command is detected, the electronic device calculates the battery replacement cycle of the watch in the stop-second state.
[0038] The method by which the electronic device calculates the battery replacement cycle of the watches in the stop-second state can include the following steps S101 to S104:
[0039] S101. Obtain the first power consumption current when the watch in the warehouse is in the stop-second state and the second power consumption current when it is in the non-stop-second running state.
[0040] Among these tests, the watches stored in the warehouse can be tested according to the test methods of the national standard GB / T 6044-2016 "Analog Quartz Watches" using measuring instruments to measure their first power consumption current I when the seconds are stopped. m1 The second power consumption current I in the non-stop running state m2 The power consumption current If (which may be 0) for other additional functions.
[0041] S102. Obtain the remaining battery capacity and annual self-loss capacity of the watches stored in the warehouse.
[0042] If the watches entering the warehouse use brand-new batteries, the ideal battery capacity at the time of manufacture can be determined by consulting the battery manufacturer's information, and this can be used as the remaining battery capacity C. If the watches entering the warehouse do not use brand-new batteries, the current battery capacity of the watches entering the warehouse can be calculated as the remaining battery capacity C. The annual self-discharge capacity C of the battery is also considered. s Alternatively, this information can be obtained by consulting battery manufacturers.
[0043] S103. Based on the second power consumption current, annual self-loss capacity, and specified warranty period, calculate the required battery capacity for the stored watch to be in non-stop running state for the specified warranty period.
[0044] Among them, the non-stop second running state refers to the true running state, that is, the rotation of the stepper motor is transmitted to the gear train, thereby driving the second hand, minute hand and hour hand to move. The stop second state refers to the stepper motor stopping rotating, and the transmission gear train (second hand, minute hand and hour hand) stopping moving.
[0045] Assuming the specified shelf life of the watches entering the warehouse is n years, where n can be any value such as 1, 2, 3, etc., and given that the typical shelf life of a watch is 2 years, we can calculate the required battery capacity for the watch under non-stop running conditions for n years using the calculation method in GB / T 6044-2016 "Analog Quartz Watches". This gives us the required battery capacity. For a shelf life of 1 year, we would use C1 to represent the required battery capacity; for n years, we would use C... n The required battery capacity is expressed by the following formula (1):
[0046] C n = n × 8.76 × (I m2 +∑If)+nC s (1)
[0047] Where ∑If represents the sum of the power consumption current If of all additional functions.
[0048] S104. Calculate the battery replacement cycle of the watch in storage under stop-seconds mode based on the remaining battery capacity, required battery capacity, first power consumption current and annual self-loss capacity.
[0049] The maximum storage period for watches in a stopped-seconds state is calculated using the following formula (2):
[0050]
[0051] In the formula, C represents the remaining battery capacity of the watches stored in the warehouse. s C represents the annual self-discharge capacity of the batteries in the watches stored in the warehouse. n The battery capacity required for a watch to be in storage for n years while in non-stop running mode, and If represent the power consumption current of other additional functions of the watch, I m1 I represents the first power consumption current when the watch is in stop-second mode. m2 L represents the second power consumption current of the watch when it is in a non-stop-second running state. max This refers to the maximum storage period during which a watch in the warehouse, under the premise of ensuring that the battery life (i.e., the customer's wearing time) reaches the manufacturer's promised warranty period (i.e., the specified warranty period), remains in a stopped-seconds state. This maximum storage period is used as the battery replacement cycle for the watch in the stopped-seconds state, serving as the upper limit for the duration during which the stopped-seconds state can be maintained. This better prevents the watch from being stored for too long and having insufficient battery capacity to maintain the manufacturer's promised warranty period when it is sold.
[0052] S20. Electronic devices acquire the identification code of the watches entering the warehouse and associate it with the battery replacement cycle for storage.
[0053] When a watch leaves the factory, a laser printer can be used to engrave a QR code or barcode on the watch case back / hang tag to generate a unique identification code for the watch. This identification code can be used to track the watch at various stages of its circulation, such as logistics, distribution storage, display, and counter storage.
[0054] Therefore, electronic devices can use their built-in camera to scan the watch's back cover / tag to obtain the watch's identification code, i.e., ID code, and then associate and store the calculated battery replacement cycle with the ID code.
[0055] S30. The electronic device sets the inventory status corresponding to the identification code of the watch entering the warehouse to the inventory status for the current second.
[0056] When a watch is accepted into the warehouse, the electronic device can set the inventory status corresponding to its identification code to a "stop-second" inventory status, indicating that the watch is currently stored in a "stop-second" state. Preferably, considering that the watches accepted may not be brand new and their remaining battery capacity may be low, the electronic device, when executing step S30, can first determine whether the calculated battery replacement cycle of the watch has reached a specified cycle. If it has, the watch is accepted into the warehouse, and a notification message indicating acceptance is issued; if not, it is rejected, and a notification message indicating rejection is issued. This allows for screening watches before they are accepted into the warehouse, and watches that do not meet the acceptance criteria can be managed separately, thereby improving monitoring efficiency.
[0057] S40. The electronic device starts a timer to obtain the duration of the stop second corresponding to the identification code of the watch in the warehouse.
[0058] When a watch is put into storage, the electronic device obtains the current time as the storage time of the watch, and starts the timer set on itself at the current time to start timing. The timing duration is counted in real time as the stop second duration of the watch, and is associated with and stored with its identification code.
[0059] S50. When the duration of the stop-seconds indicator reaches the battery replacement cycle, the electronic device will switch the inventory status corresponding to the identification code of the stored watch from the stop-seconds inventory status to the battery replacement requirement status.
[0060] In this embodiment of the invention, by updating the duration of the stop-second state of the stored watch in real time, it is possible to monitor whether the stored watch has reached the battery replacement cycle. If so, the battery of the stored watch needs to be replaced, and its status is also updated to the battery replacement state.
[0061] The "stop-seconds inventory" status can also include sub-status corresponding to each circulation stage. These stages include logistics, branch storage, display, exhibition, and counter storage, etc. While the incoming watches remain in the "stop-seconds inventory" status, they can be further subdivided into different sub-status. For example, the inventory status corresponding to the identification code of a certain incoming watch might be "stop-seconds inventory - counter storage," indicating that the incoming watch is in the counter storage sub-status of the "stop-seconds inventory" status. The storage status and storage duration for each circulation stage will also be dynamically updated.
[0062] As an optional implementation, after performing step S50, the following steps S60 to S90 (not shown) may also be performed:
[0063] S60. When an outbound instruction is detected, the electronic device obtains the target identification code of the outbound watch and obtains the target inventory status that matches the target identification code.
[0064] Here, "outgoing watch" refers to any one of the multiple incoming watches. That is, when the electronic device detects an outgoing command (such as when a user enters an outgoing command on the electronic device's user interface), the electronic device needs to verify the duration of the stop-seconds function of the outgoing watch. When the electronic device detects the watch within its camera's field of view, it can scan the watch's case back / tag to obtain its identification code, i.e., the target identification code. Then, it retrieves the target inventory status that matches the target identification code from real-time monitoring, determining whether the target inventory status is a stop-seconds inventory status or a battery replacement status, i.e., executing step S70.
[0065] S70. The electronic device determines whether the target inventory status is one where the battery needs to be replaced. If yes, proceed to step S80; otherwise, proceed to step S90.
[0066] S80. If the target inventory status is that the battery needs to be replaced, the electronic device issues a prompt message indicating that the watch will not be released from the warehouse.
[0067] In this embodiment of the invention, the duration L of the watch's stop-second status (including inventory time, logistics time, display time, etc.) from when it is put into storage until it is sold does not exceed the maximum storage period Lmax. Once it equals or exceeds this duration, its inventory status will switch from the stop-second inventory status to the battery replacement requirement status. In the battery replacement requirement status, a prompt will appear indicating that the battery needs to be replaced, and the watch will not be allowed to leave the warehouse or be sold.
[0068] For watches that have been repaired (with battery replaced), after passing inspection, they are controlled and put into storage as new watches, that is, the storage steps S10 to S50 are repeated.
[0069] S90. If the target inventory status is not in the state where the battery needs to be replaced, the electronic device issues a prompt message indicating that the watch should be released from the warehouse.
[0070] In step S90, if it is determined that the target inventory status is not in the battery replacement state, it means that the watch being shipped is still in the stop-second inventory state. Therefore, the current stop-second duration and target battery replacement cycle that match the target identification code can be further obtained. Then, the time difference between the current stop-second duration and the target battery replacement cycle is calculated. If the time difference reaches a specified time threshold, it means that the watch being shipped is still far from reaching the target battery replacement cycle and can be shipped. A prompt message indicating that the watch is being shipped is issued. Otherwise, if the time difference does not reach the specified time threshold, it means that the watch being shipped is close to reaching the target battery replacement cycle and will not be shipped. A prompt message indicating that the watch is not being shipped is issued.
[0071] As can be seen, implementing the embodiments of the present invention is applicable to all analog quartz watches (whose quartz movements have a stop-second function). When analog quartz watches with stop-second functions are stored in the warehouse, it is possible to monitor whether the watch's battery needs to be replaced. This facilitates the storage and monitoring management of analog quartz watches, effectively reducing the power consumption during the storage phase, extending the wear time for customers, and avoiding quality problems such as insufficient battery capacity when the watch is sold. Therefore, it can improve the accuracy of monitoring analog quartz watches, save resource costs, and reduce the emission of harmful substances.
[0072] Furthermore, adjustments can be made flexibly based on actual conditions (parameters such as the movement and battery, the manufacturer's warranty period, etc.), such as extending or shortening the actual wearing time *n* after the customer purchases the watch, making it more flexible and applicable. In summary, this invention can accurately calculate the battery replacement cycle of an analog quartz watch in a stopped-seconds state and can monitor the watch's battery capacity in real time.
[0073] To make the technical solutions and advantages of the present invention clearer, the specific embodiments of the present invention will be described in further detail below with reference to the examples. The following examples are used to illustrate the present invention, but are not intended to limit the scope of the invention.
[0074] Example:
[0075] 1) Checking the battery manufacturer information of a certain batch of pointer quartz watches (hereinafter referred to as "watches") confirmed that the battery capacity C = 23mA and the annual self-consumption capacity of the battery Cs = 1.61mA;
[0076] 2) According to the test method of the national standard GB / T6044-2016 "Analog Quartz Watches", the power consumption current Im1 in the stop-second state is 0.083μA, the power consumption current Im2 in the non-stop-second state is 0.806μA, and the power consumption current If of the additional function is 0.
[0077] 3) Calculate the battery capacity C2 required for the watch to run for 2 years without stopping the second:
[0078] C2 = n × 8.76 × (Im2 + ∑If) + nC s
[0079] = 2 × 8.76 × (0.806 + 0) + 2 × 1.61
[0080] ≈17.341mA
[0081] 4) Calculate the maximum inventory cycle L of the watch when it is in stop-seconds mode. max :
[0082]
[0083] 5) Use the maximum inventory cycle as the watch's battery replacement cycle, and start a timer to obtain the duration of the stop second. Link the battery replacement cycle and the duration of the stop second with the watch's identification code and store them in the traceability database.
[0084] 6) After inspecting the watch's appearance and performance, scan the barcode on the packaging to put it into the warehouse, set its inventory status to stop-second inventory status, and then dynamically update the stop-second duration in the traceability database.
[0085] 7) When the duration of the stop-seconds condition reaches 2.42 years, the inventory status corresponding to the identification code of the watch will be changed from the stop-seconds inventory status to the battery replacement requirement status.
[0086] 8) During each stage of the process, including outbound, logistics, branch storage, counter display, or sales, the watch will be scanned to determine if it needs a battery replacement. If so, an instruction will be given not to outbound or sell it.
[0087] 9) After a watch is returned for repair (with a replaced battery), scan the code to update the watch's traceability database and monitor it according to the newly added watches.
[0088] like Figure 2 As shown, an embodiment of the present invention discloses a monitoring device for an analog quartz watch, comprising:
[0089] The calculation unit 201 is used to calculate the battery replacement cycle of the watch in the stop-second state when an entry command is detected;
[0090] The association unit 202 is used to obtain the identification code of the watch entering the warehouse and associate it with the battery replacement cycle for storage;
[0091] Setting unit 203 is used to set the inventory status corresponding to the identification code of the inbound watch to the current second inventory status.
[0092] The timing unit 204 is used to start the timer to obtain the duration of the stop second corresponding to the identification code of the watch in the warehouse;
[0093] The switching unit 205 is used to switch the inventory status corresponding to the identification code of the stored watch from the stop-second inventory status to the battery replacement status when the duration of the stop-second operation reaches the battery replacement cycle.
[0094] Optionally, the aforementioned analog quartz watch monitoring device may also include the following units:
[0095] The barcode scanning unit is used to obtain the target identification code of the watch when an outbound command is detected;
[0096] The acquisition unit is used to acquire the target inventory status that matches the target identification code;
[0097] The judgment unit is used to determine whether the target inventory status is one where the battery needs to be replaced.
[0098] The first prompting unit is used to issue a prompt message indicating that the watch will not be released from the warehouse when the judgment unit determines that the target inventory status is that the battery needs to be replaced.
[0099] The second prompting unit is used to issue a prompt message indicating that the watch should be released from the warehouse when the judgment unit determines that the target inventory status is not in the state where the battery needs to be replaced.
[0100] As an optional implementation, the second prompting unit may include the following sub-units (not shown):
[0101] The acquisition subunit is used to acquire the current stop-second duration and target battery replacement cycle that match the target identification code when the judgment unit determines that the target inventory status is not a battery replacement status.
[0102] The calculation subunit is used to calculate the time difference between the current duration of the stop second and the target battery replacement cycle;
[0103] The prompting subunit is used to issue a prompt message indicating that the watch should be released from the warehouse when the time difference calculated by the calculation subunit reaches a specified time threshold.
[0104] Furthermore, the prompting subunit is also used to issue a prompt message indicating that the watch will not be released from the warehouse when the time difference calculated by the calculation subunit does not reach the specified time threshold.
[0105] Optionally, the calculation unit 201 is specifically used to obtain the first power consumption current when the watch is in a stopped-second state and the second power consumption current when it is in a non-stop-second running state; and to obtain the remaining battery capacity and annual self-loss capacity of the watch; then, based on the second power consumption current, the annual self-loss capacity and the specified shelf life, to calculate the required battery capacity of the watch in a non-stop-second running state over the specified shelf life; finally, based on the remaining battery capacity, the required battery capacity, the first power consumption current and the annual self-loss capacity, to calculate the battery replacement cycle of the watch in a stopped-second state.
[0106] like Figure 3 As shown, an embodiment of the present invention discloses an electronic device, including a memory 301 storing executable program code and a processor 302 coupled to the memory 301;
[0107] The processor 302 calls the executable program code stored in the memory 301 to execute the pointer-type quartz watch monitoring method described in the above embodiments.
[0108] This invention also discloses a computer-readable storage medium storing a computer program that causes a computer to execute the analog quartz watch monitoring method described in the above embodiments.
[0109] The purpose of the above embodiments is to reproduce and derive the technical solution of the present invention by way of example, and to fully describe the technical solution, purpose and effect of the present invention. The purpose is to enable the public to have a more thorough and comprehensive understanding of the disclosure of the present invention, and not to limit the scope of protection of the present invention.
[0110] The above embodiments are not an exhaustive list based on the present invention, and there may be many other embodiments not listed. Any substitutions and improvements made without departing from the concept of the present invention are within the protection scope of the present invention.
Claims
1. A monitoring method for an analog quartz watch, characterized in that, include: When an entry command is detected, the battery replacement cycle of the watch in the stop-second state is calculated. The identification code of the watch entering the warehouse is obtained and associated with the battery replacement cycle and stored. Set the inventory status corresponding to the identification code of the inbound watch to the current second inventory status; Start the timer to obtain the duration of the stop second corresponding to the identification code of the watch in the warehouse; When the duration of the stop-second countdown reaches the battery replacement cycle, the inventory status corresponding to the identification code of the watch in the warehouse is switched from the stop-second countdown inventory status to the battery replacement requirement status. Calculate the battery replacement cycle for watches in storage when they are in stop-second mode, including: The first power consumption current of the watch in the warehouse when it is in the stop-second state and the second power consumption current when it is in the non-stop-second running state are obtained. Obtain the remaining battery capacity and annual self-loss capacity of the watches stored in the warehouse; Based on the second power consumption current, the annual self-loss capacity, and the specified shelf life, the required battery capacity for the stored watch to be in non-stop running state for the specified shelf life is calculated. The battery replacement cycle of the watch in storage under stop-seconds mode is calculated based on the remaining battery capacity, the required battery capacity, the first power consumption current, and the annual self-loss capacity.
2. The monitoring method for a pointer-type quartz watch as described in claim 1, characterized in that, The method further includes: When an outbound command is detected, the target identification code of the outbound watch is obtained; Obtain the target inventory status that matches the target identification code; Determine whether the target inventory status indicates that the battery needs to be replaced; If the target inventory status is that the battery needs to be replaced, a prompt message is issued indicating that the watch will not be released from the warehouse.
3. The monitoring method for a pointer-type quartz watch as described in claim 2, characterized in that, The method further includes: If the target inventory status is not in the state where the battery needs to be replaced, a prompt message is issued to indicate that the watch should be released from the warehouse.
4. The monitoring method for a pointer-type quartz watch as described in claim 3, characterized in that, If the target inventory status is not in a state requiring battery replacement, a prompt message indicating that the watch should be released from the warehouse is issued, including: If the target inventory status is not a battery replacement status, obtain the current stop-second duration and target battery replacement cycle that match the target identification code; Calculate the time difference between the current stop-second duration and the target battery replacement cycle; If the time difference reaches a specified time threshold, a prompt message is issued to indicate that the watch has been released from the warehouse.
5. The monitoring method for a pointer-type quartz watch as described in claim 4, characterized in that, The method further includes: If the time difference does not reach the specified time threshold, a prompt message is issued indicating that the watch will not be released from the warehouse.
6. A quartz watch monitoring device with analog pointers, characterized in that, include: The calculation unit is used to calculate the battery replacement cycle of the watch in the stop-second state when an entry command is detected; The association unit is used to obtain the identification code of the watch entering the warehouse and associate it with the battery replacement cycle for storage; The setting unit is used to set the inventory status corresponding to the identification code of the inbound watch to the current second inventory status. The timing unit is used to start the timer to obtain the duration of the stop second corresponding to the identification code of the watch in the warehouse; The switching unit is used to switch the inventory status corresponding to the identification code of the in-warehouse watch from the stop-second inventory status to the battery replacement status when the duration of the stop-second period reaches the battery replacement cycle. Calculate the battery replacement cycle for watches in storage when they are in stop-second mode, including: The first power consumption current of the watch in the warehouse when it is in the stop-second state and the second power consumption current when it is in the non-stop-second running state are obtained. Obtain the remaining battery capacity and annual self-loss capacity of the watches stored in the warehouse; Based on the second power consumption current, the annual self-loss capacity, and the specified shelf life, the required battery capacity for the stored watch to be in non-stop running state for the specified shelf life is calculated. The battery replacement cycle of the watch in storage under stop-seconds mode is calculated based on the remaining battery capacity, the required battery capacity, the first power consumption current, and the annual self-loss capacity.
7. The pointer-type quartz watch monitoring device as described in claim 6, characterized in that, Also includes: The barcode scanning unit is used to obtain the target identification code of the watch when an outbound command is detected; The acquisition unit is used to acquire the target inventory status that matches the target identification code; The judgment unit is used to determine whether the target inventory status is a state where the battery needs to be replaced; The prompting unit is used to issue a prompt message indicating that the watch will not be released from the warehouse when the judgment unit determines that the target inventory status is in the state of needing battery replacement.
8. An electronic device, characterized in that, It includes a memory storing executable program code and a processor coupled to the memory; the processor calls the executable program code stored in the memory to execute the pointer quartz watch monitoring method according to any one of claims 1 to 5.
9. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores a computer program, wherein the computer program causes a computer to perform the analog quartz watch monitoring method according to any one of claims 1 to 5.
Citation Information
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