Laser blood sampling energy storage detection tool

By introducing an automatic working switch and time interval setting into the laser blood sampling energy storage testing fixture, the problem of inconvenient operation of the manual charging fixture in the stability testing of a single product is solved, realizing the switching between automatic charging and manual modes and improving the convenience of testing.

CN224341619UActive Publication Date: 2026-06-09CHENGDU VODA WELLCOME TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHENGDU VODA WELLCOME TECH CO LTD
Filing Date
2025-07-23
Publication Date
2026-06-09

AI Technical Summary

Technical Problem

The existing laser blood collection device charging fixture requires operators to manually press buttons to charge and release energy, which makes it inconvenient to operate in the case of single product stability testing.

Method used

An automatic working switch is set on the charging fixture. Automatic charging is achieved by setting the time interval through the button. It supports switching between manual and automatic working modes, reducing manual operation.

Benefits of technology

It eliminates the need for staff to manually press buttons multiple times, making it suitable for individual product stability testing of laser generators, thus improving operational convenience and applicability.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model provides a kind of laser blood sampling energy storage detection tool, comprising: energy charging tool, the energy charging tool is connected with laser generator by connecting line, the energy charging tool is provided with automatic work switch, voltage regulating key, energy charging button, trigger button, and, automatic work switch, voltage regulating key, energy charging button, trigger button, connecting line are connected with the control module of energy charging tool;Manual work mode and automatic work mode between the switching of the two working modes can be realized by automatic work switch, time interval can be set by button under automatic work mode, so that energy charging tool carries out automatic energy charging according to time interval, without manual staff to press button multiple times, applicable to the scene where single product stability detection is generated to laser generator, it is more convenient.
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Description

Technical Field

[0001] This utility model relates to the field of laser blood sampling energy storage detection technology, specifically to a laser blood sampling energy storage detection tooling. Background Technology

[0002] A laser blood collection device is a medical device that uses a laser generator to emit a laser beam in a very short time, instantly generating high temperatures on the skin tissue, vaporizing it to create a micropore, thereby achieving the purpose of collecting blood samples. Currently, a charging fixture is typically used to test the laser generator for this medical device. However, most charging fixtures on the market require operators to manually press a button to charge the device, and then manually press the button again to trigger the laser generator to release the charged energy. This requires manual button pressing for every test, which is inconvenient and unsuitable for scenarios involving individual product stability testing of the laser generator. Utility Model Content

[0003] The purpose of this invention is to provide a laser blood sampling energy storage testing fixture. An automatic working switch is set on the charging fixture. In automatic working mode, the time interval can be set by pressing a button, so that the charging fixture automatically charges according to the time interval, without the need for the operator to manually press the button multiple times. It is suitable for scenarios where the stability of a single product is tested by a laser generator, which is more convenient.

[0004] To solve the above-mentioned technical problems, the present invention adopts the following solution:

[0005] A laser blood sampling energy storage detection fixture includes: an energy charging fixture, which is connected to a laser generator via a wiring connection. The energy charging fixture is equipped with an automatic operation switch, a voltage adjustment key, a charging button, and a trigger button. Furthermore, the automatic operation switch, voltage adjustment key, charging button, trigger button, and wiring connection are all connected to the control module of the energy charging fixture.

[0006] The control module is used to receive feedback signals from the user triggering the automatic working switch. When the automatic working switch is not triggered, the control module sequentially receives key signals from the user operating the voltage adjustment key, the charging key, and the trigger key. Based on the key signals from the user operating the voltage adjustment key and the charging key, a non-automatic charging signal is generated, and based on the key signal from the user operating the trigger key, a non-automatic trigger signal is generated. When the automatic working switch is triggered, the control module sequentially receives key signals from the user operating the voltage adjustment key and the charging key. Based on the key signals from the user operating the voltage adjustment key and the charging key, an automatic charging signal is generated, and based on the key signal from the user operating the charging key, an automatic trigger signal is generated.

[0007] The control module is used to charge the laser generator in response to a non-automatic charging signal or an automatic charging signal, and to release energy to the laser generator in response to a non-automatic trigger signal or an automatic trigger signal.

[0008] A further preferred technical solution is as follows: the voltage adjustment key is used to feed back a corresponding key signal to the control module after the user operates the voltage adjustment key. Based on the corresponding key signal, the control module receives the charging voltage and generates a non-automatic charging signal or an automatic charging signal based on the charging voltage and the key signal of the user operating the charging key, so as to charge the device with the charging voltage.

[0009] A further preferred technical solution is as follows: the charging button is used to send a corresponding button signal to the control module after the user triggers the charging button. When the automatic working switch is not triggered, the control module generates a non-automatic charging signal with the charging voltage at the current time according to the corresponding button signal, and responds to the non-automatic charging signal to charge.

[0010] A further preferred technical solution is as follows: the charging button is used to provide a corresponding button signal to the control module after the user triggers the charging button. Under the trigger of the automatic working switch, the control module generates an automatic charging signal with charging voltage after a time interval according to the corresponding button signal, and responds to the automatic charging signal to charge after a time interval.

[0011] A further preferred technical solution is as follows: under the trigger of the automatic working switch, the control module generates an automatic trigger signal corresponding to the automatic charging signal according to the corresponding button signal, so that the control module responds to the automatic charging signal to charge, and after charging is completed, it responds to the automatic trigger signal to release energy to the laser generator through the connection.

[0012] A further preferred technical solution is as follows: the charging fixture is also equipped with a first display screen and a second display screen, both of which are connected to the control module, so that the first display screen and the second display screen respectively display the charging voltage and charging time when the control module is charging.

[0013] A further preferred technical solution is as follows: the control module is connected to an energy storage capacitor and a trigger coil, which are connected to the laser generator via wires. The energy storage capacitor is charged after the control module responds to a non-automatic charging signal or an automatic charging signal, and releases energy to the laser generator after the control module responds to a non-automatic trigger signal or an automatic trigger signal. The trigger coil triggers the laser generator after the control module responds to a non-automatic trigger signal or an automatic trigger signal, facilitating the release of energy from the laser generator.

[0014] A further preferred technical solution is as follows: the connection includes a trigger electrode connection, an output positive electrode connection, and an output negative electrode connection; one end of the output positive electrode connection and the output negative electrode connection are both connected to an energy storage capacitor, and the other end of the connection is both connected to a laser generator; one end of the trigger electrode connection is connected to a trigger coil, and the other end is connected to a laser generator.

[0015] A further preferred technical solution is as follows: the charging fixture is equipped with a power switch, which is connected to the control module. The power switch is used to supply power to the control module, the energy storage capacitor, and the trigger coil after the user triggers the power switch.

[0016] The beneficial effects of this utility model are:

[0017] This utility model provides a laser blood sampling energy storage testing fixture, which mainly adds an automatic working switch to the original charging fixture. By adding an automatic working mode to the existing charging fixture that uses a manual working mode, the automatic working switch allows the charging fixture to automatically charge according to the time interval by setting the charging button. This eliminates the need for the operator to manually press the button multiple times, making it more convenient for scenarios where the stability of a single product is tested by the laser generator.

[0018] Furthermore, the automatic working switch allows switching between manual and automatic working modes, making the charging fixture suitable for different testing scenarios and convenient for users to operate. Attached Figure Description

[0019] Figure 1 This is a schematic diagram of the charging tool in Embodiment 1 of this utility model;

[0020] Figure 2 This is a schematic diagram of the charging tooling in Embodiment 1 of this utility model;

[0021] Figure 3 This is a schematic diagram of the circuit design of the control module in Embodiment 1 of this utility model;

[0022] Figure 4 This is a schematic diagram of the circuit design of the voltage adjustment key and the charging key in Embodiment 1 of this utility model;

[0023] Figure 5 This is a schematic diagram of the circuit design for the trigger button in Embodiment 1 of this utility model;

[0024] Figure 6 This is a schematic diagram of the circuit design of the automatic operating switch in Embodiment 1 of this utility model;

[0025] Explanation of reference numerals in the attached diagram: 1-Voltage adjustment button, 2-Charging button, 3-Trigger button, 4-Automatic working switch, 5-First display screen, 6-Second display screen, 7-Discharge device, 8-Power switch, 9-Trigger electrode connection, 10-Output positive electrode connection, 11-Output negative electrode connection. Detailed Implementation

[0026] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings and specific embodiments, but the embodiments of this utility model are not limited thereto.

[0027] In the description of this utility model, it should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "longitudinal", "lateral", "horizontal", "inner", "outer", "front", "rear", "top", "bottom", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the utility model product is in use. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0028] In the description of this utility model, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set up," "have," "install," "connect," and "connect" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0029] The present invention will now be described in detail with reference to the accompanying drawings and embodiments:

[0030] Example 1

[0031] like Figures 1-2 As shown, a laser blood sampling energy storage testing fixture includes a charging fixture. The charging fixture is connected to a laser generator via a trigger electrode connection 9, a positive output connection 10, and a negative output connection 11. The charging fixture is primarily used to release the charged energy to the laser generator after charging. This fixture can trigger the laser generator via the trigger electrode connection 9, allowing the laser generator to receive the charged energy output from the charging fixture through the positive output connection 10 and the negative output connection 11, thus performing product testing on the laser generator. In this embodiment, no limitation is placed on the laser generator; all laser generators can be used in this manner.

[0032] The charging fixture is equipped with an automatic operation switch 4, a voltage adjustment key 1, a charging button 2, a trigger button 3, a first display screen 5, a second display screen 6, a discharge device 7, and a power switch 8. A control module controls these components. Specifically, the control module is connected to the automatic operation switch 4, voltage adjustment key 1, charging button 2, trigger button 3, first display screen 5, second display screen 6, and a driving power supply. The driving power supply is connected to the power supply battery, the power switch 8, the energy storage capacitor, the trigger coil, and the control module. When the user triggers the power switch 8, the driving power supply drives the power supply battery, which then supplies power to the energy storage capacitor, the trigger coil, and the control module. The output terminal of the energy storage capacitor is connected to the positive output line 10 and the negative output line 11, and the trigger coil is connected to the trigger line 9.

[0033] Specifically, the circuit design of the control module is as follows: Figure 3 As shown, Figure 3 There are three button interfaces: key1, key2, and key3, which are used to connect to voltage adjustment button 1, charging button 2, and trigger button 3, respectively. The circuit design of voltage adjustment button 1 and charging button 2 is as follows. Figure 4 As shown, the circuit design of the trigger button 3 is as follows: Figure 5 As shown. And, as... Figure 6 As shown, J1 is an automatic switching switch. When the user presses the automatic switching switch, the working mode of the charging tool is switched to automatic working mode, and it is connected to the control module.

[0034] Based on the above structure, this utility model realizes the switching between two working modes, manual working mode and automatic working mode, through the automatic working switch 4. The control module is used to receive the feedback signal of the user triggering the automatic working switch 4, obtain the triggering state of the automatic working switch 4 according to the feedback information, and enable the control module to perform different controls on all buttons based on different triggering states.

[0035] When the automatic working switch 4 is not triggered, the control module sequentially receives key signals from the user's operation of the voltage adjustment key 1, the charging key 2, and the trigger key 3. Based on the key signals from the user's operation of the voltage adjustment key 1 and the charging key 2, it generates a non-automatic charging signal, and based on the key signal from the user's operation of the trigger key 3, it generates a non-automatic trigger signal. When the automatic working switch 4 is triggered, the control module sequentially receives key signals from the user's operation of the voltage adjustment key 1 and the charging key 2. Based on the key signals from the user's operation of the voltage adjustment key 1 and the charging key 2, it generates an automatic charging signal, and based on the key signal from the user's operation of the charging key 2, it generates an automatic trigger signal.

[0036] The control module is used to charge the laser generator in response to a non-automatic charging signal or an automatic charging signal, and to release energy to the laser generator in response to a non-automatic trigger signal or an automatic trigger signal.

[0037] A further preferred technical solution is as follows: the voltage adjustment key 1 is used to feed back a corresponding key signal to the control module after the user operates the voltage adjustment key 1. The control module receives the charging voltage according to the corresponding key signal, and generates a non-automatic charging signal or an automatic charging signal according to the charging voltage and the key signal of the user operating the charging key 2, so as to charge the device with the charging voltage.

[0038] Specifically, the voltage adjustment key 1 can be a digital encoder, which allows the user to directly switch the charging voltage value so that the control module can obtain the charging voltage for charging.

[0039] A further preferred technical solution is as follows: the charging button 2 is used to provide a corresponding button signal to the control module after the user triggers the charging button 2. When the automatic working switch 4 is not triggered, the control module generates a non-automatic charging signal with the charging voltage at the current time according to the corresponding button signal, and responds to the non-automatic charging signal to perform charging. Specifically, the automatic working switch 4 not being triggered is the manual working mode. In the manual working mode, when the user triggers the charging button 2, the charging fixture will immediately begin charging, even if the control module generates a non-automatic charging signal with the charging voltage at the current time and responds to the non-automatic charging signal to perform charging.

[0040] A further preferred technical solution is as follows: the charging button 2 is used to provide a corresponding button signal to the control module after the user triggers the charging button 2. Under the triggering of the automatic working switch 4, the control module generates an automatic charging signal with a charging voltage after a time interval based on the corresponding button signal, and then responds to the automatic charging signal to perform charging after the time interval has elapsed. Specifically, the setting of the time interval in the control module is a conventional technical method, which will not be elaborated further here. After the user sets the time interval through the charging button 2, the control module generates an automatic charging signal with a charging voltage after each time interval and responds to the automatic charging signal to perform charging.

[0041] A further preferred technical solution is as follows: When triggered by the automatic working switch 4, the control module generates an automatic trigger signal corresponding to the automatic charging signal based on the corresponding button signal. This causes the control module to charge the laser in response to the automatic charging signal. After charging is complete, the laser generator releases energy via a connection in response to the automatic trigger signal. Specifically, the automatic trigger signal corresponds to the automatic charging signal. Alternatively, the control module can be time-set so that automatic triggering occurs after each charging cycle. Setting the time in the control module is a conventional technique and will not be elaborated further here.

[0042] A further preferred technical solution is as follows: the charging fixture is also equipped with a first display screen 5 and a second display screen 6, both of which are connected to the control module, so that the first display screen 5 and the second display screen 6 respectively display the charging voltage and charging time when the control module is charging.

[0043] A further preferred technical solution is as follows: the energy storage capacitor is charged after the control module responds to a non-automatic charging signal or an automatic charging signal, and releases energy to the laser generator after the control module responds to a non-automatic trigger signal or an automatic trigger signal; the trigger coil triggers the laser generator after the control module responds to a non-automatic trigger signal or an automatic trigger signal, which facilitates the release of energy from the laser generator.

[0044] In summary, the working process of the charging tool proposed in this utility model will be further described as follows:

[0045] With the automatic working switch 4 not triggered, first, adjust the charging voltage using the voltage adjustment key 1. After adjustment, press the charging button 2 to begin charging. At this time, the first display screen 5 shows the current charged voltage value. When charging is complete, the charging fixture will emit a buzzer and maintain a stable voltage. Then, press the trigger button 3 to trigger the connected laser generator, releasing the charged energy. The laser generator emits a pulse laser. The first display screen 5 displays the current voltage, and the second display screen 6 displays the set countdown. If automatic operation does not occur, you can replace the laser generator with another one and repeat the previous steps for testing.

[0046] When triggered by the automatic working switch 4, first press the automatic working switch 4 to switch to automatic working mode. Then, adjust the charging voltage value using the voltage adjustment key 1, and then press the charging button 2 to set the working time. At this time, the working interval time of 2, 3, 4, 5, and 6 minutes can be set using the charging button 2. The device will automatically charge according to the interval time. After the set time is completed, the charging fixture can wait for 5 seconds before the device automatically charges. After charging to the set charging voltage, it will automatically trigger and release energy after another 500ms. The second display screen 6 will display the set countdown. After the countdown is completed, the device will automatically charge again in a cycle. This mode is used for stability testing of a single laser generator product. When the charging fixture enters the automatic working mode, all other buttons are invalid.

[0047] It is understood that the above embodiments are merely exemplary implementations used to illustrate the principles of this utility model, and the utility model is not limited thereto. For those skilled in the art, various modifications and improvements can be made without departing from the spirit and essence of this utility model, and these modifications and improvements are also considered to be within the protection scope of this utility model.

Claims

1. A laser blood sampling energy storage detection tool, characterized in that, include: The charging fixture is connected to the laser generator via a wire. The charging fixture is equipped with an automatic working switch (4), a voltage adjustment key (1), a charging button (2), and a trigger button (3). The automatic working switch (4), the voltage adjustment key (1), the charging button (2), the trigger button (3), and the wire are all connected to the control module of the charging fixture. The control module is used to receive feedback signals from the user triggering the automatic working switch (4). When the automatic working switch (4) is not triggered, the control module receives the key signals of the user operating the voltage adjustment key (1), the charging key (2), and the trigger key (3) in sequence. It generates a non-automatic charging signal based on the key signals of the user operating the voltage adjustment key (1) and the charging key (2), and generates a non-automatic trigger signal based on the key signal of the user operating the trigger key (3). When the automatic working switch (4) is triggered, the control module receives the key signals of the user operating the voltage adjustment key (1) and the charging key (2) in sequence. It generates an automatic charging signal based on the key signals of the user operating the voltage adjustment key (1) and the charging key (2), and generates an automatic trigger signal based on the key signal of the user operating the charging key (2). The control module is used to charge the laser generator in response to a non-automatic charging signal or an automatic charging signal, and to release energy to the laser generator in response to a non-automatic trigger signal or an automatic trigger signal.

2. The laser blood sampling energy storage detection tool of claim 1, wherein, The voltage adjustment key (1) is used to feed back the corresponding key signal to the control module after the user operates the voltage adjustment key (1). The control module receives the charging voltage according to the corresponding key signal. The non-automatic charging signal or automatic charging signal is generated according to the charging voltage and the key signal of the user operating the charging key (2) to charge the device with the charging voltage.

3. The laser blood sampling energy storage detection tool of claim 2, wherein, The charging button (2) is used to provide a corresponding button signal to the control module after the user triggers the charging button (2). When the automatic working switch (4) is not triggered, the control module generates a non-automatic charging signal with the charging voltage at the current time according to the corresponding button signal, and charges in response to the non-automatic charging signal.

4. The laser blood sampling energy storage detection tool of claim 2, wherein, The charging button (2) is used to provide a corresponding button signal to the control module after the user triggers the charging button (2). Under the trigger of the automatic working switch (4), the control module generates an automatic charging signal with the charging voltage after a time interval according to the corresponding button signal, and responds to the automatic charging signal to charge after a time interval.

5. The laser blood sampling energy storage detection tool of claim 4, wherein, When triggered by the automatic working switch (4), the control module generates an automatic trigger signal corresponding to the automatic charging signal according to the corresponding key signal, so that the control module responds to the automatic charging signal to charge the laser. After the charging is completed, the laser generator is released through the connection in response to the automatic trigger signal.

6. The laser blood sampling energy storage detection tool of claim 1, wherein, The charging fixture is also equipped with a first display screen (5) and a second display screen (6). Both the first display screen (5) and the second display screen (6) are connected to the control module, so that the first display screen (5) and the second display screen (6) respectively display the charging voltage and charging time when the control module is charging.

7. The laser blood sampling energy storage detection tool of claim 1, wherein, The control module is connected with an energy storage capacitor and a trigger coil, the energy storage capacitor and the trigger coil are connected with the laser generator through a connecting line, the energy storage capacitor is charged after the control module responds to the non-automatic charging signal or the automatic charging signal, and the energy of the laser generator is released after the control module responds to the non-automatic trigger signal or the automatic trigger signal; the trigger coil triggers the laser generator after the control responds to the non-automatic trigger signal or the automatic trigger signal, so that the energy of the laser generator is released.

8. The laser blood sampling energy storage detection tool of claim 7, wherein, The connecting line comprises a trigger electrode connecting line (9), an output positive electrode connecting line (10) and an output negative electrode connecting line (11), one end of the output positive electrode connecting line (10) and the output negative electrode connecting line (11) is connected with the energy storage capacitor, and the other end of the output positive electrode connecting line (10) and the output negative electrode connecting line (11) is connected with the laser generator; one end of the trigger electrode connecting line (9) is connected with the trigger coil, and the other end of the trigger electrode connecting line (9) is connected with the laser generator.

9. The laser blood sampling energy storage detection tool of claim 7, wherein, The charging tool is provided with a power switch (8), the power switch (8) is connected with the control module, and the power switch (8) is used for supplying power to the control module, the energy storage capacitor and the trigger coil after a user triggers the power switch (8).