Electric mosquito incense detection device and detection method

CN122218317BActive Publication Date: 2026-08-07WENZHOU OUSTAR ELECTRICAL INDUSTRY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
WENZHOU OUSTAR ELECTRICAL INDUSTRY CO LTD
Filing Date
2026-05-19
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

[0003]本申请实施例提供了一种电蚊香检测设备及检测方法,可以解决因转运部件在连续运转过程中产生定位累积误差而导致测试件与电蚊香检测点对接有误和无法判断测试件的测试位置是否完全覆盖金属插接头的各测试点的问题

Benefits of technology

[0005]本申请提供的电蚊香检测设备的检测方法,阻值测试组件设置于机架上可以在对电蚊香进行检测时提高可靠性和稳定性;其中,辅助检测件与测试件相配合,在电蚊香经过辅助检测件时,能精确触发控制件发送电信号,进而使伸缩件带动测试件准确调整位移距离,让测试件与电蚊香的第一金属头和第二金属头完全配合,有效解决了因转运部件连续运转产生定位累积误差而导致测试件与电蚊香检测点对接有误以及无法判断测试位置是否完全覆盖金属插接头各测试点的问题,还可以在批量检测电蚊香的检测场景中,对电蚊香的阻值检测更加精准可靠,提高了整个检测流程的效率和准确性。

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Abstract

The application is suitable for the technical field of electric mosquito-repellent incense detection, and particularly relates to an electric mosquito-repellent incense detection device and a detection method. The method comprises a rack, a power component, an annular bearing component, a feeding assembly, a discharging assembly, an ultrasonic detection assembly, a voltage resistance detection assembly and a resistance value testing assembly. The resistance value testing assembly is arranged on the rack and located between the discharging assembly and the ultrasonic detection assembly. A control component is arranged on the rack and in communication connection with the resistance value testing assembly. The resistance value testing assembly comprises a base, an extension component, a testing component and an auxiliary detection component. The base is arranged on the rack. One end of the extension component is arranged on the base and perpendicular to the base. The testing component is arranged at the other end of the extension component and faces the annular bearing component. The auxiliary detection component is arranged on the base perpendicularly and parallel to the testing component. The electric mosquito-repellent incense detection device provided by the application can solve the problems of misalignment and inability to determine whether the test position covers each test point due to positioning cumulative error.
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Description

Technical Field

[0001] This application belongs to the field of electric mosquito coil detection technology, and in particular relates to an electric mosquito coil detection device and detection method. Background Technology

[0002] Electric mosquito coils are household hygiene and insecticidal products used indoors to repel and kill mosquitoes by heating and releasing effective insecticidal ingredients. Common forms include electric mosquito coil mats and electric mosquito coil liquids. Electric mosquito coil testing equipment is a device used to test finished electric mosquito coil products. Testing of finished electric mosquito coil products mostly involves manual testing or using multiple devices to perform different tests on each product to meet specific requirements. In related technologies, in the testing of mass-produced electric mosquito coils, multiple electric mosquito coils need to be transferred to different devices via a transfer component (i.e., the ring-shaped carrier in this application) to complete resistance testing, ultrasonic testing, and withstand voltage testing, respectively. During continuous operation, the transfer component may have cumulative positioning errors, which may cause deviations in the connection between the test piece for testing the resistance of the electric mosquito coil and the test point of the electric mosquito coil. This makes it impossible to accurately determine whether the test position of the test piece completely covers the resistance test points of the metal connector of the electric mosquito coil. Summary of the Invention

[0003] This application provides an electric mosquito coil testing device and method, which can solve the problems of incorrect docking between the test piece and the electric mosquito coil testing point due to the cumulative positioning error generated by the transfer component during continuous operation, and the inability to determine whether the test position of the test piece completely covers each test point of the metal connector.

[0004] In a first aspect, embodiments of this application provide an electric mosquito coil testing device, including a frame, a power component, an annular support component, and a feeding assembly, a discharging assembly, an ultrasonic testing assembly, and a pressure resistance testing assembly circumferentially disposed on the frame; the annular support component is disposed on the frame and is used to mount multiple electric mosquito coils to be tested and to drive the multiple electric mosquito coils to be tested to rotate under the drive of the power component; the power output shaft of the power component is connected to the annular support component to drive the annular support component to rotate to the position of each testing assembly; the electric mosquito coil testing device further includes: A resistance testing component is mounted on the frame and located between the discharge component and the ultrasonic detection component; the resistance testing component is used to detect the resistance of the electric mosquito repellent after it is plugged into and engaged with the first and second metal heads of the electric mosquito repellent to be tested; and A control component is mounted on the rack and is communicatively connected to the resistance testing assembly; the control component is used to send electrical signals to the resistance testing assembly. The resistance testing assembly includes a base, a telescopic component, a test piece, and an auxiliary detection component. The base is mounted on the frame. One end of the telescopic component is mounted on the base and is perpendicular to the base. The telescopic component faces the annular support and is communicatively connected to the control component. The test piece is mounted on the other end of the telescopic component and faces the annular support. The auxiliary detection component is vertically mounted on the base and parallel to the test piece. Under the action of the power component, when the electric mosquito coil passes the auxiliary detection component, the control component sends the electrical signal to the telescopic component. The telescopic component adjusts the displacement distance of the test component according to the electrical signal so that the first metal head and the second metal head of the electric mosquito coil are fully engaged with the test component, so that the test component can test the resistance value of each test point of the electric mosquito coil.

[0005] The testing method for the electric mosquito coil testing equipment provided in this application improves the reliability and stability of testing electric mosquito coils by mounting the resistance testing component on the frame. The auxiliary testing component works in conjunction with the test component. When the electric mosquito coil passes through the auxiliary testing component, it precisely triggers the control component to send an electrical signal, which in turn causes the telescopic component to accurately adjust the displacement distance of the test component. This ensures that the test component fully engages with the first and second metal heads of the electric mosquito coil. This effectively solves the problems of incorrect docking between the test component and the electric mosquito coil testing points due to accumulated positioning errors caused by the continuous operation of the transfer component, as well as the inability to determine whether the test position completely covers all test points of the metal connector. Furthermore, in batch testing scenarios of electric mosquito coils, the resistance testing of electric mosquito coils is more accurate and reliable, improving the efficiency and accuracy of the entire testing process.

[0006] Secondly, embodiments of this application provide a detection method for an electric mosquito coil detection device, applied to the electric mosquito coil detection device described in the first aspect above. The resistance testing component further includes a pressure sensor and a displacement sensor; the pressure sensor is disposed on a vertical plane segment, and the displacement sensor is disposed on an arc segment; the method includes: If multiple electric mosquito coils to be tested are detected mounted on the annular support, time information is determined; wherein, the time information is used to indicate the time required for rotation from the position of the first electric mosquito coil to be tested to the position of the auxiliary detection element; Based on the time information, first touch information and second touch information are obtained; wherein, the first touch information is used to indicate the pressure and compression length value generated on the arc segment when the second metal head moves, and the second touch information is used to indicate the pressure and compression length value generated on the arc segment when the first metal head moves. Time consumption information is obtained based on the time information; wherein, the time consumption information is used to indicate the time required before obtaining the second touch information after obtaining the first touch information; Determine the second contact information of the second metal head and the first contact information of the first metal head; wherein, the second contact information is used to indicate the contact distance value and contact pressure value when the end of the second metal head contacts the first orientation surface, and the first contact information is used to indicate the contact distance value and contact pressure value when the end of the first metal head contacts the first orientation surface. When the time consumption information satisfies the preset time consumption information, and the second contact information is the same as the first contact information, adjustment information is obtained based on the first touch information and the second touch information; wherein, the adjustment information is used to indicate the displacement adjustment distance of the telescopic member.

[0007] The detection method of the electric mosquito coil detection device provided in this application, when multiple electric mosquito coils to be tested are installed on a ring-shaped support, determines time information; obtains first touch information and second touch information based on the time information; obtains time consumption information based on the time information; determines the second contact information of the second metal head and the first contact information of the first metal head; and, when the time consumption information meets the preset time consumption information and the second contact information and the first contact information are the same, obtains adjustment information based on the first touch information and the second touch information, so that the test piece can accurately align with the first and second metal heads of the electric mosquito coil. A pressure sensor is set on the vertical plane segment, which can sense the pressure generated on the arc segment when the metal head moves in real time. A displacement sensor is set on the arc segment, which can accurately measure the compression length value. The two work together to provide reliable data for obtaining the first touch information and the second touch information. The determination of time information lays the foundation for subsequent acquisition of other information based on time relationships. The time consumption information obtained from the time information clearly reflects the time interval between obtaining different touch information. Determining the second contact information of the second metal head and the first contact information of the first metal head further ensures the accuracy of the docking between the test piece and the metal head. When the time consumption information meets the preset conditions and the two contact information are the same, the adjustment information obtained based on the first and second contact information can accurately indicate the displacement adjustment distance of the telescopic component, enabling the test piece to accurately reach the test position and complete the detection of the resistance value of each test point of the electric mosquito coil. This greatly improves the accuracy and reliability of the electric mosquito coil resistance detection and enhances the efficiency of the entire testing process. Attached Figure Description

[0008] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0009] Figure 1 This is a schematic diagram of the structure of an electric mosquito coil detection device provided in one embodiment of this application; Figure 2 This is a schematic diagram of the structure of the auxiliary detection element of the resistance testing component provided in one embodiment of this application; Figure 3 yes Figure 2 Enlarged view of section A in the image; Figure 4 This is a cross-sectional view of the test piece of the resistance testing assembly provided in one embodiment of this application; Figure 5 This is a schematic flowchart of the detection method of the electric mosquito coil detection device provided in one embodiment of this application; Figure 6 This is a schematic diagram of the implementation process of step S100 in the detection method of the electric mosquito coil detection device provided in an embodiment of this application; Figure 7 This is a schematic diagram of the implementation process of step S200 in the detection method of the electric mosquito coil detection device provided in an embodiment of this application; Figure 8 This is a schematic diagram of the detection system of the electric mosquito coil detection device provided in the embodiments of this application; Figure 9 This is a schematic diagram of the structure of the control component provided in the embodiments of this application.

[0010] The reference numerals in the figures are as follows: 100, electric mosquito coil testing equipment; 10, frame; 20, power component; 30, ring-shaped bearing component; 40, feeding assembly; 50, discharging assembly; 60, ultrasonic testing assembly; 70, withstand voltage testing assembly; 80, resistance testing assembly; 81, base; 82, telescopic component; 83, test component; 831, support part; 832, first testing part; 83201, first testing channel; 833, second testing part; 83301, second testing channel; 84, auxiliary testing component; 841, support component; 842, elastic component; 843, force-bearing component; 8431, vertical plane section; 8432, arc-shaped section; 90, control component. Detailed Implementation

[0011] In the following description, specific details such as particular system architectures and techniques are set forth for illustrative purposes and not for limitation, in order to provide a thorough understanding of the embodiments of this application. However, those skilled in the art will understand that this application may also be implemented in other embodiments without these specific details. In other instances, detailed descriptions of well-known systems, apparatuses, circuits, and methods have been omitted so as not to obscure the description of this application with unnecessary detail.

[0012] It should be understood that, when used in this application specification and the appended claims, the term "comprising" indicates the presence of the described features, integrals, steps, operations, elements and / or components, but does not exclude the presence or addition of one or more other features, integrals, steps, operations, elements, components and / or a collection thereof.

[0013] It should also be understood that the term “and / or” as used in this application specification and the appended claims means any combination of one or more of the associated listed items and all possible combinations, and includes such combinations.

[0014] As used in this application specification and the appended claims, the term "if" may be interpreted, depending on the context, as "when," "once," "in response to determination," or "in response to detection." Similarly, the phrase "if determined" or "if detected [the described condition or event]" may be interpreted, depending on the context, as meaning "once determined," "in response to determination," "once detected [the described condition or event]," or "in response to detection [the described condition or event]."

[0015] Furthermore, in the description of this application and the appended claims, the terms "first," "second," "third," etc., are used only to distinguish descriptions and should not be construed as indicating or implying relative importance.

[0016] References to "one embodiment" or "some embodiments" as described in this specification mean that one or more embodiments of this application include a specific feature, structure, or characteristic described in connection with that embodiment. Therefore, the phrases "in one embodiment," "in some embodiments," "in other embodiments," "in still other embodiments," etc., appearing in different parts of this specification do not necessarily refer to the same embodiment, but rather mean "one or more, but not all, embodiments," unless otherwise specifically emphasized. The terms "comprising," "including," "having," and variations thereof mean "including but not limited to," unless otherwise specifically emphasized.

[0017] Electric mosquito coils are household hygiene and insecticidal products used indoors to repel and kill mosquitoes by heating and releasing effective insecticidal ingredients. Common forms include electric mosquito coil mats and electric mosquito coil liquids. Electric mosquito coil testing equipment is a device used to test finished electric mosquito coil products. Testing of finished electric mosquito coil products mostly involves manual testing or using multiple devices to perform different tests on each product to meet specific requirements. In related technologies, in the testing of mass-produced electric mosquito coils, multiple electric mosquito coils need to be transferred to different devices via a transfer component (i.e., the ring-shaped carrier in this application) to complete resistance testing, ultrasonic testing, and withstand voltage testing, respectively. During continuous operation, the transfer component may have cumulative positioning errors, which may cause deviations in the connection between the test piece for testing the resistance of the electric mosquito coil and the test point of the electric mosquito coil. This makes it impossible to accurately determine whether the test position of the test piece completely covers the resistance test points of the metal connector of the electric mosquito coil.

[0018] Based on this, in order to improve the problems in related technologies where the positioning error caused by the continuous operation of the transfer component leads to incorrect docking between the test piece and the electric mosquito coil detection point, and the inability to determine whether the test position of the test piece completely covers each test point of the metal connector, the embodiments of this application provide the following solution.

[0019] Please see Figure 1 This application provides an electric mosquito coil testing device 100, including a frame 10, a power component 20, an annular support component 30, and a feeding assembly 40, a discharging assembly 50, an ultrasonic testing assembly 60, and a pressure resistance testing assembly 70 circumferentially arranged on the frame 10. The annular support component 30 is disposed on the frame 10 and is used to mount multiple electric mosquito coils to be tested and to drive the multiple electric mosquito coils to be tested to rotate under the drive of the power component 20. The power output shaft of the power component 20 is connected to the annular support component 30 to drive the annular support component 30 to rotate to the position of each testing assembly. The electric mosquito coil testing device 100 also includes a resistance testing assembly 80 and a control component 90, wherein: The resistance testing component 80 is mounted on the frame 10 and located between the discharge component 50 and the ultrasonic testing component 60. The resistance testing component 80 is used to test the resistance of the electric mosquito repellent after it is plugged into the first metal head and the second metal head of the electric mosquito repellent to be tested.

[0020] The control unit 90 is mounted on the frame 10 and is communicatively connected to the resistance testing assembly 80; the control unit 90 is used to send electrical signals to the resistance testing assembly 80.

[0021] The resistance testing assembly 80 includes a base 81, a telescopic member 82, a test member 83, and an auxiliary detection member 84. The base 81 is mounted on the frame 10. One end of the telescopic member 82 is mounted on the base 81 and is perpendicular to the base 81. The telescopic member 82 faces the annular support member 30 and is communicatively connected to the control member 90. The test member 83 is mounted on the other end of the telescopic member 82 and faces the annular support member 30. The auxiliary detection member 84 is vertically mounted on the base 81 and is parallel to the test member 83.

[0022] Under the action of the power component 20, after the electric mosquito coil passes the auxiliary detection component 84, the control component 90 sends an electrical signal to the telescopic component 82. The telescopic component 82 adjusts the displacement distance of the test component 83 according to the electrical signal so that the first metal head and the second metal head of the electric mosquito coil are fully engaged with the test component 83 so that the test component 83 can test the resistance value of each test point of the electric mosquito coil.

[0023] It is understood that the base 81 is suitable for supporting the telescopic component 82 and the auxiliary detection component 84, such as a plate-like structure, but not limited to this. The telescopic component 82 is a structure that can communicate with the control component 90 and drive the test component 83 to move. For example, the telescopic component 82 includes a shaft-like structure that can drive the test component 83 to move, and a drive structure that drives the shaft-like structure to move. For example, the drive structure can be a combination of a motor and a lead screw. The motor drives the lead screw to rotate, thereby driving the shaft-like structure and the test component 83 to move linearly, realizing the adjustment of the displacement distance. In addition, the telescopic component 82 is a structure that can communicate with the control component 90. The telescopic component 82 also includes a communication module. This communication module is used to receive electrical signals sent by the control component 90 and transmit the electrical signals to the drive structure to control the drive structure to drive the test component 83 to make corresponding displacement adjustments. Test component 83 is a structure capable of testing the resistance of the first and second metal heads. For example, it can be a conductive cylindrical structure, a metal probe, or a metal sheet. Its shape and size match the first and second metal heads of the electric mosquito repellent, allowing it to contact them for accurate resistance testing. Auxiliary detection component 84 guides and positions the electric mosquito repellent before it contacts the resistance detection component. It can be, for example, an arc-shaped structure, but is not limited to this.

[0024] As described above, the electric mosquito coil testing equipment 100 provided in this application, with the resistance testing component 80 mounted on the frame 10, can improve the reliability and stability when testing electric mosquito coils. The auxiliary testing component 84 works in conjunction with the test component 83. When the electric mosquito coil passes through the auxiliary testing component 84, it can precisely trigger the control component 90 to send an electrical signal, thereby causing the telescopic component 82 to drive the test component 83 to accurately adjust its displacement distance. This ensures that the test component 83 fully engages with the first and second metal heads of the electric mosquito coil, effectively solving the problem of incorrect docking between the test component 83 and the electric mosquito coil testing points due to accumulated positioning errors caused by continuous operation of the transfer components, and the inability to determine whether the test position completely covers all test points of the metal connector. Furthermore, in batch testing scenarios of electric mosquito coils, the resistance testing of electric mosquito coils is more accurate and reliable, improving the efficiency and accuracy of the entire testing process.

[0025] In some embodiments, please refer to the following: Figure 2 and Figure 3 The auxiliary testing component 84 includes a support component 841, an elastic component 842, and a force-bearing component 843, wherein: the support component 841 is fixedly mounted on the base 81 and is perpendicular to the base 81; the support component 841 faces the annular bearing component 30.

[0026] One end of the elastic element 842 is fixedly mounted on the support element 841.

[0027] The force-bearing member 843 is disposed at the other end of the elastic member 842 and faces the annular bearing member 30; when the force-bearing member 843 is subjected to pressure from the first metal head and the second metal head, the force-bearing member 843 pushes the elastic member 842 to compress.

[0028] It is understood that the support member 841 is a structure that can provide stable support for the auxiliary detection member 84, such as a plate-like structure, but not limited to this. The elastic member 842 can be a spring structure, which absorbs and transmits pressure through its own elastic deformation, thereby driving the force-receiving member 843 to move accordingly. The force-receiving member 843 is the part that directly contacts the first and second metal heads of the electric mosquito repellent. Its shape and size design need to match the shape and size of the metal heads so that it can accurately sense pressure changes upon contact and transmit the pressure to the elastic member 842, so that the elastic member 842 is compressed.

[0029] With this configuration, when the electric mosquito repellent passes the auxiliary detection component 84, the first and second metal heads will contact the force-receiving component 843 and apply pressure. The force-receiving component 843 will transmit the pressure to the elastic component 842, causing the elastic component 842 to compress. Based on the compression distance of the elastic component 842, the current position of the electric mosquito repellent can be determined, providing a basis for accurately determining the detection position in the future. This enables precise detection of the resistance value of the electric mosquito repellent and allows for real-time detection of the current positions of the first and second metal heads of the electric mosquito repellent, effectively reducing detection problems caused by accumulated positioning errors of the transport components.

[0030] In some embodiments, please refer to Figure 3 The test piece 83 includes a support part 831, a first test part 832, and a second test part 833, wherein the support part 831 is fixedly disposed at the other end of the telescopic member 82.

[0031] The first test part 832 is fixedly disposed on the support part 831 and faces the annular bearing member 30; the first test part 832 cooperates with the first metal head of the electric mosquito coil to be tested; the first test part 832 is close to the auxiliary test member 84.

[0032] The second test section 833 is fixedly disposed on the support section 831 and faces the annular support member 30; the second test section 833 cooperates with the second metal head of the electric mosquito coil to be tested; the first test section 832 and the second test section 833 are parallel to each other.

[0033] It is understood that the support part 831 is a structure capable of supporting the first test part 832 and the second test part 833, such as a columnar or rod-shaped structure, but not limited to these. The first test part 832 is a structure capable of contacting the first metal head of the electric mosquito repellent and testing its resistance value; its shape can be a columnar or square structure, but not limited to these. The second test part 833 is a structure capable of cooperating with the second metal head of the electric mosquito repellent; its shape can be a columnar or square structure, but not limited to these. The first test part 832 and the second test part 833 are arranged parallel to each other, which ensures that both contact the metal head of the electric mosquito repellent simultaneously during the test, improving the accuracy and efficiency of the test.

[0034] With this configuration, after the electric mosquito repellent is positioned by the auxiliary detection component 84, the first testing unit 832 and the second testing unit 833 can accurately align with the first and second metal heads of the electric mosquito repellent, respectively. Since the first testing unit 832 and the second testing unit 833 are parallel to each other and fixed in position, when the entire unit moves under the influence of the telescopic component 82, both can simultaneously and stably contact the metal heads of the electric mosquito repellent, avoiding poor contact caused by asynchronous movement of individual testing components and effectively reducing interference from external factors on the test results.

[0035] After completing the above steps, the applicant discovered that because the resistance is measured at a single point on both the first and second metal heads, the resistance value is affected by various factors such as the uniformity of the metal head material, the welding process, and oxidation that may occur during long-term use. This means that the single-point test results may not comprehensively and accurately reflect the overall actual resistance performance of the electric mosquito repellent. To more accurately assess the resistance of the electric mosquito repellent, this application further optimizes the process as follows: In some embodiments, please refer to the following: Figure 3 The first test section 832 has a first test channel 83201, and the second test section 833 has a second test channel 83301; the channel length of the first test channel 83201 is the same as the channel length of the second test channel 83301.

[0036] The first test channel 83201 is provided with multiple first detection points, each of which is used to detect the resistance value at different positions on the first metal head; the second test channel 83301 is provided with multiple second detection points, each of which is used to detect the resistance value at different positions on the second metal head.

[0037] It is understood that the lengths of the first test channel 83201 on the first test unit 832 and the second test channel 83301 on the second test unit 833 are the same as the lengths of the first and second metal heads on the electric mosquito repellent. The multiple first detection points within the first test channel 83201 are distributed along the length of the first test channel 83201, enabling the detection of resistance values ​​at different positions of the first metal head, thereby obtaining more comprehensive resistance data. Similarly, the multiple second detection points within the second test channel 83301 are also evenly distributed along the length of the second test channel 83301, used to detect resistance values ​​at different positions of the second metal head. The number of first and second detection points can be 2, 3, or 5, etc., but is not limited to these. If there are 2 monitoring points, the monitoring points are located at the beginning and end of the first (second) monitoring channel. If there are 3 monitoring points, the monitoring points are located at the beginning, end, and middle of the first (second) monitoring channel. If there are 5 monitoring points, 2 of the monitoring points are located at the beginning and end of the first (second) monitoring channel, and the other 3 monitoring points are located in the middle of the first (second) monitoring channel, either evenly or unevenly.

[0038] This configuration, by establishing a first test channel 83201 and a second test channel 83301 of equal length on the first test unit 832 and the second test unit 833 respectively, and setting multiple detection points within the channels, enables comprehensive detection of the resistance values ​​at different locations on the first and second metal heads of the electric mosquito coil. This multi-detection-point setup makes the test results more accurate and reliable, and can promptly detect any potential local resistance anomalies in the metal heads of the electric mosquito coil. Furthermore, the number and location of the detection points can be flexibly set according to actual needs, such as setting them to 2, 3, or 5 points, and different distribution patterns, to meet more precise testing requirements, improving the applicability and flexibility of the electric mosquito coil testing equipment 100, and further enhancing the quality and efficiency of the entire electric mosquito coil testing process.

[0039] In some embodiments, please refer to the following: Figure 2 and Figure 3 The force-bearing member 843 includes a vertical plane segment 8431 and an arc segment 8432, wherein the vertical plane segment 8431 is disposed at the other end of the elastic member 842.

[0040] The arc-shaped segment 8432 is transitionally connected to the vertical plane segment 8431; the distance between the arc surface of the arc segment 8432 and the annular bearing member 30 is greater than the distance between the vertical plane segment 8431 and the annular bearing member 30.

[0041] In this process, the electric mosquito coil to be tested is guided by the arc segment 8432 to the vertical plane segment 8431, and then rotated through the vertical plane segment 8431 to the position of the test piece 83.

[0042] It can be understood that the arc-shaped segment 8432 serves as a guide for the electric mosquito repellent, and its arc design allows the repellent to be smoothly guided to the vertical plane segment 8431 during rotation. The vertical plane segment 8431 then acts as the support surface for the electric mosquito repellent, ensuring its stability when it rotates to the test piece 83 position, thereby guaranteeing the accuracy of the test. The distance between the arc surface of the arc-shaped segment 8432 and the annular support piece 30 is greater than the distance between the vertical plane segment 8431 and the annular support piece 30. This can be interpreted as the first and second metal heads of the electric mosquito repellent contacting the arc-shaped segment 8432 first and then the vertical plane segment 8431.

[0043] This configuration, with its transitional connection between the arc-shaped segment 8432 and the vertical plane segment 8431, not only reduces friction and collisions during the guidance process of the electric mosquito coil, but also improves the accuracy and stability of the guidance. It effectively improves the guidance and positioning issues of the electric mosquito coil during the detection process, further enhancing the overall performance and detection efficiency of the electric mosquito coil detection equipment 100.

[0044] In some embodiments, please refer to the following: Figures 1 to 4The first test section 832 has a first facing surface toward the annular support member 30, and the second test section 833 has a second facing surface toward the annular support member 30. The distance between the first facing surface and the annular support member 30 and the distance between the second facing surface and the annular support member 30 are the same. The distance between the vertical plane segment 8431 and the annular support member 30 is greater than the distance between the first facing surface and the annular support member 30.

[0045] This configuration ensures that the first and second facing surfaces are at the same distance from the annular support member 30. This allows the first testing section 832 and the second testing section 833 to be at the same horizontal level when testing the first and second metal heads of the electric mosquito repellent. This ensures consistent contact force and angle between the two parts and the metal heads, guaranteeing the synchronicity and accuracy of resistance testing of the first and second metal heads during the testing process. Furthermore, the distance between the vertical plane section 8431 and the annular support member 30 is greater than the distance between the first facing surface and the annular support member 30. This design allows the electric mosquito repellent, after being guided from the arc section 8432 to the vertical plane section 8431, to gradually approach the test piece 83 during its rotation. This prevents direct impact with the test piece 83, reducing damage to both the test piece 83 and the electric mosquito repellent caused by collisions. It also ensures the electric mosquito repellent is in a stable state upon reaching the test piece 83, improving testing accuracy and reliability, and further enhancing the performance and testing quality of the electric mosquito repellent testing equipment 100.

[0046] This application also provides a detection method for an electric mosquito coil detection device. In this method, when multiple electric mosquito coils to be tested are detected mounted on a ring-shaped support, time information is determined; first touch information and second touch information are obtained based on the time information; time consumption information is obtained based on the time information; second contact information of the second metal head and first contact information of the first metal head are determined; when the time consumption information meets preset time consumption information, and the second contact information and the first contact information are the same, adjustment information is obtained based on the first touch information and the second touch information, enabling accurate docking of the test piece with the first and second metal heads of the electric mosquito coil. A pressure sensor is set on the vertical plane segment to sense the pressure generated on the arc segment during metal head movement in real time, and a displacement sensor is set on the arc segment to accurately measure the compression length value. The two sensors work together to provide reliable data for obtaining the first and second touch information. The determination of the time information lays the foundation for subsequent acquisition of other information based on time relationships. The time consumption information obtained from the time information clearly reflects the time interval between obtaining different touch information. Determining the second contact information of the second metal head and the first contact information of the first metal head further ensures the accuracy of the docking between the test piece and the metal head. When the time consumption information meets the preset conditions and the two contact information are the same, the adjustment information obtained based on the first and second contact information can accurately indicate the displacement adjustment distance of the telescopic component, enabling the test piece to accurately reach the test position and complete the detection of the resistance value of each test point of the electric mosquito coil. This greatly improves the accuracy and reliability of the electric mosquito coil resistance detection and enhances the efficiency of the entire testing process.

[0047] The detection method for the electric mosquito coil detection device provided in this application embodiment can be applied to the electric mosquito coil detection device. In this case, the electric mosquito coil detection device is the subject of the detection method for the electric mosquito coil detection device provided in this application embodiment. This application embodiment does not impose any restrictions on the specific type of electric mosquito coil detection device.

[0048] To better understand the detection method of the electric mosquito coil detection device provided in the embodiments of this application, the specific implementation process of the detection method of the electric mosquito coil detection device provided in the embodiments of this application will be described by way of example below.

[0049] Figure 5 This illustration shows a schematic flowchart of the detection method for the electric mosquito coil detection device provided in an embodiment of this application. The detection method for the electric mosquito coil detection device includes: S100, when multiple electric mosquito coils to be tested are detected mounted on the annular support, time information is determined; wherein, the time information is used to indicate the time required for rotation from the position of the first electric mosquito coil to be tested to the position of the auxiliary detection element.

[0050] It can be understood that when multiple electric mosquito coils to be tested are detected installed on the annular support, it can be interpreted as the process of loading the electric mosquito coils, indicating that operation is about to begin. The time required for the first electric mosquito coil to be tested to rotate to the position of the auxiliary detection component can be understood as the time required for the first installed electric mosquito coil to be tested to move from its initial position to the position of the arc segment of the auxiliary detection component.

[0051] For example, determining the time information can be achieved through a timing module in an electric mosquito coil detection device. When the annular support starts to rotate, the timing module starts synchronously and records the time elapsed from the position of the first electric mosquito coil to be detected to the position of the auxiliary detection device. This time elapsed is the time information.

[0052] In one possible implementation, please refer to Figure 6 S100, when multiple electric mosquito coils to be tested are detected installed on the annular support, time information is determined, including: S110, when multiple electric mosquito coils to be tested are detected installed on the annular support, first position information of the auxiliary detection element is determined; wherein, the first position information is used to indicate the position of the auxiliary detection element.

[0053] For example, the position of the auxiliary detection component can be understood as the position of the arc segment of the auxiliary detection component; the first position information of the auxiliary detection component can be determined by setting a position sensor in the electric mosquito coil detection device. The position sensor can accurately locate the specific position of the auxiliary detection component on the ring support and convert the position information into an identifiable electrical signal or data signal, thereby determining the first position information of the auxiliary detection component.

[0054] S120, determine the second position information of the first electric mosquito coil to be tested from among the multiple electric mosquito coils to be tested mounted on the annular support; wherein the second position information is used to indicate the position of the first electric mosquito coil to be tested.

[0055] For example, determining the second position information of the first electric mosquito coil to be detected can be achieved by setting corresponding positioning markers or sensors in the electric mosquito coil detection device. For instance, specific markers can be set on the annular support, and when the first electric mosquito coil to be detected is placed on the annular support, its relative position to the markers can determine its second position information; or, a visual sensor can be set in the electric mosquito coil detection device, and image recognition technology can be used to identify the specific position of the first electric mosquito coil to be detected on the annular support, thereby determining its second position information.

[0056] S130, distance information is obtained based on the first position information and the second position information; wherein, the distance information is used to indicate the distance value between the position of the first electric mosquito coil to be detected and the position of the auxiliary detection element.

[0057] For example, the distance information obtained from the first position information and the second position information can be determined by the difference between the two positions, or it can be obtained by a distance measurement module set in the electric mosquito coil detection device. This module can convert the first position information and the second position information into corresponding coordinate values ​​according to a pre-set position coordinate system, and then calculate the distance value between the position of the first electric mosquito coil to be detected and the position of the auxiliary detection component by calculating the two coordinate values. This distance value is the distance information.

[0058] S140, acquire speed information; wherein, the speed information is used to indicate the moving speed value of the first electric mosquito coil to be detected driven by the annular carrier under the drive of the power component.

[0059] For example, speed information can be obtained by setting a speed sensor in the electric mosquito coil detection device. The speed sensor can monitor the rotation speed of the ring-shaped support in real time. Since the ring-shaped support drives the first electric mosquito coil to be detected to move synchronously, the rotation speed is the moving speed value of the first electric mosquito coil to be detected, i.e., the speed information.

[0060] S150 determines time information based on speed and distance information.

[0061] It is understandable that the time information refers to the time required for the electric mosquito coil to rotate from the second position to the first position of the auxiliary detection device.

[0062] For example, the time information can be determined by a calculation module preset in the electric mosquito coil detection device, which calculates the time based on the speed and distance information using the formula "time = distance ÷ speed". Specifically, after receiving the speed information from the speed sensor and the distance information from the distance measurement module, the calculation module divides the distance value by the speed value. The result is the time required for the first electric mosquito coil to be detected to rotate from its second position to the first position of the auxiliary detection element. This time is the determined time information.

[0063] The annular support in this application is annular. The time information can be determined based on speed and distance information by utilizing the characteristics of the annular structure, combined with the circumference of the annular support and the ratio of the arc lengths of the current position of the first electric mosquito coil to be tested to the position of the auxiliary detection component on the annular trajectory. Specifically, the circumference of the annular support is first determined, and its rotational speed is obtained through a speed sensor. Then, based on the previously determined first and second position information, the arc lengths of the first electric mosquito coil to be tested and the auxiliary detection component on the annular trajectory are calculated. Using the ratio of the arc length to the circumference, combined with the rotational speed, the time required for the first electric mosquito coil to be tested to rotate from its current position to the position of the auxiliary detection component can be calculated. This time is the time information. This calculation method fully utilizes the structural characteristics of the annular support, enabling more accurate time information and providing strong support for the precise execution of subsequent detection processes.

[0064] S200, first touch information and second touch information are obtained based on time information; wherein, the first touch information is used to indicate the pressure and compression length value generated on the arc segment when the second metal head moves, and the second touch information is used to indicate the pressure and compression length value generated on the arc segment when the first metal head moves.

[0065] For example, given the time information (the time required for the first electric mosquito coil to rotate from its position to the position of the auxiliary detection element), when the first electric mosquito coil to be detected begins to rotate under the drive of the annular support and gradually approaches the auxiliary detection element, the second metal head will first contact the arc-shaped segment of the auxiliary detection element. At the moment of contact, the displacement sensor set on the arc-shaped segment will immediately begin to measure the compression length value of the arc-shaped segment caused by the pressure of the second metal head. At the same time, the pressure sensor set on the vertical plane segment and associated with the arc-shaped segment will sense the pressure generated by the movement of the second metal head on the arc-shaped segment, and record the pressure data and the compression length value measured by the displacement sensor together as part of the first contact information. As the electric mosquito coil continues to rotate, the first metal head will subsequently contact the arc-shaped segment. Similarly, the displacement sensor and the pressure sensor will work again, recording the pressure and compression length value generated by the movement of the first metal head on the arc-shaped segment as the second contact information. Throughout the process, based on the previously determined time information, the moment when the second metal head and the first metal head respectively contact the arc segment can be accurately captured, thereby accurately obtaining the corresponding first touch information and second touch information.

[0066] S300, obtain time consumption information based on time information; wherein, time consumption information is used to indicate the time required after obtaining the first touch information and before obtaining the second touch information.

[0067] It is understandable that the time consumption information reflects the time interval from the moment the second metal head contacts the arc segment to generate the first touch information, to the moment the first metal head contacts the arc segment to generate the second touch information.

[0068] For example, in an electric mosquito coil detection device, the time consumption information can be accurately obtained through a timing module. When the second metal head contacts the arc segment, triggering the displacement sensor and pressure sensor to start recording the first touch information, the timing module starts synchronously; when the first metal head contacts the arc segment, triggering the corresponding sensor to record the second touch information, the timing module stops, and the duration recorded by the timing module at this time is the time consumption information.

[0069] In one possible implementation, please refer to Figure 7 S200, obtaining time consumption information based on the time information, including: S210, determining first end information based on the time information; wherein, the first end information is used to indicate the time point when the acquisition of the first touch information ends.

[0070] For example, the first end information can be determined by setting a specific signal triggering mechanism in the electric mosquito coil detection device. After the displacement sensor and pressure sensor complete recording the pressure and compression length values ​​generated when the second metal head moves, that is, after acquiring the first touch information, the sensor will send a completion signal to the control module of the electric mosquito coil detection device. The time point corresponding to the instant the control module receives the signal is the time point indicated by the first end information.

[0071] S220, determine the second start information based on the time information; wherein, the second start information is used to indicate the time point at which the acquisition of the second touch information begins.

[0072] For example, the determination of the second start information can also be achieved through the signal triggering mechanism in the electric mosquito coil detection device. When the first metal head begins to contact the arc segment, the displacement sensor and pressure sensor are triggered to start recording the pressure and compression length values ​​generated during its movement, that is, when the second touch information is acquired, the sensor will send a start signal to the control module. The time point corresponding to the instant the control module receives the signal is the time point indicated by the second start information.

[0073] S230, calculate the time difference based on the first end information and the second start information to obtain the time consumption information.

[0074] For example, in the electric mosquito coil detection device, the preset calculation module receives the first end information and the second start information, and subtracts the time point corresponding to the first end information from the time point corresponding to the second start information. The difference is the time required from obtaining the first touch information to obtaining the second touch information, which is the time consumption information.

[0075] This setup, by clearly defining the first end information and the second start information, and using the calculation module to calculate the time difference, allows for accurate acquisition of time consumption information. The reasonable time range from acquiring the first touch information to starting to acquire the second touch information is defined. Only when the time consumption information meets the preset time consumption information can it be said that the contact process of the metal head during the rotation of the electric mosquito coil is as expected. When the time consumption information meets the preset conditions and the second contact information is the same as the first contact information, the electric mosquito coil detection device will obtain adjustment information based on the previously acquired first and second touch information. This adjustment information can accurately indicate the displacement adjustment distance of the telescopic component, enabling the test piece to accurately reach the test position, thereby completing the detection of the resistance value at each test point of the electric mosquito coil.

[0076] S400, determine the second contact information of the second metal head and the first contact information of the first metal head; wherein, the second contact information is used to indicate the contact distance value and contact pressure value of the end of the second metal head in contact with the first orientation surface, and the first contact information is used to indicate the contact distance value and contact pressure value of the end of the first metal head in contact with the first orientation surface.

[0077] For example, in an electric mosquito coil detection device, second contact information and first contact information can be determined by respectively setting corresponding distance measurement sensors and pressure measurement sensors at the ends of the second metal head and the first metal head, and on the first facing surface. When the end of the second metal head contacts the first facing surface, the distance measurement sensor measures the contact distance value between the two, and the pressure measurement sensor measures the contact pressure value, thus forming the second contact information. Similarly, when the end of the first metal head contacts the first facing surface, the corresponding sensors also measure the contact distance value and the contact pressure value, forming the first contact information. The contact status of the second metal head and the first metal head with the first facing surface can be accurately obtained.

[0078] In one possible implementation, the method also includes: If the time consumption information does not meet the preset time consumption information and / or the second contact information is different from the first contact information, detection information is generated; the detection information is used to indicate that the electric mosquito coil to be detected is marked as abnormal.

[0079] For example, when the timing module obtains the time consumption information, it will transmit it to the detection module. At the same time, the second contact information and the first contact information measured by the sensor will also be transmitted synchronously. Then, it will be compared with the preset time consumption information. If the time consumption information does not meet the preset time consumption information, that is, the time consumption is not within a reasonable range; or after the detection module receives the second contact information and the first contact information, it will determine the contact situation of the two (different contact length, contact time not meeting, etc.) and generate detection information.

[0080] This setup marks the electric mosquito coils currently being tested as abnormal, allowing staff to quickly identify those with potential quality issues.

[0081] S500, when the time consumption information meets the preset time consumption information and the second contact information is the same as the first contact information, adjustment information is obtained based on the first contact information and the second contact information; wherein, the adjustment information is used to indicate the displacement adjustment distance of the telescopic member.

[0082] For example, in an electric mosquito coil testing device, when the time consumption information meets the preset reasonable duration range and the second contact information is consistent with the first contact information, the precise displacement distance that the telescopic component needs to be adjusted is calculated by combining the rotation parameters of the ring bearing component and the initial position data of the metal head. The telescopic component is then controlled to extend and retract by the corresponding length, so that the test piece is accurately moved to the preset test position, thereby ensuring that the subsequent detection of the resistance value of each test point of the electric mosquito coil can be accurately executed according to the standard procedure.

[0083] In summary, this application enables accurate detection of the resistance value of electric mosquito coils, ensuring that the test piece accurately reaches the test position and completes the detection of the resistance value at each test point of the electric mosquito coil. It effectively solves the problems of incorrect docking between the test piece and the test point of the electric mosquito coil due to the cumulative positioning error caused by the continuous operation of the transfer component, as well as the inability to determine whether the test position completely covers each test point of the metal connector. Furthermore, it enables more accurate and reliable resistance detection of electric mosquito coils in batch testing scenarios, improving the efficiency and accuracy of the testing process.

[0084] It should be understood that the sequence number of each step in the above embodiments does not imply the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of this application.

[0085] Corresponding to the detection method of the electric mosquito coil detection device described in the above embodiments, this application also provides a detection system for the electric mosquito coil detection device, wherein each unit of the system can implement each step of the detection method for the electric mosquito coil detection device. Figure 8The diagram shows a structural block diagram of the detection system of the electric mosquito coil detection device provided in the embodiment of this application. For ease of explanation, only the parts related to the embodiment of this application are shown.

[0086] Reference Figure 8 The detection system of this electric mosquito coil detection device includes: The first determining unit is used to determine time information when multiple electric mosquito coils to be tested are installed on the annular carrier; wherein the time information is used to indicate the time required to rotate from the position of the first electric mosquito coil to be tested to the position of the auxiliary detection element. The unit is used to obtain first touch information and second touch information based on time information; wherein, the first touch information is used to indicate the pressure and compression length value generated on the arc segment when the second metal head moves, and the second touch information is used to indicate the pressure and compression length value generated on the arc segment when the first metal head moves. The processing unit is used to obtain time consumption information based on time information; wherein, the time consumption information is used to indicate the time required after obtaining the first touch information and before obtaining the second touch information. The second determining unit is used to determine the second contact information of the second metal head and the first contact information of the first metal head; wherein, the second contact information is used to indicate the contact distance value and contact pressure value of the end of the second metal head in contact with the first facing surface, and the first contact information is used to indicate the contact distance value and contact pressure value of the end of the first metal head in contact with the first facing surface. The result unit is used to obtain adjustment information based on the first touch information and the second touch information when the time consumption information meets the preset time consumption information and the second contact information is the same; wherein, the adjustment information is used to indicate the displacement adjustment distance of the telescopic member.

[0087] It should be noted that the information interaction and execution process between the above systems / units are based on the same concept as the method embodiments of this application. For details on their specific functions and technical effects, please refer to the method embodiments section, and they will not be repeated here.

[0088] Those skilled in the art will clearly understand that, for the sake of convenience and brevity, the above-described division of functional units and modules is merely an example. In practical applications, the above functions can be assigned to different functional units and modules as needed, that is, the internal structure of the system can be divided into different functional units or modules to complete all or part of the functions described above. The functional units and modules in the embodiments can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. The integrated unit can be implemented in hardware or as a software functional unit. Furthermore, the specific names of the functional units and modules are only for easy differentiation and are not intended to limit the scope of protection of this application. The specific working process of the units and modules in the above system can be referred to the corresponding process in the foregoing method embodiments, and will not be repeated here.

[0089] Figure 9 This is a schematic diagram of the structure of a control component provided in one embodiment of this application. Figure 9 As shown, the control unit 90 in this embodiment includes: at least one processor 901 ( Figure 9 Only one is shown in the image), at least one memory 902 ( Figure 9 (Only one is shown in the image) and a computer program 903 stored in the at least one memory 902 and executable on the at least one processor 901. When the processor 901 executes the computer program 903, it causes the control unit 90 to perform the steps in the detection method embodiments of any of the above-described electric mosquito coil detection devices, or causes the control unit 90 to perform the functions of each module / unit in the above-described system embodiments.

[0090] Exemplarily, the computer program 903 may be divided into one or more modules / units, which are stored in the memory 902 and executed by the processor 901 to complete this application. The one or more modules / units may be a series of computer program instruction segments capable of performing specific functions, which describe the execution process of the computer program 903 in the control unit 90.

[0091] The control unit 90 can be a desktop computer, an 8-bit microcontroller, or a 32-bit microcontroller. A 32-bit microcontroller can be, for example, an STM32F103RCT6 or a CC2530, but is not limited to these. The control unit may include, but is not limited to, a processor 901 and a memory 902. Those skilled in the art will understand that... Figure 9The example of control element 90 is merely an illustration and does not constitute a limitation on control element 90. It may include more or fewer components than shown, or combine certain components, or different components, such as input / output devices, network access devices, buses, etc.

[0092] The processor 901 can be a Central Processing Unit (CPU), but it can also be other general-purpose processors, digital signal processors (DSPs), application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The general-purpose processor can be a microprocessor or any conventional processor.

[0093] In some embodiments, the memory 902 may be an internal storage unit of the control component 90, such as a hard disk or memory of the control component 90. In other embodiments, the memory 902 may be an external storage device of the control component 90, such as a plug-in hard disk, smart media card (SMC), secure digital (SD) card, flash card, etc., equipped on the control component 90. Furthermore, the memory 902 may include both internal storage units and external storage devices of the control component 90. The memory 902 is used to store operating systems, applications, bootloaders, data, and other programs, such as the program code of computer programs. The memory 902 can also be used to temporarily store data that has been output or will be output.

[0094] This application also provides a computer-readable storage medium storing a computer program that, when executed by a processor, implements the steps in any of the above method embodiments.

[0095] This application provides a computer program product that, when run on an electric mosquito coil detection device, enables the electric mosquito coil detection device to perform the steps described in any of the above method embodiments.

[0096] If the integrated unit is implemented as a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, all or part of the processes in the methods of the above embodiments can be implemented by a computer program instructing related hardware. The computer program can be stored in a computer-readable storage medium, and when executed by a processor, it can implement the steps of the various method embodiments described above. The computer program includes computer program code, which can be in the form of source code, object code, executable files, or some intermediate form. The computer-readable medium can include at least: any entity or device capable of carrying the computer program code to the electric mosquito coil detection device, a recording medium, a computer memory, a read-only memory (ROM), a random access memory (RAM), an electrical carrier signal, a telecommunication signal, and a software distribution medium, such as a USB flash drive, a portable hard drive, a magnetic disk, or an optical disk.

[0097] In the above embodiments, the descriptions of each embodiment have different focuses. For parts that are not described in detail or recorded in a certain embodiment, please refer to the relevant descriptions of other embodiments.

[0098] Those skilled in the art will recognize that the units and algorithm steps of the various examples described in conjunction with the embodiments disclosed herein can be implemented in electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are implemented in hardware or software depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of this application.

[0099] In the embodiments provided in this application, it should be understood that the disclosed detection system, device, and method for electric mosquito coil detection can be implemented in other ways. For example, the detection system and embodiments of the electric mosquito coil detection device described above are merely illustrative. For instance, the division of modules or units is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the displayed or discussed mutual couplings, direct couplings, or communication connections may be indirect couplings or communication connections through some interfaces, devices, or units, and may be electrical, mechanical, or other forms.

[0100] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.

[0101] The above-described embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application, and should all be included within the protection scope of this application.

Claims

1. An electric mosquito coil testing device, characterized in that, It includes a frame, a power unit, an annular support member, a control unit, and a feeding assembly, a discharging assembly, an ultrasonic testing assembly, and a pressure testing assembly circumferentially arranged on the frame; the annular support member is arranged on the frame and is used to mount multiple electric mosquito coils to be tested and drive the multiple electric mosquito coils to be tested to rotate under the drive of the power unit; The electric mosquito coil testing equipment also includes: A resistance testing component is mounted on the frame and located between the discharge component and the ultrasonic detection component; the resistance testing component is used to detect the resistance of the electric mosquito repellent after it is plugged into and engaged with the first metal head and the second metal head of the electric mosquito repellent to be tested. The resistance testing assembly includes a base, a telescopic component, a test piece, an auxiliary detection component, a pressure sensor, and a displacement sensor. The base is mounted on the frame. One end of the telescopic component is mounted on the base and is perpendicular to the base. The telescopic component faces the annular support and is communicatively connected to the control component. The test piece is mounted on the other end of the telescopic component and faces the annular support. The auxiliary detection component is vertically mounted on the base and parallel to the test piece. Under the action of the power component, when the electric mosquito coil passes the auxiliary detection component, the control component sends an electrical signal to the telescopic component. The telescopic component adjusts the displacement distance of the test component according to the electrical signal so that the first metal head and the second metal head of the electric mosquito coil are fully engaged with the test component, so that the test component can test the resistance value of each test point of the electric mosquito coil. The auxiliary detection components include: A support member is fixedly mounted on the base and perpendicular to the base; the support member faces the annular bearing member. An elastic element, one end of which is fixedly mounted on the support member; and A force-bearing member is disposed at the other end of the elastic member and faces the annular bearing member; when the force-bearing member is subjected to pressure from the first metal head and the second metal head, the force-bearing member pushes the elastic member to compress. The load-bearing component includes: A vertical plane segment is disposed at the other end of the elastic element; the pressure sensor is disposed on the vertical plane segment; and An arc-shaped segment transitions to the vertical plane segment; the distance between the arc surface of the arc-shaped segment and the annular support member is greater than the distance between the vertical plane segment and the annular support member; the displacement sensor is disposed on the arc-shaped segment; The electric mosquito coil to be tested is guided by the arc-shaped segment to the vertical plane segment, and rotated through the vertical plane segment to the position of the test piece.

2. The electric mosquito coil testing device as described in claim 1, characterized in that, The test piece includes: The support portion is fixedly disposed at the other end of the telescopic member; A first testing section is fixedly disposed on the support section and faces the annular bearing member; the first testing section mates with the first metal head of the electric mosquito repellent to be tested; the first testing section is close to the auxiliary testing member; and The second test section is fixedly disposed on the support section and faces the annular bearing member; the second test section cooperates with the second metal head of the electric mosquito coil to be tested; the first test section and the second test section are parallel to each other.

3. The electric mosquito coil testing device as described in claim 2, characterized in that, The first test section has a first test channel, and the second test section has a second test channel; the channel length of the first test channel and the channel length of the second test channel are the same. The first test channel is provided with multiple first detection points, each of which is used to detect the resistance value at different positions on the first metal head; The second test channel is provided with multiple second detection points, each of which is used to detect the resistance at different positions on the second metal head; The control component is mounted on the frame and is communicatively connected to the resistance testing assembly. The control component is used to send electrical signals to the resistance testing component; the power output shaft of the power component is connected to the annular support component to drive the annular support component to rotate to the position of each testing component.

4. The electric mosquito coil testing device as described in claim 3, characterized in that, The first test section has a first facing surface toward the annular support member, and the second test section has a second facing surface toward the annular support member. The distance between the first facing surface and the annular support member and the distance between the second facing surface and the annular support member are the same.

5. A detection method for an electric mosquito coil testing device, characterized in that, The method is applied to the electric mosquito coil detection device as described in claim 4; the method includes: If multiple electric mosquito coils to be tested are detected mounted on the annular support, time information is determined; wherein, the time information is used to indicate the time required for rotation from the position of the first electric mosquito coil to be tested to the position of the auxiliary detection element; Based on the time information, first touch information and second touch information are obtained; wherein, the first touch information is used to indicate the pressure and compression length value generated on the arc segment when the second metal head moves, and the second touch information is used to indicate the pressure and compression length value generated on the arc segment when the first metal head moves. Time consumption information is obtained based on the time information; wherein, the time consumption information is used to indicate the time required before obtaining the second touch information after obtaining the first touch information; Determine the second contact information of the second metal head and the first contact information of the first metal head; wherein, the second contact information is used to indicate the contact distance value and contact pressure value when the end of the second metal head contacts the second orientation surface, and the first contact information is used to indicate the contact distance value and contact pressure value when the end of the first metal head contacts the first orientation surface. When the time consumption information satisfies the preset time consumption information, and the second contact information is the same as the first contact information, adjustment information is obtained based on the first touch information and the second touch information; wherein, the adjustment information is used to indicate the displacement adjustment distance of the telescopic member.

6. The detection method of the electric mosquito coil detection device as described in claim 5, characterized in that, When multiple electric mosquito coils to be detected are installed on the annular support, determining the time information includes: If multiple electric mosquito coils to be tested are detected installed on the annular support, first position information of the auxiliary detection component is determined; wherein, the first position information is used to indicate the position of the auxiliary detection component; The second position information of the first electric mosquito coil to be tested is determined from among the plurality of electric mosquito coils to be tested mounted on the annular support; wherein the second position information is used to indicate the position of the first electric mosquito coil to be tested; Distance information is obtained based on the first location information and the second location information; wherein, the distance information is used to indicate the distance value between the position of the first electric mosquito coil to be detected and the position of the auxiliary detection device; Acquire speed information; wherein the speed information is used to indicate the moving speed value of the first electric mosquito coil to be detected driven by the annular bearing under the drive of the power component; The time information is determined based on the speed information and the distance information.

7. The detection method of the electric mosquito coil detection device as described in claim 5, characterized in that, The step of obtaining time consumption information based on the time information includes: The first end information is determined based on the time information; wherein, the first end information is used to indicate the time point at which the acquisition of the first touch information ends; The second start information is determined based on the time information; wherein the second start information is used to indicate the time point at which the acquisition of the second touch information begins; The time consumption information is obtained by calculating the time difference based on the first end information and the second start information.

8. The detection method of the electric mosquito coil detection device as described in claim 5, characterized in that, The method further includes: If the time consumption information does not meet the preset time consumption information and / or the second contact information and the first contact information are different, detection information is generated; the detection information is used to indicate that the electric mosquito coil to be detected is marked as abnormal.

Citation Information

Patent Citations

  • Finished product detection machine

    CN117168532A