Electroscope starting voltage testing device
By designing the touch screen, detection hole and support module in the start voltage test device of the electrical tester, rapid installation and disassembly are achieved, solving the problem of low maintenance efficiency of existing devices, improving safety and testing accuracy, and reducing costs.
Patent Information
- Application Number
- CN202422276953.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-18
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-09-18
AI Technical Summary
The maintenance and maintenance of existing electrical tester start voltage testing devices is inefficient, and it is prone to damage to the equipment due to improper disassembly and assembly, increasing maintenance costs.
A starting voltage testing device for electrical testers is designed, using a detection module installed in the box, and the detection module is embedded with the touch screen and power switch. The detection hole is electrically connected to the touch screen. The support module cooperates with the top block and the storage groove to achieve rapid installation and disassembly, and guides the electrical test probe through the detection hole.
It improves maintenance efficiency, enhances the safety and stability of the equipment, reduces user costs, ensures the accuracy and safety of testing, and extends the service life of the equipment.
Smart Images

Figure CN223123221U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of electroscope testing, in particular to an electroscope starting voltage testing device. Background Art
[0002] The starting voltage test of the electroscope is an important part of evaluating the performance of the electroscope. Its main purpose is to detect the starting performance of the electroscope under specific voltage conditions to ensure that the electroscope can accurately and reliably detect the insulation performance of electrical equipment or whether it is energized.
[0003] After searching, the patent with patent announcement number CN210690785U discloses a portable DC grounding test quick test device. Although the device disconnects the resistance loop by selecting "voltage measurement" when in use, and the voltmeter measures the voltage across the analog resistance part, the device is not easy to disassemble when in use because its user operation panel and content box are integrated into one design. Therefore, during daily maintenance and inspection, technicians need to spend more time to disassemble and assemble the equipment, which directly leads to low efficiency of maintenance work. The long disassembly and assembly process not only increases labor costs, but may also cause equipment damage due to improper operation, thereby increasing maintenance costs. Utility Model Content
[0004] In view of the deficiencies in the prior art, the utility model provides a device for testing the starting voltage of an electroscope, which solves the problems raised in the background technology.
[0005] The utility model solves the above-mentioned technical problems as follows:
[0006] A device for testing the starting voltage of an electroscope, comprising a box body, a detection module being installed in the box body, and the box body being locked and closed by a lock;
[0007] The detection module is inlaid with a touch screen, a power switch is inlaid on one side of the detection module located on the touch screen, a detection hole is installed on the side of the detection module located away from the power switch, and a support module is installed at the bottom of the box body;
[0008] The detection module is provided with a receiving groove, and a second press buckle is installed at the bottom end of the detection module, and a first press buckle is installed at the inner bottom end of the box body. The detection module is installed in the box body through the cooperation between the second press buckle and the first press buckle.
[0009] On the basis of the above technical solution, the present invention can also be improved as follows.
[0010] Furthermore, the support module is provided with a cushion block, the cushion block is connected to a top block via a connecting rod, and the size of the top block is adapted to the size of the accommodating slot.
[0011] The beneficial effects of adopting the above further solution are as follows:
[0012] The cushion block, as the basic part of the support module, provides good support for the entire device through its stable structural design. This design can ensure that during the test, the device will not shift or topple due to external factors (such as vibration, impact, etc.), thus guaranteeing the accuracy and safety of the test. The design of the cushion block helps to disperse the pressure of the device on the placement surface and avoid local damage to the placement surface. This is of great significance for protecting the test environment and extending the service life of the device. The size of the top block is adapted to the size of the receiving groove, so that when disassembling or installing the detection module, the top block can quickly and accurately dock with the receiving groove. This design simplifies the disassembly and installation process and improves work efficiency. When the top block and the receiving groove are misaligned, the top block will block the detection module to prevent it from being accidentally pressed and moved. This anti-misoperation mechanism ensures that the detection module can only be disassembled or installed when the user actively operates, thereby improving the safety and reliability of the device.
[0013] Further, when the top block is aligned with the receiving groove, press the detection module so that the receiving groove of the detection module and the top block are docked with each other, and then the whole detection module moves downward, so that the detection module is connected or released to the first press buckle of the box body through the second press buckle.
[0014] The beneficial effects of adopting the above further solution are as follows:
[0015] Through the docking design of the top block and the receiving groove, users can easily install and disassemble the detection module. Just align the top block with the receiving groove and press the detection module to make the two dock and fix with each other, without using additional tools or complex operation steps. This design greatly improves work efficiency and reduces the user's usage cost. The entire installation and disassembly process is intuitive and simple, and users only need to operate according to the instructions. This design of simplifying the operation process helps to reduce the user's learning cost and improve the user's usage experience. After the top block and the receiving groove are docked, the detection module is connected to the first press buckle of the box body through the second press buckle, forming a stable fixing mechanism. This design ensures the stability of the detection module during the test and avoids displacement or detachment caused by vibration or external force, thus guaranteeing the accuracy and safety of the test.
[0016] Further, when the top block and the receiving groove are misaligned, the top block blocks the detection module to prevent the detection module from being pressed and moved, thereby preventing accidental contact with the second press buckle and the first press buckle.
[0017] The beneficial effects of adopting the above further solution are as follows:
[0018] If the user does not align the top block with the receiving slot correctly, the top block will naturally block the detection module. This design effectively prevents the user from accidentally touching the detection module in a hurry or carelessly, causing the second push button to accidentally connect or release with the first push button, which may cause safety problems. Accidental touching of the push button may cause improper movement or damage to the detection module, and may even affect the stability and performance of the entire test device. The blocking effect of the top block protects the detection module from such accidental damage and extends the service life of the device.
[0019] Furthermore, the connecting rod passes through the box body, the cushion block is located on the outside of the box body, and the top block is located on the inside of the box body.
[0020] The beneficial effects of adopting the above further scheme are:
[0021] This design allows the connecting rod, pad and top block to be tightly integrated inside and outside the box, without the need for additional space to accommodate these components. This helps to reduce the volume of the entire test device, making it more compact, lightweight, and easy to carry and store. The pad is located on the outside of the box, and the top block is located on the inside of the box, connected by a connecting rod. This layout not only ensures the stability of the structure, but also allows each component to perform its own function without interfering with each other.
[0022] Furthermore, the detection holes are electrically connected to the touch screen, and the detection holes are evenly distributed on the detection module.
[0023] The beneficial effects of adopting the above further scheme are:
[0024] The electrical connection between the detection hole and the touch screen enables the detection process to quickly respond to the operating instructions on the touch screen. Users can quickly set detection parameters, start detection programs, etc. through the touch screen without manually adjusting the physical switches or buttons on the detection module, thereby improving detection efficiency. When the electroscope probe is inserted into the detection hole, the detection module can immediately transmit the detected voltage signal to the touch screen for display through the electrical connection. This real-time feedback mechanism allows users to understand the test results immediately without waiting for additional data processing time.
[0025] Furthermore, the detection hole guides the probe of the electroscope so that the probe of the electroscope accurately enters the detection hole and is electrically connected with the reed in the detection hole.
[0026] The beneficial effects of adopting the above further scheme are:
[0027] The design of the detection hole can guide the probe of the electroscope to accurately enter and achieve precise docking with the reed. This design avoids detection errors caused by inaccurate probe position or poor contact, improving the accuracy of detection. The electrical connection between the probe and the reed is stable and reliable, ensuring the continuity and stability of the signal during the detection process. This helps to reduce detection failures or misjudgments caused by signal fluctuations or interruptions. Through the guiding function of the detection hole, users can more easily insert the probe into the correct position, reducing the risk of equipment damage or detection failure caused by incorrect operation.
[0028] The utility model provides a starting voltage test device for an electroscope. It has the following beneficial effects:
[0029] The touch screen embedded on the detection module makes the operation more intuitive and convenient. Users can easily set test parameters, view test results, etc. through the touch screen, improving the test efficiency. The layout of the power switch and the detection hole takes into account the user's usage habits, making the operation smoother. The guiding function of the detection hole for the electroscope probe ensures the accuracy of the test. The uniform distribution of the detection holes and the guiding function for the electroscope probe ensure that the probe can accurately enter and be electrically connected to the reed inside the detection hole during the test process, thereby improving the test accuracy.
[0030] Through the design of the support module, especially the docking and blocking mechanism between the top block and the receiving groove, the rapid installation and disassembly of the detection module are realized. When maintenance or replacement of the detection module is required, it can be completed with simple operations, greatly improving the maintenance efficiency. When the top block and the receiving groove are misaligned, it can effectively prevent the detection module from being accidentally pressed and moved, thus avoiding the situation of accidentally touching the second pressing buckle and the first pressing buckle, enhancing the safety of the device.
[0031] The support module provides a stable support for the detection module through the design of the cushion block, connecting rod and top block. This design not only enhances the overall stability of the device, but also helps to extend the service life of the device. The design of the entire device takes into account the protection of internal components. For example, the detection module is connected to the box body through the pressing buckle, which is not only convenient for disassembly but also has a certain protective effect, preventing damage to internal components by external factors. Brief Description of the Drawings
[0032] The drawings described herein are used to provide a further understanding of the utility model, form a part of this application, and the schematic embodiments of the utility model and their descriptions are used to explain the utility model, and do not constitute an improper limitation to the utility model.
[0033] In the drawings:
[0034] Figure 1 is the external view schematic diagram of the utility model;
[0035] Figure 2 Schematic diagram of the open state of the utility model
[0036] Figure 3 Bottom view schematic diagram of the utility model
[0037] Figure 4 Bottom view schematic diagram of the detection module of the utility model
[0038] In the attached drawings, the list of components represented by each reference numeral is as follows
[0039] 1. Box body; 101. First pressing buckle; 2. Lock; 3. Detection module; 301. Power switch; 302. Touch screen; 303. Detection hole; 304. Accommodating groove; 305. Second pressing buckle; 4. Support module; 401. Spacer; 402. Top block; 403. Connecting rod Specific embodiments
[0040] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the attached drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model
[0041] Please refer to Figures 1 to 4 As shown in the figure, the embodiments provided by the present utility model
[0042] Embodiment 1
[0043] A device for testing the starting voltage of an electroscope comprises a box body 1, a detection module 3 is installed in the box body 1, the box body 1 is locked and closed by a lock buckle 2, a touch screen 302 is embedded and installed on the detection module 3, a power switch 301 is embedded and installed on one side of the detection module 3 located on the touch screen 302, a detection hole 303 is installed on the side of the detection module 3 located on the touch screen 302 away from the power switch 301, the detection hole 303 is electrically connected to the touch screen 302, and the detection holes 303 are evenly distributed on the detection module 3, and the electrical connection between the detection holes 303 and the touch screen 302 enables the detection process to quickly respond to the operation instructions on the touch screen 302. The user can quickly set the detection parameters, start the detection program, etc. through the touch screen 302, without manually adjusting the physical switch or button on the detection module 3, thereby greatly improving the detection efficiency. When the electroscope probe is inserted into the detection hole 303, the detection module 3 can immediately transmit the detected voltage signal to the touch screen 302 for display through the electrical connection. This real-time feedback mechanism allows users to instantly understand the test results without waiting for additional data processing time. The detection hole 303 guides the probe of the electroscope so that the probe of the electroscope accurately enters the detection hole 303 and is electrically connected to the reed in the detection hole 303. The careful design of the detection hole 303 can guide the probe of the electroscope to accurately enter and achieve precise docking with the reed. This design avoids detection errors caused by inaccurate probe position or poor contact, and significantly improves the accuracy of detection. The electrical connection between the probe and the reed is stable and reliable, which can ensure the continuity and stability of the signal during the detection process. This helps to reduce detection failures or misjudgments caused by signal fluctuations or interruptions. Through the guiding effect of the detection hole 303, the user can more easily insert the probe into the correct position, reducing the risk of equipment damage or detection failure due to misoperation.
[0044] Embodiment 2
[0045] In order to facilitate the installation and removal of the detection module 3, for example, Figures 1 to 4As shown in the figure, the present invention further includes: a support module 4 is installed at the bottom end of the box body 1. The support module 4 is provided with a cushion block 401. The cushion block 401 is connected to a top block 402 through a connecting rod 403. The connecting rod 403 penetrates through the box body 1, and the cushion block 401 is located outside the box body 1, and the top block 402 is located inside the box body 1. This unique design enables the connecting rod 403, the cushion block 401 and the top block 402 to be closely integrated inside and outside the box body 1 without the need for additional space to accommodate these components. This helps to significantly reduce the volume of the entire testing device, making it more compact, lightweight, and convenient for carrying and storage. The cushion block 401 is located outside the box body 1, and the top block 402 is located inside the box body 1 and is connected by the connecting rod 403. This ingenious layout not only ensures the structural stability but also enables each component to perform its own functions without interference. The size of the top block 402 is adapted to the size of the receiving groove 304. The cushion block 401, as the foundation of the support module 4, has a stable structural design that provides a solid support for the entire device. This elaborate design can ensure that during the testing process, the device will not be displaced or toppled due to external factors (such as vibration, impact, etc.), thus effectively guaranteeing the accuracy and safety of the test. The unique design of the cushion block 401 helps to disperse the pressure of the device on the placement surface, effectively avoiding local damage to the placement surface. This is of crucial significance for protecting the testing environment and extending the service life of the device. The size of the top block 402 is perfectly adapted to the receiving groove 304, enabling the top block 402 to quickly and accurately dock with the receiving groove 304 when disassembling or installing the detection module 3. This exquisite design greatly simplifies the disassembly and installation process and significantly improves work efficiency. When the top block 402 and the receiving groove 304 are misaligned, the top block 402 will form an effective block for the detection module 3 to prevent it from being accidentally pressed and moved. This anti-misoperation mechanism ensures that the detection module 3 can only be disassembled or installed when the user actively operates, thus greatly improving the safety and reliability of the device. When the top block 402 is aligned with the receiving groove 304, press the detection module 3 to make the receiving groove 304 of the detection module 3 dock with the top block 402, and then move the detection module 3 as a whole downward to connect or release the detection module 3 to the first press buckle 101 of the box body 1 through the second press buckle 305. Through the ingenious docking design of the top block 402 and the receiving groove 304, the user can easily install and disassemble the detection module 3. Just align the top block 402 with the receiving groove 304 and press the detection module 3 to make the two dock with each other and be firmly fixed without the need for additional tools or complex operation steps. This convenient design greatly improves work efficiency and reduces the user's usage cost. The entire installation and disassembly process is intuitive and simple, and the user only needs to operate according to the instructions.This design that simplifies the operation process helps reduce the learning cost of users and improve their usage experience. After the top block 402 is accurately docked with the receiving groove 304, the detection module 3 is tightly connected to the first pressing buckle 101 of the box body 1 through the second pressing buckle 305, forming a stable fixing mechanism. This design ensures the stability of the detection module 3 during the test process, avoiding displacement or detachment caused by vibration or external force, thus effectively guaranteeing the accuracy and safety of the test. When the top block 402 and the receiving groove 304 are misaligned, the top block 402 blocks the detection module 3 to prevent the detection module 3 from being pressed and moved, thereby preventing accidental contact with the second pressing buckle 305 and the first pressing buckle 101. When the user does not correctly align the top block 402 with the receiving groove 304, the top block 402 will naturally form an effective block to the detection module 3. This design ingeniously avoids the user accidentally touching the detection module 3 in a hurry or carelessly, resulting in accidental connection or release of the second pressing buckle 305 and the first pressing buckle 101, which may cause safety problems. Accidental contact with the pressing buckle may cause improper movement or damage to the detection module 3, and even affect the stability and performance of the entire test device. The blocking effect of the top block 402 effectively protects the detection module 3 from such accidental damage and extends the service life of the device. The detection module 3 is provided with a receiving groove 304, and the bottom end of the detection module 3 is provided with a second pressing buckle 305. The inner bottom end of the box body 1 is provided with a first pressing buckle 101. The detection module 3 is installed in the box body 1 through the cooperation of the second pressing buckle 305 and the first pressing buckle 101.
[0046] Working principle:
[0047] The detection module 3 is the core component of the test device and is responsible for voltage detection. The touch screen 302 serves as a human-machine interaction interface for setting test parameters, displaying test results, etc. The user inputs test instructions through the touch screen 302, and the detection module 3 performs corresponding detection operations according to the instructions.
[0048] The detection hole 303 is the access point for the electroscope probe and forms an electrical connection with the electroscope probe through an internal reed. When the electroscope probe is inserted into the detection hole 303, the detection module 3 can detect the voltage signal after the electroscope probe is connected. The signal processing circuit processes and analyzes the detected voltage signal to obtain the starting voltage value of the electroscope, and the test result is displayed on the touch screen 302 for the user to view.
[0049] The detection module 3 internally includes a voltage detection circuit and a signal processing circuit. The voltage detection circuit is responsible for detecting the voltage signal after the electroscope probe is connected, and the signal processing circuit processes and analyzes the detected voltage signal to obtain the starting voltage value of the electroscope.
[0050] The support module 4 is connected to the detection module 3 through a connecting rod 403 and a top block 402. When the top block 402 is aligned with the receiving groove 304 on the detection module 3, the detection module 3 can be pressed to move downward as a whole, and then be connected or released to the first press buckle 101 on the box body 1 through the second press buckle 305. This design facilitates the quick installation and disassembly of the detection module 3.
[0051] When the top block 402 is misaligned with the receiving groove 304, the top block 402 will block the detection module 3 to prevent it from being accidentally pressed and moved. This design effectively avoids the situation of accidentally touching the press buckle when the detection module 3 does not need to be disassembled, improving the safety of the device.
[0052] The above shows and describes the basic principles, main features and advantages of the present invention. For those skilled in the art, it is obvious that the present invention is not limited to the details of the above exemplary embodiments, and can be implemented in other specific forms without departing from the spirit or basic features of the present invention. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the present invention. Any reference signs in the claims should not be regarded as limiting the claims involved.
[0053] In addition, it should be understood that although this specification is described according to embodiments, not every embodiment only contains an independent technical solution. This narrative way of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A device for testing the starting voltage of an electroscope, comprising a box body (1), a detection module (3) installed in the box body (1), the box body (1) being locked and closed by a lock buckle (2), characterized in that: A touch screen (302) is inlaid on the detection module (3); a power switch (301) is inlaid on one side of the detection module (3) located on the touch screen (302); a detection hole (303) is installed on the side of the detection module (3) located away from the power switch (301); and a support module (4) is installed at the bottom end of the box body (1); The detection module (3) is provided with a receiving groove (304), and a second pressing buckle (305) is installed at the bottom end of the detection module (3), and a first pressing buckle (101) is installed at the inner bottom end of the box body (1), and the detection module (3) is installed in the box body (1) by the second pressing buckle (305) and the first pressing buckle (101) cooperating with each other.
2. The electroscope starting voltage testing device according to claim 1, characterized in that: The support module (4) is provided with a cushion block (401), the cushion block (401) is connected to a top block (402) via a connecting rod (403), and the size of the top block (402) is adapted to the size of the accommodating groove (304).
3. The electroscope starting voltage test device according to claim 2, characterized in that: When the top block (402) is aligned with the receiving groove (304), the detection module (3) is pressed so that the receiving groove (304) of the detection module (3) and the top block (402) are docked with each other, and then the detection module (3) is moved downward as a whole, so that the detection module (3) is connected or released with the first pressing buckle (101) of the box body (1) through the second pressing buckle (305).
4. The electroscope starting voltage testing device according to claim 3, characterized in that: When the top block (402) and the receiving groove (304) are out of position, the top block (402) blocks the detection module (3) to prevent the detection module (3) from being pressed and moved, thereby preventing the second pressing buckle (305) and the first pressing buckle (101) from being accidentally touched.
5. The electroscope starting voltage testing device according to claim 2, wherein: The connecting rod (403) passes through the box body (1), the cushion block (401) is located on the outside of the box body (1), and the top block (402) is located on the inside of the box body (1).
6. The electroscope starting voltage testing device according to claim 1, wherein: The detection holes (303) are electrically connected to the touch screen (302), and the detection holes (303) are evenly distributed on the detection module (3).
7. The electroscope starting voltage testing device according to claim 1, characterized in that: The detection hole (303) guides the probe of the electroscope, so that the probe of the electroscope accurately enters the detection hole (303) and is electrically connected to the reed in the detection hole (303).
Citation Information
Patent Citations
Portable direct-current grounding test rapid testing device
CN210690785U