Device and method for detecting battery voltage of RTC (Real Time Clock) of computing power server

By designing a detection and movement mechanism to check battery polarity, and using a servo motor and threaded rod to ensure that the probe correctly contacts the battery polarity, the problem of incorrect polarity connection and short circuit in the RTC battery voltage detection of computing power servers is solved, achieving high accuracy and safety in voltage detection.

CN121856830APending Publication Date: 2026-04-14HANGZHOU ZHIHUI OASIS TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-26
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

In existing technologies, the accuracy of RTC battery voltage detection in computing servers is easily reduced due to operator misconnection of positive and negative terminals, and there is also a risk of short circuit.

Method used

A detection device including a detection, movement, and detection mechanism was designed. The battery polarity is checked by an arc plate and a contact sensor. A servo motor and a threaded rod are used to ensure that the probe makes correct contact with the battery polarity and avoid short circuits.

Benefits of technology

It improves the accuracy and reliability of battery voltage detection, prevents detection errors and short circuits caused by polarity mistakes, and ensures the stability and safety of battery voltage detection.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a computing power server RTC battery voltage detection device and method, and particularly relates to the technical field of battery voltage detection.The computing power server RTC battery voltage detection device comprises a mounting rack, a placement table is fixedly connected to the top of the mounting rack, a battery body is movably mounted on the top of the placement table, and an intelligent control box is fixedly connected to the outer wall of the mounting rack; a detection mechanism is arranged on the inner wall of the mounting frame, a moving mechanism is arranged on the inner wall of the mounting frame, a bearing frame is fixedly connected to the top of the mounting frame, and a detection mechanism is arranged on the inner wall of the mounting frame. According to the computing power server RTC battery voltage detection device and detection method, the cylinder, the contact sensor, the pressing plate and the arc-shaped plate are arranged, whether the positive electrode and the negative electrode of the computing power server RTC battery are reversely placed or not is detected in advance before the voltage of the computing power server RTC battery is detected, and the detection efficiency is improved. Voltage detection errors caused by reverse placement of the positive electrode and the negative electrode of the server RTC battery are prevented, and the accuracy and the reliability of voltage detection of the computing power server RTC battery are improved.
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Description

Technical Field

[0001] This invention relates to the field of battery voltage detection technology, and in particular to a device and method for detecting the battery voltage of a computing server RTC. Background Technology

[0002] RTC batteries may experience voltage loss or battery aging during the manufacturing process, transportation, or storage. Therefore, performing battery voltage testing can ensure that the RTC battery voltage is normal when the server leaves the factory, thus avoiding the impact on the normal operation of the server due to insufficient battery power.

[0003] For the production of RTC batteries for computing servers in small batches or during the testing phase, a multimeter is a common and widely used tool. It is easy to operate, and using a multimeter for manual testing is more flexible and cost-effective.

[0004] Some operators may lack sufficient experience or training when using multimeters and easily overlook battery polarity, especially on high-intensity, high-frequency production lines. Operators may rush through their work and connect the battery to the wrong positive or negative terminal. If the battery is connected to the wrong positive or negative terminal, the multimeter will usually display a negative voltage, which may mislead the operator into thinking that there is a problem with the battery voltage, thereby reducing the accuracy of the RTC battery voltage detection work of the computing server. Summary of the Invention

[0005] The purpose of this invention is to provide a device and method for detecting the battery voltage of a computing server RTC, so as to solve the problems mentioned in the background art.

[0006] To solve the above-mentioned technical problems, the present invention is achieved through the following technical solution: This invention relates to a device and method for detecting the battery voltage of a computing server RTC. The device includes a mounting frame, a placement platform fixedly connected to the top of the mounting frame, a battery body movably mounted on the top of the placement platform, an intelligent control box fixedly connected to the outer wall of the mounting frame, a detection mechanism and a moving mechanism located on the inner wall of the mounting frame, a support frame fixedly connected to the top of the mounting frame, and a detection mechanism located on the inner wall of the mounting frame. The detection mechanism includes an electric cylinder fixedly connected to the inner wall of the mounting frame, a cylinder fixedly connected to the lower part of the electric cylinder, a spring fixedly connected to the inner wall of the cylinder, a contact sensor fixedly connected to the outer wall of the spring, a sliding connection between the outer wall of the contact sensor and the inner wall of the cylinder, a pressure plate slidably connected to the inner wall of the cylinder, and several arc-shaped plates rotatably connected to the bottom of the cylinder in an arc-shaped array.

[0007] Preferably, the detection mechanism further includes torsion springs symmetrically distributed and fixedly connected to the inner wall of the cylinder, with each torsion spring sleeved on the outer wall of the arc-shaped plate, and the outer walls of both torsion springs fixedly connected to the outer wall of the arc-shaped plate.

[0008] Preferably, the moving mechanism includes a servo motor fixedly connected to the outer wall of the mounting frame, a threaded rod rotatably connected to the inner wall of the mounting frame, the outer wall of the threaded rod being fixedly connected to the output end of the servo motor, a threaded rod rotatably connected to the inner wall of the mounting frame, a pulley assembly being fixedly connected to the outer walls of the threaded rod and the threaded rod 2, and a slider threadedly connected to the outer walls of both the threaded rod and the threaded rod 2, with the outer walls of both sliders being slidably connected to the inner wall of the mounting frame.

[0009] Preferably, the moving mechanism further includes two hollow rods 1 respectively fixedly connected to the bottom of the two sliders. A piston rod 1 is slidably connected to the inner wall of each hollow rod 1. A pulley is fixedly connected to the bottom of each piston rod 1. The outer wall of each pulley is slidably connected to the inner wall of the mounting bracket. A spring 2 is sleeved on the outer wall of each piston rod 1. The outer wall of the spring 2 on the same side is fixedly connected to the inner wall of the hollow rod 1. The outer wall of the spring 2 on the same side is fixedly connected to the inner wall of the piston rod 1. The outer walls of the two sliders are also fixedly connected. Two hollow rods are fixedly connected. Two piston rods are slidably connected to the inner walls of the two hollow rods. Two springs are sleeved on the outer walls of the two piston rods. The outer walls of the springs on the same side are fixedly connected to the inner walls of the hollow rods. The outer walls of the springs on the same side are fixedly connected to the inner walls of the piston rods. Two connecting rods are rotatably connected to the inner walls of the two piston rods. Two arc-shaped clamps are fixedly connected to the outer walls of the two connecting rods. The outer walls of the hollow rods on the same side are fixedly connected to the outer walls of the hollow rods and are connected by a flexible hose.

[0010] Preferably, the moving mechanism further includes several anti-slip rubber strips that are fixedly connected to the inner walls of the two arc-shaped clamps, and symmetrically rotatably connected to the inner walls of the two arc-shaped clamps. Arc-shaped blocks are fixedly connected to the outer walls of the four rotating shafts, and torsion springs are symmetrically sleeved on the outer walls of the four rotating shafts. The outer walls of the arc-shaped blocks on the same side are fixedly connected to the outer walls of the two torsion springs on the same side, and the outer walls of the two torsion springs on the same side are fixedly connected to the inner walls of the arc-shaped clamps.

[0011] Preferably, the moving mechanism further includes two toothed plates that are fixedly connected to the outer walls of the two connecting rods respectively, and fixed columns are symmetrically fixedly connected to the top of the mounting frame. Cylinders are fixedly connected to the top of the two fixed columns, and column plates are fixedly connected to the top of the two cylinders. The outer walls of the toothed plates on the same side are meshed with the outer walls of the column plates.

[0012] Preferably, the testing mechanism includes an electric cylinder two fixedly connected to the inner wall of the mounting frame, a fixed outer shell fixedly connected to the outer wall of the electric cylinder two, a multimeter body fixedly connected to the outer wall of the fixed outer shell, a servo motor two fixedly connected to the top of the fixed outer shell, a threaded rod three rotatably connected to the inner wall of the fixed outer shell, the outer wall of the threaded rod three fixedly connected to the output end of the servo motor two, a threaded rod four fixedly connected to the bottom of the threaded rod three, the bottom of the threaded rod four rotatably connected to the inner wall of the fixed outer shell, a red probe threadedly connected to the outer wall of the threaded rod four, and the outer wall of the red probe slidably connected to the inner wall of the fixed outer shell.

[0013] Preferably, the detection mechanism further includes a black probe that is slidably connected to the inner wall of the fixed housing, a counterweight that is fixedly connected to the top of the black probe, a sliding plate that is threadedly connected to the outer wall of the threaded rod, and the outer wall of the sliding plate that is slidably connected to the inner wall of the fixed housing.

[0014] Preferably, the opening direction of the thread groove at the outer wall of the threaded rod three is opposite to that at the outer wall of the threaded rod four, and the opening length of the thread groove at the outer wall of the threaded rod three is shorter than that of the thread groove at the outer wall of the threaded rod four.

[0015] In addition, the present invention also provides a method for detecting the battery voltage of a computing server RTC, the method comprising: a: Place the battery body between the two arc-shaped clamps on the placement platform. Activate the detection mechanism to check the placement status of the battery body. If the battery body is placed correctly, the two cylinders will not drive the two column plates to the position where they can engage with the two toothed plates. If the battery body is not placed correctly, the two cylinders will drive the two column plates to the position where they can engage with the two toothed plates. After the detection mechanism completes the check of the battery body's placement status, activate the moving mechanism to clamp and fix the battery body and move it towards the detection mechanism. During this process, the column plates and toothed plates on the same side will engage, causing the two toothed plates to rotate simultaneously, flipping the battery body and adjusting it to the correct positive and negative terminal positions. b: The moving mechanism continues to move the battery body, which has been adjusted to the correct positive and negative polarity, toward the detection mechanism. Once the battery body is on the support, the moving mechanism is turned off, causing the battery body to stop moving. At this time, the detection mechanism is adjusted to a position where the voltage of the battery body can be detected, and the detection mechanism is turned on to detect the voltage of the battery body. C: After the testing mechanism completes the voltage test of the battery body, it returns the testing mechanism to its initial position, activates the moving mechanism to continue moving the battery body towards the testing mechanism, until it moves to a position where the moving mechanism no longer clamps and fixes the battery body, removes the battery body from the support, activates the moving mechanism, and returns the moving mechanism to its initial position.

[0016] The beneficial effects of this invention are: 1. The cylindrical, contact sensor, pressure plate, and arc-shaped plate of this invention check whether the positive and negative terminals of the computing server RTC battery are reversed before detecting the voltage of the computing server RTC battery. This prevents voltage detection errors caused by reversed polarity and improves the accuracy and reliability of computing server RTC battery voltage detection. The toothed plate and column plate allow the device to flip the battery body with incorrect polarity before detecting the voltage of the battery body itself, adjusting the battery body with incorrect polarity to the correct state. This reduces the time for voltage detection error diagnosis and avoids other potential problems caused by incorrect battery polarity, ensuring the accuracy of subsequent battery body voltage detection.

[0017] 2. The threaded rods three and four of this invention allow the black and red probes to move simultaneously toward the battery body, thereby contacting the negative and positive terminals of the battery body respectively. When working with the multimeter body to perform voltage testing on the battery body, this avoids the red and black probes simultaneously contacting the battery body's polarity, which could cause a short circuit. A short circuit would result in excessive current in the battery body, leading to overheating or even damage. A short circuit could also cause the multimeter body's fuse to blow, damaging the multimeter body and affecting the normal operation of the battery body voltage test.

[0018] 3. In the invention, the sliding plate, black probe, and red probe are designed such that after the black probe contacts the negative terminal of the battery body, in order for the red probe to continue moving upward to the highest point and then also contact the battery body, it is necessary to keep the threaded rod three and thread four rotating. The continuous rotation of threaded rod three can drive the sliding plate to continue moving downward a certain distance to prevent the sliding plate from being unable to move downward after the black probe contacts the negative terminal of the battery body. However, the threaded rod three must continue to rotate, which can easily cause the sliding plate to get stuck or damaged in the threaded rod three, making it impossible to achieve the task of making the red probe continue to move upward to the highest point and contact the positive terminal of the battery body. Attached Figure Description

[0019] To more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings used in the following description of the embodiments will be briefly introduced. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0020] in: Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram showing the front and back of the battery body of the present invention. Figure 3 This is a partial structural diagram of the present invention; Figure 4 This is a schematic cross-sectional view of the detection mechanism structure of the present invention; Figure 5 This is a schematic cross-sectional view of the detection mechanism structure of the present invention; Figure 6 This is a partial structural diagram of the detection mechanism of the present invention; Figure 7 This is a schematic cross-sectional view of the overall structure of the present invention; Figure 8 This is a schematic cross-sectional view of the moving mechanism structure of the present invention; Figure 9 This is a partial structural diagram of the moving mechanism of the present invention; Figure 10 For the present invention Figure 4 Schematic diagram of the structure at point A in the middle; Figure 11 This is a partial structural diagram of the present invention; Figure 12 This is a partial structural diagram of the present invention; Figure 13 This is a cross-sectional schematic diagram of the detection mechanism of the present invention; Figure 14 This is a partial structural diagram of the detection mechanism of the present invention.

[0021] In the diagram: 1. Mounting bracket; 2. Placement platform; 3. Battery body; 4. Intelligent control box; 5. Detection mechanism; 51. Cylinder 1; 52. Cylinder; 53. Spring 1; 54. Contact sensor; 55. Pressure plate; 56. Arc plate; 57. Torsion spring 1; 6. Moving mechanism; 61. Servo motor 1; 62. Pulley assembly; 63. Threaded rod 1; 64. Threaded rod 2; 65. Slider; 66. Pulley; 67. Piston rod 1; 68. Spring 2; 69. Hollow rod 1; 610. Flexible hose; 611. Hollow rod 2; 612. Spring 613. Piston rod 2; 614. Connecting rod; 615. Arc-shaped clamp; 616. Anti-slip rubber strip; 617. Rotating shaft; 618. Arc-shaped block; 619. Torsion spring 2; 620. Toothed plate; 621. Fixed column; 622. Cylinder; 623. Column plate; 7. Support bracket; 8. Detection mechanism; 81. Electric cylinder 2; 82. Fixed outer shell; 83. Multimeter body; 84. Servo motor 2; 85. Threaded rod 3; 86. Threaded rod 4; 87. Red probe; 88. Slide plate; 89. Black probe; 810. Counterweight. Detailed Implementation

[0022] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.

[0023] Example 1, as Figures 1-6 As shown, a computing server RTC battery voltage detection device and detection method includes a mounting frame 1, a placement platform 2 fixedly connected to the top of the mounting frame 1, a battery body 3 movably mounted on the top of the placement platform 2, an intelligent control box 4 fixedly connected to the outer wall of the mounting frame 1, a detection mechanism 5 provided on the inner wall of the mounting frame 1, a moving mechanism 6 provided on the inner wall of the mounting frame 1, a support frame 7 fixedly connected to the top of the mounting frame 1, and a detection mechanism 8 provided on the inner wall of the mounting frame 1. The detection mechanism 5 includes an electric cylinder 51 fixedly connected to the inner wall of the mounting frame 1, a cylinder 52 fixedly connected to the lower part of the electric cylinder 51, a spring 53 fixedly connected to the inner wall of the cylinder 52, a contact sensor 54 fixedly connected to the outer wall of the spring 53, a sliding connection between the outer wall of the contact sensor 54 and the inner wall of the cylinder 52, a pressure plate 55 slidably connected to the inner wall of the cylinder 52, and several arc-shaped plates 56 rotatably connected to the bottom of the cylinder 52 in an arc-shaped array. The detection mechanism 5 also includes torsion springs 57 that are symmetrically distributed and fixedly connected to the inner wall of the cylinder 52. Both torsion springs 57 are sleeved on the outer wall of the arc plate 56, and both torsion springs 57 are fixedly connected to the outer wall of the arc plate 56.

[0024] The aforementioned mounting frame 1 is provided with two identical sliding grooves that are symmetrically distributed. Both sliding grooves have a shape where the two sides are lower and the middle section is higher. The aforementioned battery body 3 is the most common button cell battery in computing power server RTC batteries. It is divided into a flat surface and a convex surface. The flat surface is the negative electrode, and the convex surface is the positive electrode. It is a mature technology in the existing technology. The structure and working principle of this solution will not be elaborated further here. The aforementioned intelligent control box 4 consists of a shell, numerous electrical components, a display and operation interface, wiring terminals and wires, and a heat dissipation device. Its function is to realize the system's automated control, data acquisition, and real-time monitoring, protect the safe operation of the equipment, and provide the operator with an intuitive operation interface and feedback function. By integrating components such as PLC, sensors, actuators, and HMI, the intelligent control box 4 achieves precise control and optimized management of complex production processes. In this solution, the intelligent control box 4 establishes connections with numerous power sources, controlling the power sources to accurately execute corresponding commands. This is a mature technical means in the existing technology, and its structure and working principle will not be elaborated further in this solution. None of the aforementioned curved plates 56 are made of materials that would damage the battery body 3; The outer diameter of the circle formed by the aforementioned arc plates 56 is smaller than the diameter of the negative electrode plane portion of the battery body 3, and the inner diameter of the circle formed by the aforementioned arc plates 56 is slightly larger than the diameter of the positive electrode protrusion portion. The aforementioned support frame 7 consists of a frame body and two rubber strips fixedly connected to the top of the frame body; In a specific implementation of the present invention, the device is placed at the location where the voltage of the computing server RTC battery needs to be detected. The staff first places the battery body 3 at the designated position on the placement platform 2. At this time, the moving mechanism 6 will not clamp and fix the battery body 3. Based on the setting of the detection mechanism 8, in order for the detection mechanism 8 to correctly complete the detection of the voltage of the battery body 3, the battery body 3 placed on the placement platform 2 must be in the state where the plane representing the negative electrode is facing up and the convex surface representing the positive electrode is facing down. After placing the battery body 3 in the designated position on the placement platform 2, the electric cylinder 51 is activated, causing the cylinder 52 to move downwards. This, in turn, causes several arc-shaped plates 56 to move downwards as well. If the convex surface of the battery body 3 is facing upwards on the placement platform 2, due to the presence of the protruding part of the battery body 3, the arc-shaped plates 56 will pass through the protruding part of the battery body 3 before they come into contact with it. At this point, the pressure plate 55 will come into contact with the protruding part of the battery body 3. If the arc-shaped plates 56 continue to move downwards, the pressure plate 55 will be squeezed upwards because it is already in contact with the pressure plate 56, thus contacting the contact sensor. The device 54 sends an electrical signal to the intelligent control box 4, which in turn controls the moving mechanism 6 to issue a corresponding command. In subsequent steps, the battery body 3, which was placed upside down, is adjusted to the correct state with the flat side facing up. This allows the detection mechanism 8 to correctly detect the voltage of the battery body 3. Thus, before the voltage detection of the computing server RTC battery, this device can check in advance whether the positive and negative terminals of the computing server RTC battery are reversed, preventing voltage detection errors caused by reversed positive and negative terminals of the server RTC battery, and improving the accuracy and reliability of computing server RTC battery voltage detection. If the battery body 3 placed on the placement platform 2 is facing upwards, when several arc plates 56 move downwards and contact the battery body 3, several arc plates 56 will be blocked by the battery body 3 and cannot continue to move downwards. At this time, the pressure plate 55 cannot contact the battery body 3 and will not move. It will then contact the contact sensor 54 and transmit a signal to the intelligent control box 4, so that the intelligent control box 4 can control the moving mechanism 6 to make corresponding commands. The several arc-shaped plates 56 are rotatably connected, so that after the several arc-shaped plates 56 pass through the protruding part of the battery body 3 and come into contact with the chamfered edge of the battery body 3, the several arc-shaped plates 56 continue to move downward. After being subjected to force, they all rotate, so that after the pressure plate 55 contacts the protruding part of the battery body 3, the several arc-shaped plates 56 can continue to move downward, so that the pressure plate 55 can be continuously compressed and kept moving upward, thereby better completing the task of contacting the contact sensor 54 and ensuring the stability of the operation of this device; After several arc plates 56 rotate, several torsion springs 57 will deform. When the electric cylinder 51 drives several arc plates 56 to move upward and they all lose contact with the battery body 3, under the reaction force of several torsion springs 57, several arc plates 56 will rotate and return to their initial state. The presence of spring 53 ensures that after the pressure plate 55 contacts the contact sensor 54, if the pressure plate 55 continues to move upward, the contact sensor 54 has redundant space to move towards the cylinder 52. This prevents the pressure plate 55 from continuing to move upward after contacting the contact sensor 54 and squeezing the contact sensor 54, which could easily damage the contact sensor 54.

[0025] Example 2, as Figures 7-11 As shown, the moving mechanism 6 includes a servo motor 61 fixedly connected to the outer wall of the mounting frame 1, a threaded rod 63 rotatably connected to the inner wall of the mounting frame 1, the outer wall of the threaded rod 63 being fixedly connected to the output end of the servo motor 61, a threaded rod 64 rotatably connected to the inner wall of the mounting frame 1, a pulley group 62 being fixedly connected to the outer walls of the threaded rod 63 and the threaded rod 64, and a slider 65 threadedly connected to the outer walls of both the threaded rod 63 and the threaded rod 64, with the outer walls of both sliders 65 being slidably connected to the inner wall of the mounting frame 1. The moving mechanism 6 also includes two hollow rods 69 fixedly connected to the bottoms of the two sliders 65 respectively. A piston rod 67 is slidably connected to the inner wall of each hollow rod 69. A pulley 66 is fixedly connected to the bottom of each piston rod 67. The outer wall of each pulley 66 is slidably connected to the inner wall of the mounting bracket 1. A spring 68 is sleeved on the outer wall of each piston rod 67. The outer wall of the spring 68 on the same side is fixedly connected to the inner wall of the hollow rod 69. The outer wall of the spring 68 on the same side is fixedly connected to the inner wall of the piston rod 67. A hollow rod 61 is fixedly connected to the outer wall of each slider 65. 1. Piston rod 2 613 is slidably connected to the inner wall of both hollow rods 2 611. Spring 3 612 is sleeved on the outer wall of both piston rods 2 613. The outer wall of spring 3 612 on the same side is fixedly connected to the inner wall of hollow rod 2 611. The outer wall of spring 3 612 on the same side is fixedly connected to the inner wall of piston rod 2 613. Connecting rod 614 is rotatably connected to the inner wall of both piston rods 2 613. Arc-shaped clamping plate 615 is fixedly connected to the outer wall of both connecting rod 614. The outer wall of hollow rod 2 611 on the same side and the outer wall of hollow rod 1 69 are both fixedly connected and pass through a flexible hose 610. The moving mechanism 6 also includes several anti-slip rubber strips 616 that are fixedly connected to the inner walls of the two arc-shaped clamps 615. The inner walls of the two arc-shaped clamps 615 are symmetrically rotatably connected to the shafts 617. The outer walls of the four shafts 617 are fixedly connected to the arc-shaped blocks 618. The outer walls of the four shafts 617 are symmetrically fitted with torsion springs 619. The outer walls of the arc blocks 618 on the same side are fixedly connected to the outer walls of the two torsion springs 619. The outer walls of the two torsion springs 619 on the same side are fixedly connected to the inner walls of the arc-shaped clamps 615. The moving mechanism 6 also includes two toothed plates 620 that are fixedly connected to the outer walls of the two connecting rods 614 respectively. The top of the mounting frame 1 is symmetrically fixedly connected to the fixing columns 621. The top of each of the two fixing columns 621 is fixedly connected to the cylinder 622. The top of each of the two cylinders 622 is fixedly connected to the column plate 623. The outer walls of the toothed plates 620 and the column plates 623 on the same side are engaged with each other.

[0026] The aforementioned contact sensor 54 is a mature technology in the prior art. After contacting the pressure plate 55, it transmits an electrical signal to the control system in the intelligent control box 4. After processing the signal and performing logical judgment, the intelligent control box 4 controls the two cylinders 622 to make corresponding instructions precisely. The structure and working principle of this solution will not be elaborated further here. In a specific implementation of the present invention, in the initial position, both arc-shaped clamps 615 are on the placement platform 2. The battery body 3 is placed between the two arc-shaped clamps 615 in the groove of the placement platform 2. All four arc-shaped blocks 618 are in contact with the outer wall of the battery body 3. At this time, the two pulleys 66 are respectively in the lower position of the two sliding grooves in the mounting frame 1. Therefore, the two arc-shaped clamps 615 will not clamp and fix the battery body 3. In the initial state, the two column plates 623 are in a position that will not mesh with the two toothed plates 620. During this period, after the detection mechanism 5 has completed the inspection of the placement status of the battery body 3 on the placement platform 2, if the battery body 3 is facing upwards, the placement status of the battery body 3 is correct. During the inspection, the pressure plate 55 will not contact the contact sensor 54, and the contact sensor 54 will not send an electrical signal to the intelligent control box 4, so that the intelligent control box 4 controls the two cylinders 622 to drive the two column plates 623 upwards to the designated position where they can mesh with the two toothed plates 620. Thus, as the two toothed plates 620 continue to move towards the two column plates 623, they will not mesh with the two column plates 623, causing the two toothed plates 620 to rotate, thereby causing the two connecting rods 614 to rotate, thereby driving the two arc-shaped clamps 615 to rotate simultaneously, and performing a flipping operation on the battery body 3. If the convex surface of the battery body 3 is facing upwards, the battery body 3 is incorrectly positioned. During the inspection process, the pressure plate 55 will contact the contact sensor 54, which will send an electrical signal to the intelligent control box 4. This will cause the intelligent control box 4 to control the two cylinders 622 to move the two column plates 623 upwards to a designated position where they can engage with the two toothed plates 620. As the two toothed plates 620 continue to move towards the two column plates 623, they will engage with the two column plates 623, causing the two toothed plates 620 to rotate 180 degrees simultaneously. This will cause the two connecting rods 614 to rotate 180 degrees simultaneously, which in turn will cause the two arc-shaped clamps 615 to rotate 180 degrees simultaneously, flipping the convex surface of the battery body 3 to face upwards. In this way, before the detection mechanism 8 detects the voltage of the battery body 3, the incorrectly positioned battery body 3 is adjusted to the correct state. This reduces the time for diagnosing voltage detection errors and avoids other potential problems caused by incorrect battery polarity, ensuring the accuracy of subsequent voltage detection of the battery body 3. After checking the placement of the battery body 3 and adjusting the positions of the two column plates 623 accordingly, the servo motor 61 is turned on to drive the threaded rod 63 to rotate. Under the action of the pulley group 62, the threaded rod 64 rotates at the same time, so that the two sliders 65 move continuously towards the support frame 7, and the two pulleys 66 and the two arc-shaped clamps 615 move towards the support frame 7 at the same time. The two arc-shaped clamps 615 move at the same time, and under the action of the arc-shaped block 618, they push the battery body 3 on the placement platform 2 to move towards the support frame 7 as well. After the two pulleys 66 move from the lower position to the higher position in the two grooves of the mounting frame 1, the two pulleys 66 will be squeezed, which will drive the two piston rods 67 to move upward in the two hollow rods 69. The hydraulic oil between the piston rods 67 and hollow rods 69 on the same side will be squeezed into the position between the piston rods 613 and hollow rods 611 through the hoses 610. Under the hydraulic principle of continuous compression of the hydraulic oil, the two piston rods 613 will move towards the battery body 3 at the same time, thereby driving the two connecting rods 614 to move towards the battery body 3 at the same time, thereby driving the two arc-shaped clamps 615 to move towards the battery body 3 at the same time, thus completing the clamping and fixing of the battery body 3. During this clamping and fixing process, the battery body 3 is always on the placement platform 2. Several anti-slip rubber strips 616 play an anti-slip role, making the clamping and fixing of the two arc-shaped clamps 615 more stable. The two sliders 65 drive the two pulleys 66 to move continuously toward the support frame 7. Before the detection mechanism 8 completes the voltage detection of the battery body 3, they are always in the higher position of the two slides in the mounting frame 1. Therefore, the two pulleys 66 are always in a squeezed state. During this process, the two arc-shaped clamps 615 always keep the battery body 3 in a clamped and fixed state.

[0027] Example 3, as Figures 12-14 As shown, the testing mechanism 8 includes an electric cylinder 2 81 fixedly connected to the inner wall of the mounting frame 1, a fixed housing 82 fixedly connected to the outer wall of the electric cylinder 2 81, a multimeter body 83 fixedly connected to the outer wall of the fixed housing 82, a servo motor 2 84 fixedly connected to the top of the fixed housing 82, a threaded rod 3 85 rotatably connected to the inner wall of the fixed housing 82, the outer wall of the threaded rod 3 85 fixedly connected to the output end of the servo motor 2 84, a threaded rod 4 86 fixedly connected to the bottom of the threaded rod 3 85, the bottom of the threaded rod 4 86 rotatably connected to the inner wall of the fixed housing 82, a red probe 87 threadedly connected to the outer wall of the threaded rod 4 86, and the outer wall of the red probe 87 slidably connected to the inner wall of the fixed housing 82. The testing mechanism 8 also includes a black probe 89 that is slidably connected to the inner wall of the fixed housing 82. A counterweight 810 is fixedly connected to the top of the black probe 89. A sliding plate 88 is threadedly connected to the outer wall of the threaded rod 85. The outer wall of the sliding plate 88 is slidably connected to the inner wall of the fixed housing 82. The thread grooves on the outer wall of thread rod 3 at 85 and thread rod 4 at 86 are opened in opposite directions, and the length of the thread groove on the outer wall of thread rod 3 at 85 is shorter than the length of the thread groove on the outer wall of thread rod 4 at 86.

[0028] The aforementioned servo motor 61 and servo motor 84 are both mature technologies in the existing technology. This solution only borrows their functions of controlling the rotation speed, number of rotations, and start / stop at any time. Their structure and working principle will not be elaborated further here. The multimeter body 83 mentioned above consists of a display screen, a selection switch, an input port, internal circuitry, a battery, and function buttons. It is an important tool for detecting the voltage of the battery body 3 and is a mature technology in the existing technology. The structure and working principle of the multimeter body 83 will not be elaborated further in this solution. Both the red probe 87 and the black probe 89 mentioned above are composed of a shell and a metal probe. Both the red probe 87 and the black probe 89 are connected to the multimeter body 83 by leads and connectors to complete the detection of the voltage of the battery body 3. The black probe 89 mainly contacts the negative terminal of the battery body 3, and the red probe 87 contacts the positive terminal of the battery body 3. Both are mature technologies in the prior art, and their structure and working principle will not be elaborated further in this solution. In a specific implementation of this invention, when the two arc-shaped clamping plates 615 maintain the clamping and fixing state of the battery body 3 and have completely passed the two column plates 623, the battery body 3 should be in a state with the flat surface facing up and the convex surface facing down. At this time, the battery body 3 continues to move towards the support frame 7 until the battery body 3 is moved to a position above the support frame 7. At this time, the top of the support frame 7 will contact the bottom of the battery body 3, providing support for the battery body 3. This prevents the battery body 3 from being suspended in the air. During the process of using the multimeter body 83, red probe 87, and black probe 89 to detect the voltage of the battery body 3, although the two arc-shaped clamping plates 615 maintain the clamping and fixing state of the battery body 3, if the battery body 3 is suspended in the air, the red probe 87 and black probe 89 may easily change the state of the battery body 3 during contact with the battery body 3, resulting in poor contact between the positive and negative terminals of the red probe 87 and black probe 89, which cannot make stable contact and thus cause errors in the voltage detection data of the battery body 3. After the battery body 3 is moved to a certain position on the support frame 7, the servo motor 61 is turned off, so that the two arc-shaped clamps 615 stop moving. In the initial state, the slide plate 88 is at the highest position on the threaded rod 85. At this time, the slide plate 88 supports the black probe 89, so that the slide plate 88 cannot move downward. The red probe 87 is at the lowest position on the threaded rod 86. When the electric cylinder 81 is activated, it moves the fixed housing 82 toward the battery body 3 until the probes of the red probe 87 and the black probe 89 can both contact the battery body 3. At this time, the red probe 87, the black probe 89 and the multimeter body 83 are correctly connected to the connection end through the lead wire. The X-axis center plane of the connection part of the threaded rod 85 and the threaded rod 86 is on the same horizontal plane as the X-axis center plane of the battery body 3. Adjust the multimeter body 83 to a state where the voltage of the battery body 3 can be correctly detected. Servo motor 2 (84) drives threaded rod 3 (85) to rotate, which in turn drives threaded rod 4 (86) to rotate. This causes slide plate 88 and red probe 87 to move simultaneously toward battery body 3. As slide plate 88 moves downwards, it cannot maintain its position to support black probe 89. Therefore, under the weight of counterweight 810, black probe 89 also moves toward battery body 3. Because the threaded groove on the outer wall of threaded rod 3 (85) is shorter than that on threaded rod 4 (86), as slide plate 88 continues to move downwards, black probe 89 continues to move downwards until it is embedded in the fixed housing. When the two slides of 82 cannot move downwards, the probe part just touches the negative terminal of the battery body 3. The slide plate 88 is still a certain distance away from moving to the lowest position of the threaded rod 85, but the red probe 87 has not yet touched the positive terminal of the battery body 3 due to the long moving distance. This can avoid the red probe 87 and the black probe 89 from touching the polarity of the battery body 3 at the same time, thus avoiding the short circuit problem of the battery body 3. The short circuit will cause the current of the battery body 3 to be too large, resulting in overheating or even damage. The short circuit may also cause the fuse of the multimeter body 83 to blow, damaging the multimeter body 83, thus affecting the normal detection of the voltage of the battery body 3. Since the black probe 89 contacts the battery body 3 before the red probe 87, in order for the red probe 87 to continue moving upward to the highest point and then also contact the battery body 3 to complete the voltage detection of the battery body 3, the threaded rods 3 and 4 need to remain rotating. Since the black probe 89 is blocked by the groove in the fixed housing 82 after contacting the negative terminal of the battery body 3, it cannot continue to move downward. Therefore, while the threaded rod 4 continues to rotate, driving the red probe 87 to continue moving upward until it reaches the highest point and contacts the positive terminal of the battery body 3, the threaded rod 3 continues to rotate, which can drive the slide plate 88 to continue to move downward a certain distance. This prevents the slide plate 88 from being unable to move downward after the black probe 89 contacts the negative terminal of the battery body 3. However, the threaded rod 3 must continue to rotate, which may cause the slide plate 88 to get stuck or damaged in the threaded rod 3, making it impossible to achieve the task of moving the red probe 87 to the highest point and contacting the positive terminal of the battery body 3. When the black probe 89 contacts the negative terminal of the battery body 3 and the red probe 87 contacts the positive terminal of the battery body 3, the multimeter body 83, when turned on, will detect the voltage of the battery body 3 through the red probe 87 and the black probe 89, determine whether the voltage of the battery body 3 is within the compliant range, and display the measured voltage data to determine whether the voltage of the battery body 3 meets the quality standards. After the voltage detection of the battery body 3 is completed, the servo motor 84 is turned on to drive the slide plate 88 and the red probe 87 to move away from the battery body 3 at the same time until the red probe 87, slide plate 88 and black probe 89 are all returned to their initial positions. Then, the electric cylinder 81 is turned on to drive the fixed housing 82 to move away from the battery body 3 to a position that will not obstruct the two pulleys 66 from moving from the higher position to the lower position in the two slides of the mounting bracket 1. After completing the above operations, servo motor 61 is turned on, so that the two sliders 65 continue to move closer to the detection mechanism 8, and the two arc-shaped clamps 615 continue to move closer to the detection mechanism 8 while maintaining the battery body 3 in a fixed clamping state. After both pulleys 66 have completely moved from a higher position to a lower position within the groove of the mounting bracket 1, since both pulleys 66 are no longer compressed, both piston rods 67 are no longer compressed and move downward within the two hollow rods 69 respectively. Thus, the hydraulic oil between the piston rods 67 and the hollow rods 69 on the same side is no longer compressed, causing the two arc-shaped clamps 615 to move away from the battery body 3 at the same time, no longer maintaining the state of clamping and fixing the battery body 3. During this process, the support bracket 7 is always in the state of supporting the battery body 3. In this way, the battery body 3, which has completed the voltage test, can be removed from the support bracket 7, and the corresponding subsequent processing can be carried out according to whether the voltage test result is qualified. Then, the servo motor 61 is turned on to drive the two sliders 65 to move continuously toward the placement platform 2 until the components fixedly installed on the two sliders 65 are returned to their initial positions. During this process, if the two column plates 623 are adjusted to a position that can engage with the two toothed plates 620 before the voltage detection mechanism 8 is used to detect the voltage of the battery body 3, and the two column plates 623 are kept in the above position before the two sliders 65 are returned to their initial positions, the two toothed plates 620 can engage with the two toothed plates 620 again during the movement to return to the initial position, so that the two toothed plates 620 rotate and return to the initial state, so that the device can complete the voltage detection work for the next battery body 3. After both toothed plates 620 are returned to their initial positions, the two cylinders 622 are activated to drive the two column plates 623 downward to their initial positions, which will not obstruct the movement of the two toothed plates 620.

[0029] Example 4: The present invention also provides a method for using the computing server RTC battery voltage detection device and detection method, the method comprising: a: Place the battery body 3 between the two arc-shaped clamps 615 on the placement platform 2. Activate the detection mechanism 5 to check the placement status of the battery body 3. If the placement status of the battery body 3 is correct, the two cylinders 622 will not drive the two column plates 623 to move to a position where they can engage with the two toothed plates 620. If the placement status of the battery body 3 is incorrect, the two cylinders 622 will drive the two column plates 623 to move to a position where they can engage with the two toothed plates 620. After the detection mechanism 5 completes the check of the placement status of the battery body 3, activate the moving mechanism 6 to clamp and fix the battery body 3 and move it towards the detection mechanism 8. During this process, the column plates 623 and toothed plates 620 on the same side will engage, causing the two toothed plates 620 to rotate simultaneously, flipping the battery body 3 and adjusting it to the correct positive and negative terminal state. b: The moving mechanism 6 continues to move the battery body 3, which has been adjusted to the correct positive and negative polarity, toward the detection mechanism 8. After the battery body 3 is on the support 7, the moving mechanism 6 is closed, so that the battery body 3 stops moving. At this time, the detection mechanism 8 is adjusted to a position where the voltage of the battery body 3 can be detected, and the detection mechanism 8 is turned on to detect the voltage of the battery body 3. C: After the testing mechanism 8 completes the voltage test of the battery body 3, it returns the testing mechanism 8 to its initial position, and activates the moving mechanism 6 to continue moving the battery body 3 towards the testing mechanism 8 until it moves to a position where the moving mechanism 6 no longer clamps and fixes the battery body 3. Then, it removes the battery body 3 from the support frame 7, activates the moving mechanism 6, and returns the moving mechanism 6 to its initial position.

[0030] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of this invention is defined by the appended claims and their equivalents.

Claims

1. A computing server RTC battery voltage detection device, comprising a mounting bracket (1), characterized in that: The mounting frame (1) is fixedly connected to a placement platform (2) at its top. A battery body (3) is movably mounted on the top of the placement platform (2). An intelligent control box (4) is fixedly connected to the outer wall of the mounting frame (1). A detection mechanism (5) is provided on the inner wall of the mounting frame (1). A moving mechanism (6) is provided on the inner wall of the mounting frame (1). A support frame (7) is fixedly connected to the top of the mounting frame (1). A detection mechanism (8) is provided on the inner wall of the mounting frame (1). The detection mechanism (5) includes a component fixedly connected to the mounting bracket. An electric cylinder (51) is located on the inner wall of the mounting frame (1). A cylinder (52) is fixedly connected to the lower part of the electric cylinder (51). A spring (53) is fixedly connected to the inner wall of the cylinder (52). A contact sensor (54) is fixedly connected to the outer wall of the spring (53). The outer wall of the contact sensor (54) is slidably connected to the inner wall of the cylinder (52). A pressure plate (55) is slidably connected to the inner wall of the cylinder (52). Several arc-shaped plates (56) are rotatably connected to the bottom of the cylinder (52) in an arc-shaped array.

2. The computing server RTC battery voltage detection device according to claim 1, characterized in that: The detection mechanism (5) also includes torsion springs (57) that are symmetrically distributed and fixedly connected to the inner wall of the cylinder (52). Both torsion springs (57) are sleeved on the outer wall of the arc plate (56), and the outer walls of both torsion springs (57) are fixedly connected to the outer wall of the arc plate (56).

3. The computing server RTC battery voltage detection device according to claim 2, characterized in that: The moving mechanism (6) includes a servo motor (61) fixedly connected to the outer wall of the mounting frame (1), a threaded rod (63) rotatably connected to the inner wall of the mounting frame (1), the outer wall of the threaded rod (63) being fixedly connected to the output end of the servo motor (61), a threaded rod (64) rotatably connected to the inner wall of the mounting frame (1), a pulley group (62) being fixedly connected to the outer walls of the threaded rod (63) and the threaded rod (64), and a slider (65) threadedly connected to the outer walls of the threaded rod (63) and the threaded rod (64), with the outer walls of both sliders (65) being slidably connected to the inner wall of the mounting frame (1).

4. The computing server RTC battery voltage detection device according to claim 3, characterized in that: The moving mechanism (6) further includes two hollow rods (69) fixedly connected to the bottom of the two sliders (65), and piston rods (67) slidably connected to the inner walls of the two hollow rods (69). Pulleys (66) are fixedly connected to the bottom of the two piston rods (67), and the outer walls of the two pulleys (66) slidably connect to the inner wall of the mounting bracket (1). Springs (68) are sleeved on the outer walls of the two piston rods (67), and the outer walls of the springs (68) on the same side are fixedly connected to the inner walls of the hollow rods (69). Hollow rods (68) are fixedly connected to the outer walls of the two sliders (65). 611), both hollow rods 2 (611) are slidably connected to the inner walls of the two hollow rods 2 (611), both piston rods 2 (613) are fitted with springs 3 (612) on the outer walls of the two piston rods 2 (613), the outer walls of springs 3 (612) on the same side are fixedly connected to the inner walls of hollow rods 2 (611), the outer walls of springs 3 (612) on the same side are fixedly connected to the inner walls of piston rods 2 (613), both piston rods 2 (613) are rotatably connected to the inner walls of the two piston rods 2 (613), both connecting rods 2 (614) are fixedly connected to the outer walls of the two connecting rods 2 (614), and both hollow rods 2 (611) on the same side are fixedly connected to the outer walls of hollow rods 1 (69) and have a flexible hose (610) passing through them.

5. The computing server RTC battery voltage detection device according to claim 4, characterized in that: The moving mechanism (6) also includes several anti-slip rubber strips (616) that are fixedly connected to the inner walls of the two arc-shaped clamps (615). The inner walls of the two arc-shaped clamps (615) are symmetrically connected to rotating shafts (617). The outer walls of the four rotating shafts (617) are fixedly connected to arc-shaped blocks (618). The outer walls of the four rotating shafts (617) are symmetrically fitted with torsion springs (619). The outer walls of the arc-shaped blocks (618) on the same side are fixedly connected to the outer walls of the two torsion springs (619). The outer walls of the two torsion springs (619) on the same side are fixedly connected to the inner walls of the arc-shaped clamps (615).

6. The computing server RTC battery voltage detection device according to claim 5, characterized in that: The moving mechanism (6) also includes two toothed plates (620) that are fixedly connected to the outer walls of the two connecting rods (614) respectively. The mounting frame (1) is symmetrically fixedly connected to the top of the fixed column (621). The top of each of the two fixed columns (621) is fixedly connected to a cylinder (622). The top of each of the two cylinders (622) is fixedly connected to a column plate (623). The outer walls of the toothed plates (620) and the outer walls of the column plates (623) on the same side are engaged and connected.

7. The computing server RTC battery voltage detection device according to claim 6, characterized in that: The testing mechanism (8) includes an electric cylinder two (81) fixedly connected to the inner wall of the mounting frame (1), a fixed outer shell (82) fixedly connected to the outer wall of the electric cylinder two (81), a multimeter body (83) fixedly connected to the outer wall of the fixed outer shell (82), a servo motor two (84) fixedly connected to the top of the fixed outer shell (82), a threaded rod three (85) rotatably connected to the inner wall of the fixed outer shell (82), the outer wall of the threaded rod three (85) fixedly connected to the output end of the servo motor two (84), the bottom of the threaded rod three (85) fixedly connected to the threaded rod four (86), the bottom of the threaded rod four (86) rotatably connected to the inner wall of the fixed outer shell (82), a red probe (87) threadedly connected to the outer wall of the threaded rod four (86), and the outer wall of the red probe (87) slidably connected to the inner wall of the fixed outer shell (82).

8. The computing server RTC battery voltage detection device according to claim 7, characterized in that: The detection mechanism (8) also includes a black probe (89) that is slidably connected to the inner wall of the fixed housing (82). A counterweight (810) is fixedly connected to the top of the black probe (89). A sliding plate (88) is threadedly connected to the outer wall of the threaded rod (85). The outer wall of the sliding plate (88) is slidably connected to the inner wall of the fixed housing (82).

9. The computing server RTC battery voltage detection device according to claim 8, characterized in that: The opening direction of the thread groove on the outer wall of the thread rod three (85) is opposite to that on the outer wall of the thread rod four (86), and the opening length of the thread groove on the outer wall of the thread rod three (85) is shorter than that of the thread groove on the outer wall of the thread rod four (86).

10. A method for detecting the battery voltage of a computing server RTC, applicable to the computing server RTC battery voltage detection device as described in claim 9, characterized in that: a: Place the battery body (3) between the two arc-shaped clamps (615) on the placement platform (2), and turn on the detection mechanism (5) to check the placement status of the battery body (3). If the placement status of the battery body (3) is correct, the two cylinders (622) will not drive the two column plates (623) to move to the position that can mesh with the two toothed plates (620). If the placement status of the battery body (3) is incorrect, the two cylinders (622) will drive the two column plates (623) to move to the position that can mesh with the two toothed plates (620). After the detection mechanism (5) completes the inspection of the placement status of the battery body (3), turn on the moving mechanism (6) to clamp and fix the battery body (3) and move it towards the detection mechanism (8). During this process, the column plate (623) and the toothed plate (620) on the same side will mesh, causing the two toothed plates (620) to rotate at the same time, flipping the battery body (3) and adjusting the battery body (3) to the correct positive and negative electrode state. b: The moving mechanism (6) continues to move the battery body (3) after it has been adjusted to the correct positive and negative polarity state towards the detection mechanism (8) until the battery body (3) is on the support (7). Then the moving mechanism (6) is closed, so that the battery body (3) stops moving. At this time, the detection mechanism (8) is adjusted to a position where the voltage of the battery body (3) can be detected, and the detection mechanism (8) is turned on to detect the voltage of the battery body (3). C: After the testing mechanism (8) completes the voltage test of the battery body (3), it returns the testing mechanism (8) to its initial position, activates the moving mechanism (6) to move the battery body (3) towards the testing mechanism (8) until it moves to a position where the moving mechanism (6) no longer clamps and fixes the battery body (3), removes the battery body (3) from the support (7), activates the moving mechanism (6), and returns the moving mechanism (6) to its initial position.