Batch power-on detection device for whole computer manufacturing
The probe rotation mechanism and wiping cloth cleaning system solve the problems of probe oxidation and dust adhesion, realize automatic rotation and cleaning of probes, extend the service life, improve detection accuracy and efficiency, and reduce maintenance costs.
Patent Information
- Application Number
- CN202510822807.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-19
- Publication Date
- 2025-09-16
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In existing computer power-on testing, the probe is prone to poor contact due to oxidation and dust adhesion, affecting detection efficiency and accuracy, and requiring frequent maintenance shutdowns, increasing consumables costs.
A batch power-on detection device for computer manufacturing was designed. It adopted a probe rotation mechanism and a wiping cloth cleaning system to realize automatic rotation of probes and removal of surface dust, thus avoiding excessive wear of a single probe. The combination of automatic rotation and cleaning can reduce manual intervention.
It extends the service life of the probe, improves detection accuracy, reduces downtime for maintenance and the cost of replacing consumables, adapts to the continuous operation requirements of the production line, and improves the efficiency of single-batch detection.
Smart Images

Figure CN120652190A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of computer detection equipment, and in particular to a batch power-on detection device for manufacturing complete computers. Background Art
[0002] During computer manufacturing, it is necessary to perform power-on testing on all computers (such as desktops, servers, and industrial computers). Currently, during batch power-on testing of computers, the computers are generally placed on a chain conveyor belt manually or by an AGV (Automated Guided Vehicle). The conveyor belt transports the computers to the testing area at a constant speed of 0.5-1m / s. After the computer arrives at the testing station, a photoelectric sensor triggers the positioning cylinder to press down, securing the computer via a slot and a limit block. After ensuring that the interface is aligned with the probe, a servo motor drives the probe module to contact the power interface of the computer, the mainboard test points, and other positions, completing the power-on test of the computer.
[0003] The existing publication number is: CN221746559U. This utility model relates to a computer power-on detection device, comprising a base, wherein the upper end surface of the base is fixed with a conveyor belt device, a clamping and straightening mechanism, and a bracket. The lower side of the top of the bracket is connected to a multimeter via a third electric telescopic column. Contact pieces are symmetrically fixed on both sides of the lower end surface of the multimeter. The computer power-on detection device can achieve the purpose of orderly and efficient detection and clamping and straightening. The conveyor belt device can be used to transport the computer to the right, making the entire detection operation more orderly and efficient. After the computer reaches the bottom of the support plate, the support plate moves downward along with the first movable frame. When the second movable frame moves upward, the clamping block leaves the slot, thereby unlocking the limit rod. The limit rod and clamping plate automatically spring open, and the clamping plate can clamp and straighten the computer to ensure that the computer is neatly placed. After the clamping plate is removed, the computer can continue to be transported to the right. After the multimeter is lowered, the multimeter and contact pieces can be used in combination to detect the computer power-on performance.
[0004] However, in the existing computer power-on detection, the probes are prone to poor contact due to oxidation and dust adhesion in the workshop after long-term use, which requires shutdown and replacement, affecting detection efficiency. Existing companies often use gold-plated probes to alleviate the oxidation problem, but the cost is high and the adhesion of pollutants such as dust cannot be avoided. In addition, due to factors such as micro-wear in the workshop environment, frequent shutdowns for maintenance are still required, which not only increases the cost of consumables, but also leads to a significant decrease in production line efficiency. Summary of the Invention
[0005] In view of this, the present invention provides a batch power-on detection device for the manufacture of complete computers, which has a probe rotation function to avoid excessive wear and tear of a single probe, and is combined with a wiping cloth to remove surface dust and oxide layers, thereby extending the service life of the power-on detection probe and reducing the replacement frequency. The automatic rotation and cleaning do not require manual intervention, avoiding misjudgments caused by poor probe contact, improving detection accuracy, reducing downtime for maintenance, adapting to the continuous operation requirements of the production line, improving the efficiency of single-batch detection, and reducing the cost of replacing consumables.
[0006] The present invention provides a batch power-on detection device for manufacturing complete computer systems, specifically comprising a power-on detection frame, a detection conveyor belt, a detection tray, a detection drive bracket, a detection drive slider, a probe support plate, a power-on detection probe, a detection positioning electric cylinder, a detection drive electric cylinder, a detection diversion mechanism and a probe rotation mechanism; the detection conveyor belt is arranged on the front upper side of the power-on detection frame; the detection tray is placed above the detection conveyor belt; the detection drive bracket is fixedly connected to the upper right side of the power-on detection frame; the detection drive slider is slidably connected to the inner side of the detection drive bracket; the probe support plate is rotatably connected to the upper front end of the detection drive slider; the power-on detection probes are provided in multiple groups, the multiple groups of power-on detection probe circuits are connected in parallel, and the multiple groups of power-on detection probes are fixedly connected to the outer periphery of the probe support plate; the detection positioning electric cylinder is fixedly connected to the inner side of the detection conveyor belt; the detection drive electric cylinder is fixedly connected to the rear of the detection drive bracket, and the push rod of the detection drive electric cylinder is fixedly connected to the detection drive slider; the detection diversion mechanism is arranged on the upper right side of the power-on detection frame; and the probe rotation mechanism is arranged at the front end of the detection drive slider.
[0007] Furthermore, the detection diversion mechanism includes: a diversion drive electric cylinder; the diversion drive electric cylinder is fixedly connected to the right rear side of the power-on detection frame.
[0008] Furthermore, the detection diversion mechanism also includes: a diversion fixing part, a diversion extrusion part and a centering driving electric cylinder; the diversion fixing parts are provided in two groups, and the two groups of diversion fixing parts are respectively fixedly connected to the right front side of the power-on detection frame; the diversion extrusion parts are provided in two groups, and the two groups of diversion extrusion parts are respectively slidably connected to the inner side of the diversion fixing parts; the centering driving electric cylinder is fixedly connected to the front right side of the power-on detection frame, and the push rod of the centering driving electric cylinder is fixedly connected to a group of diversion extrusion parts on the left, and the centering driving electric cylinder is a reciprocating electric cylinder structure.
[0009] Furthermore, the detection diversion mechanism also includes: a diversion transmission rack and a diversion transmission gear; the diversion transmission rack is provided with two groups, the two groups of diversion transmission racks are respectively slidably connected to the front right side of the power-on detection frame, and the two groups of diversion transmission racks are respectively fixedly connected to the diversion extrusion piece; the diversion transmission gear is rotatably connected to the front right side of the power-on detection frame, and the two groups of diversion transmission racks are respectively engaged with the front and rear sides of the diversion transmission gear.
[0010] Furthermore, the probe rotation mechanism includes: a rotation drive rack and a rotation drive gear; the rotation drive rack is fixedly connected to the upper inner side of the detection drive bracket; the rotation drive gear is rotatably connected to the right side of the detection drive slider, and the rotation drive gear is engaged with the rotation drive rack.
[0011] Furthermore, the probe rotation mechanism also includes: a rotation drive ratchet; the rotation drive ratchet is rotatably connected to the right side of the detection drive slider, the rotation drive ratchet consists of a ratchet and a pawl structure, and the ratchet structure of the rotation drive ratchet is transmission-connected to the rotation drive gear.
[0012] Furthermore, the probe rotation mechanism also includes: a conversion drive worm and a conversion drive worm wheel; the conversion drive worm is rotationally connected to the bottom of the detection drive slider, and the conversion drive worm is transmission-connected to the pawl structure of the rotation drive ratchet; the conversion drive worm wheel is rotationally connected to the bottom of the detection drive slider, and the conversion drive worm wheel is engaged with the conversion drive worm.
[0013] Furthermore, the probe rotation mechanism also includes: a conversion drive pin and a conversion drive groove wheel; the conversion drive pin is rotatably connected to the lower front end of the detection drive slider, and the conversion drive pin is coaxially fixedly connected to the conversion drive worm gear; the conversion drive groove wheel is rotatably connected to the lower front end of the detection drive slider, and the conversion drive groove wheel and the conversion drive pin together constitute a groove wheel structure, and the conversion drive groove wheel is coaxially fixedly connected to the probe support plate.
[0014] Furthermore, the probe rotation mechanism also includes: a maintenance drive motor and a conversion maintenance box; the maintenance drive motor is fixedly connected above the detection drive slider; the conversion maintenance box is a semi-circular cover structure, the conversion maintenance box is fixedly connected above the detection drive slider, and the conversion maintenance box is arranged on the outside of the probe support plate.
[0015] Furthermore, the probe rotation mechanism also includes: a maintenance unwinding roller, a maintenance winding roller, a maintenance wiping cloth and a maintenance extrusion piece; the maintenance unwinding roller is rotatably connected to the right side of the conversion maintenance box; the maintenance winding roller is rotatably connected to the left side of the conversion maintenance box, and the maintenance winding roller is transmission-connected to the maintenance drive motor; the maintenance wiping cloth is a wear-resistant fiber cloth structure, the right end of the maintenance wiping cloth is wound around the outer periphery of the maintenance unwinding roller, and the left end of the maintenance wiping cloth is fixedly connected to the maintenance winding roller; the maintenance extrusion piece is fixedly connected to the upper front end of the detection drive slider by a spring, and the maintenance extrusion piece is arranged below the maintenance wiping cloth. Beneficial effects
[0016] The detection drive slider of the present invention moves forward and drives the rotation drive gear forward, and the rotation drive gear moves forward and contacts the rotation drive rack, and the rotation drive gear is driven to rotate, and the rotation of the rotation drive gear drives the rotation drive ratchet to rotate, and the rotation of the rotation drive ratchet drives the conversion drive worm to rotate, and the rotation of the conversion drive worm drives the conversion drive worm gear to rotate, and the rotation of the conversion drive worm gear drives the conversion drive detent pin to rotate, and the rotation of the conversion drive detent pin drives the conversion drive groove wheel to rotate, and the rotation of the conversion drive groove wheel drives the probe support plate to rotate, and the rotation of the probe support plate drives the power detection probe to rotate to realize rotation, thereby realizing the rotation use of multiple groups of power detection probes, extending the service life of the power detection probes, improving the accuracy of power detection, and reducing The computer detects the occurrence of batch errors in the entire machine and turns on the maintenance drive motor at the same time. The maintenance drive motor drives the maintenance winding roller to rotate. The rotation of the maintenance winding roller realizes the winding of the maintenance wiping cloth. When the maintenance wiping cloth is wound, it is squeezed by the maintenance extrusion part to realize the cleaning of the powered detection probe, remove surface dust and mild oxide layer, and rotate the probe to avoid excessive wear of a single probe. Combined with the wiping cloth to remove surface dust and oxide layer, the service life of the powered detection probe is extended and the replacement frequency is reduced. Automatic rotation and cleaning do not require manual intervention, avoid detection misjudgment due to poor probe contact, improve detection accuracy, reduce downtime for maintenance, adapt to the continuous operation requirements of the production line, improve single batch detection efficiency, and reduce the cost of consumables replacement. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings of the embodiments are briefly introduced below.
[0018] The drawings described below only relate to some embodiments of the present invention, but are not intended to limit the present invention.
[0019] In the attached figure: Figure 1 It is a schematic diagram of the overall structure of an embodiment of the present invention.
[0020] Figure 2 It is a schematic structural diagram of a detection tray according to an embodiment of the present invention.
[0021] Figure 3 Schematic diagram of the structure of the split-current drive electric cylinder according to an embodiment of the present invention.
[0022] Figure 4 2 is a schematic diagram of the split transmission rack structure of an embodiment of the present invention.
[0023] Figure 5 It is a schematic diagram of the split transmission gear structure of an embodiment of the present invention.
[0024] Figure 6 2 is a schematic diagram of the structure of the rotating drive rack according to an embodiment of the present invention.
[0025] Figure 7 2 is a schematic diagram of the structure of the rotating drive ratchet according to an embodiment of the present invention.
[0026] Figure 8 It is a schematic diagram of the maintenance winding roller structure of an embodiment of the present invention.
[0027] Reference Signs List 1. Power-on detection frame; 101. Shunt drive electric cylinder; 102. Shunt fixing; 103. Shunt extrusion; 104. Centering drive electric cylinder; 105. Shunt transmission rack; 106. Shunt transmission gear; 2. Detection conveyor belt; 3. Detection tray; 4. Detection drive bracket; 5. Detection drive slider; 6. Probe support plate; 601. Rotation drive rack; 602. Rotation drive gear; 603. Rotation drive ratchet; 604. Conversion drive worm; 605. Conversion drive worm gear; 606. Conversion drive pin; 607. Conversion drive sheave; 608. Maintenance drive motor; 609. Conversion maintenance box; 610. Maintenance unwinding roller; 611. Maintenance reel roller; 612. Maintenance wiping cloth; 613. Maintenance extrusion; 7. Power-on detection probe; 8. Detection positioning electric cylinder; 9. Detection drive electric cylinder. DETAILED DESCRIPTION
[0028] Example 1
[0029] Please refer to Figures 1 to 5 As shown: The present invention provides a batch power-on detection device for manufacturing complete computers, comprising a power-on detection frame 1, a detection conveyor belt 2, a detection tray 3, a detection drive bracket 4, a detection drive slider 5, a probe support plate 6, a power-on detection probe 7, a detection positioning electric cylinder 8, a detection drive electric cylinder 9 and a detection diversion mechanism; the detection conveyor belt 2 is arranged on the front upper side of the power-on detection frame 1; the detection tray 3 is placed above the detection conveyor belt 2; the detection drive bracket 4 is fixedly connected to the upper right side of the power-on detection frame 1; the detection drive slider 5 is slidably connected to the inner side of the detection drive bracket 4; the probe support plate 6 is rotatably connected to the upper front end of the detection drive slider 5; a plurality of power-on detection probes 7 are provided, the plurality of power-on detection probes 7 are circuit-connected in parallel, and the plurality of power-on detection probes 7 are all fixedly connected to the outer periphery of the probe support plate 6; the detection positioning electric cylinder 8 is fixedly connected to the inner side of the detection conveyor belt 2; the detection drive electric cylinder 9 is fixedly connected to the rear of the detection drive bracket 4, and the push rod of the detection drive electric cylinder 9 is fixedly connected to the detection drive slider 5; and the detection diversion mechanism is arranged on the upper right side of the power-on detection frame 1.
[0030] The detection diversion mechanism includes: a diversion drive electric cylinder 101 ; the diversion drive electric cylinder 101 is fixedly connected to the right rear of the power-on detection frame 1 .
[0031] Among them, the detection diversion mechanism also includes: a diversion fixing part 102, a diversion extrusion part 103 and a centering driving electric cylinder 104; there are two groups of diversion fixing parts 102, and the two groups of diversion fixing parts 102 are respectively fixedly connected to the right front side of the power-on detection frame 1; there are two groups of diversion extrusion parts 103, and the two groups of diversion extrusion parts 103 are respectively slidably connected to the inner side of the diversion fixing part 102; the centering driving electric cylinder 104 is fixedly connected to the front right side of the power-on detection frame 1, and the push rod of the centering driving electric cylinder 104 is fixedly connected to a group of diversion extrusion parts 103 on the left, and the centering driving electric cylinder 104 is a reciprocating electric cylinder structure.
[0032] Among them, the detection diversion mechanism also includes: a diversion transmission rack 105 and a diversion transmission gear 106; there are two groups of diversion transmission racks 105, and the two groups of diversion transmission racks 105 are respectively slidably connected to the front right side of the power-on detection rack 1, and the two groups of diversion transmission racks 105 are respectively fixedly connected to the diversion extrusion piece 103; the diversion transmission gear 106 is rotatably connected to the front right side of the power-on detection rack 1, and the two groups of diversion transmission racks 105 are respectively engaged with the front and rear sides of the diversion transmission gear 106.
[0033] The specific usage and function of this embodiment are as follows: when the computer is powered on, the computer is placed above the detection tray 3, and the detection conveyor belt 2 realizes the transportation of the computer. After the computer is transported to the detection area, the push rod of the detection positioning electric cylinder 8 moves upward to limit the detection tray 3. At this time, the positioning of the computer is realized, and the detection drive electric cylinder 9 is turned on. The push rod of the detection drive electric cylinder 9 moves forward to drive the detection drive slider 5 to move forward. The detection drive slider 5 moves forward to drive the power detection probe 7 to contact the computer power interface. At this time, the computer is powered on. When an unqualified computer is found, wait for it to be removed. When the computer moves to the position of the diversion drive electric cylinder 101, the push rod of the diversion drive electric cylinder 101 moves forward to push the detection tray 3 forward, open the centering drive electric cylinder 104, and the push rod of the centering drive electric cylinder 104 moves left and right. The centering drive electric cylinder 104 drives the left group of diversion extrusion members 103 to move left and right. The left group of diversion extrusion members 103 moves left and right under the drive of the diversion transmission rack 105 and the diversion transmission gear 106, thereby realizing the reciprocating movement of the two groups of diversion extrusion members 103, thereby realizing the centering alignment of the detection tray 3, realizing the diversion of unqualified computers, and facilitating the subsequent maintenance of unqualified computers.
[0034] Example 2
[0035] like Figures 1 to 8 As shown: The present invention provides a batch power-on detection device for computer manufacturing, which further comprises a probe rotation mechanism based on the first embodiment. The probe rotation mechanism is arranged at the front end of the detection drive slider 5 .
[0036] Among them, the probe rotation mechanism includes: a rotation drive rack 601 and a rotation drive gear 602; the rotation drive rack 601 is fixedly connected to the upper inner side of the detection drive bracket 4; the rotation drive gear 602 is rotatably connected to the right side of the detection drive slider 5, and the rotation drive gear 602 is engaged with the rotation drive rack 601.
[0037] Among them, the probe rotation mechanism also includes: a rotation drive ratchet 603; the rotation drive ratchet 603 is rotatably connected to the right side of the detection drive slider 5, the rotation drive ratchet 603 consists of a ratchet and pawl structure, and the ratchet structure of the rotation drive ratchet 603 is transmission connected to the rotation drive gear 602.
[0038] Among them, the probe rotation mechanism also includes: a conversion drive worm 604 and a conversion drive worm wheel 605; the conversion drive worm 604 is rotatably connected to the bottom of the detection drive slider 5, and the conversion drive worm 604 is transmission-connected to the pawl structure of the rotation drive ratchet 603; the conversion drive worm wheel 605 is rotatably connected to the bottom of the detection drive slider 5, and the conversion drive worm wheel 605 is engaged with the conversion drive worm 604.
[0039] Among them, the probe rotation mechanism also includes: a conversion drive pin 606 and a conversion drive groove wheel 607; the conversion drive pin 606 is rotatably connected to the lower front end of the detection drive slider 5, and the conversion drive pin 606 is coaxially fixedly connected to the conversion drive worm gear 605; the conversion drive groove wheel 607 is rotatably connected to the lower front end of the detection drive slider 5, and the conversion drive groove wheel 607 and the conversion drive pin 606 together constitute a groove wheel structure, and the conversion drive groove wheel 607 is coaxially fixedly connected to the probe support plate 6.
[0040] Among them, the probe rotation mechanism also includes: a maintenance drive motor 608 and a conversion maintenance box 609; the maintenance drive motor 608 is fixedly connected to the top of the detection drive slider 5; the conversion maintenance box 609 is a semi-circular cover structure, the conversion maintenance box 609 is fixedly connected to the top of the detection drive slider 5, and the conversion maintenance box 609 is arranged on the outside of the probe support plate 6.
[0041] Among them, the probe rotation mechanism also includes: a maintenance unwinding roller 610, a maintenance winding roller 611, a maintenance wiping cloth 612 and a maintenance extrusion piece 613; the maintenance unwinding roller 610 is rotatably connected to the right side of the conversion maintenance box 609; the maintenance winding roller 611 is rotatably connected to the left side of the conversion maintenance box 609, and the maintenance winding roller 611 is transmission-connected to the maintenance drive motor 608; the maintenance wiping cloth 612 is a wear-resistant fiber cloth structure, and the right end of the maintenance wiping cloth 612 is wound around the outer periphery of the maintenance unwinding roller 610, and the left end of the maintenance wiping cloth 612 is fixedly connected to the maintenance winding roller 611; the maintenance extrusion piece 613 is fixedly connected to the upper front end of the detection drive slider 5 by a spring, and the maintenance extrusion piece 613 is arranged below the maintenance wiping cloth 612.
[0042] The specific usage and function of this embodiment are as follows: when the power is turned on, the detection drive slider 5 moves forward, the detection drive slider 5 moves forward, the rotation drive gear 602 moves forward and contacts the rotation drive rack 601, the rotation drive gear 602 is driven to rotate, the rotation of the rotation drive gear 602 drives the rotation drive ratchet 603 to rotate, the rotation of the rotation drive ratchet 603 drives the conversion drive worm 604 to rotate, the rotation of the conversion drive worm 604 drives the conversion drive worm wheel 605 to rotate, the rotation of the conversion drive worm wheel 605 drives the conversion drive pin 606 to rotate, the rotation of the conversion drive pin 606 drives the conversion drive groove wheel 607 to rotate, and the conversion drive The rotation of the groove wheel 607 drives the probe support plate 6 to rotate, and the rotation of the probe support plate 6 drives the power detection probe 7 to rotate to realize rotation, thereby realizing the rotation use of multiple groups of power detection probes 7, extending the service life of the power detection probe 7, improving the accuracy of power detection, and reducing the occurrence of batch errors in computer whole machine detection. At the same time, the maintenance drive motor 608 is turned on, and the maintenance drive motor 608 drives the maintenance winding roller 611 to rotate. The rotation of the maintenance winding roller 611 realizes the winding of the maintenance wiping cloth 612. When the maintenance wiping cloth 612 is wound, it is squeezed by the maintenance extrusion piece 613, thereby realizing the cleaning of the power detection probe 7, removing surface dust and light oxide layer, and extending the service life of the power detection probe 7.
[0043] In this article, there are several points to note: 1. The drawings of this embodiment only involve the structures related to this embodiment. Other structures can refer to the general design.
[0044] 2. In the absence of conflict, the features of this embodiment and the embodiments can be combined with each other to obtain new embodiments.
[0045] The above are merely specific embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any modifications or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in the present invention should be included within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be based on the scope of protection of the claims.
Claims
1. A batch power-on detection device for computer manufacturing, characterized by: The detection conveyor belt comprises a detection frame, a detection conveyor belt, a detection tray, a detection drive bracket, a detection drive slider, a probe support plate, a power-on detection probe, a detection positioning electric cylinder, a detection drive electric cylinder, a detection diversion mechanism and a probe rotation mechanism; the detection conveyor belt is arranged on the front upper side of the power-on detection frame; the detection tray is placed above the detection conveyor belt; the detection drive bracket is fixedly connected to the upper right side of the power-on detection frame; the detection drive slider is slidably connected to the inner side of the detection drive bracket; the probe support plate is rotatably connected to the upper front end of the detection drive slider; the power-on detection probes are provided in multiple groups, the multiple groups of power-on detection probe circuits are connected in parallel, and the multiple groups of power-on detection probes are fixedly connected to the outer periphery of the probe support plate; the detection positioning electric cylinder is fixedly connected to the inner side of the detection conveyor belt; the detection drive electric cylinder is fixedly connected to the rear of the detection drive bracket, and the push rod of the detection drive electric cylinder is fixedly connected to the detection drive slider; the detection diversion mechanism is arranged on the upper right side of the power-on detection frame; the probe rotation mechanism is arranged at the front end of the detection drive slider.
2. A batch power-on detection device for computer manufacturing as claimed in claim 1, characterized in that: The detection shunt mechanism includes: a shunt drive electric cylinder; the shunt drive electric cylinder is fixedly connected to the right rear side of the power-on detection frame.
3. A batch power-on detection device for computer manufacturing as claimed in claim 2, characterized in that: The detection diversion mechanism also includes: a diversion fixing part, a diversion extrusion part and a centering driving electric cylinder; the diversion fixing parts are provided in two groups, and the two groups of diversion fixing parts are respectively fixedly connected to the right front side of the power-on detection frame; the diversion extrusion parts are provided in two groups, and the two groups of diversion extrusion parts are respectively slidably connected to the inner side of the diversion fixing parts; the centering driving electric cylinder is fixedly connected to the front right side of the power-on detection frame, and the push rod of the centering driving electric cylinder is fixedly connected to a group of diversion extrusion parts on the left, and the centering driving electric cylinder is a reciprocating electric cylinder structure.
4. A batch power-on detection device for computer manufacturing as claimed in claim 3, characterized in that: The detection diversion mechanism also includes: a diversion transmission rack and a diversion transmission gear; the diversion transmission rack is provided with two groups, the two groups of diversion transmission racks are respectively slidably connected to the front right side of the power-on detection frame, and the two groups of diversion transmission racks are respectively fixedly connected to the diversion extrusion piece; the diversion transmission gear is rotationally connected to the front right side of the power-on detection frame, and the two groups of diversion transmission racks are respectively engaged with the front and rear sides of the diversion transmission gear.
5. The batch power-on detection device for computer manufacturing according to claim 1, characterized in that: The probe rotation mechanism includes: a rotation drive rack and a rotation drive gear; the rotation drive rack is fixedly connected to the upper inner side of the detection drive bracket; the rotation drive gear is rotatably connected to the right side of the detection drive slider, and the rotation drive gear is engaged with the rotation drive rack.
6. A batch power-on detection device for computer manufacturing as claimed in claim 5, characterized in that: The probe rotation mechanism also includes: a rotation drive ratchet; the rotation drive ratchet is rotatably connected to the right side of the detection drive slider, the rotation drive ratchet consists of a ratchet and a pawl structure, and the ratchet structure of the rotation drive ratchet is transmission-connected to the rotation drive gear.
7. A batch power-on detection device for computer manufacturing as claimed in claim 6, characterized in that: The probe rotation mechanism also includes: a conversion drive worm and a conversion drive worm wheel; the conversion drive worm is rotationally connected to the bottom of the detection drive slider, and the conversion drive worm is transmission-connected to the pawl structure of the rotation drive ratchet; the conversion drive worm wheel is rotationally connected to the bottom of the detection drive slider, and the conversion drive worm wheel is engaged with the conversion drive worm.
8. A batch power-on detection device for computer manufacturing as claimed in claim 7, characterized in that: The probe rotation mechanism also includes: a conversion drive pin and a conversion drive groove wheel; the conversion drive pin is rotatably connected to the lower front end of the detection drive slider, and the conversion drive pin is coaxially fixedly connected to the conversion drive worm gear; the conversion drive groove wheel is rotatably connected to the lower front end of the detection drive slider, and the conversion drive groove wheel and the conversion drive pin together form a groove wheel structure, and the conversion drive groove wheel is coaxially fixedly connected to the probe support plate.
9. A batch power-on detection device for computer manufacturing as claimed in claim 8, characterized in that: The probe rotation mechanism also includes: a maintenance drive motor and a conversion maintenance box; the maintenance drive motor is fixedly connected above the detection drive slider; the conversion maintenance box is a semi-circular cover structure, the conversion maintenance box is fixedly connected above the detection drive slider, and the conversion maintenance box is arranged on the outside of the probe support plate.
10. A batch power-on detection device for computer manufacturing as claimed in claim 9, characterized in that: The probe rotation mechanism also includes: a maintenance unwinding roller, a maintenance winding roller, a maintenance wiping cloth and a maintenance extrusion piece; the maintenance unwinding roller is rotatably connected to the right side of the conversion maintenance box; the maintenance winding roller is rotatably connected to the left side of the conversion maintenance box, and the maintenance winding roller is transmission-connected to the maintenance drive motor; the maintenance wiping cloth is a wear-resistant fiber cloth structure, the right end of the maintenance wiping cloth is wound around the outer periphery of the maintenance unwinding roller, and the left end of the maintenance wiping cloth is fixedly connected to the maintenance winding roller; the maintenance extrusion piece is fixedly connected to the upper front end of the detection drive slider by a spring, and the maintenance extrusion piece is arranged below the maintenance wiping cloth.
Citation Information
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