Assembling device for generator set manufacturing

By using a cylinder-driven control and positioning device, the problems of inconvenient movement and unstable positioning of generator components on the assembly table were solved, achieving stable processing and efficient cleaning, and improving the overall efficiency of generator set assembly.

CN121973136APending Publication Date: 2026-05-05JIANGSU JINZHI DATONG POWER TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
JIANGSU JINZHI DATONG POWER TECH CO LTD
Filing Date
2026-02-05
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

In existing generator set manufacturing assembly equipment, the generator components are heavy, making them difficult to move and stably position, which affects processing stability and cleaning efficiency.

Method used

The control and positioning devices are driven by cylinders. Through the cooperation of ball bearings and positioning grooves, the generator components can be moved and positioned stably, and the processing debris can be cleaned up by the chip removal device.

Benefits of technology

This enables stable movement and positioning of the generator assembly on the assembly table, improving processing stability and cleaning efficiency, and preventing the positioning parts from slipping out and debris from accumulating.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an assembling device for generator set manufacturing, and relates to the technical field of assembling devices for generator set manufacturing, the assembling device for generator set manufacturing comprises a base, and an assembling table is fixed to the top of the base. According to the assembling device for manufacturing the generator set, when the generator set needs to be moved on the assembling table, an air cylinder is started to drive a transmission plate and a transmission column to move upwards, so that a moving block drives a ball to move out of the top of the assembling table to be attached to the bottom of the generator set, and therefore the generator set can conveniently move on the assembling table; after the position of the generator assembly is adjusted on the assembly table, an air cylinder is started, a transmission plate drives a transmission column to move downwards, a moving block drives a ball to move into the assembly table to make contact with the bottom of the generator assembly, and the situation that when the generator assembly is machined, the ball makes contact with the assembly table is prevented; and the generator assembly is poor in stability during machining.
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Description

Technical Field

[0001] This invention relates to the field of assembly equipment for generator set manufacturing, specifically to an assembly equipment for generator set manufacturing. Background Technology

[0002] A generator set is a complete set of mechanical equipment that converts other forms of energy into electrical energy. It consists of a power system, control system, noise reduction system, vibration damping system, and exhaust system. Driven by a water turbine, steam turbine, diesel engine, or other power machinery, it converts the energy generated by water flow, airflow, fuel combustion, or nuclear fission into mechanical energy, which is then transferred to the generator. The generator then converts this mechanical energy into electrical energy, which is output to electrical equipment. Generators have wide applications in industrial and agricultural production, national defense, science and technology, and daily life.

[0003] Existing assembly equipment for generator set manufacturing currently requires the generator set to be assembled using an assembly platform during the assembly process. However, when the generator components are placed on the assembly platform, the generator set is generally quite heavy, making it inconvenient to move the generator set on the assembly platform. Summary of the Invention

[0004] To address the shortcomings of existing technologies, this invention provides an assembly device for generator set manufacturing, which solves the problems mentioned in the background section.

[0005] To achieve the above objectives, the present invention is implemented through the following technical solution: an assembly device for manufacturing generator sets, including a base, an assembly platform fixed on the top of the base, a positioning groove provided on the assembly platform, a control device for facilitating the movement of generator components on the assembly platform, and a positioning device for increasing the stability of generator components on the control device.

[0006] The control device includes a cylinder, a transmission plate, a transmission column, a moving block, a ball bearing, an L-shaped block, a pressing block, a rotating block, a torsion spring, a stop block, and a connecting spring. The cylinder is fixed to the bottom of the assembly table, the transmission plate is fixed to the output end of the cylinder, the transmission column is fixed to the top of the transmission plate, the transmission column passes through the assembly table and is slidably connected at the through point, the moving block is fixed to the top of the transmission column, and the ball bearing is installed on the inner side of the moving block. When the cylinder is activated, it can drive the transmission plate to move downward, causing the transmission plate to drive the transmission column to move downward, thereby driving the moving block and the ball bearing to move downward.

[0007] According to the above technical solution, the rotating block is rotatably installed on the side wall of the assembly table, the L-shaped block is fixed on the outer wall of the transmission plate, the extrusion block is fixed on the outer wall of the L-shaped block, one side of the first torsion spring is fixed on the outer wall of the assembly table, and the other side of the first torsion spring is fixed on the outer wall of the rotating block. When the transmission plate moves downward, it can drive the L-shaped block to move downward, so that the extrusion block extrudes the rotating block and causes the rotating block to rotate.

[0008] According to the above technical solution, the stop block is slidably installed on the outer wall of the assembly table, one side of the connecting spring is fixed to the top of the stop block, and the other side of the connecting spring is fixed to the inner side of the assembly table. When the rotating block rotates, it can squeeze the stop block to move upward, thereby compressing the connecting spring.

[0009] According to the above technical solution, the positioning device includes a push block, an inclined plate, an inclined block, a reset spring, a return spring, a clamping plate, a connecting rod, and a pressing plate; the push block is fixed to the outer wall of the moving block, the inclined plate is slidably installed on the inner side of the assembly table, one side of the reset spring is fixed to the outer wall of the inclined plate, and the other side of the reset spring is fixed to the inner side of the assembly table.

[0010] According to the above technical solution, the inclined block is slidably installed on the inner side of the assembly table, the abutment plate is fixed on the top of the inclined block, one side of the return spring is fixed to the outer wall of the inclined block, and the other side of the return spring is fixed to the inner side of the assembly table. When the moving block moves downward, it can squeeze the inclined surface of the inclined panel, causing the inclined panel to move under the pressure, thereby squeezing the inclined surface of the inclined block and driving the inclined block to move upward.

[0011] According to the above technical solution, the connecting rod is fixed to the outer wall of the inclined panel, the connecting rod passes through the assembly table and is slidably connected at the point of penetration, and the clamping plate is fixed to the end of the connecting rod. When the inclined panel moves, the connecting rod can drive the clamping plate to move.

[0012] According to the above technical solution, a chip removal device is also included. The chip removal device is installed on the assembly table and includes a bending block, a guide plate, a hinge seat, a rotating shaft, a striking plate, a second torsion spring, a pressing plate, and a rotating block. The bending block is fixed to the bottom of the transmission plate, the guide plate is rotatably installed on the inner side of the assembly table, the hinge seat is slidably installed on the bottom of the guide plate, and the end of the bending block away from the transmission plate is hinged to the bottom of the hinge seat. The pressing plate is fixed to the outer wall of the bending block. When the stop block moves, it can drive the bending block to move, thereby causing the bending block to press against the hinge seat, causing the hinge seat to press against the guide plate and rotate.

[0013] According to the above technical solution, the rotating shaft is rotatably installed on the inner side of the assembly table, the striking plate is fixed on the outer wall of the rotating shaft, one side of the second torsion spring is fixed on the inner side of the assembly table, the other side of the second torsion spring is fixed on the outer wall of the striking plate, and the rotating block is fixed on the outer wall of the rotating shaft. Through the cooperation of the striking plate, the second torsion spring, the extrusion plate and the rotating block, when the guide plate rotates and tilts, the striking plate can strike the inside of the positioning groove, causing the inside of the positioning groove to vibrate.

[0014] This invention provides an assembly apparatus for manufacturing generator sets. It has the following advantages:

[0015] 1. This invention, through the setting of a control device, when the generator assembly needs to be moved on the assembly table, the cylinder is activated to drive the transmission plate and transmission column upward, thereby causing the moving block to move the ball from the top of the assembly table and fit against the bottom of the generator assembly, thus facilitating the movement of the generator assembly on the assembly table. After the position of the generator assembly is adjusted on the assembly table, the cylinder is activated to drive the transmission plate to move the transmission column downward, causing the moving block to move the ball inside the assembly table to contact the bottom of the generator assembly. This prevents the ball from contacting the assembly table during the processing of the generator assembly, which would lead to poor stability during processing. Furthermore, through the cooperation of the L-shaped block, the pressing block, the rotating block, the first torsion spring, and the stop block, the stop block can be moved upward to block the positioning groove, solving the problem of the positioning component sliding out of the positioning groove due to improper positioning of the generator assembly.

[0016] 2. This invention, by setting up a positioning device, allows the moving block to drive the ball bearings downward, thereby driving the push block downward and pressing the inclined surface of the inclined panel. This pressing force causes the inclined panel to move, and the pressing force on the inclined surface of the inclined panel causes the pressing plate to move upward, pressing the pressing plate against the bottom of the generator assembly. This increases the stability of the generator assembly and prevents it from shaking during processing. Furthermore, as the inclined panel moves, the connecting rod and the pressing plate work together to press and position the positioning element in the positioning groove, preventing the positioning element from moving within the positioning groove.

[0017] 3. This invention incorporates a chip removal device. After processing, the cylinder drives the transmission column and moving block upwards, causing the ball bearings to move from the assembly table. As the transmission plate moves upwards, the stop block moves downwards, pulling the bending block against the guide plate and causing it to tilt. This facilitates the cleaning of chips generated during processing in the positioning groove, allowing the chips to be discharged along the guide plate. Furthermore, through the cooperation of the striking plate, the second torsion spring, the extrusion plate, and the rotating block, when the guide plate rotates and tilts, the striking plate strikes the inside of the positioning groove, causing vibration. This facilitates the removal of impurities adhering to the inside of the positioning groove, which are then discharged along the guide plate, improving cleaning efficiency. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0019] Figure 2 This is a schematic cross-sectional view of the present invention;

[0020] Figure 3 This is a partial cross-sectional view of the present invention;

[0021] Figure 4 This is a partial structural diagram of the present invention;

[0022] Figure 5 This is a partial structural diagram of the present invention;

[0023] Figure 6 For the present invention Figure 2 Enlarged schematic diagram of structure A;

[0024] Figure 7 For the present invention Figure 3 Enlarged schematic diagram of structure B;

[0025] Figure 8 For the present invention Figure 1 An enlarged schematic diagram of the C-structure.

[0026] In the diagram: 1. Base; 2. Assembly table; 3. Positioning slot; 41. Cylinder; 42. Transmission plate; 43. Transmission column; 44. Moving block; 45. Ball bearing; 46. L-shaped block; 47. Extrusion block; 49. Rotating block; 410. Torsion spring No. 1; 411. Stop block; 412. Connecting spring; 51. Push block; 52. Sloping panel; 53. Sloping block; 54. Pressing plate; 55. Reset spring; 56. Return spring; 57. Connecting rod; 58. Pressing plate; 61. Bending block; 62. Guide plate; 63. Hinge seat; 64. Rotating shaft; 65. Striking plate; 66. Torsion spring No. 2; 67. Extrusion plate; 68. Rotating block. Detailed Implementation

[0027] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0028] Please see Figures 1-8 One embodiment of the present invention is: an assembly device for manufacturing generator sets, including a base 1, an assembly platform 2 fixed on the top of the base 1, a positioning groove 3 provided on the assembly platform 2, and a control device provided on the assembly platform 2 to facilitate the movement of generator components.

[0029] The control device includes a cylinder 41, a transmission plate 42, a transmission column 43, a moving block 44, a ball bearing 45, an L-shaped block 46, a pressing block 47, a rotating block 49, a torsion spring 410, a stop block 411, and a connecting spring 412. The cylinder 41 is fixed to the bottom of the assembly table 2, the transmission plate 42 is fixed to the output end of the cylinder 41, the transmission column 43 is fixed to the top of the transmission plate 42, the transmission column 43 passes through the assembly table 2, and is slidably connected at the point of penetration. The moving block 44 is fixed to the top of the transmission column 43, and the ball bearing 45 is installed inside the moving block 44, rolling on the moving block 44. The inner side of the moving block 44 is equipped with a ball bearing 45, which allows the generator assembly to move easily on the ball bearing 45. The rotating block 49 is rotatably mounted on the side wall of the assembly table 2. The L-shaped block 46 is fixed on the outer wall of the transmission plate 42. The pressing block 47 is fixed on the outer wall of the L-shaped block 46. One side of the first torsion spring 410 is fixed on the outer wall of the assembly table 2, and the other side of the first torsion spring 410 is fixed on the outer wall of the rotating block 49. The stop block 411 is slidably mounted on the outer wall of the assembly table 2. One side of the connecting spring 412 is fixed on the top of the stop block 411, and the other side of the connecting spring 412 is fixed on the inner side of the assembly table 2.

[0030] When the generator assembly needs to be moved on the assembly table 2, the cylinder 41 is activated, which moves the transmission plate 42 and transmission column 43 upward. This causes the moving block 44 to move the ball bearing 45 from the top of the assembly table 2 and make it fit against the bottom of the generator assembly, thus facilitating the movement of the generator assembly on the assembly table 2. After the position of the generator assembly is adjusted on the assembly table 2, the cylinder 41 is activated, which moves the transmission plate 42 and transmission column 43 downward. This causes the moving block 44 to move the ball bearing 45 into the assembly table 2 and make it contact the bottom of the generator assembly. This prevents the ball bearing 45 from contacting the assembly table 2 during the processing of the generator assembly, which would lead to poor stability during the processing of the generator assembly. Furthermore, through the cooperation of the L-shaped block 46, the pressing block 47, the rotating block 49, the first torsion spring 410, and the stop block 411, the stop block 411 can be moved upward to block the positioning groove 3, solving the problem of the positioning component slipping out of the positioning groove 3 due to improper positioning of the generator assembly.

[0031] In this embodiment, when the generator assembly needs to be processed and assembled, the cylinder 41 is first activated, causing the transmission plate 42 to move upward. When the transmission plate 42 moves upward, it can drive the transmission column 43 to move upward. When the transmission column 43 moves upward, the moving block 44 can drive the ball bearing 45 to move out of the assembly table 2. Thus, when the generator assembly is placed on the assembly table 2, the ball bearing 45 reduces the friction between the generator assembly and the assembly table 2, making it easier for the generator assembly to move on the assembly table 2. When the generator assembly is moved to its position on the assembly table 2, the cylinder 41 is activated, causing the transmission plate 42 to move downward. When the transmission plate 42 moves downward, it can drive the transmission column 43 to move downward, causing the moving block 44 to drive the ball bearing 45 into the assembly table 2, so that the ball bearing 45 does not contact the bottom of the generator assembly.

[0032] Furthermore, when the transmission plate 42 moves downward, it can drive the L-shaped block 46 to move downward. When the L-shaped block 46 moves downward, it can drive the pressing block 47 to press the end of the rotating block 49, causing the rotating block 49 to rotate at the rotation point of the assembly table 2, compressing the first torsion spring 410, and allowing the rotating block 49 to press the bottom of the stop block 411, allowing the stop block 411 to move upward, and compressing the connecting spring 412. When the stop block 411 moves upward, it can block the positioning groove 3. When the transmission plate 42 moves upward, it can drive the L-shaped block 46 to move upward, causing the pressing block 47 to stop pressing the rotating block 49. Because the first torsion spring 410 is in a compressed and deformed state, it can cause the rotating block 49 to rotate and reset, and not press the bottom of the stop block 411. Because the connecting spring 412 is in a compressed state, it can cause the positioning groove 3 to be exposed when the connecting spring 412 drives the stop block 411 to move downward, for positioning operation.

[0033] Please see Figures 1-8 Based on the above embodiments, in another embodiment of the present invention, the control device is provided with a positioning device to increase the stability of the generator assembly. The positioning device includes a push block 51, an inclined plate 52, an inclined block 53, a reset spring 55, a return spring 56, a clamping plate 54, a connecting rod 57, and a pressing plate 58. The push block 51 is fixed to the outer wall of the moving block 44. The inclined plate 52 is slidably installed on the inner side of the assembly table 2. One side of the reset spring 55 is fixed to the outer wall of the inclined plate 52, and the other side of the reset spring 55 is fixed to the inner side of the assembly table 2. The inclined block 53 is slidably installed on the inner side of the assembly table 2. The clamping plate 54 is fixed to the top of the inclined block 53. One side of the return spring 56 is fixed to the outer wall of the inclined block 53, and the other side of the return spring 56 is fixed to the inner side of the assembly table 2. The connecting rod 57 is fixed to the outer wall of the inclined plate 52 and passes through the assembly table 2, with a slidable connection at the point of penetration. The pressing plate 58 is fixed to the end point of the connecting rod 57.

[0034] When the moving block 44 drives the ball 45 to move downward, it can drive the push block 51 to move downward, pressing the inclined surface of the inclined plate 52, causing the inclined plate 52 to move under the pressure, pressing the inclined surface of the inclined block 53, which can drive the pressing plate 54 to move upward, so that the pressing plate 54 presses against the bottom of the generator assembly, thereby increasing the stability of the generator assembly and preventing the generator assembly from shaking during processing;

[0035] Furthermore, as the inclined panel 52 moves, the clamping plate 58, through the cooperation of the connecting rod 57, can clamp and position the positioning element in the positioning groove 3, preventing the positioning element from moving in the positioning groove 3.

[0036] It also includes a chip removal device, which is set on the assembly table 2. The chip removal device includes a bending block 61, a guide plate 62, a hinge seat 63, a rotating shaft 64, a striking plate 65, a second torsion spring 66, a pressing plate 67, and a rotating block 68. The bending block 61 is fixed to the bottom of the transmission plate 42. The guide plate 62 is rotatably installed on the inner side of the assembly table 2. The hinge seat 63 is slidably installed on the bottom of the guide plate 62. One end of the bending block 61 away from the transmission plate 42 is hinged to the bottom of the hinge seat 63. The pressing plate 67 is fixed to the outer wall of the bending block 61. The rotating shaft 64 is rotatably installed on the inner side of the assembly table 2. The striking plate 65 is fixed to the outer wall of the rotating shaft 64. One side of the second torsion spring 66 is fixed to the inner side of the assembly table 2, and the other side of the second torsion spring 66 is fixed to the outer wall of the striking plate 65. The rotating block 68 is fixed to the outer wall of the rotating shaft 64.

[0037] After processing is completed, the cylinder 41 will drive the transmission column 43 and the moving block 44 to move upward, causing the ball 45 to move from the assembly table 2. When the transmission plate 42 moves upward, it can cause the stop block 411 to move downward, thereby driving the bending block 61 to pull the guide plate 62, causing the guide plate 62 to tilt, which facilitates the cleaning of debris generated during processing in the positioning groove 3, and allows the debris in the positioning groove 3 to be discharged along the guide plate 62.

[0038] Furthermore, through the cooperation of the striking plate 65, the second torsion spring 66, the squeezing plate 67 and the rotating block 68, when the guide plate 62 is rotating and tilting, the striking plate 65 can strike the inside of the positioning groove 3, causing the inside of the positioning groove 3 to vibrate, thereby facilitating the falling off of impurities attached to the inside of the positioning groove 3 and discharging them along with the guide plate 62, thus improving the cleaning efficiency.

[0039] In this embodiment, when the moving block 44 moves downward, it drives the pushing block 51 to move downward. When the pushing block 51 moves downward, it can press the inclined surface of the inclined panel 52, causing the inclined panel 52 to be compressed and move away from the moving block 44. When the inclined panel 52 moves away from the moving block 44, it can compress the return spring 55. While the inclined panel 52 moves the moving block 44, it can also press the inclined surface of the inclined block 53, causing the inclined block 53 to be compressed and move upward. 53 drives the abutment plate 54 to move upward, and the abutment plate 54 is made of rubber. When the abutment plate 54 moves upward, it can press the abutment plate 54 against the bottom of the generator assembly, thereby increasing the friction between the generator assembly and the assembly table 2. When the inclined plate 52 moves away from the moving block 44, it can drive the connecting rod 57 to move, and the connecting rod 57 drives the pressing plate 58 to move. The pressing plate 58 is made of rubber, and the pressing plate 58 presses against the surface of the positioning part in the positioning groove 3.

[0040] When the moving block 44 moves upward, it can drive the push block 51 to move upward, so that the push block 51 does not squeeze the inclined surface of the inclined panel 52. Because the return spring 55 is in a compressed state, it can drive the inclined panel 52 to reset. When the inclined panel 52 resets, it does not squeeze the inclined surface of the inclined block 53. Because the return spring 56 is in a compressed state, it can drive the inclined block 53 to reset downward, so that the inclined block 53 drives the pressing plate 54 to move downward. When the inclined panel 52 resets, the connecting rod 57 can drive the pressing plate 58 to reset, so that the pressing plate 58 presses the positioning part in the positioning groove 3.

[0041] When the connecting spring 412 moves the stop block 411 downward, the stop block 411 moves the bending block 61 downward, causing the bending block 61 to pull the hinge seat 63. This causes the hinge seat 63 to rotate and tilt the guide plate 62, opening the bottom of the positioning groove 3 for easy discharge of debris. When the bending block 61 moves downward, it also moves the extrusion plate 67 downward, preventing it from pressing the rotating block 68. Because the rotating block 68 is not under pressure, and the second torsion spring 66 is compressed, it causes the second torsion spring 66 to rotate the rotating shaft 64 and the striking plate 65. This causes the striking plate 65 to strike the inside of the positioning groove 3, vibrating the positioning groove 3 and facilitating the removal of debris from inside. When the stop block 411 moves upward, it causes the bending block 61 to move upward, pressing the hinge seat 63. This causes the hinge seat 63 to press the guide plate 62 to rotate, thus rotating the guide plate 62 to a horizontal position and blocking the bottom of the positioning groove 3, facilitating subsequent positioning operations. Simultaneously, the bending block 61 moves upward, causing the pressing plate 67 to move upward, pressing the rotating block 68 and causing it to rotate. When the rotating block 68 rotates, it causes the rotating shaft 64 to rotate, compressing the second torsion spring 66. Simultaneously, the rotating shaft 64 rotates, causing the striking plate 65 to rotate without contacting the positioning groove 3, and allowing the striking plate 65 to accumulate power for the next striking operation.

[0042] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An assembly device for manufacturing generator sets, comprising a base (1), characterized in that: The top of the base (1) is fixed with an assembly platform (2), the assembly platform (2) is provided with a positioning groove (3), the assembly platform (2) is provided with a control device to facilitate the movement of the generator assembly, and the control device is provided with a positioning device to increase the stability of the generator assembly. The control device includes a cylinder (41), a transmission plate (42), a transmission column (43), a moving block (44), a ball (45), an L-shaped block (46), a pressing block (47), a rotating block (49), a first torsion spring (410), a stop block (411), and a connecting spring (412). The cylinder (41) is fixed at the bottom of the assembly table (2), the transmission plate (42) is fixed at the output end of the bottom of the cylinder (41), the transmission column (43) is fixed at the top of the transmission plate (42), the transmission column (43) passes through the assembly table (2) and is slidably connected at the passage, the moving block (44) is fixed at the top of the transmission column (43), and the ball (45) is installed on the inner side of the moving block (44).

2. The assembly device for manufacturing a generator set according to claim 1, characterized in that: The rotating block (49) is rotatably mounted on the side wall of the assembly table (2), the L-shaped block (46) is fixed on the outer wall of the transmission plate (42), the extrusion block (47) is fixed on the outer wall of the L-shaped block (46), one side of the first torsion spring (410) is fixed on the outer wall of the assembly table (2), and the other side of the first torsion spring (410) is fixed on the outer wall of the rotating block (49).

3. The assembly device for manufacturing generator sets according to claim 2, characterized in that: The stop block (411) is slidably installed on the outer wall of the assembly table (2), one side of the connecting spring (412) is fixed to the top of the stop block (411), and the other side of the connecting spring (412) is fixed to the inner side of the assembly table (2).

4. The assembly device for manufacturing a generator set according to claim 3, characterized in that: The positioning device includes a push block (51), an inclined plate (52), an inclined block (53), a reset spring (55), a return spring (56), a clamping plate (54), a connecting rod (57), and a pressing plate (58); the push block (51) is fixed to the outer wall of the moving block (44), the inclined plate (52) is slidably installed on the inner side of the assembly table (2), one side of the reset spring (55) is fixed to the outer wall of the inclined plate (52), and the other side of the reset spring (55) is fixed to the inner side of the assembly table (2).

5. The assembly device for manufacturing a generator set according to claim 4, characterized in that: The inclined block (53) is slidably installed on the inner side of the assembly table (2), the abutting plate (54) is fixed on the top of the inclined block (53), one side of the return spring (56) is fixed on the outer wall of the inclined block (53), and the other side of the return spring (56) is fixed on the inner side of the assembly table (2).

6. The assembly device for manufacturing a generator set according to claim 5, characterized in that: The connecting rod (57) is fixed to the outer wall of the inclined plate (52), the connecting rod (57) passes through the assembly table (2) and is slidably connected at the point of penetration, and the clamping plate (58) is fixed to the end of the connecting rod (57).

7. The assembly device for manufacturing a generator set according to claim 1, characterized in that: It also includes a chip removal device, which is set on the assembly table (2). The chip removal device includes a bending block (61), a guide plate (62), a hinge seat (63), a rotating shaft (64), a striking plate (65), a second torsion spring (66), a pressing plate (67), and a rotating block (68). The bending block (61) is fixed to the bottom of the transmission plate (42). The guide plate (62) is rotatably installed on the inner side of the assembly table (2). The hinge seat (63) is slidably installed on the bottom of the guide plate (62). The end of the bending block (61) away from the transmission plate (42) is hinged to the bottom of the hinge seat (63). The pressing plate (67) is fixed to the outer wall of the bending block (61).

8. The assembly device for manufacturing a generator set according to claim 7, characterized in that: The rotating shaft (64) is rotatably mounted on the inner side of the assembly table (2), the striking plate (65) is fixed on the outer wall of the rotating shaft (64), one side of the second torsion spring (66) is fixed on the inner side of the assembly table (2), the other side of the second torsion spring (66) is fixed on the outer wall of the striking plate (65), and the rotating block (68) is fixed on the outer wall of the rotating shaft (64).