Water-containing coal field exploration detection device

The automated mixing device for the stock solution and dilution water solves the problem of reading overshoots in rapid water quality analyzers during high-concentration testing, ensuring the accuracy and reliability of the test results.

CN121655980APending Publication Date: 2026-03-13XINZHUANG COAL MINE OF QINGYANG XINZHUANG COAL IND CO LTD +1
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-20
Publication Date
2026-03-13

AI Technical Summary

Technical Problem

Existing rapid water quality analyzers are prone to readings exceeding the instrument's range when detecting high concentrations of ions, resulting in the inability to display the readings and requiring manual dilution and retesting, which increases operational steps and the risk of errors.

Method used

A detection device for exploring water-bearing coalfields was designed. Through the automated coordination of component distribution mechanism, material shaking mechanism and feeding mechanism, the raw liquid and dilution water are automatically mixed to ensure uniformity and avoid result errors.

Benefits of technology

It enables automated mixing of stock solution and dilution water, ensuring the accuracy and reliability of test results and reducing manual operation steps and errors.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN121655980A_ABST
    Figure CN121655980A_ABST
Patent Text Reader

Abstract

The invention discloses a water-containing coal field exploration detection device which comprises a box body, a material taking opening is formed in the position, close to the bottom, of the front side of the box body, a material discharging opening is formed in the position, close to the top, of the right side of the box body, a T-shaped pipe is arranged at the top of the box body, a reciprocating air cylinder is arranged at the left end of the T-shaped pipe, and a power output shaft of the reciprocating air cylinder penetrates through the T-shaped pipe. According to the invention, through the mutual cooperation of the component metering mechanism, the material shaking mechanism, the feeding mechanism and other components, when a worker puts 1mL of a stock solution on a swing plate through a beaker by using a pipettor, 100mL of dilution water and the stock solution can be automatically mixed, the operation is simple, the operation is convenient, the labor intensity is reduced, the labor intensity is reduced, and the work efficiency is improved. The stock solution and the dilution water are fully and uniformly mixed, so that the uniformity is ensured, and the detection result is prevented from losing significance due to result errors.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of water-bearing coalfield exploration technology, specifically to a water-bearing coalfield exploration and detection device. Background Technology

[0002] The water-bearing coalfield exploration and detection device is a complex system integrating geological, geophysical, drilling, and measurement technologies. Its selection and application need to be comprehensively determined based on specific geological conditions, detection accuracy requirements, and detection depth. Its ultimate goal is to provide accurate and reliable geological support for coal mine water control. The rapid water quality analyzer is a portable device that can perform quantitative or semi-quantitative analysis of multiple key chemical indicators of water samples in a short time in the field or in a simple laboratory. It changes the traditional mode of having to send water samples back to the laboratory and wait for several days or even longer to get results, and provides key data support for rapid decision-making.

[0003] Existing rapid water quality analyzers have a linear detection range for each test indicator. If the concentration of a certain ion in the water sample is too high, exceeding the instrument's range, the reading will "overshoot" and cannot be displayed. Therefore, it is necessary to manually dilute the water sample and retest it. However, manual operation increases the number of steps and the risk of introducing errors. Summary of the Invention

[0004] To achieve the above objectives, the present invention provides the following technical solution: An automated production line for thermoforming aerospace aluminum alloy includes a housing. A material inlet is located near the bottom of the front side of the housing, and a material outlet is located near the top of the right side of the housing. A T-tube is installed at the top of the housing. A reciprocating cylinder is installed at the left end of the T-tube. The power output shaft of the reciprocating cylinder passes through the T-tube and is fixedly connected to a reciprocating piston. Two collars are symmetrically arranged on the outside of the T-tube. An aluminum alloy plate is fixedly connected to the bottom of the reciprocating cylinder, and the bottom of the collars is fixedly connected to the aluminum alloy plate. A weight box is installed at the bottom of the T-tube, and a water inlet pipe is inserted into the top of the weight box. The aluminum alloy plate is connected to the water inlet pipe. An L-shaped fixing rod is fixedly connected to the bottom of the aluminum alloy plate. The other end of the L-shaped fixing rod is fixedly connected to the component box. Two circular plates are fixedly connected to the inner cavity of the T-shaped tube. The two circular plates are arranged symmetrically at the top and bottom. A top plate is fixedly connected to the top of the circular plates. Two sliding grooves are opened in the inner cavity of the circular plates. A first spring is fixedly connected to the bottom of the top plate. A reciprocating plate is fixedly connected to the bottom end of the first spring. Two sliding plates are fixedly connected to the outer side of the reciprocating plate. The sliding plates are slidably connected to the sliding grooves. A component mechanism is provided at the bottom of the component box. A swaying mechanism is provided in front of the component mechanism. A feeding mechanism is provided in front of the swaying mechanism.

[0005] Preferably, a water supply pipe is inserted into the top of the T-shaped tube, a water storage tank is provided on the right side of the T-shaped tube, the other end of the water supply pipe is inserted into the water storage tank, two sleeve plates are fixedly sleeved on the outside of the water storage tank, and the left side of each of the two sleeve plates is fixedly connected to the dispensing box. A fixing plate is sleeved on the outside of the water supply pipe, and the left side of the fixing plate is fixedly connected to the T-shaped tube.

[0006] Preferably, the dispensing mechanism includes a metering cylinder located inside the dispensing box. A tube is inserted into the bottom of the dispensing box, and a telescopic tube is inserted into the bottom end of the metering cylinder. The bottom end of the telescopic tube penetrates the inner cavity of the tube. A through hole is provided on the front side of the telescopic tube near the top end. A second spring is sleeved on the outside of the telescopic tube. A water outlet pipe is inserted into the front side of the tube. A mounting plate is sleeved on the outside of the water outlet pipe. The top of the mounting plate is fixedly connected to the bottom of the dispensing box.

[0007] Preferably, a cam is attached to the bottom of the telescopic tube, a first motor is installed on the rear side of the cam, a vertical plate is sleeved on the outside of the power output shaft of the first motor, an L-shaped connecting rod is fixedly connected to the bottom of the first motor, the other end of the L-shaped connecting rod is fixedly connected to the vertical plate, a T-shaped plate is fixedly connected to the bottom of the vertical plate, vertical plates are fixedly connected to both the left and right sides of the T-shaped plate, and the top of the vertical plate is fixedly connected to the bottom of the component box.

[0008] Preferably, the shaking mechanism includes a second motor, a timer is installed inside the second motor, a hanging plate is fixedly connected to the bottom of the second motor, a concave plate is provided on the top of the second motor, the power output shaft of the second motor passes through the concave plate and is fixedly connected to an eccentric wheel, a movable block is hinged to the top of the eccentric wheel, a bolt plate is fixedly connected to the top of the movable block, a shaking rod is provided through the inner cavity of the bolt plate, and both ends of the shaking rod pass through the inner cavity of the concave plate.

[0009] Preferably, an anti-detachment plate is fixedly connected to the front end of the shaking rod, and two uprights are provided through the inner cavity of the anti-detachment plate. The two uprights are arranged symmetrically from left to right, and magnetic plates are sleeved on both the upper and lower ends of the two uprights. A measuring cylinder is magnetically connected between the two magnetic plates.

[0010] Preferably, the feeding mechanism includes a placement plate, a rack is fixedly connected to the top of the placement plate near the front side, a limit plate is fixedly connected to the top of the placement plate near the rear side, an L-shaped mounting rod is fixedly connected to the left side of the placement plate, a feeding cylinder is fixedly connected to the other end of the L-shaped mounting rod, a moving block is hinged to the power output shaft of the feeding cylinder, and the moving block is slidably connected to the limit plate.

[0011] Preferably, a central shaft is provided through the inner cavity of the moving block, a gear is fixedly connected to the front end of the central shaft, a swing plate is fixedly connected to the rear end of the central shaft, a beaker is attached to the inner cavity of the swing plate, and the front side of the placement plate is fixedly connected to the inner side wall of the box.

[0012] Preferably, a plurality of clamping plates are attached to the outer side of the measuring cylinder near the bottom. The clamping plates are arranged in a circular array with the center of the measuring cylinder as the center. Two cross plates are provided at the bottom of the measuring cylinder. The two cross plates are arranged symmetrically at the top and bottom. An L-shaped linkage block is fixedly connected to the bottom of each clamping plate. A plurality of sliders are fixedly connected to the top of the upper cross plate. The sliders are arranged in a cross shape. The L-shaped linkage block is slidably connected to the adjacent slider. A crank is hinged to the bottom of the L-shaped linkage block. The bottom of the crank is hinged to the adjacent cross plate.

[0013] Preferably, a third motor is fixedly connected to the top of the T-shaped plate, a lead screw is fixedly connected to the power output shaft of the third motor, a meshing block is engaged near the top of the lead screw, a welding plate is fixedly connected to the front of the meshing block, an annular plate is fixedly connected to the front of the welding plate, a bonding rod is fixedly connected to the center of the top of the annular plate, the bottom end of the bonding rod passes through two cross plates, several arc plates are fixedly connected to the bottom of the upper cross plate, the bottom of the arc plates passes through adjacent cross plates and is fixedly connected to the annular plate, and locking plates are slidably connected to both sides of the meshing block, the front side of the locking plates is fixedly connected to the inner wall of the box.

[0014] Compared with the prior art, the beneficial effects of the present invention are: 1. This invention, through the cooperation of components such as the component distribution mechanism, the shaking mechanism, and the feeding mechanism, enables the automatic mixing of 100mL of dilution water with the stock solution when an operator places 1mL of stock solution into a beaker on the shaking plate using a pipette. This ensures thorough mixing of the stock solution and dilution water, guarantees uniformity, avoids errors in the results, and prevents the test results from becoming meaningless. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the structure of the present invention; Figure 2 This is a schematic diagram of the internal structure of the component housing of the present invention; Figure 3 This is a schematic diagram of the internal structure of the T-shaped tube component of the present invention; Figure 4 This is an exploded view of the circular plate structure of the component of this invention; Figure 5 This is a plan view of the measuring cylinder structure of the component of the present invention; Figure 6 This is a schematic diagram of the component placement plate structure of the present invention; Figure 7 This is a schematic diagram of the component box structure of the present invention; Figure 8 This is a bottom view of the component box structure of the present invention; Figure 9 This is a plan view of the internal structure of the component box of the present invention; Figure 10 This is a plan view of the component card plate structure of the present invention; Figure 11 This is a bottom view of the component card plate structure of the present invention; Figure 12 for Figure 10 Enlarged view of point A in the middle; Figure 13 for Figure 9 Enlarged view of section B in the middle.

[0016] Numbered components in the diagram: 1. Box body; 2. Water storage tank; 3. Sleeve plate; 4. Fixing plate; 5. Water supply pipe; 6. T-tube; 7. Collar; 8. Reciprocating cylinder; 9. L-shaped fixing rod; 10. Dispenser box; 11. Vertical plate; 12. T-plate; 13. Vertical plate; 14. Reciprocating piston; 15. Circular plate; 16. Top plate; 17. First spring; 18. Reciprocating plate; 19. Slide plate; 20. Water inlet pipe; 21. First motor; 22. L-shaped connecting rod; 23. Cam; 24. Second spring; 25. Water outlet pipe; 26. Insertion tube; 27. Telescopic tube; 28. Mounting plate; 29. ​​Metering cylinder; 30. Second... 31. Motor; 32. Concave plate; 33. Eccentric wheel; 34. Movable block; 35. Bolt plate; 36. Shaking rod; 37. Column; 38. Magnetic plate; 39. Anti-detachment plate; 40. Measuring cylinder; 41. Swing plate; 42. Moving block; 43. Feeding cylinder; 44. L-shaped mounting rod; 45. Limiting plate; 46. Gear; 47. Placement plate; 48. Rack; 49. Clamping plate; 50. Third motor; 51. Lead screw; 52. Meshing block; 53. Welding plate; 54. Clamping plate; 55. Slider; 56. Cross plate; 57. Crank; 58. Adhesive rod; 59. Arc plate. Detailed Implementation

[0017] Please see Figure 1-13 The present invention provides a technical solution: An automated production line for thermoforming aerospace aluminum alloys, in this embodiment, includes a housing 1. A material inlet is located near the bottom of the front side of the housing 1, and a material outlet is located near the top of the right side of the housing 1. A T-shaped tube 6 is installed at the top of the housing 1. A reciprocating cylinder 8 is installed at the left end of the T-shaped tube 6. The power output shaft of the reciprocating cylinder 8 passes through the T-shaped tube 6 and is fixedly connected to a reciprocating piston 14. Two collars 7 are symmetrically arranged on the outside of the T-shaped tube 6. An aluminum alloy plate is fixedly connected to the bottom of the reciprocating cylinder 8, and the collars 7 are fixedly connected to the bottom of the aluminum alloy plate. A weight box 10 is installed at the bottom of the T-shaped tube 6. A water inlet pipe 20 is inserted into the top of the weight box 10, and the bottom end of the T-shaped tube 6 is inserted into the water inlet pipe 20. An L-shaped fixing rod 9 is fixedly connected to the bottom of the aluminum alloy plate, and the other end of the L-shaped fixing rod 9 is fixedly connected to the weight box 10. Two circular plates 15 are fixedly connected to the inner cavity of the T-tube 6. The two circular plates 15 are arranged symmetrically at the top and bottom. A top plate 16 is fixedly connected to the top of the circular plates 15. Two sliding grooves are opened in the inner cavity of the circular plates 15. A first spring 17 is fixedly connected to the bottom of the top plate 16. A reciprocating plate 18 is fixedly connected to the bottom of the first spring 17. Two sliding plates 19 are fixedly connected to the outside of the reciprocating plate 18. The sliding plates 19 are slidably connected to the sliding grooves. A weighting mechanism is set at the bottom of the weighting box 10. A shaking mechanism is set in front of the weighting mechanism. A feeding mechanism is set in front of the shaking mechanism. A water supply pipe 5 is inserted into the top of the T-tube 6. A water storage tank 2 is set on the right side of the T-tube 6. The other end of the water supply pipe 5 is inserted into the water storage tank 2. Two sleeve plates 3 are fixedly sleeved on the outside of the water storage tank 2. The left side of the two sleeve plates 3 is fixedly connected to the weighting box 10. A fixing plate 4 is sleeved on the outside of the water supply pipe 5. The left side of the fixing plate 4 is fixedly connected to the T-tube 6.

[0018] The dispensing mechanism includes a metering cylinder 29 located inside the dispensing box 10. A tube 26 is inserted into the bottom of the dispensing box 10. A telescopic tube 27 is inserted into the bottom of the metering cylinder 29, penetrating the inner cavity of the tube 26. A through hole is provided near the top of the telescopic tube 27. A second spring 24 is sleeved on the outside of the telescopic tube 27. A water outlet pipe 25 is inserted into the front of the tube 26. A mounting plate 28 is sleeved on the outside of the water outlet pipe 25. The top of the mounting plate 28 is fixedly connected to the dispensing box. At the bottom of box 10, a cam 23 is attached to the bottom of telescopic tube 27. A first motor 21 is installed on the rear side of cam 23. A vertical plate 13 is sleeved on the outside of the power output shaft of the first motor 21. An L-shaped connecting rod 22 is fixedly connected to the bottom of the first motor 21. The other end of the L-shaped connecting rod 22 is fixedly connected to the vertical plate 13. A T-shaped plate 12 is fixedly connected to the bottom of the vertical plate 13. Vertical plates 11 are fixedly connected to both the left and right sides of the T-shaped plate 12. The top of the vertical plate 11 is fixedly connected to the bottom of the component box 10.

[0019] The shaking mechanism includes a second motor 30, which has a timer installed inside. The timer is electrically connected to the first motor 21. A hanging plate is fixedly connected to the bottom of the second motor 30, and a concave plate 31 is installed on the top of the second motor 30. The power output shaft of the second motor 30 passes through the concave plate 31 and is fixedly connected to an eccentric wheel 32. A movable block 33 is hinged to the top of the eccentric wheel 32. A bolt plate 34 is fixedly connected to the top of the movable block 33. A shaking rod 35 is installed through the inner cavity of the bolt plate 34. Both ends of the shaking rod 35 pass through the inner cavity of the concave plate 31. An anti-detachment plate 38 is fixedly connected to the front end of the shaking rod 35. Two columns 36 are installed through the inner cavity of the anti-detachment plate 38. The two columns 36 are symmetrically arranged. Magnetic plates 37 are sleeved on both the upper and lower ends of the two columns 36. A measuring cylinder 39 is magnetically connected between the two magnetic plates 37.

[0020] The feeding mechanism includes a placement plate 46. A rack 47 is fixedly connected to the top of the placement plate 46 near the front side. A limit plate 44 is fixedly connected to the top of the placement plate 46 near the rear side. An L-shaped mounting rod 43 is fixedly connected to the left side of the placement plate 46. A feeding cylinder 42 is fixedly connected to the other end of the L-shaped mounting rod 43. A moving block 41 is hinged to the power output shaft of the feeding cylinder 42. The moving block 41 is slidably connected to the limit plate 44. A central shaft is provided through the inner cavity of the moving block 41. A gear 45 is fixedly connected to the front end of the central shaft. A swing plate 40 is fixedly connected to the rear end of the central shaft. A beaker is attached to the inner cavity of the swing plate 40. The front side of the placement plate 46 is fixedly connected to the inner wall of the box 1. A button is provided on the front side of the box 1. The button is electrically connected to the feeding cylinder 42.

[0021] Several clamping plates 53 are attached to the outer side of the measuring cylinder 39 near the bottom. These clamping plates 53 are arranged in a circular array around the center of the measuring cylinder 39. Two cross plates 56 are symmetrically arranged at the bottom of the measuring cylinder 39. L-shaped linkage blocks 54 are fixedly connected to the bottom of each clamping plate 53. Several sliders 55 are fixedly connected to the top of the upper cross plate 56. These sliders 55 are arranged in a cross shape. The L-shaped linkage blocks 54 are slidably connected to adjacent sliders 55. A crank 57 is hinged to the bottom of the L-shaped linkage block 54, and the bottom of the crank 57 is hinged to the adjacent cross plate 56. A third... The third motor 49 has a power output shaft fixedly connected to a lead screw 50. A meshing block 51 is engaged near the top of the lead screw 50. A welding plate 52 is fixedly connected to the front of the meshing block 51. An annular plate is fixedly connected to the front of the welding plate 52. A fitting rod 58 is fixedly connected to the center of the top of the annular plate. The bottom of the fitting rod 58 passes through two cross plates 56. Several arc plates 59 are fixedly connected to the bottom of the upper cross plate 56. The bottom of the arc plates 59 passes through the adjacent cross plates 56 and is fixedly connected to the annular plate. A locking plate 48 is slidably connected to both sides of the meshing block 51. The front of the locking plate 48 is fixedly connected to the inner wall of the housing 1.

[0022] Working principle: First, the operator carefully transfers 1 mL of stock solution into a clean beaker using a pipette, places the beaker on the swing plate 40, and starts the feeding cylinder 42. The feeding cylinder 42 drives the moving block 41 to move to the left via the power output shaft. When the moving block 41 moves, it drives the gear 45 to move to the left via the central shaft. The gear 45 meshes with the rack 47, thereby rotating the central shaft. When the central shaft rotates, it drives the swing plate 40 to flip, thus transferring the stock solution from the beaker to the inner cavity of the measuring cylinder 39. When the reciprocating cylinder 8 is started, it drives the reciprocating piston 14 to the left via the power output shaft. The dilution water inside the storage tank 2 is pumped into the inner cavity of the T-tube 6 through the water supply pipe 5. When the reciprocating piston 14 moves to the left, the upper reciprocating plate 18 moves downward, allowing the dilution water to enter between the two circular plates 15. When the reciprocating piston 14 moves to the right, the lower reciprocating plate 18 moves downward, allowing the dilution water to enter the inner cavity of the dispensing box 10 through the water inlet pipe 20 and accumulate. Since the capacity of the dispensing cylinder 29 is 50mL, when the first motor 21 is started, it can drive the cam 23 to rotate through the power output shaft. When the cam 23 rotates, it can drive the telescopic tube 27 to move upward. 7. When moving upwards, the through hole on the surface can be aligned with the water outlet pipe 25. At this time, the dilution water in the inner cavity of the measuring cylinder 29 can flow out through the water outlet pipe 25 into the inner cavity of the measuring cylinder 39, contacting the original solution. The internal timer of the second motor 30 is set to five seconds. When the second motor 30 starts, it can drive the eccentric wheel 32 to rotate through the power output shaft. When the eccentric wheel 32 rotates, it can drive the movable block 33 to rotate. When the movable block 33 rotates, it drives the measuring cylinder 39 to shake through the bolt plate 34 and the shaking rod 35, so that the dilution water and the original solution are mixed. After five seconds, the first motor 21 is started again to pour in 50mL of dilution water. After the release is completed, the third motor 49 can be started to drive the lead screw 50 to rotate. When the lead screw 50 rotates, it can drive the welding plate 52 to move upward through the meshing block 51. When the welding plate 52 moves upward, the fitting rod 58 can fit against the bottom of the measuring cylinder 39 and move downward. When the fitting rod 58 moves downward, it can drive the cross plate 56 located below to move downward. When the cross plate 56 located below moves, it can drive the adjacent L-shaped linkage block 54 to move in opposite directions through several cranks 57, thereby fixing and clamping the measuring cylinder 39. When the third motor 49 reverses, it can drive the measuring cylinder 39 to move downward, making it easier for the staff to take it out.

Claims

1. An automated production line for the thermal forming of aerospace aluminum alloys, comprising a housing (1), characterized in that: The box (1) has a material inlet near the bottom on the front side and a material outlet near the top on the right side. A T-shaped tube (6) is installed on the top of the box (1). A reciprocating cylinder (8) is installed at the left end of the T-shaped tube (6). The power output shaft of the reciprocating cylinder (8) passes through the T-shaped tube (6) and is fixedly connected to a reciprocating piston (14). Two collars (7) are fitted around the outside of the T-shaped tube (6). The two collars (7) are symmetrically arranged. An aluminum alloy plate is fixedly connected to the bottom of the reciprocating cylinder (8). The collars (7) are fixedly connected to the bottom of the aluminum alloy plate. A weight box (10) is installed at the bottom of the T-shaped tube (6). A water inlet pipe (20) is inserted into the top of the weight box (10). The bottom of the T-shaped tube (6) is inserted into the water inlet pipe (20). An L-shaped fixing rod (9) is fixedly connected to the bottom of the plate. The other end of the L-shaped fixing rod (9) is fixedly connected to the component box (10). Two circular plates (15) are fixedly connected to the inner cavity of the T-shaped tube (6). The two circular plates (15) are arranged symmetrically at the top and bottom. A top plate (16) is fixedly connected to the top of the circular plate (15). Two sliding grooves are opened in the inner cavity of the circular plate (15). A first spring (17) is fixedly connected to the bottom of the top plate (16). A reciprocating plate (18) is fixedly connected to the bottom of the first spring (17). Two sliding plates (19) are fixedly connected to the outside of the reciprocating plate (18). The sliding plates (19) are slidably connected to the sliding grooves. A component mechanism is provided at the bottom of the component box (10). A swaying mechanism is provided in front of the component mechanism. A feeding mechanism is provided in front of the swaying mechanism.

2. The automated production line for warm forming of aerospace aluminum alloy according to claim 1, characterized in that: A water supply pipe (5) is inserted into the top of the T-shaped pipe (6). A water storage tank (2) is provided on the right side of the T-shaped pipe (6). The other end of the water supply pipe (5) is inserted into the water storage tank (2). Two sleeve plates (3) are fixedly sleeved on the outside of the water storage tank (2). The left side of the two sleeve plates (3) is fixedly connected to the dispensing box (10). A fixing plate (4) is sleeved on the outside of the water supply pipe (5). The left side of the fixing plate (4) is fixedly connected to the T-shaped pipe (6).

3. The automated production line for warm forming of aerospace aluminum alloy according to claim 2, characterized in that: The dispensing mechanism includes a metering cylinder (29), which is located in the inner cavity of the dispensing box (10). A tube (26) is inserted into the bottom of the dispensing box (10). A telescopic tube (27) is inserted into the bottom end of the metering cylinder (29). The bottom end of the telescopic tube (27) passes through the inner cavity of the tube (26). A through hole is opened on the front side of the telescopic tube (27) near the top end. A second spring (24) is sleeved on the outside of the telescopic tube (27). A water outlet pipe (25) is inserted into the front side of the tube (26). An installation plate (28) is sleeved on the outside of the water outlet pipe (25). The top of the installation plate (28) is fixedly connected to the bottom of the dispensing box (10).

4. The automated production line for warm forming of aerospace aluminum alloy according to claim 1, characterized in that: The bottom of the telescopic tube (27) is fitted with a cam (23), and a first motor (21) is installed on the rear side of the cam (23). A vertical plate (13) is sleeved on the outside of the power output shaft of the first motor (21). An L-shaped connecting rod (22) is fixedly connected to the bottom of the first motor (21). The other end of the L-shaped connecting rod (22) is fixedly connected to the vertical plate (13). A T-shaped plate (12) is fixedly connected to the bottom of the vertical plate (13). Vertical plates (11) are fixedly connected to both the left and right sides of the T-shaped plate (12). The top of the vertical plate (11) is fixedly connected to the bottom of the component box (10).

5. The automated production line for the warm forming of aerospace aluminum alloys according to claim 4, characterized in that: The shaking mechanism includes a second motor (30), a timer is installed inside the second motor (30), a hanging plate is fixedly connected to the bottom of the second motor (30), a concave plate (31) is provided on the top of the second motor (30), the power output shaft of the second motor (30) passes through the concave plate (31) and is fixedly connected to an eccentric wheel (32), a movable block (33) is hinged to the top of the eccentric wheel (32), a bolt plate (34) is fixedly connected to the top of the movable block (33), a shaking rod (35) is provided through the inner cavity of the bolt plate (34), and both ends of the shaking rod (35) pass through the inner cavity of the concave plate (31).

6. The automated production line for warm forming of aerospace aluminum alloy according to claim 5, characterized in that: The front end of the rocking rod (35) is fixedly connected to an anti-detachment plate (38). The inner cavity of the anti-detachment plate (38) is provided with two columns (36). The two columns (36) are arranged symmetrically on the left and right. The upper and lower ends of the two columns (36) are both sleeved with magnetic plates (37). The two magnetic plates (37) are magnetically connected to a measuring cylinder (39).

7. The automated production line for the warm forming of aerospace aluminum alloys according to claim 1, characterized in that: The feeding mechanism includes a placement plate (46), a rack (47) is fixedly connected to the top of the placement plate (46) near the front side, a limit plate (44) is fixedly connected to the top of the placement plate (46) near the rear side, an L-shaped mounting rod (43) is fixedly connected to the left side of the placement plate (46), a feeding cylinder (42) is fixedly connected to the other end of the L-shaped mounting rod (43), a moving block (41) is hinged to the power output shaft of the feeding cylinder (42), and the moving block (41) is slidably connected to the limit plate (44).

8. The automated production line for warm forming of aerospace aluminum alloy according to claim 7, characterized in that: The inner cavity of the moving block (41) is provided with a central shaft, the front end of the central shaft is fixedly connected to a gear (45), the rear end of the central shaft is fixedly connected to a swing plate (40), the inner cavity of the swing plate (40) is fitted with a beaker, and the front side of the placement plate (46) is fixedly connected to the inner wall of the box (1).

9. The automated production line for warm forming of aerospace aluminum alloy according to claim 8, characterized in that: Several clamping plates (53) are attached to the outside of the measuring cylinder (39) near the bottom. The clamping plates (53) are arranged in a circular array with the center of the measuring cylinder (39) as the center. Two cross plates (56) are provided at the bottom of the measuring cylinder (39). The two cross plates (56) are arranged symmetrically above and below. An L-shaped linkage block (54) is fixedly connected to the bottom of each clamping plate (53). Several sliders (55) are fixedly connected to the top of the upper cross plate (56). The sliders (55) are arranged in a cross shape. The L-shaped linkage block (54) is slidably connected to the adjacent slider (55). A crank (57) is hinged to the bottom of the L-shaped linkage block (54). The bottom of the crank (57) is hinged to the adjacent cross plate (56).

10. An automated production line for the warm forming of aerospace aluminum alloys according to claim 9, characterized in that: The top of the T-shaped plate (12) is fixedly connected to a third motor (49), and the power output shaft of the third motor (49) is fixedly connected to a lead screw (50). A meshing block (51) is engaged on the outside of the lead screw (50) near the top. A welding plate (52) is fixedly connected to the front side of the meshing block (51). An annular plate is fixedly connected to the front side of the welding plate (52). A fitting rod (58) is fixedly connected to the center of the top of the annular plate. The bottom end of the fitting rod (58) passes through two cross plates (56). Several arc plates (59) are fixedly connected to the bottom of the upper cross plate (56). The bottom of the arc plate (59) passes through the adjacent cross plates (56) and is fixedly connected to the annular plate. A locking plate (48) is slidably connected to both sides of the meshing block (51). The front side of the locking plate (48) is fixedly connected to the inner wall of the box (1).