Downhill leveling mechanism for powder-liquid double-chamber bag

By adopting a leveling mechanism combining correction rollers and cylinders with gear rack transmission during the downhill process of the powder-liquid double-chamber bags, the tilting problem of the powder-liquid double-chamber bags was solved, and the stable transmission and correction of the powder-liquid double-chamber bags were achieved, ensuring the smooth progress of subsequent packaging processing.

CN120697368AInactive Publication Date: 2025-09-26北京锐业制药(潜山)有限公司
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Patent Information

Application Number
CN202510735500.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-04
Publication Date
2025-09-26
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the prior art, powder-liquid double-chamber bags tilt when going downhill because the mass of the liquid chamber is greater than that of the powder chamber. Traditional leveling mechanisms cannot effectively correct this, affecting subsequent packaging processing.

Method used

A powder-liquid double-chamber bag downhill leveling mechanism including a correction mechanism and a moving mechanism is adopted. Through symmetrically arranged correction rollers and cylinders, combined with gear rack transmission, the position correction and stable transmission of the powder-liquid double-chamber bag are achieved.

Benefits of technology

Effectively correct the tilt of the powder-liquid double-chamber bag, ensuring it remains level during the downhill process, preventing further deviation and ensuring smooth subsequent packaging processing.

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Abstract

The invention discloses a powder-liquid double-chamber bag downhill leveling mechanism which comprises a lower conveying rail and an upper conveying rail, a fan-shaped ramp is installed between the lower conveying rail and the upper conveying rail, a moving mechanism is arranged above the fan-shaped ramp, the moving mechanism comprises tooth sliding rails which are symmetrically arranged, a sliding buckle table is arranged on the tooth sliding rails in a sliding mode, and the sliding buckle table is provided with a sliding groove. A supporting table is fixedly connected between the two sliding buckling tables, a correcting mechanism is installed at the bottom of the supporting table and comprises a mounting plate with the height position adjustable, a correcting lead screw is rotationally connected to the bottom of the mounting plate, and a correcting roller is rotationally arranged on the outer side of the correcting lead screw. The symmetrically-arranged correcting rollers can apply proper acting force to the inclined part through transverse movement and rotation, the powder-liquid double-chamber bag is adjusted to the horizontal position, and after the correcting mechanism corrects the powder-liquid double-chamber bag, the moving mechanism can drive the powder-liquid double-chamber bag to stably move to the lower conveying rail so as to prevent the powder-liquid double-chamber bag from further inclining.
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Description

Technical Field

[0001] The invention relates to the technical field of powder-liquid double-chamber bag production, in particular to a powder-liquid double-chamber bag downslope leveling mechanism. Background Art

[0002] The powder-liquid dual-chamber bag, also known as a ready-to-mix powder-liquid dual-chamber infusion soft bag, is a novel pharmaceutical packaging format that utilizes a specific process to package drug powder and injectable solvent in two separate chambers within the same bag. The bag consists of two sealed chambers: the upper chamber is typically used to store powdered materials (such as drug powders), while the lower chamber is used to store liquid materials (such as injectable solvents). The two chambers are separated by a weld seam, ensuring that the powdered and liquid materials are not affected by each other, preserving their original quality and properties. Prior to infusion, a gentle squeeze of the liquid chamber dissolves the weld seam, allowing the drug powder and solvent to fully mix and dissolve, ensuring ready-to-use.

[0003] During the production process of the powder-liquid double-chamber bag, it is necessary to transfer it from the upper conveying track to the lower conveying track through the downramp. When passing through the downramp, the liquid chamber part is filled with liquid solvent, and its mass is greater than that of the powder chamber part. Due to the unbalanced gravity at both ends of the powder-liquid double-chamber bag, the powder-liquid double-chamber bag will be tilted. Traditional downhill leveling mechanisms mostly use symmetrically arranged cylinders, which use the expansion and contraction of the cylinders to drive the baffles to block the powder-liquid double-chamber bag, but only prevent it from continuing to deflect, and cannot correct the tilted powder-liquid double-chamber bag, nor is it easy to assist the powder-liquid double-chamber bag to slide on the ramp to prevent it from further tilting, which is not conducive to the subsequent packaging of the powder-liquid double-chamber bag. Therefore, in order to solve the above problems, a downhill leveling mechanism for the powder-liquid double-chamber bag is proposed. Summary of the Invention

[0004] The purpose of the present invention is to solve the shortcoming in the prior art that the tilted powder-liquid double-chamber bag cannot be corrected, and to propose a downhill leveling mechanism for the powder-liquid double-chamber bag.

[0005] In order to achieve the above object, the present invention adopts the following technical solutions: A powder-liquid double-chamber bag downslope leveling mechanism comprises a lower conveying track and an upper conveying track, a fan-shaped ramp is installed between the lower conveying track and the upper conveying track, a moving mechanism is arranged above the fan-shaped ramp, the moving mechanism comprises symmetrically arranged toothed slide rails, a sliding buckle platform is slidably arranged on the toothed slide rails, a support platform is fixedly connected between the two sliding buckle platforms, and the sliding buckle platform is used to assist the powder-liquid double-chamber bag to slide on the ramp; A correction mechanism is installed at the bottom of the support platform, and the correction mechanism includes a mounting plate with adjustable height. The mounting plates are symmetrically arranged, and the bottom of the mounting plate is rotatably connected to a correction screw. A correction roller is rotatably arranged on the outer side of the correction screw. The position of the correction roller can be moved laterally while rotating, and the correction roller is used to correct the position of the powder-liquid double-chamber bag.

[0006] The above technical solution further includes: The moving mechanism also includes a moving motor, which is installed on the side of the sliding buckle platform. The output end of the moving motor is fixedly connected to a moving gear, which is rotatably connected to the sliding buckle platform. The moving gear is engaged with the teeth on the toothed slide rail, and a transmission shaft is fixedly connected between the two moving gears.

[0007] Slide grooves are provided on both sides of the toothed slide rail, and a plurality of auxiliary rollers are symmetrically rotatably connected on both sides of the sliding buckle platform. The auxiliary rollers are rotationally connected to the sliding buckle platform, and the slide grooves and the auxiliary rollers slide relative to each other.

[0008] The correction mechanism also includes a symmetrically arranged cylinder, a support plate is slidingly arranged on the inner side of the support platform, the cylinder is installed on the top of the support plate, the telescopic end of the cylinder is fixedly connected to the mounting plate, and a correction motor is installed at the bottom of the cylinder, and the output end of the correction motor is fixedly connected to the correction screw.

[0009] A threaded plate is threadedly connected to the correction screw rod, and the threaded plate slides relative to the mounting plate. A guide rod is fixedly connected to the bottom of the mounting plate, and a slide plate is provided between the guide rod and the mounting plate to slide together. The slide plate and the threaded plate are rotatably connected to the correction roller.

[0010] The side surface of the threaded plate is fixedly connected to a sleeve, and the end of the sleeve away from the threaded plate is rotatably connected to the correction main bevel gear, the correction main bevel gear is engaged and slid between the slot opened on the correction screw, and the end of the correction roller close to the correction main bevel gear is fixedly connected to the correction slave bevel gear, and the correction main bevel gear and the correction slave bevel gear are meshed with each other.

[0011] An adjustment mechanism is provided at the bottom of the support platform, and the adjustment mechanism includes a drive motor, which is installed on the side of the support platform. The output end of the drive motor is fixedly connected to a driving flywheel, and a lifting screw is rotatably connected to the center of the support platform. The top of the lifting screw is fixedly connected to a driven flywheel, and a belt is commonly sleeved and connected between the driving flywheel and the driven flywheel.

[0012] The bottom of the support platform is fixedly connected to a limiting cylinder, a lifting column is slidably provided on the inner side of the limiting cylinder, the lifting column is threadedly connected to the lifting screw rod, and the lifting column is fixedly connected to the support plate.

[0013] An interception structure is provided on the side of the support platform, and the interception structure includes a symmetrically arranged blocking rack, which is slidably arranged in a limiting sliding sleeve fixedly connected to the outside of the support platform, and the bottom of the blocking rack is fixedly connected to a fixed plate, and a spring telescopic rod is installed at the bottom of the fixed plate, and the bottom of the spring telescopic rod is rotatably connected to an interception wheel.

[0014] A plurality of supporting rotating blocks are fixedly connected to the top of the support platform, and a transmission rod is rotatably connected between the plurality of supporting rotating blocks. Both ends of the transmission rod are fixedly connected to a blocking gear, and the blocking gear and the blocking rack are inter-core with each other. A driven bevel gear is fixedly connected to the center of the transmission rod, and the driven bevel gear is meshed with the active bevel gear fixedly connected to the output end of the drive motor.

[0015] The present invention has the following beneficial effects: 1. In the present invention, the correction mechanism can be adjusted according to the different inclination degrees and positions of the powder-liquid dual-chamber bag. When the powder-liquid dual-chamber bag is tilted to one side due to the large mass of the liquid chamber (the tilting direction may be to the right or left), the symmetrically arranged correction rollers can exert appropriate force on the tilted part through lateral movement and rotation to adjust the powder-liquid dual-chamber bag to a horizontal position.

[0016] 2. In the present invention, the moving mechanism can drive the correction mechanism to move in a circular motion on the tooth slide rail. After the correction mechanism corrects, the moving mechanism can drive the powder-liquid double-chamber bag to move smoothly to the lower conveying track to prevent it from further tilting. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 This is a schematic diagram of the overall structure of a powder-liquid double-chamber bag downhill leveling mechanism proposed by the present invention; Figure 2 Schematic diagram of the toothed slide rail and support platform structure of the present invention; Figure 3 Schematic diagram of the structure of the mobile mechanism in the present invention; Figure 4 Schematic diagram of the front structure of the support platform in the present invention; Figure 5 This is a schematic diagram of the rear view structure of the support platform in the present invention; Figure 6 Schematic diagram of the interception mechanism structure of the present invention; Figure 7 Schematic diagram of the structure of the regulating mechanism in the present invention; Figure 8Schematic diagram of the first top view of the correction mechanism of the present invention; Figure 9 Schematic diagram of the second top view of the correction mechanism of the present invention; Figure 10 for Figure 3 A schematic diagram of the structure at center A; Figure 11 for Figure 5 A magnified schematic diagram of the structure at point B in the middle; Figure 12 for Figure 8 A magnified schematic diagram of the structure at point C in the middle; Figure 13 for Figure 9 Enlarged schematic diagram of the structure at point D in the middle.

[0018] In the figure: 1, lower conveyor track; 2, upper conveyor track; 3, fan-shaped ramp; 4, sliding buckle platform; 5, support platform; 6, limit cylinder; 7, mounting plate; 40, toothed slide rail; 41, slide groove; 42, transmission shaft; 43, auxiliary roller; 44, moving motor; 45, moving gear; 50, driving motor; 51, transmission rod; 52, blocking rack; 53, limit sliding sleeve; 54, intercepting wheel; 55, fixing plate; 56, spring telescopic rod; 57, support turntable Block; 58, blocking gear; 59, driving flywheel; 510, driving bevel gear; 511, belt; 512, driven bevel gear; 60, lifting screw; 61, driven flywheel; 62, lifting column; 70, cylinder; 71, support plate; 72, sleeve; 73, correction motor; 74, correction screw; 75, guide rod; 76, correction roller; 77, slot; 78, threaded plate; 79, correction main bevel gear; 710, correction slave bevel gear; 711, slide plate. DETAILED DESCRIPTION

[0019] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0020] Example like Figures 1-13 As shown, the present invention proposes a powder-liquid double-chamber bag downslope leveling mechanism, comprising a lower conveying track 1 and an upper conveying track 2, a fan-shaped ramp 3 is installed between the lower conveying track 1 and the upper conveying track 2, and a moving mechanism is provided above the fan-shaped ramp 3, the moving mechanism comprising symmetrically arranged toothed slide rails 40, a sliding buckle platform 4 is slidably provided on the toothed slide rails 40, a support platform 5 is fixedly connected between the two sliding buckle platforms 4, and the sliding buckle platform 4 is used to assist the powder-liquid double-chamber bag in sliding on the ramp; A correction mechanism is installed at the bottom of the support platform 5. The correction mechanism includes a height-adjustable mounting plate 7. The mounting plates 7 are symmetrically arranged. A correction screw 74 is rotatably connected to the bottom of the mounting plate 7. A correction roller 76 is rotatably arranged on the outer side of the correction screw 74. The position of the correction roller 76 can be moved laterally while rotating. The correction roller 76 is used to correct the position of the powder-liquid double-chamber bag; Furthermore, the position of the powder-liquid dual-chamber bag on the conveyor belt may be such that the liquid chamber faces left or right, so the correction mechanism is symmetrically arranged. When the powder-liquid dual-chamber bag tilts, if it tilts to the left, the correction mechanism on the left is used for correction, and vice versa. Furthermore, the correction mechanism mainly uses a correction roller 76 that can rotate. The movement of the correction roller 76 is used to move the tilted powder-liquid double-chamber bag to one side to restore it to a horizontal state. Furthermore, after the powder-liquid double-chamber bag is corrected, the correction mechanism is used to restrict the fitting of the powder-liquid double-chamber bag, and at the same time, the moving mechanism drives the correction mechanism to move, so that the powder-liquid double-chamber bag is smoothly placed on the lower conveying track 1.

[0021] The moving mechanism further includes a moving motor 44, which is mounted on the side of the sliding buckle platform 4. The output end of the moving motor 44 is fixedly connected to a moving gear 45, which is rotationally connected to the sliding buckle platform 4. The moving gear 45 meshes with the teeth on the toothed slide rail 40, and a transmission shaft 42 is fixedly connected between the two moving gears 45. A slide groove 41 is provided on both sides of the toothed slide rail 40. A plurality of auxiliary rollers 43 are symmetrically connected to the two sides of the sliding buckle platform 4. The auxiliary rollers 43 are rotatably connected to the sliding buckle platform 4, and the slide groove 41 and the auxiliary rollers 43 slide relative to each other. Furthermore, when the sliding buckle platform 4 needs to be driven to move on the toothed slide rail 40 to assist the powder-liquid dual-chamber bag in sliding on the fan-shaped ramp, the output end of the starting moving motor 44 is fixedly connected to the moving gear 45. The moving gear 45 is also rotationally connected to the sliding buckle platform 4, ensuring that the moving gear 45 can rotate normally under the drive of the moving motor 44. At the same time, the two moving gears 45 are fixedly connected by a transmission shaft 42. When one of the moving motors 44 is started, the transmission action of the transmission shaft 42 also causes the other moving gear 45 to rotate synchronously. Since the moving gear 45 meshes with the teeth on the toothed slide rail 40, this forms a rack and pinion transmission structure.

[0022] Furthermore, when the moving motor 44 is running and drives the moving gear 45 to rotate, the moving gear 45 will roll along the teeth on the toothed slide 40, thereby driving the entire sliding buckle platform 4 to move along the toothed slide 40. During the movement of the sliding buckle platform 4, in order to ensure the smoothness and accuracy of its movement, a slide groove 41 is opened on both sides of the toothed slide 40, and a plurality of auxiliary rollers 43 are symmetrically connected to the two sides of the sliding buckle platform 4 for rotation. These auxiliary rollers 43 are also connected to the sliding buckle platform 4 for rotation. The auxiliary rollers 43 slide relative to the slide groove 41. When the sliding buckle platform 4 moves under the drive of the moving gear 45, the auxiliary rollers 43 roll in the slide groove 41, playing a supporting and guiding role, thereby realizing the stable and accurate movement of the sliding buckle platform 4 on the toothed slide 40, thereby effectively assisting the powder-liquid double-chamber bag to slide on the fan-shaped ramp.

[0023] The correction mechanism also includes a symmetrically arranged cylinder 70. A support plate 71 is slidably provided on the inner side of the support platform 5. The cylinder 70 is mounted on the top of the support plate 71. The telescopic end of the cylinder 70 is fixedly connected to the mounting plate 7. A correction motor 73 is installed at the bottom of the cylinder 70. The output end of the correction motor 73 is fixedly connected to the correction screw 74. A threaded plate 78 is threadedly connected to the correction screw 74, and the threaded plate 78 slides relative to the mounting plate 7. A guide rod 75 is fixedly connected to the bottom of the mounting plate 7. A slide plate 711 slides between the guide rod 75 and the mounting plate 7. The slide plate 711 and the threaded plate 78 are rotatably connected to the correction roller 76. The side of the threaded plate 78 is fixedly connected to a sleeve 72. The end of the sleeve 72 away from the threaded plate 78 is rotatably connected to a correction main bevel gear 79. The correction main bevel gear 79 is engaged and slid with a slot 77 provided on the correction screw 74. The end of the correction roller 76 close to the correction main bevel gear 79 is fixedly connected to a correction slave bevel gear 710. The correction main bevel gear 79 and the correction slave bevel gear 710 are meshed with each other. Furthermore, when the powder-liquid dual-chamber bag tilts on the sector-shaped ramp 3, the interception mechanism first intercepts the bag. Depending on the tilt angle, the left or right correction mechanism is selected to control the extension and contraction of the cylinder 70. The extension of the cylinder 70 drives the mounting plate 7 closer to the powder-liquid dual-chamber bag. Simultaneously, the correction motor 73 drives the correction screw 74 to rotate. A threaded plate 78 is threadedly connected to the correction screw 74, and the threaded plate 78 slides relative to the mounting plate 7. As the correction screw 74 rotates, the threaded plate 78 moves axially along the correction screw 74 according to the principle of thread transmission.

[0024] Furthermore, a guide rod 75 is fixedly connected to the bottom of the mounting plate 7. A slide plate 711 is slidably provided between the guide rod 75 and the mounting plate 7. The slide plate 711 and the threaded plate 78 are rotatably connected to the straightening roller 76. As the threaded plate 78 moves, the slide plate 711 slides synchronously on the guide rod 75, thereby causing the straightening roller 76 to move laterally.

[0025] Furthermore, when the correction screw 74 rotates, the sleeve 72 is rotationally connected to the correction main bevel gear 79. Due to the engagement between the slot 77 and the correction main bevel gear 79, the correction main bevel gear 79 rotates along with the rotation of the correction screw 74. Furthermore, one end of the straightening roller 76, near the straightening master bevel gear 79, is fixedly connected to a straightening slave bevel gear 710, which meshes with each other. The rotation of the straightening master bevel gear 79 drives the straightening slave bevel gear 710, which in turn rotates the straightening roller 76. The straightening roller 76 rotates while laterally moving the straightening powder-liquid dual-chamber bag. This applies a lateral force to the bag, and the movement of the straightening roller 76 drives the bag's lateral movement, improving the straightening effect.

[0026] An adjustment mechanism is provided at the bottom of the support platform 5. The adjustment mechanism includes a drive motor 50, which is mounted on the side of the support platform 5. The output end of the drive motor 50 is fixedly connected to a driving flywheel 59. A lifting screw 60 is rotatably connected to the center of the support platform 5. The top of the lifting screw 60 is fixedly connected to a driven flywheel 61. A belt 511 is sleeved between the driving flywheel 59 and the driven flywheel 61. The bottom of the support platform 5 is fixedly connected to the limit cylinder 6, and a lifting column 62 is slidably provided inside the limit cylinder 6. The lifting column 62 is threadedly connected to the lifting screw 60, and the lifting column 62 is fixedly connected to the support plate 71; Furthermore, during correction, the adjustment mechanism is required to drive the correction mechanism close to the powder-liquid dual-chamber bag. After the drive motor 50 is started, its output end drives the active flywheel 59 to rotate. Since the belt 511 is mounted on the active flywheel 59 and the driven flywheel 61, according to the principle of belt transmission, the active flywheel 59 drives the driven flywheel 61 to rotate through the belt 511. The rotation of the driven flywheel 61 in turn drives the lifting screw 60 fixedly connected to it to rotate at the center of the support platform 5, realizing power transmission and transmitting the rotational motion of the drive motor 50 to the lifting screw 60. Furthermore, when the lifting screw 60 starts to rotate driven by the driven flywheel 61, according to the principle of threaded transmission, the lifting column 62 will move along the axial direction of the lifting screw 60, and the limiting cylinder 6 plays a guiding and limiting role, which ensures that the lifting column 62 can only move linearly along its axial direction without deviation or shaking.

[0027] An interception structure is provided on the side of the support platform 5. The interception structure includes a symmetrically arranged blocking rack 52. The blocking rack 52 is slidably arranged in a limiting sliding sleeve 53 fixedly connected to the outer side of the support platform 5. The bottom of the blocking rack 52 is fixedly connected to a fixing plate 55. The bottom of the fixing plate 55 is installed with a spring telescopic rod 56. The bottom of the spring telescopic rod 56 is rotatably connected to an interception wheel 54. A plurality of supporting rotating blocks 57 are fixedly connected to the top of the support platform 5, and a transmission rod 51 is rotatably connected between the plurality of supporting rotating blocks 57. Both ends of the transmission rod 51 are fixedly connected to a blocking gear 58. The blocking gear 58 and the blocking rack 52 are interlocked with each other. A driven bevel gear 512 is fixedly connected to the center of the transmission rod 51, and the driven bevel gear 512 is meshed with the driving bevel gear 510 fixedly connected to the output end of the drive motor 50. Furthermore, when the powder-liquid dual-chamber bag is on the sector-shaped ramp 3, it needs to be intercepted before being corrected. When the drive motor 50 is started, the drive motor 50 first drives the adjustment mechanism, which then drives the correction mechanism close to the powder-liquid dual-chamber bag and simultaneously intercepts it. The output end of the drive motor 50 drives the driving bevel gear 510 to rotate, which transmits power to the driven bevel gear 512, thereby driving the transmission rod 51 to rotate between the multiple support blocks 57.

[0028] Furthermore, when the transmission rod 51 rotates, it drives the blocking gears 58 at both ends to rotate synchronously. According to the principle of gear and rack transmission, the rotation of the blocking gear 58 causes the meshing blocking rack 52 to move along the limiting sliding sleeve 53. The limiting sliding sleeve 53 plays a guiding and limiting role, ensuring that the blocking rack 52 can only move linearly along its axial direction to prevent deviation or shaking.

[0029] Furthermore, when the blocking rack 52 moves driven by the blocking gear 58, it will drive the spring telescopic rod 56 and the intercepting wheel 54 to move synchronously through the fixed plate 55. When it is necessary to intercept the powder-liquid double-chamber bag, the drive motor 50 drives the transmission rod 51 to rotate, causing the blocking rack 52 to move downward, thereby driving the intercepting wheel 54 to descend to a suitable position to intercept the powder-liquid double-chamber bag. The spring telescopic rod 56 has a certain elasticity and can act as a buffer during the interception process, preventing damage to the product due to the rigid collision between the intercepting wheel 54 and the powder-liquid double-chamber bag. When interception is no longer needed, the drive motor 50 rotates in the opposite direction, driving the transmission rod 51 to rotate in the opposite direction, causing the blocking rack 52 to move upward, and the intercepting wheel 54 to rise accordingly, releasing the interception of the powder-liquid double-chamber bag.

[0030] In this embodiment, when the powder-liquid double-chamber bag moves from the upper conveying track 2 to the conveying track 1, it needs to pass through the fan-shaped ramp 3. When the powder-liquid double-chamber bag is on the fan-shaped ramp 3, it will deviate. At this time, the intercepting mechanism intercepts the powder-liquid double-chamber bag, and at the same time, the adjusting mechanism drives the correction roller 76 set on the correction mechanism to fit the powder-liquid double-chamber bag. When the moving mechanism drives the correction mechanism to move, the correction roller 76 in the correction mechanism can assist the powder-liquid double-chamber bag to slide down, and when the powder-liquid double-chamber bag deviates, the correction roller 76 can correct the powder-liquid double-chamber bag. When the powder-liquid double-chamber bag returns to the horizontal state, the intercepting wheel 54 set in the intercepting mechanism can prevent the horizontal powder-liquid double-chamber bag from further deviating.

[0031] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A powder-liquid double-chamber bag downhill leveling mechanism, characterized in that: The invention comprises a lower conveying track (1) and an upper conveying track (2), wherein a fan-shaped ramp (3) is installed between the lower conveying track (1) and the upper conveying track (2), and a moving mechanism is arranged above the fan-shaped ramp (3), wherein the moving mechanism comprises symmetrically arranged toothed slide rails (40), and a sliding buckle platform (4) is slidably arranged on the toothed slide rails (40), and a support platform (5) is fixedly connected between the two sliding buckle platforms (4), and the sliding buckle platform (4) is used to assist the powder-liquid double-chamber bag to slide on the ramp; A correction mechanism is installed at the bottom of the support platform (5), and the correction mechanism includes a mounting plate (7) with adjustable height. The mounting plate (7) is symmetrically arranged, and the bottom of the mounting plate (7) is rotatably connected to a correction screw (74). A correction roller (76) is rotatably arranged on the outer side of the correction screw (74). The position of the correction roller (76) can be moved laterally while rotating. The correction roller (76) is used to correct the position of the powder-liquid double-chamber bag.

2. A powder-liquid double-chamber bag downhill leveling mechanism according to claim 1, characterized in that: The moving mechanism further comprises a moving motor (44), the moving motor (44) being mounted on a side of the sliding buckle platform (4), the output end of the moving motor (44) being fixedly connected to a moving gear (45), the moving gear (45) being rotationally connected to the sliding buckle platform (4), the moving gear (45) being meshed with the teeth on the toothed slide rail (40), and a transmission shaft (42) being fixedly connected between the two moving gears (45).

3. A powder-liquid double-chamber bag downhill leveling mechanism according to claim 2, characterized in that: Both sides of the toothed slide rail (40) are provided with a slide groove (41), and the two sides of the sliding buckle platform (4) are symmetrically connected to a plurality of auxiliary rollers (43), the auxiliary rollers (43) are rotationally connected to the sliding buckle platform (4), and the slide groove (41) and the auxiliary rollers (43) slide relative to each other.

4. A powder-liquid double-chamber bag downhill leveling mechanism according to claim 1, characterized in that: The correction mechanism further includes a symmetrically arranged cylinder (70), a support plate (71) is slidably provided on the inner side of the support platform (5), the cylinder (70) is mounted on the top of the support plate (71), the telescopic end of the cylinder (70) is fixedly connected to the mounting plate (7), a correction motor (73) is mounted on the bottom of the cylinder (70), and the output end of the correction motor (73) is fixedly connected to the correction screw (74).

5. A powder-liquid double-chamber bag downhill leveling mechanism according to claim 4, characterized in that: A threaded plate (78) is threadedly connected to the correction screw (74), and the threaded plate (78) slides relatively with the mounting plate (7). A guide rod (75) is fixedly connected to the bottom of the mounting plate (7), and a slide plate (711) is provided between the guide rod (75) and the mounting plate (7) for sliding therebetween. The slide plate (711) and the threaded plate (78) are rotatably connected to the correction roller (76).

6. A powder-liquid double-chamber bag downhill leveling mechanism according to claim 5, characterized in that: The side of the threaded plate (78) is fixedly connected to a sleeve (72), and the end of the sleeve (72) away from the threaded plate (78) is rotatably connected to a correction main bevel gear (79), and the correction main bevel gear (79) is engaged and slid with a slot (77) provided on the correction screw rod (74), and the end of the correction roller (76) close to the correction main bevel gear (79) is fixedly connected to a correction slave bevel gear (710), and the correction main bevel gear (79) and the correction slave bevel gear (710) are engaged with each other.

7. A powder-liquid double-chamber bag downhill leveling mechanism according to claim 1, characterized in that: An adjusting mechanism is provided at the bottom of the support platform (5), and the adjusting mechanism includes a driving motor (50), the driving motor (50) is installed on the side of the support platform (5), the output end of the driving motor (50) is fixedly connected to a driving flywheel (59), the center of the support platform (5) is rotatably connected to a lifting screw (60), the top of the lifting screw (60) is fixedly connected to a driven flywheel (61), and a belt (511) is commonly sleeved and connected between the driving flywheel (59) and the driven flywheel (61).

8. A powder-liquid double-chamber bag downhill leveling mechanism according to claim 7, characterized in that: The bottom of the support platform (5) is fixedly connected to a limiting cylinder (6), a lifting column (62) is slidably provided on the inner side of the limiting cylinder (6), the lifting column (62) is threadedly connected to the lifting screw (60), and the lifting column (62) is fixedly connected to the support plate (71).

9. A powder-liquid double-chamber bag downhill leveling mechanism according to claim 1, characterized in that: An interception structure is provided on the side of the support platform (5), and the interception structure includes a symmetrically arranged blocking rack (52), the blocking rack (52) being slidably arranged in a limiting sliding sleeve (53) fixedly connected to the outside of the support platform (5), the bottom of the blocking rack (52) being fixedly connected to a fixing plate (55), the bottom of the fixing plate (55) being installed with a spring telescopic rod (56), and the bottom of the spring telescopic rod (56) being rotatably connected to an interception wheel (54).

10. A powder-liquid double-chamber bag downhill leveling mechanism according to claim 9, characterized in that: A plurality of supporting rotating blocks (57) are fixedly connected to the top of the support platform (5), and a transmission rod (51) is rotatably connected between the plurality of supporting rotating blocks (57). Both ends of the transmission rod (51) are fixedly connected to blocking gears (58), and the blocking gears (58) and the blocking rack (52) are mutually interlocked. A driven bevel gear (512) is fixedly connected to the center of the transmission rod (51), and the driven bevel gear (512) is meshed with the driving bevel gear (510) fixedly connected to the output end of the drive motor (50).