Gland mechanism for windshield washer fluid production
By designing an adjustable-height capping mechanism on the glass water production line, and utilizing a motor-driven screw and photoelectric sensor detection, the problem of fixed-height capping was solved, enabling stable capping of glass bottles of different heights, expanding the scope of application and improving operational stability.
Patent Information
- Application Number
- CN202520225704.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-13
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2035-02-13
AI Technical Summary
In existing glass water filling production lines, the capping mechanism has a fixed gantry height, which results in fixed positions for the cylinder and capping head. This limits the capping operation to glass bottles of a fixed height, restricting its application.
A capping mechanism comprising a frame, conveyor belt, guardrail, and capping assembly is designed. The height of the moving plate is adjusted by a motor-driven screw, and the position of the glass bottle is detected by a photoelectric sensor, enabling capping operations on glass bottles of different heights. An auxiliary unit is used to improve operational stability.
It enables stable capping operations for glass bottles of different heights, expanding its application range and improving the stability and applicability of capping.
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Figure CN223737663U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to glass bottle capping technical field, concretely relates to a capping mechanism for glass water production. BACKGROUND
[0002] The automobile windshield water is commonly known as glass water, and belongs to the consumable in the use of automobile. The glass water needs to be filled into the packaging bottle after production. The glass water needs to be sealed by capping after filling. Occasionally, the cap cannot be tightly screwed during the capping process of the present product, and liquid leakage occurs in individual products.
[0003] At present, the prior art (CN217756828U) discloses a glass water filling production line capping mechanism, which comprises a capping device, a photoelectric sensing device, an electromagnetic valve and a conveying device. The capping device is arranged on the upper part of the conveying device. The capping device comprises a gantry, a cylinder and a capping head. The electromagnetic valve is connected with the capping device through a pipeline. The photoelectric sensing device is arranged on the upper part of the conveying device and is adjacent to the capping device. The conveying device comprises a rack, a conveying belt and a control device. The conveying belt is movably arranged on the rack. The conveying belt is of a metal chain plate structure. The conveying belt is horizontally arranged on the rack. Guardrails are movably arranged on the two sides of the conveying belt. The control device is arranged on the outside of the rack.
[0004] However, by using the above-mentioned method, when the glass bottle moves to the position of the gantry on the conveying belt, the glass bottle is positioned by the photoelectric sensor, and the cylinder on the gantry is started to push the capping head to perform capping operation on the glass bottle. Since the above-mentioned method is used, the height of the gantry arranged on the rack is fixed, so that the position of the cylinder and the capping head is fixed. Only the glass bottles of fixed height can be capped, which limits the range of use. UTILITY MODEL CONTENTS
[0005] The utility model aims at providing a capping mechanism for glass water production, which aims to solve the problem that the height of the gantry arranged on the rack of the existing glass water filling production line capping mechanism is fixed, so that the position of the cylinder and the capping head is fixed. Only the glass bottles of fixed height can be capped, which limits the range of use.
[0006] In order to achieve the above-mentioned purpose, the utility model provides a capping mechanism for glass water production, which comprises a rack, a conveying belt, a guardrail and a capping assembly. The conveying belt is rotatably connected with the rack and is located on one side of the rack. The guardrail is fixedly connected with the rack and is located on the top of the rack. The capping assembly comprises a gantry, a motor, a screw rod, a moving plate, a capping cylinder, a capping head and an auxiliary unit.
[0007] The gantry is fixedly connected with the rack and located at one side of the rack, the motor is fixedly connected with the gantry and located at the top of the gantry, the moving plate is threadedly connected with the screw rod and slidably connected with the gantry and located at one side of the screw rod, the gland cylinder is fixedly connected with the moving plate and located at the top of the moving plate, the gland head is fixedly connected with the output end of the gland cylinder and located at the bottom of the gland cylinder, and the auxiliary unit is arranged at one side of the rack.
[0008] The gland assembly further comprises a sliding rod and a circular ring, the sliding rod is fixedly connected with the gantry and slidably connected with the moving plate and located at one side of the gantry, and the circular ring is fixedly connected with the moving plate and slidably connected with the sliding rod and located at the side of the moving plate.
[0009] The gland assembly further comprises a mounting frame and a sliding plate, the mounting frame is fixedly connected with the gantry and located at the side of the gantry, and the sliding plate is slidably connected with the mounting frame and located at the side of the mounting frame.
[0010] The auxiliary unit comprises a pushing cylinder and a pushing plate, the pushing cylinder is fixedly connected with the rack and located at the side of the rack, the pushing plate is fixedly connected with the output end of the pushing cylinder and slidably connected with the conveying belt and located at one side of the pushing cylinder.
[0011] The auxiliary unit further comprises a rotating shaft and a rotating wheel, the rotating shaft is rotatably connected with the pushing plate and located at the side of the pushing plate, and the rotating wheel is fixedly connected with the rotating shaft and located at the side of the rotating shaft.
[0012] The utility model discloses a glass water production is with the gland mechanism, after filling glass water to the glass bottle, the glass bottle is placed on the conveyer belt, and starts the conveyer belt, can transmit the glass bottle to the position of gantry, at this moment, the photoelectric sensor of setting on the gantry detects the position of glass bottle, after glass bottle moves to the suitable position, starts the gland cylinder on the moving plate, and then through the gland head head glass bottle on the sealing cover down pressure, so that glass bottle can enter the subsequent cap screw machine, and tightly screw to the glass bottle on sealing cover right, and for the gland operation of glass bottle of different height, can start the motor first, the output of motor drives the rotation of screw rod, can push the moving plate and ascend or descend in the gantry, and then adjust the height of gland cylinder, can carry out the gland operation to the glass bottle of different height, and improve the stability of glass bottle gland operation through the operation of auxiliary unit, thereby solve the height of gantry fixed of the gland mechanism setting on the gantry of the existing glass water filling production line, make the position of cylinder and gland head fixed, can only carry out the gland operation to the glass bottle of fixed height, lead to the problem of limited use range. BRIEF DESCRIPTION OF DRAWINGS
[0013] In order to more clearly illustrate the technical scheme in the embodiment of the present application or prior art, the following will briefly introduce the drawings needed to be used in the embodiment or prior art description.
[0014] Figure 1 It is the whole structure schematic diagram of the utility model glass water production is with the gland mechanism.
[0015] Figure 2 It is another angle structure schematic diagram of the whole of the utility model glass water production is with the gland mechanism.
[0016] Figure 3 It is another angle structure schematic diagram of the whole of the utility model glass water production is with the gland mechanism.
[0017] Figure 4 It is another angle structure schematic diagram of the whole of the utility model glass water production is with the gland mechanism.
[0018] 101-rack, 102-conveyer belt, 103-fence, 104-gland assembly, 105-gantry, 106-motor, 107-screw rod, 108-moving plate, 109-gland cylinder, 110-gland head, 111-assistant unit, 112-sliding rod, 113-ring, 114-mounting frame, 115-sliding plate, 116-push cylinder, 117-push plate, 118-rotation shaft, 119-rotation wheel. DETAILED DESCRIPTION
[0019] The embodiments of the present application are described in detail below, examples of which are shown in the accompanying drawings, the embodiments described below with reference to the drawings are exemplary and are intended to explain the present application, and cannot be understood as a limitation of the present application.
[0020] Please refer to Figures 1-4 , Figure 1 is a whole structure schematic view of the capping mechanism for glass water production of the present application, Figure 2 is another angle structure schematic view of the capping mechanism for glass water production of the present application, Figure 3 is another angle structure schematic view of the capping mechanism for glass water production of the present application, Figure 4 is another angle structure schematic view of the capping mechanism for glass water production of the present application.
[0021] The capping mechanism for glass water production of the present application comprises a rack 101, a conveying belt 102, a guardrail 103 and a capping assembly 104, the capping assembly 104 comprises a portal frame 105, a motor 106, a screw rod 107, a moving plate 108, a capping cylinder 109, a capping head 110, an auxiliary unit 111, a slide rod 112, a circular ring 113, a mounting frame 114 and a sliding plate 115, the auxiliary unit 111 comprises a pushing cylinder 116, a pushing plate 117, a rotating shaft 118 and a rotating wheel 119, the foregoing scheme solves the problem that the height of the portal frame 105 of the existing capping mechanism for glass water filling production line arranged on the rack 101 is fixed, the positions of the cylinder and the capping head 110 are fixed, and only the capping operation can be performed on the glass bottles of a fixed height, thereby limiting the use range.
[0022] For this specific embodiment, the conveying belt 102 is rotationally connected with the rack 101 and located at one side of the rack 101, the guardrail 103 is fixedly connected with the rack 101 and located at the top of the rack 101, the glass bottle filled with glass water is placed on the conveying belt 102, and the conveying belt 102 is started to transmit the glass bottle to a designated position for capping and capping, and the guardrail 103 prevents the glass bottle from falling from the conveying belt 102.
[0023] The gantry 105 is fixedly connected with the rack 101 and located at one side of the rack 101, the motor 106 is fixedly connected with the gantry 105 and located at the top of the gantry 105, the moving plate 108 is threadedly connected with the screw rod 107 and slidably connected with the gantry 105 and located at one side of the screw rod 107, the gland cylinder 109 is fixedly connected with the moving plate 108 and located at the top of the moving plate 108, the gland head 110 is fixedly connected with the output end of the gland cylinder 109 and located at the bottom of the gland cylinder 109, the auxiliary unit 111 is arranged at one side of the rack 101, after the glass water is filled into the glass bottle, the glass bottle is placed on the conveying belt 102, and the conveying belt 102 is started, so that the glass bottle can be transmitted to the position of the gantry 105, at this time, the position of the glass bottle is detected by the photoelectric sensor arranged on the gantry 105, the photoelectric sensor is the prior art, and a VS / VE18-4N3340 cylindrical photoelectric sensor can be used, after the glass bottle moves to the appropriate position, the gland cylinder 109 on the moving plate 108 is started, and then the sealing cover on the glass bottle is pressed down by the gland head 110, so that the glass bottle can enter the subsequent cap screwing machine, and the sealing cover is right-rotatably screwed to the glass bottle, and for the glass bottle pressing cover operation of different heights, the motor 106 can be started first, the output end of the motor 106 drives the screw rod 107 to rotate, the moving plate 108 can be pushed to ascend or descend in the gantry 105, so that the height of the gland cylinder 109 can be adjusted, the glass bottle pressing cover operation can be performed on the glass bottles of different heights, and the stability of the glass bottle pressing cover operation is improved through the operation of the auxiliary unit 111, thereby solving the problem that the height of the gantry 105 provided with the existing glass water filling production line pressing cover mechanism on the rack 101 is fixed, the positions of the cylinder and the gland head 110 are fixed, and the glass bottle pressing cover operation can be performed only on the glass bottles of fixed height, resulting in limited use range.
[0024] Secondly, the sliding rod 112 is fixedly connected with the gantry 105 and slidably connected with the moving plate 108 and located at one side of the gantry 105, the circular ring 113 is fixedly connected with the moving plate 108 and slidably connected with the sliding rod 112 and located at the side of the moving plate 108, when the moving plate 108 moves axially on the screw rod 107, the side of the moving plate 108 away from the screw rod 107 moves on the sliding rod 112, so that the moving plate 108 is more stable during movement and offset is avoided, and the moving plate 108 and the gantry 105 are isolated by the circular ring 113, so that the moving plate 108 and the gantry 105 are prevented from being in contact.
[0025] Again, the installation frame 114 is fixedly connected with the gantry 105 and located at the side of the gantry 105, the sliding plate 115 is slidably connected with the installation frame 114 and located at the side of the installation frame 114, the photoelectric sensor can be placed through the installation frame 114, and when the photoelectric sensor needs to be replaced after long-time use, the sliding plate 115 can be slid, the installation frame 114 is unfolded, and the replacement of workers is facilitated.
[0026] In addition, the pushing cylinder 116 is fixedly connected with the rack 101 and located at the side of the rack 101, the pushing plate 117 is fixedly connected with the output end of the pushing cylinder 116, slidably connected with the conveying belt 102 and located at the side of the pushing cylinder 116, according to the size of the glass bottle, the pushing cylinder 116 is started by workers, the output end of the pushing cylinder 116 pushes the pushing plate 117 to move, so that the pushing plate 117 can contact the glass bottle, and the deviation of the glass bottle on the conveying belt 102 is avoided.
[0027] Meanwhile, the rotating shaft 118 is rotatably connected with the pushing plate 117 and located at the side of the pushing plate 117, the rotating wheel 119 is fixedly connected with the rotating shaft 118 and located at the side of the rotating shaft 118, the glass bottle contacts the rotating wheel 119 at the position close to the pushing plate 117, and the glass bottle is rotated by the conveying belt 102, so that the rotating shaft 118 rotates, the rotating wheel 119 rotates, and the glass bottle can stably move to the position of the gantry 105.
[0028] The utility model discloses a gland mechanism for glass water production, after glass water is filled into the glass bottle, the glass bottle is placed on the conveyer belt 102, and the conveyer belt 102 is started, can transmit the glass bottle to the position of gantry 105, and according to the size of glass bottle, the staff starts the push material air cylinder 116, and the output of push material air cylinder 116 pushes the push plate 117 and moves, so that the push plate 117 can contact to glass bottle, and glass bottle is contacted with the rotating wheel 119 after being close to the position of push plate 117, and through the conveyer belt 102 drive glass bottle rotation, so that the rotating shaft 118 rotates along, drive the rotating wheel 119 and follow the rotation, so that glass bottle can stably move to the position of gantry 105, at this moment, the photoelectric sensor on the gantry 105 detects the position of glass bottle, after glass bottle moves to the suitable position, the gland air cylinder 109 on the moving plate 108 is started, and then the gland head 110 head glass bottle on the sealing cover is pressed down, so that glass bottle can enter the subsequent cap screwing machine, and the sealing cover is right screwed tightly to glass bottle, and when the gland operation of glass bottle of different heights, the motor 106 can be started first, and the output of motor 106 drives the screw rod 107 and rotates, can push the moving plate 108 and ascend or descend in the gantry 105, simultaneously, the side of moving plate 108 away from the screw rod 107 moves on the slide rod 112, so that the moving plate 108 is more stable when moving, avoids the deviation, can adjust the height of gland air cylinder 109, can carry out the gland operation to glass bottle of different heights, and through the operation of auxiliary unit 111 improves the stability of glass bottle gland operation, thereby solve the height of gantry 105 of the existing glass water filling production line gland mechanism setting on the rack 101 is fixed, so that the position of air cylinder and gland head 110 is fixed, can only carry out the gland operation to the glass bottle of fixed height, leads to the problem of limited use range.
[0029] The above disclosure is only one or more preferred embodiments of the present application, which cannot limit the scope of the present application, and those skilled in the art can understand that all or part of the above-mentioned embodiments can be implemented, and equivalent changes made according to the claims of the present application still belong to the scope covered by the present application.
Claims
1. A glass water production capping mechanism, comprising a rack, a conveying belt and a guardrail, the conveying belt is rotatably connected with the rack and located at one side of the rack, the guardrail is fixedly connected with the rack and located at the top of the rack, characterized in that, it further comprises a capping assembly; the capping assembly comprises a portal frame, a motor, a screw rod, a moving plate, a capping cylinder, a capping head and an auxiliary unit; the portal frame is fixedly connected with the rack and located at one side of the rack, the motor is fixedly connected with the portal frame and located at the top of the portal frame, the moving plate is threadedly connected with the screw rod and slidably connected with the portal frame and located at one side of the screw rod, the capping cylinder is fixedly connected with the moving plate and located at the top of the moving plate, the capping head is fixedly connected with the output end of the capping cylinder and located at the bottom of the capping cylinder, and the auxiliary unit is arranged at one side of the rack.
2. The glass water production capping mechanism according to claim 1, characterized in that, the capping assembly further comprises a slide rod and a circular ring, the slide rod is fixedly connected with the portal frame and slidably connected with the moving plate and located at one side of the portal frame, and the circular ring is fixedly connected with the moving plate and slidably connected with the slide rod and located at the side of the moving plate.
3. The glass water production capping mechanism according to claim 2, characterized in that, the capping assembly further comprises a mounting frame and a sliding plate, the mounting frame is fixedly connected with the portal frame and located at the side of the portal frame, and the sliding plate is slidably connected with the mounting frame and located at the side of the mounting frame.
4. The glass water production capping mechanism according to claim 3, characterized in that, the auxiliary unit comprises a pushing cylinder and a pushing plate, the pushing cylinder is fixedly connected with the rack and located at the side of the rack, and the pushing plate is fixedly connected with the output end of the pushing cylinder and slidably connected with the conveying belt and located at one side of the pushing cylinder.
5. The glass water production capping mechanism according to claim 4, characterized in that, the auxiliary unit further comprises a rotating shaft and a rotating wheel, the rotating shaft is rotatably connected with the pushing plate and located at the side of the pushing plate, and the rotating wheel is fixedly connected with the rotating shaft and located at the side of the rotating shaft.
Citation Information
Patent Citations
Gland mechanism for windshield washer fluid filling production line
CN217756828U