Anti-lodging device for glass bottle making
By designing a glass bottle-making anti-looping device and using air-cooling control parts to control the switch of cooling air during the bottle dialing process, the problem of pouring caused by cooling gas blowing during the movement of the glass bottle is solved, and the stable transportation of the glass bottle is achieved.
Patent Information
- Application Number
- CN202422125026.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-29
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2034-08-29
AI Technical Summary
During the glass bottle manufacturing process, cooling gas blows the glass bottle to cause dumping problems.
A glass bottle-making anti-looping device is designed, including feeding parts, air stop plate parts, bottle conveying racks, cooling air ducts, bottle pickers and air cooling controls. When the bottle pickers move the glass bottle from the air stop plate parts to the bottle conveying racks, the cooling air on the stop plate parts is controlled and closed.
It effectively ensures the stability of the glass bottle during movement and avoids pouring problems caused by the blowing of cooling gas.
Smart Images

Figure CN223162688U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of glass bottle manufacturing, and particularly relates to an anti-toppling device for glass bottle manufacturing. Background Art
[0002] As a traditional container, glass bottles have a quite long history in our country. Although it was previously believed in the academic circle that glassware was very scarce in ancient times, recent research on ancient glassware has shown that the production and manufacturing of glassware are not difficult. Currently, the production of glass requires mixing raw materials such as quartz sand, sodium carbonate, and limestone in a certain proportion and feeding them into a high-temperature melting furnace, where they are heated and melted at a high temperature of 1300 - 1500 degrees Celsius to form glass liquid. After the glass liquid undergoes forming and cooling treatments, glass bottle blanks are obtained. Finally, through processes such as cutting, edge grinding, and drilling, glass finished products can be obtained.
[0003] The prior art CN205662450U provides a new type of glass bottle pusher to solve the problem that the bottle body is prone to cracking when being pushed by the pusher. However, during the actual production process, since the surface of the bottle body is still at a high temperature at this time, it needs to be air-cooled. However, during the movement of the glass bottle, it is very easy to be interfered by the cooling gas, resulting in the problem of the glass bottle toppling over.
[0004] Therefore, it is very necessary to provide an anti-toppling device for glass bottle manufacturing to solve the above technical problems. Summary of the Utility Model
[0005] Based on the above description, the utility model provides an anti-toppling device for glass bottle manufacturing to solve the problem that during the bottle pushing process in the prior art, the cooling gas blows the bottle body, causing the glass bottle to topple over.
[0006] The technical solution of the present utility model to solve the above technical problems is as follows: A glass bottle anti-toppling device, including a feeding member, a stop air plate member, a bottle conveying rack, a cooling air duct, a bottle pusher and an air cooling control member. The feeding member has a feeding end and a discharging end, and the feeding end of the feeding member is used to receive glass bottles. The stop air plate member has a feeding end and a discharging end, and the feeding end of the stop air plate member is arranged at the discharging end of the feeding member. The stop air plate member is used to air-cool the glass bottles. The bottle conveying rack is connected to the discharging end of the stop air plate member and is used to convey the glass bottles to the next processing process. The cooling air duct is connected to the bottom of the bottle conveying rack and is used to convey cooling air into the inner cavity of the bottle conveying rack. The bottle pusher is arranged between the stop air plate member and the bottle conveying rack and is used to push the glass bottles on the stop air plate member onto the bottle conveying rack. The air cooling control member is fixed inside the bottle conveying rack and is located between the bottle conveying rack and the stop air plate member, and is used to control the closing of the cooling air on the stop air plate member when the bottle pusher pushes the glass bottles from the stop air plate member onto the bottle conveying rack.
[0007] Further, a plurality of first ventilation holes are provided on the stop air plate member, and the first ventilation holes are connected to the inner cavity of the stop air plate member and are used to convey cooling air to the glass bottles on the stop air plate member.
[0008] Further, the bottle pusher includes a bottle pushing frame body, a bottle pushing rod and a bottle pushing driving member. The bottle pushing frame body is fixed on one side of the stop air plate member. The bottle pushing rod is arranged above the bottle pushing frame body. One end of the bottle pushing driving member is fixed on the bottle pushing frame body, and the other end of the bottle pushing driving member is connected to the bottle pushing rod and is used to drive the bottle pushing rod to push the glass bottles.
[0009] Further, the bottle pushing driving member includes a fixed track, a moving slider, a first driving member and a second driving member. The fixed track is connected to the bottle pushing frame body. The moving slider is slidably connected to the fixed track. One end of the first driving member is fixed on the fixed track, and the other end of the first driving member is fixed on the moving slider. The second driving member has a fixed end and a telescopic end. The fixed end of the second driving member is connected to the moving slider, and the telescopic end of the second driving member is connected to the bottle pushing rod.
[0010] Further, the first driving member adopts a linear motor, and the second driving member adopts a telescopic cylinder.
[0011] Further, the bottle pushing driving member includes a third driving member and a fourth driving member. The third driving member has a fixed end and a telescopic end, and the fixed end of the third driving member is fixed on the bottle pushing frame body. The fourth driving member has a fixed end and a rotating end, and the fixed end of the fourth driving member is fixed on the telescopic end of the third driving member.
[0012] Further, the third driving member is a telescopic cylinder, and the fourth driving member is a servo motor.
[0013] Further, a plurality of second ventilation holes are provided on the bottle conveying rack, one end of each second ventilation hole is connected to the inner cavity of the bottle conveying rack, and the other end is connected to the inner cavity of the stop air plate member.
[0014] Further, the air cooling control member includes fixed support rods, a telescopic motor, and a sealing plate. There are at least two fixed support rods, and the two fixed support rods are connected to one side of the inner cavity of the bottle conveying rack, and the fixed support rods are located outside the second ventilation holes; the telescopic motor has a fixed end and a telescopic end, and the fixed end of the telescopic motor is fixed on the fixed support rod; the sealing plate is fixed on the telescopic end of the telescopic motor, and the sealing plate is configured to: when the telescopic motor extends, the sealing plate abuts against the second ventilation hole to block the second ventilation hole; when the telescopic motor retracts, the sealing plate disengages from the second ventilation hole, so that the cooling air enters the inner cavity of the stop air plate member from the inner cavity of the bottle conveying rack through the second ventilation hole.
[0015] Further, the air cooling control member further includes a first position sensor, a second position sensor, and a controller. The first position sensor is fixedly connected to the loading end of the stop air plate member; the second position sensor is fixedly connected to the unloading end of the stop air plate member; the controller is fixed on the stop air plate member, and the controller is electrically connected to the first position sensor, the second position sensor, and the telescopic motor.
[0016] Compared with the prior art, the technical solution of the present application has the following beneficial technical effects:
[0017] The glass bottles are air-cooled by the stop air plate member, the cooling air is conveyed to the bottle conveying rack by the cooling air pipe, and the glass bottles on the stop air plate member are dialed onto the bottle conveying rack by the bottle pusher; when the bottle pusher dials the glass bottles from the stop air plate member onto the bottle conveying rack, the air cooling control member controls to close the cooling air on the stop air plate member. This effectively ensures the stability of the glass bottles during the moving process. During the bottle dialing process, the cooling gas blows the bottle body, resulting in the problem that the glass bottles fall down. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 FIG. 1 is a schematic diagram of the overall structure of a glass bottle anti-toppling device provided in Embodiment 1 of the present utility model;
[0019] Figure 2 FIG. 2 is a top view of a glass bottle anti-toppling device provided in Embodiment 1 of the present utility model;
[0020] Figure 3The sectional bottom view of an anti - toppling device for glass bottle making provided in the first embodiment of the present utility model;
[0021] Figure 4 is Figure 3 an enlarged schematic view of the Q position in;
[0022] Figure 5 The overall structural schematic view of an anti - toppling device for glass bottle making provided in the second embodiment of the present utility model.
[0023] In the attached drawings, the list of components represented by each reference numeral is as follows:
[0024] 1. Loading part;
[0025] 2. Stop air plate part; 21. First ventilation hole;
[0026] 3. Bottle - conveying rack; 31. Second ventilation hole;
[0027] 4. Cooling air duct;
[0028] 5. Bottle pusher; 51. Bottle - pushing rack body; 52. Bottle - pushing rod; 53. Bottle - pushing driving part; 531. Fixed track; 532. Moving slider; 533. First driving part; 534. Second driving part; 535. Third driving part; 536. Fourth driving part;
[0029] 6. Air - cooling control part; 61. Fixed support rod; 62. Telescopic motor; 63. Sealing plate; 64. First position sensor; 65. Second position sensor; 66. Controller. Detailed implementation manners
[0030] To facilitate the understanding of the present application, the present application will be described more comprehensively below with reference to the relevant attached drawings. Embodiments of the present application are given in the attached drawings. However, the present application can be implemented in many different forms and is not limited to the embodiments described herein. On the contrary, the purpose of providing these embodiments is to make the disclosure of the present application more thorough and comprehensive.
[0031] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the technical field to which the present application belongs. The terms used in the specification of the present application herein are only for the purpose of describing specific embodiments and are not intended to limit the present application.
[0032] It will be appreciated that spatial relationship terms such as "under", "below", "lower", "beneath", "above", "upper", etc. may be used herein to describe the relationship of one element or feature shown in the figures to other elements or features. It should be understood that, in addition to the orientations shown in the figures, spatial relationship terms also include different orientations of the device during use and operation. For example, if the device in the drawings is flipped, an element or feature described as "under other elements" or "beneath them" or "underneath them" will be oriented "above" the other elements or features. Thus, the exemplary terms "under" and "beneath" can include both upward and downward orientations. Additionally, the device may also have other orientations (such as, rotated 90 degrees or other orientations), and the spatial descriptors used herein are to be interpreted accordingly.
[0033] It should be noted that when an element is considered to be "connected" to another element, it may be directly connected to the other element or connected to the other element through an intermediate element. In the following embodiments, "connection", if there is a transfer of electrical signals or data between the connected circuits, modules, units, etc., should be understood as "electrical connection", "communication connection", etc.
[0034] As used herein, the singular forms "a", "an" and "the" may also include the plural forms unless the context clearly dictates otherwise. It should also be understood that the terms "comprises / include" or "has" etc. specify the presence of the stated features, wholes, steps, operations, components, parts or combinations thereof, but do not preclude the possibility of the presence or addition of one or more other features, wholes, steps, operations, components, parts or combinations thereof.
[0035] Embodiment 1:
[0036] As Figures 1 to 4As shown in the figure, an anti-toppling device for glass bottle making includes a feeding member 1, a stop air plate member 2, a bottle conveying rack 3, a cooling air duct 4, a bottle pusher 5 and an air cooling control member 6. The feeding member 1 has a feeding end and a discharging end, and the feeding end of the feeding member 1 is used to receive glass bottles. The stop air plate member 2 has a feeding end and a discharging end, and the feeding end of the stop air plate member 2 is arranged at the discharging end of the feeding member 1. The stop air plate member 2 is used to cool the glass bottles by air. The bottle conveying rack 3 is connected to the discharging end of the stop air plate member 2 and is used to convey the glass bottles to the next processing procedure. The cooling air duct 4 is connected to the bottom of the bottle conveying rack 3 and is used to convey cooling air into the inner cavity of the bottle conveying rack 3. The bottle pusher 5 is arranged between the stop air plate member 2 and the bottle conveying rack 3 and is used to push the glass bottles on the stop air plate member 2 onto the bottle conveying rack 3. The air cooling control member 6 is fixed in the bottle conveying rack 3 and is located between the bottle conveying rack 3 and the stop air plate member 2. When the bottle pusher 5 pushes the glass bottles from the stop air plate member 2 onto the bottle conveying rack 3, the air cooling control member 6 is used to control the closing of the cooling air on the stop air plate member 2.
[0037] In this embodiment, the stop air plate member 2 is used to cool the glass bottles by air, the cooling air duct 4 is used to convey cooling air to the bottle conveying rack 3, the bottle pusher 5 is used to push the glass bottles on the stop air plate member 2 onto the bottle conveying rack 3, and the air cooling control member 6 is used to control the closing of the cooling air on the stop air plate member 2 when the bottle pusher 5 pushes the glass bottles from the stop air plate member 2 onto the bottle conveying rack 3. This effectively ensures the stability of the glass bottles during the moving process and avoids the problem that the cooling gas blows the bottle body during the bottle pushing process, resulting in the toppling of the glass bottles.
[0038] In some embodiments, a plurality of first ventilation holes 21 are provided on the stop air plate member 2. The first ventilation holes 21 are connected to the inner cavity of the stop air plate member 2 and are used to convey cooling air to the glass bottles on the stop air plate member 2.
[0039] In this embodiment, as Figure 1 shown, the first ventilation holes 21 are circular through holes. Preferably, the first ventilation holes 21 can also be strip-shaped barrel grooves.
[0040] In some embodiments, the bottle pusher 5 includes a bottle pushing frame body 51, a bottle pushing rod 52 and a bottle pushing driving member 53. The bottle pushing frame body 51 is fixed on one side of the stop air plate member 2. The bottle pushing rod 52 is arranged above the bottle pushing frame body 51. One end of the bottle pushing driving member 53 is fixed on the bottle pushing frame body 51, and the other end of the bottle pushing driving member 53 is connected to the bottle pushing rod 52 and is used to drive the bottle pushing rod 52 to push the glass bottles.
[0041] In some embodiments, the bottle pushing driving member 53 includes a fixed track 531, a moving slider 532, a first driving member 533 and a second driving member 534. The fixed track 531 is connected to the bottle pushing frame body 51; the moving slider 532 is slidably connected to the fixed track 531; one end of the first driving member 533 is fixed on the fixed track 531, and the other end of the first driving member 533 is fixed on the moving slider 532; the second driving member 534 has a fixed end and a telescopic end, the fixed end of the second driving member 534 is connected to the moving slider 532, and the telescopic end of the second driving member 534 is connected to the bottle pushing rod 52.
[0042] In this embodiment, one end of the first driving member 533 is fixed on the fixed track 531, and the other end is fixed on the moving slider 532. Thus, the first driving member 533 drives the moving slider 532 to make a reciprocating motion on the fixed track 531. The fixed end of the second driving member 534 is connected to the moving slider 532, and the telescopic end of the second driving member 534 is connected to the bottle pushing rod 52. Thus, when the second driving member 534 extends, it drives the bottle pushing rod 52 to move forward. When the second driving member 534 retracts, it drives the bottle pushing rod 52 to move backward. When the glass bottle moves to the stop air plate member 2, the second driving member 534 drives the bottle pushing rod 52 to retract. The first driving member 533 drives the bottle pushing rod 52 to move to the loading end of the stop air plate member 2, and the second driving member 534 drives the bottle pushing rod 52 to extend, and the bottle pushing rod 52 abuts against the glass bottle. Set the moving speed of the first driving member 533 according to the actual situation to make the glass bottle move more stably on the stop air plate member 2.
[0043] In some embodiments, the first driving member 533 is a linear motor, and the second driving member 534 is a telescopic cylinder.
[0044] In this embodiment, the first driving member 533 is a linear motor with the model of MLCT170 linear motor, and the second driving member 534 is a telescopic cylinder with the model of TDA AirTAC double rod cylinder.
[0045] In some embodiments, a plurality of second ventilation holes 31 are provided on the bottle conveying frame 3. One end of the second ventilation hole 31 is connected to the inner cavity of the bottle conveying frame 3, and the other end is connected to the inner cavity of the stop air plate member 2.
[0046] In some embodiments, the air-cooling control member 6 includes a fixed support rod 61, a telescopic motor 62, and a sealing plate 63. There are at least two fixed support rods 61, and the two fixed support rods 61 are connected to one side of the inner cavity of the bottle conveying rack 3, and the fixed support rods 61 are located outside the second ventilation hole 31. The telescopic motor 62 has a fixed end and a telescopic end, and the fixed end of the telescopic motor 62 is fixed on the fixed support rod 61. The sealing plate 63 is fixed to the telescopic end of the telescopic motor 62, and the sealing plate 63 is configured such that when the telescopic motor 62 extends, the sealing plate 63 abuts against the second ventilation hole 31 to block the second ventilation hole 31; when the telescopic motor 62 retracts, the sealing plate 63 disengages from the second ventilation hole 31, so that the cooling air enters the inner cavity of the stop air plate member 2 from the inner cavity of the bottle conveying rack 3 through the second ventilation hole 31.
[0047] In this embodiment, when it is necessary to close the cooling air, the telescopic motor 62 extends. Thus, the sealing plate 63 abuts against the second ventilation hole 31 to block the second ventilation hole 31; when it is necessary to open the cooling air, the telescopic motor 62 retracts, and the sealing plate 63 disengages from the second ventilation hole 31, so that the cooling air enters the inner cavity of the stop air plate member 2 from the inner cavity of the bottle conveying rack 3 through the second ventilation hole 31.
[0048] In some embodiments, the air-cooling control member 6 further includes a first position sensor 64, a second position sensor 65, and a controller 66. The first position sensor 64 is fixedly connected to the feeding end of the stop air plate member 2. The second position sensor 65 is fixedly connected to the discharging end of the stop air plate member 2. The controller 66 is fixed on the stop air plate member 2, and the controller 66 is electrically connected to the first position sensor 64, the second position sensor 65, and the telescopic motor 62.
[0049] In this embodiment, when the first position sensor 64 senses that the glass bottle moves to the feeding end of the stop air plate member 2, the first position sensor 64 transmits an electrical signal to the controller 66, and the controller 66 controls the telescopic motor 62 to extend to block the second ventilation hole 31; when the first position sensor 64 senses that the glass bottle moves to the middle of the stop air plate member 2, the controller 66 controls the telescopic motor 62 to retract to air-cool the glass bottle; when the second position sensor 65 senses that the glass bottle moves to the discharging end of the stop air plate member 2, the controller 66 controls the telescopic motor 62 to extend to block the second ventilation hole 31. Thus, the stability of the glass bottle during the moving process is ensured. In addition, the models of the first position sensor 64 and the second position sensor 65 are HG-C1100 laser displacement sensors. The model of the controller 66 is FX3U-26MT Ethernet port PLC controller.
[0050] Embodiment Two:
[0051] AsFigure 5 As shown in the figure, on the basis of the first embodiment, some modifications are made to the bottle pushing drive member 53. The bottle pushing drive member 53 includes a third drive member 535 and a fourth drive member 536. The third drive member 535 is provided with a fixed end and a telescopic end, and the fixed end of the third drive member 535 is fixed on the bottle pushing frame body 51; the fourth drive member 536 is provided with a fixed end and a rotating end, and the fixed end of the fourth drive member 536 is fixed on the telescopic end of the third drive member 535.
[0052] In some embodiments, the third drive member 535 is a telescopic cylinder, and the fourth drive member 536 is a servo motor.
[0053] In this embodiment, the third drive member 535 drives the fourth drive member 536 to achieve telescopic movement, thereby driving the bottle pushing rod 52 to approach and move away from the glass bottle. The fourth drive member 536 drives the bottle pushing rod 52 to rotate. Since the bottle pushing rod 52 is L-shaped, thus, during the rotation of the L-shaped bottle pushing rod 52, it will drive the glass bottle to move from the loading end to the unloading end on the stop air plate member 2. In addition, the third drive member 535 is a telescopic cylinder, and the model is TDA AirTAC double-rod cylinder. The fourth drive member 536 is a servo motor, and the model is SGM7G-09 servo motor.
[0054] Compared with the prior art, the technical solution of the present application has the following beneficial technical effects:
[0055] The glass bottle is air-cooled by the stop air plate member, the cooling air pipe is used to convey the cooling air to the bottle conveying rack, and the bottle pusher is used to move the glass bottle on the stop air plate member to the bottle conveying rack; the air-cooling control member controls the closing of the cooling air on the stop air plate member when the bottle pusher moves the glass bottle from the stop air plate member to the bottle conveying rack. It effectively ensures the stability of the glass bottle during the movement. During the bottle pushing process, the cooling gas blows the bottle body, resulting in the problem that the glass bottle topples over.
[0056] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. A glass bottle anti-toppling device, characterized in that, Comprising: A loading part (1) which is provided with a loading end and a discharging end, and the loading end of the loading part (1) is used for receiving glass bottles; A stop air plate part (2) which is provided with a loading end and a discharging end, and the loading end of the stop air plate part (2) is arranged at the discharging end of the loading part (1), and the stop air plate part (2) is used for air-cooling the glass bottles; A bottle conveying rack (3) which is connected to the discharging end of the stop air plate part (2) and is used for conveying the glass bottles to the next processing process; A cooling air duct (4) which is connected to the bottom of the bottle conveying rack (3) and is used for conveying cooling air into the inner cavity of the bottle conveying rack (3); A bottle pusher (5) which is arranged between the stop air plate part (2) and the bottle conveying rack (3) and is used for pushing the glass bottles on the stop air plate part (2) onto the bottle conveying rack (3); An air-cooling control part (6) which is fixed in the bottle conveying rack (3) and is located between the bottle conveying rack (3) and the stop air plate part (2), and is used for controlling the closing of the cooling air on the stop air plate part (2) when the bottle pusher (5) pushes the glass bottles from the stop air plate part (2) onto the bottle conveying rack (3).
2. The anti - toppling device for glass bottle making according to claim 1, wherein, A plurality of first ventilation holes (21) are arranged on the stop air plate part (2), and the first ventilation holes (21) are connected to the inner cavity of the stop air plate part (2) and are used for conveying cooling air to the glass bottles on the stop air plate part (2).
3. The anti-toppling device for glass bottle making according to claim 1, characterized in that, The bottle pusher (5) comprises: A bottle pushing frame body (51) which is fixed on one side of the stop air plate part (2); A bottle pushing rod (52) which is arranged above the bottle pushing frame body (51); A bottle pushing driving part (53) with one end fixed on the bottle pushing frame body (51) and the other end connected to the bottle pushing rod (52) and is used for driving the bottle pushing rod (52) to push the glass bottles.
4. The anti-toppling device for glass bottle making according to claim 3, characterized in that, The bottle pushing driving part (53) comprises: A fixed track (531) which is connected to the bottle pushing frame body (51); A moving slider (532) which is slidably connected to the fixed track (531); A first driving part (533) with one end fixed on the fixed track (531) and the other end fixed on the moving slider (532); A second driving part (534) which is provided with a fixed end and a telescopic end, the fixed end of the second driving part (534) is connected to the moving slider (532), and the telescopic end of the second driving part (534) is connected to the bottle pushing rod (52).
5. The anti - lodging device for glass bottle making according to claim 4, characterized in that, The first driving part (533) adopts a linear motor, and the second driving part (534) adopts a telescopic cylinder.
6. The anti-toppling device for glass bottle making according to claim 3, characterized in that, The bottle pushing driving part (53) comprises: A third driving part (535) which is provided with a fixed end and a telescopic end, and the fixed end of the third driving part (535) is fixed on the bottle pushing frame body (51); A fourth driving part (536) which is provided with a fixed end and a rotating end, and the fixed end of the fourth driving part (536) is fixed on the telescopic end of the third driving part (535).
7. The anti-toppling device for glass bottle making according to claim 6, characterized in that, The third driving part (535) adopts a telescopic cylinder, and the fourth driving part (536) adopts a servo motor.
8. A glass bottle anti-toppling device according to claim 1, characterized in that, A plurality of second ventilation holes (31) are provided on the bottle input rack (3), one end of each second ventilation hole (31) is connected to the inner cavity of the bottle input rack (3), and the other end is connected to the inner cavity of the stop air plate member (2).
9. The anti - lodging device for glass bottle making according to claim 8, characterized in that, The air-cooling control member (6) includes: Fixed support rods (61), at least two of which are provided. The two fixed support rods (61) are connected to one side of the inner cavity of the bottle input rack (3), and the fixed support rods (61) are located outside the second ventilation holes (31). A telescopic motor (62) having a fixed end and a telescopic end, the fixed end of the telescopic motor (62) being fixed to the fixed support rod (61). A sealing plate (63) fixed to the telescopic end of the telescopic motor (62). The sealing plate (63) is configured such that when the telescopic motor (62) extends, the sealing plate (63) abuts against the second ventilation hole (31) to block the second ventilation hole (31); when the telescopic motor (62) retracts, the sealing plate (63) disengages from the second ventilation hole (31) to allow the cooling air to enter the inner cavity of the stop air plate member (2) from the inner cavity of the bottle input rack (3) through the second ventilation hole (31).
10. The anti-toppling device for glass bottle making according to claim 9, characterized in that, The air-cooling control member (6) further includes: A first position sensor (64) fixedly connected to the loading end of the stop air plate member (2). A second position sensor (65) fixedly connected to the unloading end of the stop air plate member (2). A controller (66) fixed to the stop air plate member (2) and electrically connected to the first position sensor (64), the second position sensor (65), and the telescopic motor (62).
Citation Information
Patent Citations
Novel glass bottle bottle pushing hand
CN205662450U