Glass bottle mouth cooling device for horizontally opening individual section machine
By setting up a cooling channel and air conveyor in the clamp body of the swing-type column cooler, the cooling gas is diverted to the bottle mouth and body of the glass bottle, solving the deformation problem caused by untimely cooling of the bottle mouth and achieving efficient cooling.
Patent Information
- Application Number
- PCT/CN2024/106792
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-06-28
- Filing Date
- 2024-07-22
- Publication Date
- 2026-01-02
AI Technical Summary
In a flat-type press, the bottle necks of glass bottles are exposed after blowing, especially large-diameter bottle necks, which cannot be effectively cooled, leading to deformation.
A glass bottle mouth cooling device for a swing-type column machine was designed. By setting a vertical cooling channel and an air conveyor in the clamp body, the cooling gas is diverted to the bottle mouth and bottle body using the longitudinal space of the clamp body to achieve effective cooling.
It effectively utilizes the longitudinal space of the clamp body without occupying the lateral space of the row machine, achieving efficient cooling of the glass bottle mouth and avoiding deformation caused by untimely cooling.
Smart Images

Figure CN2024106792_02012026_PF_FP_ABST
Abstract
Description
Glass bottle mouth cooling device for flat opening row and column machine TECHNICAL FIELD
[0001] The present application relates to the field of glass bottle production, in particular to a glass bottle mouth cooling device for flat opening row and column machine. BACKGROUND
[0002] The forming of glass bottles is the process of converting molten glass liquid into products with fixed geometric shapes. Forming is an important process in glass bottle production and has a great impact on the yield, quality and economic benefits of glass bottles. The main forming methods of glass bottles include pressure blowing. In pressure blowing, bottle-making molds in the row and column machine are used to blow glass liquid into products. Existing bottle-making molds mostly hinge the left and right half molds together, control the relative rotation of the two by grippers to realize mold closing and opening, and then combine the blow head with the mold to blow and press the glass bottle into shape. The mouth of the formed glass bottle is exposed outside the mold group, so the mouth of the glass bottle needs to be cooled by the air nozzle of the row and column machine. However, the overall structure of the mold group rotating type opening and closing is complex, and the closing effect of each mold group is poor. In order to improve production efficiency, a flat opening row and column machine is proposed in the prior art, which designs two hinge opening and closing bottle-making molds in the row and column machine as flat push type. In order to further improve production efficiency, the flat push type row and column machine is usually a three-opening mold structure. However, since the mold group needs to move horizontally, the mold group occupies more horizontal space in the row and column machine, resulting in that the cooling air nozzle cannot be installed in the row and column machine, and only the vertical cooling structure in the mold group can be used for cooling (the vertical cooling structure in the mold group is supplied with air by grippers). However, since the bottle mouth is exposed after being blown and pressed by the blow head, the bottle mouth cannot be cooled, especially for large-diameter bottle mouths, the area of the bottle mouth is large, causing the bottle mouth to easily deform due to delayed cooling. SUMMARY
[0003] To solve the above technical problems, the present application provides a glass bottle mouth cooling device for flat opening row and column machine, which aims to solve the technical problem that the bottle mouth cannot be cooled due to the exposure of the bottle mouth after being blown and pressed by the blow head, especially for large-diameter bottle mouths, the area of the bottle mouth is large, causing the bottle mouth to easily deform due to delayed cooling.
[0004] The technical solution of the present application to solve the above technical problems is:
[0005] The utility model provides a glass bottle mouth cooling device for flat open type row and column machine, including the pincers body, the inside of pincarpers body is opened with vertical cooling channel, the bottom of pincarpers body is opened with the air inlet groove that communicates with vertical cooling channel, one side of pincarpers body is opened with vertical cooling hole that communicates with vertical cooling channel, still include the air conveying part and cooling part, the air conveying part is located at the top of pincarpers body, the cooling part is located at the top of air conveying part, the inside of air conveying part is opened with first connecting channel, one end of air conveying part is equipped with the air inlet opening that communicates with first connecting channel, one end of air conveying part extends to vertical cooling channel downward, make the air inlet opening towards vertical cooling channel, the inside of cooling part is opened with cooling air duct, cooling air duct communicates with first connecting channel, one side of cooling part is equipped with cooling surface, and the cooling surface is used to the bottle mouth of glass bottle, one side of cooling surface is opened with first cooling spout, and first cooling spout communicates with cooling air duct.
[0006] When the bottle mouth is pressed by the blowing pressure head, the original air blower of the pincers body inputs cooling gas to the air inlet groove, so that the cooling gas converges in the vertical cooling channel. Since the air inlet opening at one end of the air conveying part faces the vertical cooling channel, the cooling gas is divided into the air inlet opening and the vertical cooling hole. After a part of the cooling gas is discharged from the vertical cooling hole, it enters the mold group to cool the bottle body of the glass bottle. Another part of the cooling gas enters the air inlet opening, passes through the first connecting channel and the cooling air duct, and is finally sprayed from the first cooling spout. Since the cooling surface faces the bottle mouth of the glass bottle, the cooling gas sprayed from the first cooling spout of the cooling surface cools the bottle mouth of the glass bottle, thereby effectively utilizing the longitudinal space of the pincers body and not occupying the horizontal space of the row and column machine, so that the bottle mouth of the glass bottle can be cooled.
[0007] Further, in the present application, a connecting groove is formed in the top of the pincers body, above the vertical cooling channel, and the connecting groove communicates with the vertical cooling channel. The air conveying part includes an air conveying pipe, one end of the air conveying pipe is provided with a first connecting end, the other end of the air conveying pipe is connected with the cooling part, the first connecting channel is formed in the inside of the air conveying pipe, a second connecting channel is formed in the inside of the first connecting end, the air inlet opening is formed on one side of the first connecting end, the second connecting channel communicates with the first connecting channel and the air inlet opening, and the first connecting end is inserted into the connecting groove, so that the air inlet opening faces the vertical cooling channel.
[0008] When the air supply pipe is installed on the clamp body, if the air supply pipe is directly inserted into the vertical cooling cavity, the position of the air guide opening will be in conflict with the vertical cooling cavity, causing the air intake of the air guide opening to be greatly reduced due to blockage. Therefore, the first connecting end of the air supply pipe is inserted into the connecting slot, so that the air guide opening of the first connecting end is in a suspended state facing the vertical cooling channel, thereby avoiding the blocking of the vertical cooling cavity to the air guide opening, and facilitating the diversion of cooling gas from the vertical cooling channel to the air guide opening.
[0009] Further, in the present application, one side of the connecting slot extends a limiting protrusion, the limiting protrusion is away from the vertical cooling channel, and the first connecting end is in conflict with the limiting protrusion.
[0010] When the first connecting end is inserted into the connecting slot, due to the fact that one side of the connecting slot extends a limiting protrusion, the limiting protrusion limits the insertion position of the first connecting end, thereby avoiding the blocking of the vertical cooling channel to the air guide opening due to the insertion of the first connecting end into the vertical cooling channel.
[0011] Further, in the present application, a fixing cylinder is further included, a fixing slot is formed in the inside of the fixing cylinder, the fixing slot penetrates through the top and bottom of the fixing cylinder, a fixing protrusion is arranged at the bottom of the fixing cylinder, the fixing protrusion is in conflict with the top of the clamp body, and the air supply pipe is connected with the inside of the fixing slot.
[0012] Further, in the present application, the cooling part includes a cooling seat, the cooling air channel is formed in the inside of the cooling seat, the cooling surface is arranged on one side of the cooling seat, the bottom of the cooling seat is provided with a converging seat, the converging seat is connected with the air supply pipe, the converging seat is provided with a converging cavity in the inside, the space of the converging cavity is larger than that of the cooling air channel, and the converging cavity is connected with the cooling air channel and the first connecting channel.
[0013] Further, in the present application, the other end of the air supply pipe is provided with a second connecting end, the second connecting end is connected with the converging seat, the inside of the second connecting end is provided with a third connecting channel, and the third connecting channel is connected with the first connecting channel and the converging cavity.
[0014] Further, in the present application, a second cooling nozzle is formed on one side of the cooling surface, the second cooling nozzle is connected with the cooling air channel, the number of the first cooling nozzles is two, and the second cooling nozzle is located between the two first cooling nozzles.
[0015] Further, in the present application, the length of the first cooling nozzle is shorter than that of the second cooling nozzle.
[0016] Further, in the application, diffusion grooves are arranged on both sides of the first cooling nozzle, and the diffusion grooves on both sides of the first cooling nozzle are distributed in a splayed shape.
[0017] Further, in the application, the width of the first cooling nozzle and the width of the second cooling nozzle are smaller than the height of the cooling air duct.
[0018] The application has the following beneficial effects:
[0019] When the bottle mouth is pressed by the blowing head, the original air blower of the clamp body inputs cooling gas into the air inlet groove, so that the cooling gas converges in the vertical cooling channel. Since the air guide opening at one end of the air inlet part faces the vertical cooling channel, the cooling gas is divided into the air guide opening and the vertical cooling hole. After a part of the cooling gas is discharged from the vertical cooling hole, it enters the mold group to cool the bottle body of the glass bottle. Another part of the cooling gas enters the air guide opening, passes through the first connecting channel and the cooling air duct, and is finally sprayed from the first cooling nozzle. Since the cooling surface faces the bottle mouth of the glass bottle, the cooling gas sprayed from the first cooling nozzle of the cooling surface cools the bottle mouth of the glass bottle, thereby effectively utilizing the longitudinal space of the clamp body, not occupying the horizontal space of the row machine, and cooling the bottle mouth of the glass bottle. BRIEF DESCRIPTION OF DRAWINGS
[0020] Fig. 1 is a structural schematic diagram of the application.
[0021] Fig. 2 is a structural schematic diagram of the air inlet pipe of the application.
[0022] Fig. 3 is a structural schematic diagram of the diffusion groove of the application.
[0023] Fig. 4 is a structural schematic diagram of the convergence seat of the application.
[0024] Fig. 5 is a structural schematic diagram of the convergence cavity of the application.
[0025] Fig. 6 is a structural schematic diagram of the fixing cylinder of the application.
[0026] Fig. 7 is a structural schematic diagram of the vertical cooling channel of the application.
[0027] Fig. 8 is a structural schematic diagram of the limiting protrusion of the application.
[0028] Among them, the reference signs are:
[0029] 1, holding tongs body; 2, vertical cooling hole; 3, air inlet groove; 4, vertical cooling channel; 5, connecting groove; 6, air conveying part; 7, second connecting end; 8, first connecting end; 9, first connecting channel; 10, second connecting channel; 11, third connecting channel; 12, cooling part; 13, first cooling nozzle; 14, diffusion groove; 15, converging cavity; 16, cooling air duct; 18, converging seat; 19, fixing cylinder; 20, air conveying pipe; 21, fixing convex corner; 22, fixing groove; 23, second cooling nozzle; 24, cooling surface; 25, air guide opening; 26, limiting protrusion; 28, cooling seat. DETAILED DESCRIPTION
[0030] Embodiments of the present application are described in detail below with reference to the attached drawings. The embodiments described below are examples of the present application, and are not intended to limit the present application. The present application can be implemented in various forms, and is not limited to the embodiments described below.
[0031] In the description of the present application, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application. In addition, the terms "first", "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features defined as "first", "second" can explicitly or implicitly include one or more of the features. In the description of the present application, the meaning of "a plurality of" is two or more, unless otherwise explicitly specified and limited.
[0032] In the description of the present application, it should be noted that, unless otherwise explicitly specified and limited, the terms "mounting", "connecting", "connecting" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected; it can be mechanically connected, or it can be electrically connected or can communicate with each other; it can be directly connected, or indirectly connected through an intermediate medium; it can be the internal communication of two elements or the interaction relationship between two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0033] In the prior design, the flat push type row and column machine needs to move the mold horizontally, so the mold occupies more space in the row and column machine, resulting in that the cooling nozzle cannot be installed in the row and column machine, and only the vertical cooling structure in the mold can be used for cooling (the vertical cooling structure of the mold is supplied with air through the gripper), but the bottle mouth is exposed after being pressed by the blowing and pressing head, so the bottle mouth cannot be cooled, especially the large-diameter bottle mouth, which has a large area, causing the bottle mouth to be easily deformed due to insufficient cooling. Since the small-diameter glass bottle mouth has a small area, it can be cooled to a certain extent through natural cooling when the blowing and pressing head is separated from the bottle mouth, so the probability of deformation of the small-diameter bottle mouth is lower than that of the large-diameter bottle mouth.
[0034] In view of the above problem that the large-diameter bottle mouth is easily deformed due to insufficient cooling, the person skilled in the art first thinks of setting a cooling device outside the row and column machine, so that the glass bottle mouth of the forming mouth can be cooled in time; but since the internal space of the row and column machine is compact, the cooling device can only be set in the operation area of the row and column machine, but the setting of the cooling device will occupy the space of the operator, causing the cooling device to hinder the maintenance personnel when the mold is overhauled; and setting more cooling devices will increase the number of fans, and the increase in the number of fans will not only increase the maintenance cost, but also the fans are prone to failure after long-term work, which will cause the bottle mouth cooling to fail.
[0035] In addition, the person skilled in the art can also think of setting a cooling device above the mold, so that the cooling device can cool the bottle mouth, but setting the cooling device above the mold will not only increase the number of fans, but also increase the number of pipes, which means that when the mold moves, not only the cooling device needs to be moved, but also the multiple pipes of the cooling device need to be moved, and the multiple pipes will hinder the mold during movement. If the pipe falls into the moving structure of the mold by accident, the pipe will be damaged, affecting the processing efficiency of the mold, and increasing the maintenance cost of the fan.
[0036] With reference to FIGS. 1-8, in some embodiments, a glass bottle mouth cooling device for a flat open type row and column machine includes a clamp body 1, the inside of the clamp body 1 is provided with a vertical cooling channel 4, the bottom of the clamp body 1 is provided with an air inlet groove 3 communicating with the vertical cooling channel 4, one side of the clamp body 1 is provided with a vertical cooling hole 2 communicating with the vertical cooling channel 4, and the device further includes an air conveying part 6 and a cooling part 12, the air conveying part 6 is arranged at the top of the clamp body 1, the cooling part 12 is arranged at the top of the air conveying part 6, the inside of the air conveying part 6 is provided with a first connecting channel 9, one end of the air conveying part 6 is provided with an air guide opening 25 communicating with the first connecting channel 9, one end of the air conveying part 6 extends downward to the vertical cooling channel 4, so that the air guide opening 25 faces the vertical cooling channel 4, the inside of the cooling part 12 is provided with a cooling air duct 16, the cooling air duct 16 communicates with the first connecting channel 9, one side of the cooling part 12 is provided with a cooling surface 24, the cooling surface 24 is used to face the bottle mouth of the glass bottle, one side of the cooling surface 24 is provided with a first cooling nozzle 13, the first cooling nozzle 13 communicates with the cooling air duct 16.
[0037] Among them, the cooling part 12 can be detachably connected with the clamp body 1, so as to facilitate the timely removal of foreign matter from the first cooling nozzle 13 of the cooling part 12.
[0038] The scheme of the present application compared with the scheme thought by the person skilled in the art, the core difference lies in that the present application sets the air conveying part 6, and lets the air guide opening 25 of the air conveying part 6 face the vertical cooling channel 4, so that when the cooling gas of the original structure of the clamp body 1 passes through the vertical cooling channel 4, part of the gas is discharged to the mold from the original vertical cooling hole 2, and the other part of the cooling gas is shunted to the air guide opening 25, so that the cooling gas is discharged from the first cooling nozzle 13 after passing through the first connecting channel 9 and the cooling air duct 16, thus simplifying the structure of the cooling device, without the need for additional fans and pipelines to cool the bottle mouth.
[0039] It should be noted that although the cooling gas of the vertical cooling channel 4 is shunted after passing through the air guide opening 25, the air outlet of the vertical cooling hole 2 will decrease, but the total air outlet of the original fan of the clamp body 1 can be increased, so that the air outlet of the vertical cooling hole 2 becomes larger, and the increase of the total air outlet can also better improve the air outlet of the first cooling nozzle 13, so that the cooling efficiency of the glass bottle mouth is improved.
[0040] According to the technical scheme, after the bottle mouth is blown by the blow head, the original air blower of the clamp body 1 inputs cooling gas into the air inlet groove 3, so that the cooling gas converges in the vertical cooling channel 4. Since the air guide opening 25 at one end of the air conveying part 6 faces the vertical cooling channel 4, the cooling gas is divided into the air guide opening 25 and the vertical cooling hole 2. After a part of the cooling gas is discharged from the vertical cooling hole 2, it enters the mold group, so that the bottle body of the glass bottle is cooled. Another part of the cooling gas enters the air guide opening 25, and then passes through the first connecting channel 9 and the cooling air duct 16, and finally is sprayed from the first cooling spray port 13. Since the cooling surface 24 faces the bottle mouth of the glass bottle, the cooling gas sprayed from the first cooling spray port 13 of the cooling surface 24 cools the bottle mouth of the glass bottle. Thus, the longitudinal space of the clamp body 1 is effectively utilized, the horizontal space of the row and column machine is not occupied, and the bottle mouth of the glass bottle can be cooled.
[0041] Referring to FIGS. 1-8, in some embodiments, a connecting groove 5 is opened at the top of the clamp body 1, the connecting groove 5 is located above the vertical cooling channel 4, the connecting groove 5 is communicated with the vertical cooling channel 4, the air conveying part 6 includes an air conveying pipe 20, one end of the air conveying pipe 20 is provided with a first connecting end 8, the other end of the air conveying pipe 20 is connected with the cooling part 12, the first connecting channel 9 is opened in the inside of the air conveying pipe 20, the inside of the first connecting end 8 is provided with a second connecting channel 10, the air guide opening 25 is opened at one side of the first connecting end 8, the second connecting channel 10 is communicated with the first connecting channel 9 and the air guide opening 25, and the first connecting end 8 is inserted into the connecting groove 5, so that the air guide opening 25 faces the vertical cooling channel 4.
[0042] According to the technical scheme, when the air conveying pipe 20 is installed in the clamp body 1, if the air conveying pipe 20 is directly inserted into the vertical cooling channel 4, part of the air guide opening 25 will be in contact with the vertical cooling channel 4, which will greatly reduce the air inlet amount of the air guide opening 25 due to blockage. Therefore, the first connecting end 8 of the air conveying pipe 20 is inserted into the connecting groove 5, so that the air guide opening 25 of the first connecting end 8 is in a suspended state and faces the vertical cooling channel 4, thereby avoiding the blockage of the vertical cooling channel 4 to the air guide opening 25, and facilitating the diversion of the cooling gas from the vertical cooling channel 4 to the air guide opening 25.
[0043] Referring to FIG. 8, in some embodiments, a limiting protrusion 26 is extended at one side of the connecting groove 5, the limiting protrusion 26 is away from the vertical cooling channel 4, and the first connecting end 8 is in contact with the limiting protrusion 26.
[0044] According to the technical scheme, when the first connecting end 8 is inserted into the connecting groove 5, since the limiting protrusion 26 is extended at one side of the connecting groove 5, the limiting protrusion 26 limits the insertion position of the first connecting end 8, thereby avoiding the blockage of the vertical cooling channel 4 to the air guide opening 25 due to the insertion of the first connecting end 8 into the vertical cooling channel 4.
[0045] Referring to FIGS. 1-6, in some embodiments, a fixed cylinder 19 is further included, the inside of the fixed cylinder 19 is provided with a fixed groove 22, the fixed groove 22 penetrates through the top and bottom of the fixed cylinder 19, the bottom of the fixed cylinder 19 is provided with a fixed convex corner 21, the fixed convex corner 21 abuts against the top of the clamp body 1, and the air delivery pipe 20 is connected with the inside of the fixed groove 22.
[0046] Through the above technical scheme, when the bottle opening height of the glass bottle becomes higher, the fixed cylinder 19 with a longer length is replaced, the connecting groove 5 is limited with the first connecting end 8 of the air delivery pipe 20 when the air delivery pipe 20 is connected with the fixed groove 22, the height of the cooling part 12 is increased, and thus the bottle opening of the glass bottle is conveniently cooled by the first cooling nozzle 13.
[0047] Referring to FIGS. 1-8, in some embodiments, the cooling part 12 includes a cooling seat 28, the cooling air duct 16 is arranged in the inside of the cooling seat 28, the cooling surface 24 is arranged on one side of the cooling seat 28, the bottom of the cooling seat 28 is provided with a converging seat 18, the converging seat 18 is connected with the air delivery pipe 20, the inside of the converging seat 18 is provided with a converging cavity 15, the space of the converging cavity 15 is larger than that of the cooling air duct 16, and the converging cavity 15 is connected with the cooling air duct 16 and the first connecting channel 9.
[0048] Through the above technical scheme, when the number of the first cooling nozzle 13 is multiple, if the cooling air duct 16 is directly connected with the first connecting channel 9 and the multiple first cooling nozzles 13, since the distance between each first cooling nozzle 13 and the first connecting channel 9 is different, the air volume of the first cooling nozzle 13 close to the first connecting channel 9 is larger, and the air volume of the first cooling nozzle 13 far away from the first connecting channel 9 is smaller. To this end, the converging cavity 15 is arranged, so that the cooling gas of the first connecting channel 9 converges in the converging cavity 15 before being delivered to the cooling air duct 16. Since the distance between each first cooling nozzle 13 and the converging cavity 15 is the same, the converging cavity 15 uniformly delivers the cooling gas to each first cooling nozzle 13, so that the air volume of each first cooling nozzle 13 is the same.
[0049] Referring to FIGS. 1-7, in some embodiments, the other end of the air delivery pipe 20 is provided with a second connecting end 7, the second connecting end 7 is connected with the converging seat 18, the inside of the second connecting end 7 is provided with a third connecting channel 11, and the third connecting channel 11 is connected with the first connecting channel 9 and the converging cavity 15.
[0050] Through the above technical scheme, when the cooling gas enters from the air inlet opening 25, the cooling gas sequentially passes through the second connecting channel 10, the first connecting channel 9 and the third connecting channel 11, so as to be guided into the converging cavity 15.
[0051] Referring to FIGS. 1-6, in some embodiments, the cooling surface 24 is provided with a second cooling nozzle 23 on one side, the second cooling nozzle 23 is communicated with the cooling air duct 16, the number of the first cooling nozzle 13 is two, and the second cooling nozzle 23 is located between the two first cooling nozzles 13.
[0052] Through the above technical scheme, when the row-column machine is three-opening mold, the number of the mold groups becomes three, and the second cooling nozzle 23 is arranged between the two first cooling nozzles 13, so that the three mold groups are conveniently cooled.
[0053] Referring to FIGS. 1-6, in some embodiments, the length of the first cooling nozzle 13 is shorter than the length of the second cooling nozzle 23.
[0054] Through the above technical scheme, when the row-column machine is three-opening mold, the temperature of the middle mold group is the highest under the influence of the adjacent mold groups, and therefore the required cooling air volume is larger, so that the length of the first cooling nozzle 13 is shorter than the length of the second cooling nozzle 23, so that the air volume of the second cooling nozzle 23 is larger than that of the first cooling nozzle 13, thereby increasing the cooling air volume of the middle mold group.
[0055] Referring to FIGS. 1-6, in some embodiments, the first cooling nozzle 13 is provided with a diffusion groove 14 on both sides, and the diffusion grooves 14 on both sides of the first cooling nozzle 13 are distributed in a figure-of-eight shape.
[0056] Through the above technical scheme, the first cooling nozzle 13 distributed in a figure-of-eight shape is better for diffusing the air volume, thereby increasing the cooling surface 24 of the glass bottle mouth.
[0057] Referring to FIGS. 1-6, in some embodiments, the width of the first cooling nozzle 13 and the width of the second cooling nozzle 23 are smaller than the height of the cooling air duct 16.
[0058] Through the above technical scheme, since the width of the first cooling nozzle 13 and the width of the second cooling nozzle 23 are smaller than the height of the cooling air duct 16, the pressure of the cooling gas when being sprayed is increased, so that the cooling gas sprayed by the first cooling nozzle 13 and the second cooling nozzle 23 can be more concentrated on the bottle mouth of the glass bottle.
[0059] It is to be understood that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting; it is not intended to be used to limit the scope of the present application. Unless defined otherwise, all technical and scientific terms used herein have the same meanings as commonly understood by one of ordinary skill in the art to which this application belongs. The singular forms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise.
Claims
1. A glass bottle neck cooling device for a horizontally opening type airlock, comprising a clamp body, wherein a vertical cooling channel is formed inside the clamp body, an air inlet slot communicating with the vertical cooling channel is formed at the bottom of the clamp body, and a vertical cooling hole communicating with the vertical cooling channel is formed on one side of the clamp body, characterized in that, It also includes an air supply section and a cooling section. The air supply section is located on the top of the clamp body, and the cooling section is located on the top of the air supply section. The air supply section has a first connecting channel inside, and one end of the air supply section has an air intake opening that connects to the first connecting channel. One end of the air supply section extends downward to the vertical cooling channel, so that the air intake opening faces the vertical cooling channel. The cooling section has a cooling air duct inside, and the cooling air duct connects to the first connecting channel. One side of the cooling section has a cooling surface that faces the mouth of the glass bottle. One side of the cooling surface has a first cooling nozzle that connects to the cooling air duct.
2. The glass bottle mouth cooling device for a horizontally opening type frame machine according to claim 1, characterized in that, The clamp body has a connecting groove on its top, which is located above the vertical cooling channel and connects to the vertical cooling channel. The air supply section includes an air supply pipe, one end of which has a first connecting end, and the other end of which is connected to the cooling section. The first connecting channel is located inside the air supply pipe, and a second connecting channel is located inside the first connecting end. The air intake opening is located on one side of the first connecting end, and the second connecting channel connects the first connecting channel and the air intake opening. The first connecting end is inserted into the connecting groove so that the air intake opening faces the vertical cooling channel.
3. A glass bottle mouth cooling device for a horizontally opening type frame machine according to claim 2, characterized in that, A limiting protrusion extends from one side of the connecting groove, the limiting protrusion being away from the vertical cooling channel, and the first connecting end abutting against the limiting protrusion.
4. A glass bottle mouth cooling device for a horizontally opening type frame machine according to claim 2, characterized in that, It also includes a fixing cylinder, the inside of which is provided with a fixing groove that extends through the top and bottom of the fixing cylinder. The bottom of the fixing cylinder is provided with a fixing protrusion that abuts against the top of the clamp body. The air supply pipe is engaged with the inside of the fixing groove.
5. A glass bottle mouth cooling device for a horizontally opening type frame machine according to claim 2, characterized in that, The cooling unit includes a cooling seat, the cooling air duct is opened inside the cooling seat, the cooling surface is located on one side of the cooling seat, the bottom of the cooling seat is provided with a converging seat, the converging seat is connected to the air supply pipe, the converging seat is provided with a converging cavity inside, the space of the converging cavity is larger than the space of the cooling air duct, and the converging cavity connects the cooling air duct and the first connecting channel.
6. A glass bottle mouth cooling device for a horizontally opening type frame machine according to claim 5, characterized in that, The other end of the air duct is provided with a second connection end, which is connected to the converging seat. The interior of the second connection end is provided with a third connection channel, which connects the first connection channel and the converging cavity.
7. A glass bottle mouth cooling device for a horizontally opening type frame machine according to claim 1, characterized in that, A second cooling nozzle is provided on one side of the cooling surface. The second cooling nozzle is connected to the cooling air duct. There are two first cooling nozzles, and the second cooling nozzle is located between the two first cooling nozzles.
8. A glass bottle mouth cooling device for a horizontally opening type frame machine according to claim 7, characterized in that, The length of the first cooling nozzle is shorter than the length of the second cooling nozzle.
9. A glass bottle mouth cooling device for a horizontally opening type frame machine according to claim 7, characterized in that, The first cooling nozzle has diffusion grooves on both sides, and the diffusion grooves on both sides of the first cooling nozzle are distributed in a figure-eight shape.
10. A glass bottle mouth cooling device for a horizontally opening type frame machine according to claim 7, characterized in that, The width of the first cooling nozzle and the width of the second cooling nozzle are smaller than the height of the cooling duct.
Citation Information
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