Energy-saving cooling device for glass processing

By vertically fixing the glass and utilizing a servo motor-driven transmission system and a circulating water cooling device, the problem of uneven cooling during glass processing was solved, achieving a highly efficient and energy-saving cooling effect.

CN224094703UActive Publication Date: 2026-04-07LUAN GUOTAI GLASS PROD CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-28
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing cooling devices for glass processing suffer from uneven cooling effects, especially poor cooling of the bottom layer of glass. At the same time, the limited fan speed affects the overall cooling effect.

Method used

The glass is vertically fixed by a limiting component, and the spray components are rotated by a transmission screw and gear rack system driven by a servo motor to achieve comprehensive spray cooling on both sides of the glass. Combined with a water pump and condenser circulating water system, uniform cooling is provided.

Benefits of technology

It achieves uniform cooling of all parts of the glass, adapts to the fixing requirements of glass of different specifications, improves cooling efficiency and energy efficiency, and reduces production costs.

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Abstract

The utility model discloses an energy-saving cooling device for glass processing, which relates to the technical field of glass processing, and comprises a cooling box, a limiting component used for fixing glass and vertically placing the glass in the cooling box is arranged in the cooling box, a plurality of groups of spraying pieces used for spraying two side surfaces of the glass are further rotatably connected in the cooling box, and the spraying pieces are arranged in the cooling box. One end of the spraying piece extends out of the cooling box and is connected with a driving shaft, and the driving shaft is connected with a driving gear; according to the utility model, the glass is vertically fixed in the cooling box, and the clamping blocks are matched with the fixing plates for limiting, so that the problem that the cooling effect of the lower-layer glass is poor when the upper-layer glass and the lower-layer glass are placed traditionally is solved. The symmetrically-arranged spraying pipes rotate along with the driving shaft and are driven by the driven rack to horizontally slide, and the two side faces of the glass can be comprehensively sprayed and cooled, so that all the parts of the glass are evenly in contact with a cold water source.
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Description

TECHNICAL FIELD

[0001] The utility model relates to glass processing technical field, concretely is a kind of energy-saving glass processing cooling device. BACKGROUND

[0002] Glass is a kind of amorphous solid, can keep certain shape, is the substance obtained by gradually cooling glass paste melt, gradually increasing degree, and one of the indispensable steps in glass processing is to cool glass, and the cooling method is usually water cooling.

[0003] The existing Chinese patent (publication number: CN218146345U) discloses an energy-saving glass processing cooling device, which solves the problem that although the existing glass processing cooling device on the market can effectively cool the glass, the energy consumption is huge, and the power source of air cooling cannot drive water cooling to operate through the linkage structure, thereby increasing the production cost, including a shell, a warehouse door is rotatably connected to one side of the shell, and a mounting groove is formed at the top center position of the shell, and a fan blade is arranged in the inner cavity of the mounting groove.

[0004] The above-mentioned device can cool the glass during use, but first, the placing rack for placing the glass is arranged in two layers during cooling, and then the top is cooled by air cooling, and the water cooling is arranged on the side to further improve the cooling effect, but first, since the device is arranged in two layers, the cooling effect of the glass on the bottom placing rack is poorer than that of the glass on the upper placing rack, and second, the device uses the rotation of the fan to drive the oscillation of the spray pipe to improve the cooling range, and in order to control the oscillation speed of the spray pipe, the speed of the fan is inevitably affected, thereby causing the overall cooling effect of the device to decrease.

[0005] Therefore, we design an energy-saving glass processing cooling device to solve the above problems. UTILITY MODEL CONTENTS

[0006] The utility model aims at providing an energy-saving glass processing cooling device to solve the problems raised in the above background technology.

[0007] To solve the above technical problems, the utility model provides an energy-saving glass processing cooling device, which comprises a cooling box, a limiting assembly for fixing glass is arranged in the cooling box, so that the glass is vertically placed in the cooling box, a plurality of spray elements for spraying the two side surfaces of the glass are rotatably connected in the cooling box, one end of the spray element extends to the outside of the cooling box and is connected with a driving shaft, a driving gear is connected to the driving shaft, a driven rack is engagedly connected to the driving gear, and a driving assembly is arranged at the rear side of the cooling box to drive the horizontal sliding of the driven rack.

[0008] Further, the limiting assembly comprises a plurality of fixed plates connected in the cooling box, the plurality of fixed plates are arranged in a linear array, a second transmission screw rod is rotationally connected in the cooling box, a plurality of second nuts are threadedly connected on the second transmission screw rod, clamping blocks are connected on the top of the second nuts, and a second servo motor for driving the second transmission screw rod to rotate is connected on one side of the cooling box.

[0009] When the second transmission screw rod rotates, the second nuts drive the clamping blocks to move towards the fixed plates and cooperate with the fixed plates to limit the glass, so that the glass is vertically arranged in the cooling box.

[0010] Further, the driving assembly comprises a first transmission screw rod rotationally connected on the rear side of the cooling box, a first nut is threadedly connected on the first transmission screw rod, one end of the first nut is connected with a driven rack, and a first servo motor for driving the first transmission screw rod to rotate is connected on the rear side of the cooling box.

[0011] Further, the two sides of the first nut are connected with connecting sleeves, the connecting sleeves are slidably connected with telescopic blocks, the other end of the telescopic blocks is connected with a contact switch, and a limiting screw for limiting the telescopic blocks is inserted into the connecting sleeve.

[0012] Further, a plurality of insertion holes matched with the limiting screw are formed in the connecting sleeve, and the plurality of insertion holes are arranged in a linear array.

[0013] Further, the spraying member comprises two spraying pipes arranged symmetrically, each two spraying pipes correspond to one glass, and are used for cooling the two sides of the glass.

[0014] Further, a first water pump is connected on one side of the cooling box, the water suction end of the first water pump extends into the cooling box, the water discharge end of the first water pump is connected with a condensing member through a mounting pipe, the condensing member is connected on the top of the cooling box, and the condensing member is connected with a water storage tank through a fixing pipe.

[0015] Further, the water storage tank is connected on the top of the cooling box, the top of the cooling box is connected with a second water pump for pumping water in the water storage tank, the water discharge end of the second water pump is connected with a shunt pipe, a plurality of connecting pipes are connected on the shunt pipe, and the other end of the connecting pipes is connected on the spraying pipes.

[0016] Compared with the prior art, the beneficial effects of the utility model are:

[0017] 1、The glass is fixed vertically in the cooling box, and is limited by the clamping block and the fixed plate, so that the problem of poor cooling effect of the lower layer glass in the traditional upper and lower two layers is avoided. The symmetrical spray pipes are driven to rotate by the driving shaft, are driven to slide horizontally by the driven rack, and can comprehensively spray and cool the two side surfaces of the glass, so that each part of the glass is uniformly contacted with the cold water source.

[0018] 2、The second servo motor drives the second transmission screw rod to adjust the position of the clamping block, so that the vertical fixing requirement of different specifications of glass can be adapted. The first servo motor cooperates with the first transmission screw rod, the driven rack and the driving gear, and controls the first nut stroke through the abutting switch and the limiting screw, so that the working range of the spraying piece is adjusted. BRIEF DESCRIPTION OF DRAWINGS

[0019] Figure 1 It is a schematic view of the three-dimensional structure of the utility model from outside;

[0020] Figure 2 It is a plan view of the utility model;

[0021] Figure 3 It is a rear view of the utility model;

[0022] Figure 4 It is a utility model Figure 3 A zoomed-in view of the middle A.

[0023] In the drawing: 1, cooling box; 2, spray pipe; 3, driving shaft; 4, driving gear; 5, driven rack; 6, first transmission screw rod; 7, first nut; 8, first servo motor; 9, connecting sleeve; 10, telescopic block; 11, limiting screw; 12, abutting switch; 13, fixed plate; 14, second transmission screw rod; 15, second nut; 16, clamping block; 17, second servo motor; 18, first water pump; 19, condensing piece; 20, water storage tank; 21, second water pump; 22, shunt pipe; 23, connecting pipe. DETAILED DESCRIPTION

[0024] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model.

[0025] Refer to Figures 1-4As shown, an energy-saving cooling device for glass processing includes a cooling box 1, a limiting assembly is arranged in the cooling box 1 for fixing the glass, and the glass is vertically placed in the cooling box 1, a plurality of spray members for spraying the two side surfaces of the glass are rotatably connected in the cooling box 1, one end of the spray member extends to the outside of the cooling box 1 and is connected with a driving shaft 3, the driving shaft 3 is connected with a driving gear 4, the driving gear 4 is meshingly connected with a driven rack 5, and the rear side of the cooling box 1 is provided with a driving assembly for driving the driven rack 5 to slide horizontally.

[0026] In specific implementation, in the cooling box 1, the limiting assembly vertically fixes and places the glass. The driving assembly drives the driven rack 5 to slide horizontally, the driven rack 5 is meshingly connected with the driving gear 4, thereby driving the driving shaft 3 to rotate, the driving shaft 3 drives the spray member to rotate, and the spraying and cooling of the two side surfaces of the glass are realized. In this arrangement, the glass is vertically placed, compared with the way of placing the glass on the upper and lower two layers of placing frames in the background art, the glass can be more uniformly cooled in each part, and the problem of poor cooling effect of the lower layer of glass is avoided.

[0027] Referring to Figures 1-4 , the limiting assembly includes a plurality of fixed plates 13 connected in the cooling box 1, the plurality of fixed plates 13 are linearly arranged, a second transmission screw rod 14 is rotatably connected in the cooling box 1, a plurality of second nuts 15 are threadedly connected on the second transmission screw rod 14, the top of the second nut 15 is connected with a clamping block 16, and one side of the cooling box 1 is connected with a second servo motor 17 for driving the second transmission screw rod 14 to rotate, wherein

[0028] When the second transmission screw rod 14 rotates, the second nut 15 drives the clamping block 16 to move towards the fixed plate 13 and cooperates with the fixed plate 13 to limit the glass, so that the glass is vertically arranged in the cooling box 1.

[0029] It should be noted that a sliding groove is formed in the cooling box 1 for the sliding of the second nut 15, and the sliding groove can limit and guide the second nut 15.

[0030] In specific implementation, the second servo motor 17 drives the second transmission screw rod 14 to rotate, the second nut 15 on the second transmission screw rod 14 moves under the action of threads, drives the clamping block 16 at the top to move close to the fixed plate 13, thereby clamping the glass and achieving vertical limiting. This arrangement can be flexibly adjusted according to the size of the glass, and is suitable for the cooling needs of different specifications of glass.

[0031] Referring to Figures 1-4 , the driving assembly includes a first transmission screw rod 6 rotatably connected at the rear side of the cooling box 1, a first nut 7 threadedly connected on the first transmission screw rod 6, one end of the first nut 7 connected with the driven rack 5, and a first servo motor 8 connected at the rear side of the cooling box 1 for driving the first transmission screw rod 6 to rotate.

[0032] In implementation, the first servo motor 8 drives the first transmission screw rod 6 to rotate, the first nut 7 on the first transmission screw rod 6 moves along the screw rod under the thread action, the first nut 7 is connected with the driven rack 5, thereby driving the driven rack 5 to slide horizontally, which facilitates the adjustment of the rotation angle and range of the spraying member.

[0033] Referring to Figures 1-4 , the two sides of the first nut 7 are connected with the connecting sleeves 9, the telescopic blocks 10 are slidingly connected on the connecting sleeves 9, the other ends of the telescopic blocks 10 are connected with the contact switches 12, and the limiting screws 11 limiting the telescopic blocks 10 are inserted on the connecting sleeves 9.

[0034] It should be noted that the contact switches 12 are electrically connected with the first servo motor 8 for controlling the forward and reverse rotation of the first servo motor 8, the cooling box 1 is connected with two placement blocks which are symmetrical to each other, the first transmission screw rod 6 is rotatably connected between the two placement blocks, and the guide columns are connected between the two placement blocks, and the first nut 7 is slidingly connected on the guide columns.

[0035] In implementation, when the first servo motor 8 drives the first transmission screw rod 6 to rotate, the first nut 7 moves along the screw rod direction, and the connecting sleeves 9 connected on the two sides of the first nut 7 synchronously move. The telescopic blocks 10 can slide in the connecting sleeves 9, when the first nut 7 moves to the set position, one end of the telescopic block 10 will contact and trigger the contact switch 12. Since the contact switches 12 are electrically connected with the first servo motor 8, after the contact switches 12 are triggered, a signal will be sent to the first servo motor 8 to control the first servo motor 8 to change the rotation direction, so that the first nut 7 moves reversely. By adjusting the position of the limiting screw 11 in the different insertion holes of the connecting sleeve 9, the extension length of the telescopic block 10 in the connecting sleeve 9 can be changed, thereby controlling the moving stroke of the first nut 7. Through the adjustment of the position of the telescopic block 10 by the limiting screw 11, the different working ranges required by the spraying member during the cooling of different specifications of glass can be adapted.

[0036] Referring to Figures 1-4 , a plurality of insertion holes matched with the limiting screw 11 are formed on the connecting sleeve 9, and the plurality of insertion holes are linearly arranged.

[0037] In implementation, a plurality of linearly arranged insertion holes are formed on the connecting sleeve 9, and the limiting screw 11 can be inserted into different insertion holes, so as to change the fixed position of the telescopic block 10 in the connecting sleeve 9, and further adjust the moving stroke of the first nut 7.

[0038] Referring to Figures 1-4 , the spraying member comprises two spraying pipes 2 which are symmetrically arranged, each two spraying pipes 2 correspond to one glass, and are used for cooling the two sides of the glass.

[0039] In particular implementation, every two spray pipes 2 are symmetrically arranged, corresponding to a piece of glass, and respectively spraying the two sides of the glass, and the heat is taken away by spraying water on the surface of the glass to realize cooling.

[0040] Referring to Figures 1-4 The cooling box 1 is connected with a first water pump 18 on one side, the water suction end of the first water pump 18 extends into the cooling box 1, the water discharge end of the first water pump 18 is connected with a condensing component 19 through a mounting pipe, the condensing component 19 is connected on the top of the cooling box 1, and the condensing component 19 is connected with a water storage tank 20 through a fixing pipe.

[0041] It should be noted that the condensing component 19 can be specifically provided as a wind-cooled condenser, which is composed of one or more groups of heat dissipation fins and fans. When the hot water sent from the first water pump 18 passes through the internal pipeline of the condenser, the external fan forcibly flows air, and the air sweeps the heat dissipation fins to take away the heat of the hot water in the pipeline, so as to realize the condensation of the water. The air flow accelerates the heat exchange efficiency, so that the water flows into the water storage tank 20 after the temperature is reduced or is provided as a water-cooled condenser. The specific selection can be made according to actual needs, which is not limited here, as long as a better heat dissipation effect can be provided.

[0042] In particular implementation, the first water pump 18 draws water from the cooling box 1, and the water is transported to the condensing component 19 through the mounting pipe. After the condensing component 19 condenses the water, the water is transported to the water storage tank 20 through the fixing pipe for storage.

[0043] Referring to Figures 1-4 The water storage tank 20 is connected on the top of the cooling box 1, the top of the cooling box 1 is connected with a second water pump 21 for drawing water in the water storage tank 20, the water discharge end of the second water pump 21 is connected with a shunt pipe 22, a plurality of connecting pipes 23 are connected on the shunt pipe 22, and the other ends of the connecting pipes 23 are connected on the spray pipes 2.

[0044] In particular implementation, the second water pump 21 draws water from the water storage tank 20, and the water is transported to the spray pipes 2 through the shunt pipe 22 and the plurality of connecting pipes 23 to provide spraying water for the spray pipes 2.

[0045] Working principle: the glass to be cooled is placed in the cooling box 1, the second servo motor 17 is started, the second transmission lead screw 14 is driven to rotate, the plurality of second nuts 15 screwed on the second transmission lead screw 14 drive the clamping blocks 16 on the top to move towards the fixed plate 13, and the glass is fixed vertically through cooperation of the clamping blocks 16 and the fixed plate 13.

[0046] Subsequently, the first servo motor 8 is started, which drives the first transmission screw rod 6 to rotate, so that the first nut 7 moves on the first transmission screw rod 6, and since the first nut 7 is connected with the driven rack 5, the driven rack 5 is driven to slide horizontally. The driven rack 5 is engaged with the driving gear 4, the driving gear 4 drives the driving shaft 3 to rotate, and the driving shaft 3 drives the spraying member, i.e., the two spraying pipes 2 arranged symmetrically, to rotate, thereby spraying and cooling the two side surfaces of the vertically fixed glass.

[0047] During the movement of the first nut 7, the connecting sleeve 9 connected on both sides thereof moves synchronously, and the telescopic block 10 slides in the connecting sleeve 9. When the first nut 7 moves to the set position, the telescopic block 10 triggers the contact switch 12, and the contact switch 12 sends a signal to the first servo motor 8, so that the first servo motor 8 changes the rotating direction and reversely moves the first nut 7. By adjusting the position of the limiting screw 11 in the different plug-in holes of the connecting sleeve 9, the movement stroke of the first nut 7 can be changed, and thus the working range of the spraying member can be adjusted.

[0048] During the spraying and cooling process, the first water pump 18 draws water from the cooling box 1, and the water is delivered to the condensing member 19 at the top through the installation pipe. After the condensing member 19 performs condensing treatment on the water, the cooled water is delivered to the water storage tank 20 through the fixed pipe for storage. The second water pump 21 draws water from the water storage tank 20, and the water is delivered to the spraying pipe 2 through the shunt pipe 22 and the connecting pipe 23, thereby continuously providing circulating water for spraying and cooling, and realizing efficient cooling of the glass.

Claims

1. An energy-saving cooling device for glass processing, comprising a cooling box (1), characterized in that, The cooling box (1) is provided with a limiting component for fixing the glass and placing the glass vertically in the cooling box (1). The cooling box (1) is also rotatably connected with multiple spraying components for spraying the two sides of the glass. One end of the spraying component extends to the outside of the cooling box (1) and is connected to a drive shaft (3). A drive gear (4) is connected to the drive shaft (3). A driven rack (5) is meshed on the drive gear (4). A drive component for driving the driven rack (5) to slide horizontally is provided on the rear side of the cooling box (1).

2. The energy-saving cooling device for glass processing as described in claim 1, characterized in that: The limiting assembly includes multiple fixed plates (13) connected inside the cooling box (1), the multiple fixed plates (13) being arranged in a linear array, a second transmission screw (14) being rotatably connected inside the cooling box (1), multiple second nuts (15) being threaded onto the second transmission screw (14), a clamping block (16) being connected to the top of the second nuts (15), and a second servo motor (17) driving the second transmission screw (14) to rotate being connected to one side of the cooling box (1). When the second transmission screw (14) rotates, the second nut (15) drives the clamping block (16) to move closer to the fixed plate (13) and cooperates with the fixed plate (13) to limit the glass so that the glass is vertically placed in the cooling box (1).

3. The energy-saving cooling device for glass processing as described in claim 1, characterized in that: The drive assembly includes a first transmission screw (6) rotatably connected to the rear side of the cooling box (1), a first nut (7) threadedly connected to the first transmission screw (6), one end of the first nut (7) being connected to the driven rack (5), and a first servo motor (8) driving the first transmission screw (6) to rotate connected to the rear side of the cooling box (1).

4. The energy-saving cooling device for glass processing as described in claim 3, characterized in that: The first nut (7) is connected to both sides of a connecting sleeve (9), and a telescopic block (10) is slidably connected to the connecting sleeve (9). The other end of the telescopic block (10) is connected to an abutment switch (12), and a limiting screw (11) for limiting the telescopic block (10) is inserted into the connecting sleeve (9).

5. The energy-saving cooling device for glass processing as described in claim 4, characterized in that: The connecting sleeve (9) has multiple insertion holes that are compatible with the limiting screw (11), and the multiple insertion holes are distributed in a linear array.

6. The energy-saving cooling device for glass processing as described in claim 1, characterized in that: The spraying component includes two symmetrically arranged spray pipes (2), each pair of spray pipes (2) corresponding to a piece of glass, used to cool both sides of the glass.

7. The energy-saving cooling device for glass processing as described in claim 1, characterized in that: A first water pump (18) is connected to one side of the cooling box (1). The pumping end of the first water pump (18) extends into the cooling box (1). The drain end of the first water pump (18) is connected to a condenser (19) through an installation pipe. The condenser (19) is connected to the top of the cooling box (1). The condenser (19) is connected to a water storage tank (20) through a fixing pipe.

8. The energy-saving cooling device for glass processing as described in claim 7, characterized in that: The water storage tank (20) is connected to the top of the cooling tank (1). The top of the cooling tank (1) is connected to a second water pump (21) for drawing water from the water storage tank (20). The drain end of the second water pump (21) is connected to a diversion pipe (22). Multiple connecting pipes (23) are connected to the diversion pipe (22). The other end of the connecting pipe (23) is connected to the spray pipe (2).

Citation Information

Patent Citations

  • Energy-saving cooling device for glass processing

    CN218146345U