Spray gun cooling integrated mobile mechanism
By designing an integrated mobile mechanism for spray gun cooling, the automatic cooling and painting of the zipper head was achieved, solving the problems of low painting efficiency and chemical odor hazards, improving production efficiency and protecting the health of operators.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- DONGGUAN YUANQIDA MACHINERY EQUIPMENT CO LTD
- Filing Date
- 2025-06-26
- Publication Date
- 2026-06-02
AI Technical Summary
In the current zipper head processing, the cooling and painting processes are inefficient, and the chemical fumes produced during the painting process are harmful to the human body.
A mobile spray gun cooling integrated mechanism was designed, including a transverse slide, a paint spray gun, a cooling nozzle, a spray gun deflection assembly, and a drive assembly, to achieve automated spray cooling and painting, reducing manual intervention.
It improves painting efficiency, avoids the harm of chemical gases to the human body, and achieves fully automated operation.
Smart Images

Figure CN224308743U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of zipper head processing machinery, specifically to a mobile mechanism integrating spray gun cooling. Background Technology
[0002] Zipper heads are essential components of clothing zippers. During the manufacturing process, zipper heads need to be cooled, painted, and dried. Currently, the cooling nozzle is usually held by hand to spray cold air onto the zipper head, and the paint is applied by hand using a spray gun. This process is inefficient, and the chemical fumes produced during the painting process are harmful to human health. Utility Model Content
[0003] The technical problem to be solved by this utility model is to overcome the shortcomings of the existing technology and provide an integrated mobile mechanism for spray gun cooling.
[0004] To solve the above-mentioned technical problems, the basic concept of the technical solution adopted by this utility model is as follows:
[0005] The spray gun cooling integrated movable mechanism includes a left-right oriented transverse slide, a paint spray gun, a cooling nozzle, a spray gun vertical connecting column, a nozzle vertical connecting column, a spray gun transverse slider, a nozzle transverse slider, two transverse slide rails, a spray gun transverse drive assembly, a nozzle transverse drive assembly, and a spray gun deflection assembly. The two transverse slide rails are horizontally and alternately fixed to the rear wall of the transverse slide. The spray gun transverse slider and the nozzle transverse slider are both laterally slidably engaged with the two transverse slide rails. The upper end of the spray gun vertical connecting column is fixedly connected to the spray gun transverse slider, and the lower end of the spray gun vertical connecting column is fixedly connected to the spray gun deflection assembly. The output end of the spray gun deflection assembly is connected to the paint spray gun. The spray gun deflection assembly is used to drive the paint spray gun to rotate up and down or left and right. The nozzle of the paint spray gun faces downward and backward. The upper end of the vertical connecting column of the nozzle is fixedly connected to the horizontal slider of the nozzle. The lower end of the vertical connecting column of the nozzle is fixedly connected to the cooling nozzle. The output port of the cooling nozzle faces backward and downward. The spray gun horizontal drive assembly is installed on the horizontal slide and is used to drive the horizontal slider of the spray gun to move left and right. The nozzle horizontal drive assembly is installed on the horizontal slide and is used to drive the horizontal slider of the nozzle to move left and right.
[0006] Preferably, the spray gun deflection assembly includes a horizontal vertical rotating mounting base, a vertical rotating drive motor, a reducer steering gear, two vertical rotating swing arms, a left and right rotating mounting base, a rotary cylinder, and a spray gun connector. The front end of the vertical rotating mounting base is fixed to the lower end of the vertical connecting column of the spray gun. The reducer steering gear is fixedly mounted on the vertical rotating mounting base. The input interface of the reducer steering gear is located at the top of the reducer steering gear. Horizontal output shafts are respectively provided on the left and right side walls of the reducer steering gear. The vertical rotating drive motor is mounted on the top of the reducer steering gear, and the... The output shaft of the up-and-down rotary drive motor extends downward and is inserted into the input interface of the reducer steering gear. The upper ends of the two up-and-down rotary swing arms are respectively fixedly connected to the corresponding output shafts. The lower ends of the two down-rotating swing arms are respectively fixedly connected to the upper end face of the left-and-right rotary mounting base. A rotary cylinder mounting hole is provided in the middle of the left-and-right rotary mounting base. The rotary cylinder is fixedly installed on the lower end face of the left-and-right rotary mounting base. The output end of the rotary cylinder passes upward through the rotary cylinder mounting hole and is fixedly connected to one end of the spray gun connector. The other end of the spray gun connector is fixedly connected to the paint spray gun.
[0007] Preferably, the spray gun lateral drive assembly includes a first servo motor, a first motor mounting block, a first driving pulley, a first driven pulley, a first transmission belt, and a first driven pulley mounting seat. The nozzle lateral drive assembly includes a second servo motor, a second motor mounting block, a second driving pulley, a second driven pulley, a second transmission belt, and a second driven pulley mounting seat. The first motor mounting block is vertically and fixedly mounted on one side of the lateral slide. The first servo motor is fixedly mounted on the outer wall of the first motor mounting block. The output shaft of the first servo motor extends downward and connects to the first driving pulley. The first motor mounting block has two first conveyor belt holes on its front and rear sides corresponding to the first driving pulley. The second driven pulley mounting seat is fixedly mounted on the inner wall of the first motor mounting block below the first conveyor belt holes. The second motor mounting block is vertically and fixedly mounted on the other side of the lateral slide. The second servo motor is fixedly mounted on the outer wall of the second motor mounting block. The output shaft of the second servo motor extends downward and connects to the second driving pulley. The motor mounting block has two second conveyor belt holes on its front and rear sides corresponding to the second drive pulley. The first driven pulley mounting seat is fixedly installed on the inner side wall of the second motor mounting block above the second conveyor belt holes. The first driven pulley is horizontally rotatably mounted on the first driven pulley mounting seat. The first transmission belt passes through the two first conveyor belt holes and wraps around the first drive pulley and the first driven pulley. The second driven pulley is horizontally rotatably mounted on the second driven pulley mounting seat. The second transmission belt passes through the two second conveyor belt holes and wraps around the second drive pulley and the second driven pulley. The spray gun's transverse slider has a first transmission belt mounting hole that passes through it from left to right. The nozzle's transverse slider has a second transmission belt mounting hole that passes through it from left to right. The portion of the first transmission belt on the rear side of the first drive pulley passes through the first transmission belt mounting hole and is fixed to the front side wall of the first transmission belt mounting hole. The portion of the second transmission belt on the rear side of the second drive pulley passes through the second transmission belt mounting hole and is fixed to the front side wall of the second transmission belt mounting hole.
[0008] Preferably, the integrated mobile spray gun cooling mechanism further includes a rear baffle, which passes through the first transmission belt mounting hole and the second transmission belt mounting hole. The rear baffle is located behind the first transmission belt and the second transmission belt, and both ends of the rear baffle are fixedly connected to the inner sidewall of the first motor mounting block and the inner sidewall of the second motor mounting block, respectively.
[0009] Preferably, the two transverse slide rails are located above the first transmission belt and below the second transmission belt, respectively.
[0010] Compared with existing technologies, the integrated mobile spray gun cooling mechanism of this invention can automatically complete the spraying of cold air and the spraying of paint, which greatly improves the painting efficiency of the zipper head. The entire process does not require human intervention and effectively avoids the harm to the human body caused by the chemical gases generated during the painting process.
[0011] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings. Attached Figure Description
[0012] The accompanying drawings, which form part of this application, are used to provide a further understanding of the present invention. The illustrative embodiments and descriptions of the present invention are used to explain the present invention, but do not constitute an undue limitation of the present invention. Obviously, the drawings described below are merely some embodiments; those skilled in the art can obtain other drawings based on these drawings without creative effort. In the drawings:
[0013] Figure 1 This is a structural diagram of the integrated mobile spray gun cooling mechanism of this utility model from the first angle;
[0014] Figure 2 This is a structural diagram of the integrated mobile spray gun cooling mechanism of this utility model from a second angle;
[0015] Figure 3 for Figure 2 Exploded view;
[0016] Figure 4 This is an exploded view from the third angle of the integrated mobile spray gun cooling mechanism of this utility model.
[0017] It should be noted that these accompanying drawings and textual descriptions are not intended to limit the scope of the present invention in any way, but rather to illustrate the concept of the present invention to those skilled in the art by referring to specific embodiments. Detailed Implementation
[0018] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions in the embodiments will be clearly and completely described below with reference to the accompanying drawings. The following embodiments are used to illustrate this utility model, but are not intended to limit the scope of this utility model.
[0019] refer to Figures 1 to 4 The integrated mobile spray gun cooling mechanism includes a horizontal slide block 110 running left and right, a paint spray gun 120, a cooling nozzle 125, a vertical connecting column for the spray gun 130, a vertical connecting column for the nozzle 135, a horizontal slider for the spray gun 140, a horizontal slider for the nozzle 150, two horizontal slide rails 160, a horizontal drive assembly for the spray gun, a horizontal drive assembly for the nozzle, and a spray gun deflection assembly.
[0020] The two horizontal slide rails 160 are fixedly installed horizontally and alternately on the rear wall of the horizontal slide block 110. The horizontal slider 140 of the spray gun and the horizontal slider 150 of the nozzle are both horizontally slidably engaged on the two horizontal slide rails 160. The upper end of the vertical connecting column 130 of the spray gun is fixedly connected to the horizontal slider 140 of the spray gun, and the lower end of the vertical connecting column is fixedly connected to the spray gun deflection assembly. The output end of the spray gun deflection assembly 190 is connected to the paint spray gun 120. The spray gun deflection assembly 190 is used to drive the paint spray gun 120 to rotate up and down or left and right. The nozzle of the paint spray gun 120 faces downward and backward. The upper end of the vertical connecting column 135 of the nozzle head is fixedly connected to the horizontal slider 150 of the nozzle head, and the lower end of the vertical connecting column 135 of the nozzle head is fixedly connected to the cooling nozzle. The output port of the cooling nozzle 125 faces backward and downward. The horizontal drive assembly of the spray gun is installed on the horizontal slide 110 and is used to drive the horizontal slider 140 of the spray gun to move left and right. The horizontal drive assembly of the nozzle head is installed on the horizontal slide 110 and is used to drive the horizontal slider 150 of the nozzle head to move left and right.
[0021] Preferably, the spray gun deflection assembly includes a horizontal vertical rotating mounting base 191, a vertical rotating drive motor 192, a reducer steering gear 193, two vertical rotating swing arms 194, a left-right rotating mounting base 195, a rotary cylinder 196, and a spray gun connector 197. The front end of the vertical rotating mounting base 191 is fixed to the lower end of the spray gun vertical connecting column 130. The reducer steering gear 193 is fixedly mounted on the vertical rotating mounting base 191. The input interface of the reducer steering gear 193 is located at the top of the reducer steering gear 193. Horizontal output shafts 1932 are respectively provided on the left and right side walls of the reducer steering gear 193. The vertical rotating drive motor 192 is mounted on the top of the reducer steering gear 193, and the output shaft of the vertical rotating drive motor 192 extends downward and is inserted into the input interface of the reducer steering gear 193. The upper ends of the two upper and lower rotating arms 194 are respectively fixedly connected to the corresponding output shafts 1932, and the lower ends of the two lower rotating arms are respectively fixedly connected to the upper end faces of the left and right rotating mounting bases 195. A rotary cylinder mounting hole (not shown) is provided in the middle of the left and right rotating mounting bases 195. The rotary cylinder 196 is fixedly mounted on the lower end face of the left and right rotating mounting bases 195, and the output end of the rotary cylinder 196 passes upward through the rotary cylinder mounting hole and is fixedly connected to one end of the spray gun connector 197. The other end of the spray gun connector 197 is fixedly connected to the paint spray gun 120. The upper and lower rotating drive motors 192 and the rotary cylinder 196 are both electrically connected to the control system.
[0022] Preferably, the spray gun lateral drive assembly includes a first servo motor 171, a first motor mounting block 172, a first driving pulley (not shown), a first driven pulley 174, a first transmission belt 175, and a first driven pulley mounting seat 176. The nozzle lateral drive assembly includes a second servo motor 181, a second motor mounting block 182, a second driving pulley (not shown), a second driven pulley 184, a second transmission belt 185, and a second driven pulley mounting seat 186. The first motor mounting block 172 is vertically and fixedly mounted on one side of the lateral slide block 110. The first servo motor 171 is fixedly mounted on the outer side wall of the first motor mounting block 172. The output shaft of the first servo motor 171 extends downward and connects to the first driving pulley. The first motor mounting block 172 has two first conveyor belt holes 1721 on the front and rear sides corresponding to the first driving pulley. The second driven pulley mounting seat 186 is fixedly mounted on the inner side wall of the first motor mounting block 172 at the first conveyor belt hole. Below the gap 1721, the second motor mounting block 182 is vertically and fixedly mounted on the other side of the transverse slide block 110. The second servo motor 181 is fixedly mounted on the outer wall of the second motor mounting block 182. The output shaft of the second servo motor 181 extends downward and connects with the second drive pulley. The second motor mounting block 182 has two second conveyor belt gaps 1821 respectively on the front and rear sides corresponding to the second drive pulley. The first driven pulley mounting seat 176 is fixedly mounted on the inner side of the second motor mounting block 182. The first driven pulley 174 is horizontally rotatably mounted on the first driven pulley mounting base 176, and the first drive belt 175 passes through both of the first conveyor belt holes 1721 and wraps around the first driving pulley and the first driven pulley 174. The second driven pulley 184 is horizontally rotatably mounted on the second driven pulley mounting base 186, and the second drive belt 185 passes through both of the second conveyor belt holes 1821 and wraps around the second driving pulley and the second driven pulley 184. In addition, the spray gun's horizontal slider 140 has a first drive belt mounting hole 141 that extends through it from left to right, and the nozzle's horizontal slider 150 has a second drive belt mounting hole 151 that extends through it from left to right. The portion of the first drive belt 175 behind the first drive pulley passes through the first drive belt mounting hole 141 and is fixed to the front side wall of the first drive belt mounting hole 141. The portion of the second drive belt 185 behind the second drive pulley passes through the second drive belt mounting hole 151 and is fixed to the front side wall of the second drive belt mounting hole 151. Both the first servo motor 171 and the second servo motor 181 are electrically connected to the control system.
[0023] Preferably, the integrated mobile spray gun cooling mechanism further includes a rear baffle 115, which passes through the first transmission belt mounting hole 141 and the second transmission belt mounting hole 151. The rear baffle 115 is located behind the first transmission belt 175 and the second transmission belt 185. The two ends of the rear baffle 115 are fixedly connected to the inner sidewall of the first motor mounting block 172 and the inner sidewall of the second motor mounting block 182, respectively.
[0024] Preferably, the two transverse slide rails are located above the first transmission belt 175 and below the second transmission belt 185, respectively.
[0025] When using this utility model's integrated spray gun cooling mobile mechanism, the zipper head to be processed is placed in a mesh container. The input end of the cooling nozzle 125 is connected to the output end of a cold air generator, and the output end of the cold air generator is equipped with an exhaust fan. The second servo motor 181 controls the cooling nozzle 125 to move to a designated position, and then sprays cold air into the zipper head in the container. After spraying for a designated time, the second servo motor 181 drives the cooling nozzle 125 to reset. Then, the first servo motor 171 drives the paint spray gun 120, which is connected to the air source and paint source, to move to a designated position. The up-and-down rotation drive motor 192 adjusts the up-and-down swing position of the paint spray gun 120, and the left-and-right swing position of the paint spray gun 120 is adjusted by the rotary cylinder 196. Thus, the paint spray gun 120 sprays paint onto the zipper head. After the spraying action is completed, the first servo motor 171 drives the paint spray gun 120 to reset.
[0026] This utility model features a mobile spray gun cooling system that automatically completes the spraying of cold air and the painting process, greatly improving the painting efficiency of zipper heads. The entire process requires no human intervention, effectively avoiding the harm to the human body caused by the chemical gases generated during the painting process.
[0027] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any way. Although the present utility model has been disclosed above with reference to a preferred embodiment, it is not intended to limit the present utility model. Any person skilled in the art can make some modifications or alterations to the above-described technical content to create equivalent embodiments without departing from the scope of the present utility model. Any simple modifications, equivalent changes, and alterations made to the above embodiments based on the technical essence of the present utility model without departing from the scope of the present utility model shall still fall within the scope of the present utility model.
Claims
1. A mobile mechanism integrating spray gun cooling, characterized in that: The system includes a horizontal slide block running left and right, a paint spray gun, a cooling nozzle, a spray gun vertical connecting column, a nozzle vertical connecting column, a spray gun horizontal slider, a nozzle horizontal slider, two horizontal slide rails, a spray gun horizontal drive assembly, a nozzle horizontal drive assembly, and a spray gun deflection assembly. The two horizontal slide rails are horizontally and alternately fixed to the rear wall of the horizontal slide block. The spray gun horizontal slider and the nozzle horizontal slider are both horizontally slidably engaged with the two horizontal slide rails. The upper end of the spray gun vertical connecting column is fixedly connected to the spray gun horizontal slider, and the lower end of the spray gun vertical connecting column is fixedly connected to the spray gun deflection assembly. The spray gun deflection... The output end of the rotating component is connected to the paint spray gun. The spray gun deflection component is used to drive the paint spray gun to rotate up and down or left and right. The nozzle of the paint spray gun faces downward and backward. The upper end of the vertical connecting column of the nozzle is fixedly connected to the horizontal slider of the nozzle. The lower end of the vertical connecting column of the nozzle is fixedly connected to the cooling nozzle. The output port of the cooling nozzle faces backward and downward. The horizontal drive component of the spray gun is installed on the horizontal slide and is used to drive the horizontal slider of the spray gun to move left and right. The horizontal drive component of the nozzle is installed on the horizontal slide and is used to drive the horizontal slider of the nozzle to move left and right.
2. The integrated mobile spray gun cooling mechanism according to claim 1, characterized in that: The spray gun deflection assembly includes a horizontal vertical rotating mounting base, a vertical rotating drive motor, a reducer steering gear, two vertical rotating swing arms, a left and right rotating mounting base, a rotary cylinder, and a spray gun connector. The front end of the vertical rotating mounting base is fixed to the lower end of the vertical connecting column of the spray gun. The reducer steering gear is fixedly mounted on the vertical rotating mounting base. The input interface of the reducer steering gear is located at the top of the reducer steering gear. Horizontal output shafts are respectively provided on the left and right side walls of the reducer steering gear. The vertical rotating drive motor is mounted on the top of the reducer steering gear, and the upper... The output shaft of the lower rotary drive motor extends downward and is inserted into the input interface of the reducer steering gear. The upper ends of the two upper and lower rotary swing arms are respectively fixedly connected to the corresponding output shafts. The lower ends of the two lower rotary swing arms are respectively fixedly connected to the upper end face of the left and right rotary mounting bases. A rotary cylinder mounting hole is provided in the middle of the left and right rotary mounting bases. The rotary cylinder is fixedly installed on the lower end face of the left and right rotary mounting bases. The output end of the rotary cylinder passes upward through the rotary cylinder mounting hole and is fixedly connected to one end of the spray gun connector. The other end of the spray gun connector is fixedly connected to the paint spray gun.
3. The integrated mobile spray gun cooling mechanism according to claim 1, characterized in that: The spray gun lateral drive assembly includes a first servo motor, a first motor mounting block, a first driving pulley, a first driven pulley, a first transmission belt, and a first driven pulley mounting seat. The nozzle lateral drive assembly includes a second servo motor, a second motor mounting block, a second driving pulley, a second driven pulley, a second transmission belt, and a second driven pulley mounting seat. The first motor mounting block is vertically and fixedly mounted on one side of the lateral slide. The first servo motor is fixedly mounted on the outer wall of the first motor mounting block. The output shaft of the first servo motor extends downward and connects to the first driving pulley. The first motor mounting block has two first conveyor belt holes on its front and rear sides corresponding to the first driving pulley. The second driven pulley mounting seat is fixedly mounted on the inner wall of the first motor mounting block below the first conveyor belt holes. The second motor mounting block is vertically and fixedly mounted on the other side of the lateral slide. The second servo motor is fixedly mounted on the outer wall of the second motor mounting block. The output shaft of the second servo motor extends downward and connects to the second driving pulley. The mounting block has two second conveyor belt holes on its front and rear sides corresponding to the second drive pulley. The first driven pulley mounting seat is fixedly installed on the inner side wall of the second motor mounting block above the second conveyor belt holes. The first driven pulley is horizontally rotatably mounted on the first driven pulley mounting seat. The first transmission belt passes through the two first conveyor belt holes and wraps around the first drive pulley and the first driven pulley. The second driven pulley is horizontally rotatably mounted on the second driven pulley mounting seat. The second transmission belt passes through the two second conveyor belt holes and wraps around the second drive pulley and the second driven pulley. The spray gun's transverse slider has a first transmission belt mounting hole that passes through it from left to right. The nozzle's transverse slider has a second transmission belt mounting hole that passes through it from left to right. The portion of the first transmission belt on the rear side of the first drive pulley passes through the first transmission belt mounting hole and is fixed to the front side wall of the first transmission belt mounting hole. The portion of the second transmission belt on the rear side of the second drive pulley passes through the second transmission belt mounting hole and is fixed to the front side wall of the second transmission belt mounting hole.
4. The integrated mobile spray gun cooling mechanism according to claim 3, characterized in that: It also includes a rear baffle, which passes through the first transmission belt mounting hole and the second transmission belt mounting hole. The rear baffle is located behind the first transmission belt and the second transmission belt, and both ends of the rear baffle are fixedly connected to the inner sidewall of the first motor mounting block and the inner sidewall of the second motor mounting block, respectively.
5. The integrated mobile spray gun cooling mechanism according to claim 3, characterized in that: The two transverse slide rails are located above the first transmission belt and below the second transmission belt, respectively.