Vacuum belt conveying platform with antifriction positive pressure gas film
By setting a positive compressed air groove on the support plate to form a friction-reducing air film, the problem of large friction between the belt and the support plate in the vacuum belt mechanism is solved, the belt life is extended, energy consumption is reduced, and the stability and efficiency of the conveying platform are improved.
Patent Information
- Application Number
- CN202422791528.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-15
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2034-11-15
AI Technical Summary
In the existing vacuum belt mechanism, the friction between the belt and the support plate is large, resulting in increased belt wear, increased power consumption, and unstable conveying.
A positive compressed air groove is provided on the support plate, connected to the positive compressed air source, and a friction reducing air film is formed to reduce the friction between the belt and the support plate.
It significantly reduces the friction between the belt and the support plate, extends the service life of the belt, reduces energy consumption, and improves the stability and efficiency of the conveying platform.
Smart Images

Figure CN223279874U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of printing adsorption equipment, and in particular relates to a vacuum belt conveying platform with a friction-reducing positive pressure air film. Background Art
[0002] A vacuum belt mechanism is a device used to move print media through the print zone at high speed. Conventional vacuum belt mechanisms typically include an endless belt stretched between a first roller positioned upstream of the print zone and a second roller positioned downstream of the print zone. The printhead assembly is positioned above the upper surface of the belt, while a vacuum blower is positioned below the belt to draw the print media onto the upper surface.
[0003] For example, the utility model patent application with authorization publication number CN108016832A discloses a vacuum mechanism within a tray conveyor for a printing system, comprising: a track (belt); a tray for supporting a printing substrate and moving on the track; and a vacuum mechanism for selectively applying vacuum at the tray so that the limit of the vacuum applied at the tray is synchronized with the edge of the printing substrate.
[0004] The setting of the vacuum mechanism requires a support plate to be installed under the upper belt, and a negative pressure channel to be opened on the support plate for connecting to the negative pressure air source. To ensure the effectiveness of adsorption, the support plate needs to be as close to the upper belt as possible. However, when the parts to be printed are placed on the belt, the belt is likely to contact the support plate due to the dual effects of gravity and adsorption force, resulting in greater friction between the belt and the support plate, which in turn causes problems such as increased belt wear, increased power consumption, and unstable transportation. Utility Model Content
[0005] The purpose of the utility model is to provide a vacuum belt conveyor platform with a friction-reducing positive pressure air film to solve the problems of existing vacuum belt mechanisms such as large friction between the belt and the support plate, increased belt wear, large power consumption, and unstable conveying.
[0006] In order to achieve the above purpose, the technical solution of the utility model is as follows:
[0007] The utility model relates to a vacuum belt conveyor platform with a friction-reducing positive-pressure air film, which comprises two rollers and a belt, wherein the two ends of the belt are respectively tensioned and connected to the two rollers, and air holes are arranged at intervals on the belt, and a support plate is provided below the upper belt, and a negative-pressure air groove is provided on the support plate, which is connected to a negative-pressure air source and is used to provide adsorption negative pressure to the air holes of the belt, and a positive-pressure air groove is also provided on the support plate, which is connected to a positive-pressure air source and is used to form a friction-reducing air film between the upper belt and the support plate.
[0008] Preferably, the positive pressure air tanks are provided in multiple groups, each group of positive pressure air tanks includes multiple positive pressure air tanks, and the negative pressure air tanks are provided between two adjacent groups of positive pressure air tanks.
[0009] Preferably, the multiple positive pressure gas grooves in the same group of positive pressure gas grooves are distributed in a symmetrical structure, and the width of each positive pressure gas groove gradually decreases from the middle to both sides according to the distribution position.
[0010] Preferably, the width of the negative pressure air slot is greater than the width of any positive pressure air slot.
[0011] Preferably, a pressure sensor and a control valve are provided at the notch of the positive pressure gas tank, the pressure sensor is used to detect the pressure in the positive pressure gas tank, and the control valve is used to adjust the pressure in the positive pressure gas tank.
[0012] Compared with the prior art, the technical solution provided by this utility model has the following beneficial effects:
[0013] The utility model relates to a vacuum belt conveyor platform with a friction-reducing positive-pressure air film. On the basis of a traditional vacuum belt mechanism, a positive-pressure air groove is provided on a support plate. The positive-pressure air groove is connected to a positive-pressure air source and is used to form a friction-reducing air film between the upper belt and the support plate. That is, a positive-pressure system is added. When the positive-pressure air source is turned on, compressed air enters the space between the belt and the support plate through the air groove to form a friction-reducing air film, which significantly reduces the friction between the belt and the support plate, increases the service life of the belt, reduces energy consumption, improves the conveying efficiency, and improves the stability and reliability of the system. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 This is a structural diagram of a vacuum belt conveyor platform with a friction-reducing positive pressure air film involved in the utility model;
[0015] Figure 2 It is a partial cross-sectional view of the support plate and the belt;
[0016] Figure 3 Schematic diagram of the principle of friction-reducing air film formation.
[0017] Figure numerals: 1- roller, 2- belt, 3- air vent, 4- support plate, 5- negative pressure air groove, 6- positive pressure air groove, 7- friction reducing air film, 8- negative pressure air source, 9- positive pressure air source. DETAILED DESCRIPTION
[0018] In order to further understand the content of the present invention, the present invention is described in detail in conjunction with embodiments. The following embodiments are used to illustrate the present invention but are not used to limit the scope of the present invention.
[0019] Refer to the attached Figure 1 and attached Figure 2 As shown, the utility model relates to a vacuum belt conveyor platform with a friction-reducing positive pressure air film, including two rollers 1 and a belt 2, one of the rollers 1 being a power roller and the other roller 1 being a driven roller. The two ends of the belt 2 are respectively tensioned and connected to the two rollers 1, and air holes 3 are arranged at intervals on the belt 1. A support plate 4 is provided below the upper belt, and a negative pressure air groove 5 is provided on the support plate 4. The negative pressure air groove 5 is connected to a negative pressure air source 8 for providing adsorption negative pressure to the air holes of the belt 2. A positive pressure air groove 6 is also provided on the support plate 4, and the positive pressure air groove 6 is connected to a positive pressure air source 9 for forming a friction-reducing air film 7 between the upper belt 2 and the support plate 4; the negative pressure air source 8 and the positive pressure air source 9 can be fixed on the bottom surface of the support plate 4, or an external air source can be used and connected to the negative pressure air groove 5 and the positive pressure air groove 6 respectively through gas channels.
[0020] Refer to the attached Figure 2 As shown, the positive-pressure air grooves 6 are arranged in multiple groups, each group of positive-pressure air grooves 6 includes multiple positive-pressure air grooves 6, and the negative-pressure air grooves 5 are arranged between two adjacent groups of positive-pressure air grooves; the multiple positive-pressure air grooves 6 in the same group of positive-pressure air grooves 6 are distributed in a symmetrical structure, and the width of each positive-pressure air groove 6 gradually decreases from the middle to both sides according to the distribution position; the width of the negative-pressure air grooves 6 is greater than the width of any one of the positive-pressure air grooves 5, and the width of the negative-pressure air grooves 5 is the same as the width of the air vents 3.
[0021] A pressure sensor and a control valve are provided at the notch of the positive pressure gas groove 6 . The pressure sensor is used to detect the pressure in the positive pressure gas groove 6 , and the control valve is used to adjust the pressure in the positive pressure gas groove 6 .
[0022] Refer to the attached Figure 3 As shown, the operation method of the vacuum belt conveyor platform with a friction-reducing positive pressure air film includes: starting the roller 1 to drive the belt 2 to operate, thereby driving the transportation of the components on the belt 2; starting the negative pressure air source 8, and the negative pressure air source 8 provides an adsorption negative pressure to the air vents 5 of the belt 2 through the negative pressure air groove 5, which is used to vacuum adsorb the components on the belt 2; at the same time, starting the positive pressure air source 9, and the positive pressure air source 9 forms a friction-reducing air film 7 between the upper belt 2 and the support plate 4 through the positive pressure air groove 6. The friction-reducing air film 7 is used to reduce the friction between the belt 2 and the support plate 4, thereby increasing the service life of the belt 2, reducing energy consumption, improving the conveying efficiency, and improving the stability and reliability of the system. In the process of providing positive pressure, the pressure sensor detects the pressure in the positive pressure air groove 6, and the control valve adjusts the pressure in the positive pressure air groove based on the deviation between the actual pressure value in the positive pressure air groove 6 and the design pressure value, that is, adjusts the output of the positive pressure air source 9. The design pressure value of the so-called positive pressure air groove 6 should be able to form a friction-reducing air film 7 of uniform thickness between the belt 2 and the support plate 4, and avoid the positive pressure provided by the positive pressure air groove 6 blowing up the components when the air vent moves to the position of the positive pressure air groove 6.
[0023] The above describes the present invention in detail with reference to the embodiments. However, the above contents are only preferred embodiments of the present invention and should not be considered as limiting the scope of implementation of the present invention. All equivalent changes and improvements made within the scope of the present invention should still fall within the scope of the patent application of the present invention.
Claims
1. A vacuum belt conveyor platform with a friction-reducing positive pressure air film, comprising two rollers and a belt, with both ends of the belt tensioned and connected to the two rollers, the belt having air holes spaced apart, a support plate provided below the upper belt, the support plate having a negative pressure air groove connected to a negative pressure air source for providing adsorption negative pressure to the air holes of the belt, characterized in that: The support plate is also provided with a positive pressure air groove, which is connected to a positive pressure air source and is used to form a friction-reducing air film between the upper belt and the support plate.
2. The vacuum belt conveyor platform with anti-friction positive pressure air film according to claim 1, characterized in that: The positive pressure air tanks are arranged in multiple groups, each group of positive pressure air tanks includes multiple positive pressure air tanks, and the negative pressure air tanks are arranged between two adjacent groups of positive pressure air tanks.
3. The vacuum belt conveyor platform with anti-friction positive pressure air film according to claim 2, characterized in that: The multiple positive pressure gas grooves in the same group of positive pressure gas grooves are distributed in a symmetrical structure, and the width of each positive pressure gas groove gradually decreases from the middle to both sides according to the distribution position.
4. The vacuum belt conveyor platform with anti-friction positive pressure air film according to claim 1, characterized in that: The width of the negative pressure air slot is greater than the width of any positive pressure air slot.
5. The vacuum belt conveyor platform with anti-friction positive pressure air film according to claim 1, characterized in that: A pressure sensor and a control valve are provided at the notch of the positive pressure gas tank. The pressure sensor is used to detect the pressure in the positive pressure gas tank, and the control valve is used to adjust the pressure in the positive pressure gas tank.
Citation Information
Patent Citations
Vacuum within a pallet conveyor for a printing system
CN108016832A