Alternating conveying line body
By arranging alternatingly moving loading components and driving sources on both sides of the guide component, the problems of long conveyor line length and high energy consumption are solved, the compact design of the equipment and the reduction of energy consumption are achieved, thus reducing production costs.
Patent Information
- Application Number
- CN202422203670.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-09
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2034-09-09
AI Technical Summary
Existing conveyor line equipment is long, bulky, and consumes a lot of energy. It also requires robots to assist in loading and unloading, resulting in high production costs.
An alternating conveying line is designed by arranging a first and a second loading assembly on both sides of the width direction of the guide assembly, using the first and second driving sources to respectively drive the loading assembly to move along the length direction of the guide assembly, and using the third driving source to drive the material tray to rise and fall, thereby realizing the alternating movement and vertical staggering of the loading assembly, reducing the length of the equipment and energy consumption.
It shortens the length of the production line, reduces the total volume and energy consumption of the equipment, improves the utilization rate of the conveyor line, reduces the use of manipulators, and reduces production costs.
Smart Images

Figure CN223408816U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of workpiece conveying, in particular to an alternating conveying line. Background Art
[0002] During the production process, a workpiece needs to complete processing or inspection requirements at different workstations. A conveyor line is set between two adjacent workstations to assist in the transfer of workpieces between different workstations. The existing conveying method has the following defects: First, the conveying direction is single, resulting in a longer production line and a larger total equipment volume; Second, robots need to be configured at both ends of the conveyor line to assist in loading and unloading the workpiece, resulting in high energy consumption of the equipment and high production costs. The above shortcomings cannot meet production needs and need to be improved. Summary of the Invention
[0003] In order to overcome the shortcomings of the prior art such as long production lines, large equipment volume and energy consumption, the purpose of the present invention is to provide an alternating conveying line to shorten the production line while meeting the production requirements of reducing energy consumption.
[0004] In order to achieve the above purpose, the technical solution of the utility model is:
[0005] An alternating conveying line comprises a guide assembly, a first driving source, a second driving source, a first loading assembly and a second loading assembly;
[0006] The first material carrier assembly and the second material carrier assembly are respectively located on both sides of the guide assembly in the width direction, the first driving source drives the first material carrier assembly to move along the length direction of the guide assembly, and the second driving source drives the second material carrier assembly to move along the length direction of the guide assembly;
[0007] The first material loading assembly and the second material loading assembly both include a third driving source and a material tray, and the third driving source drives the material tray to rise and fall.
[0008] Furthermore, the guide assembly includes a bracket, a first guide rail and a second guide rail, the first guide rail and the second guide rail are both arranged on the bracket, the first driving source is arranged on the first guide rail, the first loading assembly is slidably connected to the first guide rail, the second driving source is arranged on the first guide rail, and the second loading assembly is slidably connected to the second guide rail.
[0009] Furthermore, the bracket is provided with a bottom plate and a partition plate, the partition plate is provided above the bottom plate, and the partition plate is located between the first guide rail and the second guide rail.
[0010] Furthermore, the first guide rail and the second guide rail both include an inner baffle, an outer baffle and a U-shaped slider, the inner baffle is connected to the partition, the inner baffle and the outer baffle are spaced apart, the U-shaped slider is located between the inner baffle and the outer baffle, and the third driving source is connected to the U-shaped slider.
[0011] Furthermore, the first loading assembly and the second loading assembly both include a mounting plate and a support plate, the mounting plate is connected to the U-shaped slider, the material tray is arranged on the support plate, and the third driving source is arranged on the mounting plate and drives the support plate to rise and fall.
[0012] Furthermore, there are two material trays, the two material trays are spaced apart, and both material trays are arranged on a support plate.
[0013] The beneficial effects of the present invention are as follows: by respectively arranging the first loading assembly and the second loading assembly on both sides of the width direction of the guide assembly, the first loading assembly and the second loading assembly move back and forth alternately, thereby improving the utilization rate of the conveying line and reducing the total length of the production equipment; the first loading assembly and the second loading assembly both include a third driving source and a material tray; the third driving source drives the material tray to rise and fall, thereby realizing that the material tray of the first loading assembly and the material tray of the second loading assembly slide in the vertical direction respectively, thereby achieving the purpose of conveying without affecting each other. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 It is a structural diagram of the utility model;
[0015] Figure 2 This is a schematic diagram of the split structure of the utility model;
[0016] Figure 3 This is a three-dimensional cross-sectional view of the bracket and the second guide rail of the present invention;
[0017] Figure 4 This is a schematic structural diagram of the bracket, second guide rail and second loading assembly of the present invention;
[0018] Figure 5 This is a cross-sectional view of the first guide rail structure of the present invention.
[0019] Reference numerals include:
[0020] 1—Guide assembly 10—Bracket 101—Base plate
[0021] 102 - partition 11 - first guide rail 12 - second guide rail
[0022] 1101—Inner baffle 1102—Outer baffle 1103—U-shaped slider
[0023] 21 - first driving source 22 - second driving source 31 - first loading assembly
[0024] 32 - second loading assembly 301 - third driving source 302 - tray
[0025] 303 - Mounting plate 304 - Support plate. DETAILED DESCRIPTION
[0026] In order to facilitate understanding by those skilled in the art, the present invention will be further described below with reference to embodiments and drawings. The contents mentioned in the embodiments are not intended to limit the present invention.
[0027] See also Figures 1 to 5 The utility model provides an alternating conveying line, comprising a guide assembly 1, a first driving source 21, a second driving source 22, a first loading assembly 31 and a second loading assembly 32;
[0028] The first loading assembly 31 and the second loading assembly 32 are respectively located on both sides of the width direction of the guide assembly 1. The first driving source 21 drives the first loading assembly 31 to move along the length direction of the guide assembly 1, and the second driving source 22 drives the second loading assembly 32 to move along the length direction of the guide assembly 1.
[0029] The first material loading assembly 31 and the second material loading assembly 32 both include a third driving source 301 and a material tray 302 . The third driving source 301 drives the material tray 302 to move up and down.
[0030] Specifically, in this embodiment, the guide assembly 1 is a linear structure, one end of the guide assembly 1 is close to the external workpiece detection position, and the other end of the guide assembly 1 is the loading and unloading position of the workpiece.
[0031] The first driving source 21 and the second driving source 22 are both located on the same side of the length direction of the guide component 1, the first loading component 31 and the second loading component 32 have the same structure, the first loading component 31 and the second loading component 32 are respectively located on both sides of the width direction of the guide component 1, the first driving source 21 drives the first loading component 31 to move back and forth along the length direction of the guide component 1, and the second driving source 22 drives the second loading component 32 to move back and forth along the length direction of the guide component 1. The working principle is as follows: the first loading component 31 waits for the workpiece to be loaded during loading and unloading of the guide component 1. After loading, the first driving source 21 drives the first loading component 31 to move along the guide component 1 to the workpiece detection position at the other end of the guide component 1. Synchronously, the second loading component 32 is on the upper and lower ends of the guide component 1 The loading and unloading positions wait for the workpiece to be loaded. When the first loading component 31 moves toward the loading and unloading positions of the guide component 1, the second loading component 32 carries the workpiece toward the workpiece detection position of the guide component 1, forming the first loading component 31 and the second loading component 32 alternating movements, completing the cycle of loading, transporting, detecting, returning and unloading the workpiece, improving the utilization rate of the guide component 1, and reducing the space occupancy of the conveyor line. Preferably, the third driving source 301 drives the material tray 302 to rise and fall, so that the material tray 302 of the first loading component 31 and the material tray 302 of the second loading component 32 are staggered in the height direction, that is, the material tray 302 of the first loading component 31 and the material tray 302 of the second loading component 32 are staggered with each other during the reciprocating motion, and do not affect each other, thereby ensuring smooth production.
[0032] By respectively arranging the first loading assembly 31 and the second loading assembly 32 on both sides of the width direction of the guide assembly 1, the first loading assembly 31 and the second loading assembly 32 move back and forth alternately, thereby improving the utilization rate of the conveying line and reducing the total length of the production equipment. The first loading assembly 31 and the second loading assembly 32 both include a third driving source 301 and a material tray 302. The third driving source 301 drives the material tray 302 to rise and fall, thereby realizing that the material tray 302 of the first loading assembly 31 and the material tray 302 of the second loading assembly 32 slide in the vertical direction respectively, thereby achieving the purpose of conveying without affecting each other.
[0033] The guide assembly 1 includes a bracket 10, a first guide rail 11 and a second guide rail 12. The first guide rail 11 and the second guide rail 12 are both arranged on the bracket 10. The first driving source 21 is arranged on the first guide rail 11. The first loading assembly 31 is slidably connected to the first guide rail 11. The second driving source 22 is arranged on the first guide rail 11. The second loading assembly 32 is slidably connected to the second guide rail 12. The first guide rail 11 and the second guide rail 12 have the same structure and the same working principle. The first driving source 21 is arranged on the first guide rail 11 and drives the first loading assembly 31 to slide along the first guide rail 11. The second driving source 22 is arranged on the second guide rail 12 and drives the second loading assembly 32 to slide along the second guide rail 12, which is convenient for independent assembly, inspection and maintenance, reduces the impact of external factors on production efficiency, and thus ensures smooth production.
[0034] The bracket 10 is provided with a bottom plate 101 and a partition 102. The partition 102 is provided above the bottom plate 101. The partition 102 is located between the first guide rail 11 and the second guide rail 12. The bottom plate 101 and the partition 102 form a T shape to increase the structural strength of the bracket 10. The first guide rail 11 and the second guide rail 12 are both connected to the partition 102.
[0035] The first guide rail 11 and the second guide rail 12 both include an inner baffle 1101, an outer baffle 1102 and a U-shaped slider 1103. The inner baffle 1101 is connected to the partition 102, and the inner baffle 1101 and the outer baffle 1102 are spaced apart. The U-shaped slider 1103 is located between the inner baffle 1101 and the outer baffle 1102. The third driving source 301 is connected to the U-shaped slider 1103. The inner baffle 1101 and the outer baffle 1102 are spaced apart and parallel to form a slide groove. The U-shaped slider 1103 slides in the slide groove to ensure the stability of the sliding direction of the U-shaped slider 1103, thereby ensuring the stability of the movement direction of the first loading component 31 and the second loading component 32. The structural setting of the inner baffle 1101 and the outer baffle 1102 being spaced apart and parallel to each other increases the structural emphasis of the first guide rail 11 and the second guide rail 12, thereby improving the service life and stability of the external workpiece transportation process.
[0036] The first loading assembly 31 and the second loading assembly 32 both include a mounting plate 303 and a support plate 304. The mounting plate 303 is connected to the U-shaped slider 1103. The material tray 302 is arranged on the support plate 304. The third driving source 301 is arranged on the mounting plate 303 and drives the support plate 304 to rise and fall. The mounting plate 303 and the U-shaped slider 1103 are connected by external screw connectors to fix the third driving source 301. At the same time, a guide rail is installed on the mounting plate 303, and a slide is installed on the support plate 304. The slide is slidably connected to the guide rail to further ensure the smoothness of the lifting process of the material tray 302.
[0037] There are two material trays 302 , which are spaced apart from each other. Both material trays 302 are located on a support plate 304 . The material trays 302 are provided with a plurality of suction holes, which are connected to an external negative pressure pump body to achieve the purpose of vacuum adsorption and fixation of external workpieces.
[0038] The above contents are only preferred embodiments of the present invention. For ordinary technicians in this field, according to the concept of the present invention, there may be changes in the specific implementation methods and application scope. The content of this specification should not be understood as limiting the present invention.
Claims
1. An alternating conveyor line, characterized in that: It comprises a guide assembly (1), a first driving source (21), a second driving source (22), a first material carrying assembly (31) and a second material carrying assembly (32); The first material carrier assembly (31) and the second material carrier assembly (32) are respectively located on both sides of the guide assembly (1) in a width direction; the first driving source (21) drives the first material carrier assembly (31) to move along the length direction of the guide assembly (1); and the second driving source (22) drives the second material carrier assembly (32) to move along the length direction of the guide assembly (1); The first material loading assembly (31) and the second material loading assembly (32) both comprise a third driving source (301) and a material tray (302), and the third driving source (301) drives the material tray (302) to rise and fall.
2. The alternating conveyor line according to claim 1, characterized in that: The guide assembly (1) includes a bracket (10), a first guide rail (11) and a second guide rail (12), wherein the first guide rail (11) and the second guide rail (12) are both arranged on the bracket (10), the first driving source (21) is arranged on the first guide rail (11), the first loading assembly (31) is slidably connected to the first guide rail (11), the second driving source (22) is arranged on the first guide rail (11), and the second loading assembly (32) is slidably connected to the second guide rail (12).
3. The alternating conveyor line according to claim 2, characterized in that: The bracket (10) is provided with a bottom plate (101) and a partition plate (102), wherein the partition plate (102) is provided above the bottom plate (101), and the partition plate (102) is located between the first guide rail (11) and the second guide rail (12).
4. The alternating conveyor line according to claim 2, characterized in that: The first guide rail (11) and the second guide rail (12) both comprise an inner baffle (1101), an outer baffle (1102) and a U-shaped slider (1103); the inner baffle (1101) is connected to the partition (102); the inner baffle (1101) and the outer baffle (1102) are spaced apart; the U-shaped slider (1103) is located between the inner baffle (1101) and the outer baffle (1102); and the third driving source (301) is connected to the U-shaped slider (1103).
5. The alternating conveying line according to claim 4, characterized in that: The first material loading assembly (31) and the second material loading assembly (32) both include a mounting plate (303) and a support plate (304); the mounting plate (303) is connected to the U-shaped slider (1103); the material tray (302) is arranged on the support plate (304); and the third driving source (301) is arranged on the mounting plate (303) and drives the support plate (304) to rise and fall.
6. The alternating conveying line according to claim 5, characterized in that: There are two material trays (302), the two material trays (302) are spaced apart, and both material trays (302) are arranged on a supporting plate (304).