Individual reed feeding device
By designing an individual loading device for steel reels, the crank slider mechanism is used to realize the quantitative conveying and loading of steel reels, which solves the problem of low quantitative loading efficiency during cleaning of steel reels, and improves the cleaning efficiency and accuracy.
Patent Information
- Application Number
- CN202422021515.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-20
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-08-20
AI Technical Summary
In the prior art, the quantitative loading efficiency of steel reeds is low during cleaning and cannot meet the demand for efficient production.
A steel reed individual feeding device is designed, including a base, feed rack, discharge guide, feeding drive assembly and crank slider mechanism. Through the feeding crank, the pushing rack is driven to slide back and forth along the rail, realizing the quantitative conveying and loading of a single steel reed.
The quantitative loading of steel reeds is achieved, cleaning efficiency and accuracy are improved, and the demand for efficient production is met.
Smart Images

Figure CN223175167U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of reeds, in particular to a reed individual feeding device. Background Art
[0002] In traditional textile equipment, a beating-up mechanism is usually adopted. The weft yarn newly introduced into the shed is still at a certain distance from the fell of the cloth. In order to weave a fabric with a certain weft density, the weft yarn needs to move towards the fell of the cloth under the push of the beating-up mechanism and interweave with the warp yarn. The reed is an essential component in textile equipment. In the actual use of the reed, due to the particularity of the working environment, the reed needs to be cleaned regularly. In order to ensure the accuracy of cleaning, it is necessary to control the amount of reeds during cleaning. However, due to the small size of the reeds, if manual measurement is used during cleaning and feeding, the efficiency is low, and the accuracy of the feeding quantity cannot be guaranteed, which cannot meet the requirements of high-efficiency production. Therefore, a reed individual feeding device is needed. Summary of the Utility Model
[0003] In view of the above-mentioned disadvantages of the prior art, the purpose of the present utility model is to provide a reed individual feeding device for solving the problem of quantitative feeding during the cleaning of reeds in the prior art.
[0004] To achieve the above object and other related objects, the present utility model provides the following technical solution: A reed individual feeding device, comprising:
[0005] A base platform, wherein a feeding driving assembly is arranged inside the base platform, a feeding rack is arranged on the upper side of the base platform, and a discharging guide platform is also arranged on the upper side of the base platform;
[0006] The feeding driving assembly includes a pushing rack, the pushing rack reciprocates along the discharging direction of the discharging guide platform, a material rail is arranged inside the base platform, the pushing rack is slidably connected to the material rail, a feeding crank is arranged on one side of the material rail, and a connecting rod is hinged between the feeding crank and the pushing rack to form a crank-slider mechanism.
[0007] By implementing the above technical solution, by arranging a feeding rack on the upper side of the base platform in cooperation with the feeding driving assembly, the reeds are conveyed to the discharging guide platform one by one to facilitate the quantitative processing of the reeds. By using the connecting rod hinged between the feeding crank and the pushing rack to form a crank-slider mechanism, the rotation of the feeding crank drives the pushing rack to reciprocate along the material rail, so as to realize the pushing rack to push a single reed into the discharging guide platform for subsequent quantitative loading processing.
[0008] In an embodiment of the present utility model, a reed bin is arranged inside the feeding rack, a sliding cavity is arranged between the bottom of the reed bin and the base platform, the height of the sliding cavity is greater than the thickness of a single reed and less than the thickness of two reeds.
[0009] To implement the above technical solution, by setting up a reed shed, the reeds are arranged flat in the reed shed. There is a sliding cavity between the bottom of the reed shed and the base table. The height of the sliding cavity is greater than the thickness of a single reed and less than the thickness of two reeds, so that a single reed can pass through. This ensures that each time during the reed feeding process, only a single reed is conveyed to the discharge guide table, facilitating the metering process of reed feeding.
[0010] In an embodiment of the present invention, a push rod is provided on the upper side of the pusher frame. The top of the push rod extends into the sliding cavity to push a single reed for feeding. The push rod is detachably connected to the pusher frame.
[0011] To implement the above technical solution, by providing a push rod on the upper side of the pusher frame and extending the top of the push rod into the sliding cavity to push a single reed for feeding, the push rod can better conform to the internal space size of the sliding cavity, thus ensuring the pushing stability of the reed.
[0012] In an embodiment of the present invention, a rod base is provided between the push rod and the pusher frame. The rod base is slidably connected to the pusher frame in a liftable manner. And a lift driving member is provided on the pusher frame to drive the rod base to move up and down.
[0013] To implement the above technical solution, by slidably connecting the rod base to the pusher frame in a liftable manner and using the lift driving member to drive the rod base to move up and down, the height of the push rod extending into the sliding cavity can be adjusted, improving the practicality of the equipment. The position of the push rod in the sliding cavity can be adjusted in time according to actual usage needs.
[0014] In an embodiment of the present invention, an anti-jump cabin is further provided at the discharge end of the discharge guide table. A downwardly inclined sliding table is provided under the anti-jump cabin. The anti-jump cabin facing the discharge guide table is sealed.
[0015] To implement the above technical solution, by sealing the anti-jump cabin facing the discharge guide table, it can prevent the reeds coming out of the discharge guide table from splashing out of the anti-jump cabin. By providing a downwardly inclined sliding table under the anti-jump cabin, it can play a guiding role for the reeds.
[0016] In an embodiment of the present invention, the sliding table is a U-shaped table.
[0017] To implement the above technical solution, it can enable the reeds to slide down smoothly from the sliding table, ensuring the stability of reed feeding.
[0018] In an embodiment of the present invention, two sets of material rails are provided. The feeding crank is arranged between the two sets of material rails. The connecting rod is connected to the middle position between the two sets of material rails of the pusher frame.
[0019] To implement the above technical solution, the feeding crank is arranged between two sets of material rails, which can ensure the convenience of installing the feeding crank. The connecting rod is connected to the middle position between the two sets of material rails of the pushing frame, improving the stability of the movement of the crank-slider mechanism.
[0020] As described above, a single reed feeding device of the present utility model has the following beneficial effects: by arranging a feeding frame on the upper side of the base and cooperating with a feeding driving component, the reeds are conveyed one by one to the discharging guide table to facilitate the quantitative treatment of the reeds. The crank-slider mechanism is formed by hinging a connecting rod between the feeding crank and the pushing frame. The rotation of the feeding crank drives the pushing frame to reciprocate along the material rail, so as to realize the pushing frame pushing a single reed into the discharging guide table for subsequent quantitative loading treatment. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 It shows a structural schematic diagram of the single reed feeding device disclosed in the embodiment of the present utility model.
[0022] Figure 2 It shows a structural schematic diagram of the feeding crank of the single reed feeding device disclosed in the embodiment of the present utility model.
[0023] Figure 3 It shows Figure 2 A partial enlarged view of the Chinese reference numeral A.
[0024] DESCRIPTION OF REFERENCE NUMERALS
[0025] 1. Base; 2. Feeding frame; 3. Discharging guide table; 4. Pushing frame; 5. Material rail; 6. Feeding crank; 7. Connecting rod; 8. Reed bin; 9. Sliding cavity; 10. Pushing rod; 11. Rod base; 12. Anti-jump bin; 13. Sliding material table; 14. Lifting driving member. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0026] The following specific embodiments illustrate the implementation manners of the present utility model. Those skilled in the art can easily understand other advantages and effects of the present utility model from the content disclosed in this specification. It should be noted that, without conflict, the following embodiments and the features in the embodiments can be combined with each other.
[0027] Please refer to Figures 1 to 3 , the present utility model provides a single reed feeding device, including a feeding driving component arranged in a base 1, a feeding frame 2 arranged on the upper side of the base 1, a discharging guide table 3 also arranged on the upper side of the base 1. The feeding driving component includes a pushing frame 4, the pushing frame 4 reciprocates along the discharging direction of the discharging guide table 3. A material rail 5 is arranged in the base 1, the pushing frame 4 is slidably connected to the material rail 5, a feeding crank 6 is arranged on one side of the material rail 5, and a connecting rod 7 is hinged between the feeding crank 6 and the pushing frame 4 to form a crank-slider mechanism.
[0028] By arranging a loading rack 2 on the upper side of the base 1 in cooperation with a loading driving component, the reed is conveyed to the discharging guide table 3 one by one, so as to facilitate the quantitative processing of the reed. A connecting rod 7 is hinged between the loading crank 6 and the pushing rack 4 to form a crank-slider mechanism. The rotation of the loading crank 6 drives the pushing rack 4 to reciprocate along the material track 5, so as to realize that the pushing rack 4 pushes a single reed into the discharging guide table 3 for subsequent quantitative loading processing.
[0029] A reed bin 8 is arranged in the loading rack 2. A sliding cavity 9 is arranged between the bottom of the reed bin 8 and the base 1. The height of the sliding cavity 9 is greater than the thickness of a single reed and less than the thickness of two reeds. By arranging the reed bin 8, the reeds are arranged flat in the reed bin 8. A sliding cavity 9 is arranged between the bottom of the reed bin 8 and the base 1. The height of the sliding cavity 9 is greater than the thickness of a single reed and less than the thickness of two reeds, so that a single reed can pass through. This ensures that each time a single reed is conveyed to the discharging guide table 3 during the reed loading process, thus facilitating the metering processing of the reed loading.
[0030] A pushing rod 10 is arranged on the upper side of the pushing rack 4. The top of the pushing rod 10 extends into the sliding cavity 9 to push a single reed for loading. The pushing rod 10 is detachably connected to the pushing rack 4. By arranging the pushing rod 10 on the upper side of the pushing rack 4 and extending the top of the pushing rod 10 into the sliding cavity 9 to push a single reed for loading, the pushing rod 10 can better conform to the internal space size of the sliding cavity 9, thus ensuring the pushing stability of the reed.
[0031] A rod base 11 is arranged between the pushing rod 10 and the pushing rack 4. The rod base 11 is slidably connected to the pushing rack 4 in a liftable manner. And a lifting driving member 14 is arranged on the pushing rack 4 to drive the rod base 11 to move up and down. By slidably connecting the rod base 11 to the pushing rack 4 in a liftable manner and using the lifting driving member 14 to drive the rod base 11 to move up and down, the height of the pushing rod 10 extending into the sliding cavity 9 is adjusted, improving the practicality of the equipment. The position of the pushing rod 10 in the sliding cavity 9 can be adjusted in time according to actual use needs.
[0032] An anti-jump bin 12 is further arranged at the discharging end of the discharging guide table 3. A downwardly inclined sliding table 13 is arranged below the anti-jump bin 12. The anti-jump bin 12 opposite to the discharging guide table 3 is sealed. By sealing the anti-jump bin 12 opposite to the discharging guide table 3, it can be avoided that the reed coming out of the discharging guide table 3 splashes out of the anti-jump bin 12. By arranging the downwardly inclined sliding table 13 below the anti-jump bin 12, it can play a guiding role for the reed.
[0033] The sliding table 13 is a U-shaped table, which can enable the reed to slide down smoothly from the sliding table 13, ensuring the stability of the reed loading.
[0034] There are two sets of material tracks 5. The feeding crank 6 is arranged between the two sets of material tracks 5. The connecting rod 7 is connected to the middle position between the two sets of material tracks 5 of the material pushing frame 4. Arranging the feeding crank 6 between the two sets of material tracks 5 can ensure the convenience of installing the feeding crank 6. Cooperating with the connecting rod 7 connected to the middle position between the two sets of material tracks 5 of the material pushing frame 4, the stability of the movement of the crank-slider mechanism can be improved.
[0035] In the utility model, by arranging a feeding frame on the upper side of the base and cooperating with a feeding driving component, the reed is conveyed to the discharging guide table one by one to facilitate the quantitative treatment of the reed. A connecting rod is hinged between the feeding crank and the material pushing frame to form a crank-slider mechanism. The rotation of the feeding crank drives the material pushing frame to reciprocate along the material track, so as to realize that the material pushing frame pushes a single reed into the discharging guide table for subsequent quantitative loading treatment.
[0036] The above embodiments are only illustrative of the principles and effects of the utility model, rather than limiting the utility model. All equivalent modifications or changes completed by those with ordinary knowledge in the technical field without departing from the spirit and technical ideas disclosed by the utility model should still be covered by the claims of the utility model.
Claims
1. A reed individual loading device, characterized in that Including: A base, in which a feeding driving assembly is provided. On the upper side of the base, a feeding rack is provided, and an unloading guide table is also provided on the upper side of the base. The feeding driving assembly includes a pushing rack which reciprocates along the unloading direction of the unloading guide table. A material rail is arranged in the base, and the pushing rack is slidably connected to the material rail. An upper feeding crank is arranged on one side of the material rail, and a connecting rod is hinged between the upper feeding crank and the pushing rack to form a crank-slider mechanism.
2. The reed individual feeding device according to claim 1, wherein: A reed cabin is arranged in the feeding rack. A sliding cavity is arranged between the bottom of the reed cabin and the base. The height of the sliding cavity is greater than the thickness of a single reed and less than the thickness of two reeds.
3. The reed individual feeding device according to claim 1, characterized in that: A pushing rod is arranged on the upper side of the pushing rack, and the top of the pushing rod extends into the sliding cavity to push a single reed for feeding. The pushing rod is detachably connected to the pushing rack.
4. The reed individual feeding device according to claim 3, wherein: A rod base is arranged between the pushing rod and the pushing rack. The rod base is slidably connected to the pushing rack in a liftable manner, and a lifting driving member is arranged on the pushing rack to drive the rod base to move up and down.
5. The reed individual feeding device according to claim 1, characterized in that: An anti-jump cabin is also arranged at the unloading end of the unloading guide table. A downward-sloping material sliding table is arranged on the lower side of the anti-jump cabin, and the anti-jump cabin opposite to the unloading guide table is sealed.
6. The reed individual feeding device according to claim 5, characterized in that: The material sliding table is a U-shaped table.
7. The reed individual feeding device according to claim 1, characterized in that: Two groups of material rails are arranged. The upper feeding crank is arranged between the two groups of material rails, and the connecting rod is connected to the middle position between the two groups of material rails of the pushing rack.