Reed tooth barrel grinding particle filling system
By designing the reed tooth bucket grinding particle filling system, using components such as conveyor rack, quantitative hopper and guide hopper, the precise filling of abrasives in the reed tooth bucket is achieved, solving the problems of low manual filling efficiency and poor accuracy, and improving the uniformity and stability of reed tooth cleaning.
Patent Information
- Application Number
- CN202422321854.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-24
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-09-24
AI Technical Summary
In the prior art, when the reed teeth are cleaned in textile equipment, the artificial filling and grinding liquid has low efficiency and poor accuracy, making it difficult to ensure the smoothness and cleaning effect of the reed teeth surface.
A reed bucket grinding particle filling system is designed to convey the reed bucket through the conveyor rack on the rack, and the precise filling of abrasives is achieved using a quantitative hopper and a guide hopper. Combined with a vibrating feed rack and telescopic drive parts, it ensures the quantitative and stable delivery of abrasives in the reed bucket.
The precise filling of abrasives in the reed bucket is achieved, ensuring the unity and efficiency of subsequent cleaning, and improving the smoothness and stability of the surface cleaning of reed teeth.
Smart Images

Figure CN223174361U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of reeds, in particular to a grinding particle filling system for reed buckets. 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 be pushed by the beating-up mechanism to move towards the fell of the cloth and interweave with the warp yarn. The reed is an essential component in textile equipment. When in use, the surface of the reed teeth needs to be kept smooth enough to ensure the stability of its operation. After the reed teeth are used for a period of time, various impurities will remain on their surfaces. In order to better maintain the recycling of the reed teeth, it is necessary to clean the impurities remaining on the surface of the reed teeth, so as to ensure the smoothness of the reed teeth during use. When cleaning, the reed teeth and the grinding liquid often need to be jointly loaded into the reed bucket for ultrasonic cleaning. However, the manual filling method has too low efficiency and poor filling accuracy, and is not easy to control. Therefore, a grinding particle filling system for reed buckets 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 grinding particle filling system for reed buckets, which is used to solve the problem of filling reed teeth and grinding liquid into the reed bucket in the prior art.
[0004] To achieve the above purpose and other related purposes, the present utility model provides the following technical solutions: A grinding particle filling system for reed buckets, comprising:
[0005] A frame, on the upper side of which a conveying frame is configured to convey the reed bucket into the filling working surface;
[0006] A reed tooth frame, which is arranged on one side of the conveying frame and conveys reed teeth into the reed bucket;
[0007] A loading frame, which is arranged on one side of the reed tooth frame along the conveying direction of the conveying frame. A quantitative hopper and a guiding hopper are arranged on the loading frame. The guiding hopper is arranged at the output end of the quantitative hopper, and the output end of the guiding hopper faces the reed bucket on the conveying frame, and grouting material is poured into the reed bucket.
[0008] To implement the above technical solution, a conveying rack is arranged on the upper side of the rack, and the reed bucket is conveyed into the filling working surface by the conveying rack for filling treatment. After the reed bucket enters the front side of the conveying rack, the reed rack conveys reeds into the reed bucket. After the reed bucket is filled with a fixed quantity of reeds, the conveying rack conveys the reed bucket into the working surface for loading abrasive, and the guiding hopper pours abrasive into the reed bucket to facilitate subsequent reed cleaning. The quantity of abrasive is controlled by a quantitative hopper to ensure the accuracy of abrasive filling in each reed bucket, thereby ensuring the uniformity of subsequent grinding and cleaning.
[0009] In an embodiment of the present invention, a measuring hopper is arranged between the bottom of the quantitative hopper and the guiding hopper. A material plate is arranged at the bottom of the measuring hopper, and a material plate driving member is arranged on one side of the measuring hopper to control the opening or closing of the bottom of the measuring hopper by the material plate.
[0010] To implement the above technical solution, by arranging the measuring hopper, the abrasive about to enter the reed bucket can be quantitatively processed. The material plate driving member is used to control the opening or closing of the bottom of the measuring hopper, and the abrasive that reaches the quantitative requirement in the measuring hopper is released into the guiding hopper.
[0011] In an embodiment of the present invention, a guiding chute is further arranged between the bottom of the quantitative hopper and the measuring hopper. The width of the guiding chute gradually decreases towards the side close to the measuring hopper, and the width dimension of the guiding chute above the measuring hopper is smaller than the width dimension of the upper opening of the measuring hopper.
[0012] To implement the above technical solution, the arrangement of the guiding chute can guide the abrasive flowing out of the quantitative hopper, so that the abrasive can completely flow into the measuring hopper. And making the width dimension of the guiding chute above the measuring hopper smaller than the width dimension of the upper opening of the measuring hopper can enable the abrasive to completely flow into the measuring hopper.
[0013] In an embodiment of the present invention, a vibrating feeding rack is arranged at the bottom of the guiding chute.
[0014] To implement the above technical solution, in order to ensure the stability and reliability of the abrasive conveying in the guiding chute, the guiding chute is vibrated and fed by the vibrating feeding rack.
[0015] In an embodiment of the present invention, a shock-absorbing base is further arranged between the lower side of the measuring hopper and the loading rack. An L-shaped support plate is arranged between the measuring hopper and the shock-absorbing base, and a connecting plate is arranged inside the L-shaped support plate to connect between the inner wall of the L-shaped support plate and the measuring hopper.
[0016] To implement the above technical solution, in order to enable the abrasive in the hopper to flow out smoothly from the bottom of the hopper under the action of gravity, the hopper needs to be designed with an inclined bottom. However, after the bottom of the hopper is set as an inclined plane, it is necessary to maintain the support stability of the hopper. This requires setting an L-shaped support plate between the hopper and the shock-absorbing base. By setting a connecting plate in the L-shaped support plate and connecting it between the inner wall of the L-shaped support plate and the hopper, the L-shaped support plate can better support the bottom of the hopper and ensure the support stability of the hopper.
[0017] In an embodiment of the present utility model, a bucket stop rod is provided on the conveying frame on the opposite side of the loading frame. A conveyor belt is arranged inside the conveying frame, and a telescopic driving member is arranged outside the conveying frame to drive the bucket stop rod to move telescopically on the conveying frame perpendicular to the conveying direction of the conveyor belt.
[0018] To implement the above technical solution, in order to enable the reed tooth bucket to stably receive the abrasive during the conveying process, it is necessary for the reed tooth bucket to temporarily stop under the guiding hopper during the filling of the abrasive to complete the filling action of the abrasive. By providing a bucket stop rod on the conveying frame on the opposite side of the loading frame and using a telescopic driving member to drive the bucket stop rod to move telescopically on the conveying frame perpendicular to the conveying direction of the conveyor belt, when the reed tooth bucket is conveyed to the filling working surface of the abrasive, the bucket stop rod extends to prevent the reed tooth bucket from continuing to move with the conveyor belt. After the filling of the abrasive is completed, the bucket stop rod retracts, enabling the reed tooth bucket to continue to move with the conveyor belt.
[0019] As described above, a reed tooth bucket abrasive particle filling system of the present utility model has the following beneficial effects: By configuring a conveying frame on the upper side of the machine frame and using the conveying frame to convey the reed tooth bucket into the filling working surface for filling treatment. After the reed tooth bucket enters the front side of the conveying frame, the reed tooth frame conveys reeds into the reed tooth bucket. After the reed tooth bucket is filled with a fixed amount of reeds, the conveying frame then conveys the reed tooth bucket to the working surface for filling the abrasive, and the guiding hopper fills the abrasive into the reed tooth bucket to facilitate subsequent reed cleaning. By controlling the amount of the abrasive through a quantitative hopper, the accuracy of filling the abrasive in each reed tooth bucket is ensured, thereby ensuring the uniformity of subsequent grinding and cleaning. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 It shows a schematic structural diagram of a reed tooth bucket abrasive particle filling system disclosed in an embodiment of the present utility model.
[0021] Figure 2 It shows a schematic structural diagram of a reed tooth bucket of a reed tooth bucket abrasive particle filling system disclosed in an embodiment of the present utility model.
[0022] Figure 3 It shows as Figure 2 A partial enlarged view of reference numeral A in the figure.
[0023] Figure 4 It shows a schematic structural diagram of the loading rack of the reed tooth barrel grinding particle filling system disclosed in the embodiment of the present invention.
[0024] Description of component labels
[0025] 1. Frame; 2. Conveyor rack; 3. Reed tooth barrel; 4. Reed tooth rack; 5. Loading rack; 6. Quantitative hopper; 7. Guiding hopper; 8. Measuring hopper; 9. Material plate; 10. Material plate driving member; 11. Material guiding groove; 12. Vibration feeding rack; 13. Shock-absorbing base; 14. L-shaped support plate; 15. Barrel baffle for reed teeth; 16. Telescopic driving member. Specific embodiments
[0026] The following specific embodiments illustrate the implementation manners of the present invention. Those skilled in the art can easily understand other advantages and effects of the present invention 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 4 , the present invention provides a reed tooth barrel grinding particle filling system, including a conveyor rack 2 disposed on the upper side of a frame 1 to convey a reed tooth barrel 3 into a filling working surface. A reed tooth rack 4 is disposed on one side of the conveyor rack 2, and the reed tooth rack 4 conveys reed teeth into the reed tooth barrel 3. A loading rack 5 is disposed on one side of the reed tooth rack 4 along the conveying direction of the conveyor rack 2. A quantitative hopper 6 and a guiding hopper 7 are provided on the loading rack 5. The guiding hopper 7 is disposed at the output end of the quantitative hopper 6, and the output end of the guiding hopper 7 faces the reed tooth barrel 3 on the conveyor rack 2, and grinding material is poured into the reed tooth barrel 3.
[0028] By disposing a conveyor rack 2 on the upper side of the frame 1 and using the conveyor rack 2 to convey the reed tooth barrel 3 into the filling working surface for filling treatment. After the reed tooth barrel 3 enters the front side of the conveyor rack 2, the reed tooth rack 4 conveys reed teeth into the reed tooth barrel 3. After the reed tooth barrel 3 is filled with a certain amount of reed teeth, the conveyor rack 2 conveys the reed tooth barrel 3 to the working surface for loading abrasive, and the guiding hopper 7 pours grinding material into the reed tooth barrel 3 to facilitate subsequent cleaning of the reed teeth. The amount of grinding material is controlled by the quantitative hopper 6 to ensure the accuracy of the grinding material filling in each reed tooth barrel 3, so as to ensure the uniformity of subsequent grinding and cleaning.
[0029] A measuring hopper 8 is disposed between the bottom of the quantitative hopper 6 and the guiding hopper 7. A material plate 9 is disposed at the bottom of the measuring hopper 8, and a material plate driving member 10 is disposed on one side of the measuring hopper 8 to control the opening or closing of the bottom of the measuring hopper 8 by the material plate 9. By providing the measuring hopper 8, the grinding material about to enter the reed tooth barrel 3 can be quantitatively processed, and the material plate driving member 10 is used to control the opening or closing of the bottom of the measuring hopper 8 by the material plate 9, and the grinding material that reaches the quantitative requirement in the measuring hopper 8 is discharged into the guiding hopper 7.
[0030] A material guiding groove 11 is also provided between the bottom of the quantitative hopper 6 and the hopper 8. The width of the material guiding groove 11 gradually decreases towards the side close to the hopper 8. Moreover, the width dimension of the material guiding groove 11 above the hopper 8 is smaller than the width dimension of the upper opening of the hopper 8. The setting of the material guiding groove 11 can guide the abrasive flowing out of the quantitative hopper 6, so that the abrasive can completely flow into the hopper 8. And making the width dimension of the material guiding groove 11 above the hopper 8 smaller than the width dimension of the upper opening of the hopper 8 can enable the abrasive to completely flow into the hopper 8.
[0031] A vibrating feeding rack 12 is arranged at the bottom of the material guiding groove 11. In order to ensure the stability and reliability of the transportation of the abrasive in the material guiding groove 11, the vibrating feeding rack 12 is used to vibrate and feed the material guiding groove 11.
[0032] A shock-absorbing base 13 is also provided between the lower side of the hopper 8 and the loading rack 5. An L-shaped support plate 14 is arranged between the hopper 8 and the shock-absorbing base 13. And a connecting plate is arranged inside the L-shaped support plate 14 to connect between the inner wall of the L-shaped support plate 14 and the hopper 8. In order to enable the abrasive in the hopper 8 to smoothly flow out from below the hopper 8 under the action of gravity, the hopper 8 needs to be designed with an inclined bottom. However, after the bottom of the hopper 8 is set to be inclined, it is necessary to maintain the support stability of the hopper 8. This requires an L-shaped support plate 14 to be arranged between the hopper 8 and the shock-absorbing base 13. By arranging a connecting plate inside the L-shaped support plate 14 to connect between the inner wall of the L-shaped support plate 14 and the hopper 8, the L-shaped support plate 14 can better support the bottom of the hopper 8 and ensure the support stability of the hopper 8.
[0033] A material bucket stop rod 15 is arranged on the conveying rack 2 on the opposite side of the loading rack 5. A conveyor belt is arranged inside the conveying rack 2, and a telescopic driving member 16 is arranged outside the conveying rack 2 to drive the material bucket stop rod 15 to move telescopically on the conveying rack 2 perpendicular to the conveying direction of the conveyor belt. In order to enable the reed tooth bucket 3 to stably receive the abrasive during the conveying process, it is necessary for the reed tooth bucket 3 to temporarily stop below the guiding hopper 7 when filling the abrasive, so as to complete the abrasive filling action. By arranging a material bucket stop rod 15 on the conveying rack 2 on the opposite side of the loading rack 5 and using the telescopic driving member 16 to drive the material bucket stop rod 15 to move telescopically on the conveying rack 2 perpendicular to the conveying direction of the conveyor belt, when the reed tooth bucket 3 is conveyed to the working surface for filling the abrasive, the material bucket stop rod 15 extends to prevent the reed tooth bucket 3 from continuing to move with the conveyor belt. When the abrasive filling is completed, the material bucket stop rod 15 retracts, enabling the reed tooth bucket 3 to continue to move with the conveyor belt.
[0034] In the present utility model, a conveying rack is configured on the upper side of the rack. The reed bucket is conveyed into the filling working surface by the conveying rack for filling treatment. After the reed bucket enters the front side of the conveying rack, the reed rack conveys reeds into the reed bucket. After the reed bucket is filled with a fixed quantity of reeds, the conveying rack conveys the reed bucket into the working surface for loading abrasive. The abrasive is poured into the reed bucket by the guiding hopper to facilitate subsequent reed cleaning. The quantity of the abrasive is controlled by the metering hopper to ensure the accuracy of the abrasive filling in each reed bucket, thereby ensuring the uniformity of subsequent grinding and cleaning.
[0035] The above embodiments are only illustrative of the principles and effects of the present utility model, rather than limiting the present 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 present utility model should still be covered by the claims of the present utility model.
Claims
1. A reed tooth barrel grinding particle filling system, characterized in that Comprising: A frame, on the upper side of which a conveying frame is arranged to convey the reed tooth barrel into the filling working surface; A reed tooth frame, which is arranged on one side of the conveying frame and conveys reed teeth into the reed tooth barrel; A loading frame, which is arranged on one side of the reed tooth frame along the conveying direction of the conveying frame. A quantitative hopper and a guiding hopper are arranged on the loading frame. The guiding hopper is arranged at the output end of the quantitative hopper, and the output end of the guiding hopper faces the reed tooth barrel on the conveying frame, and abrasive is poured into the reed tooth barrel.
2. The reed tooth barrel grinding particle filling system according to claim 1, wherein: A measuring hopper is arranged between the bottom of the quantitative hopper and the guiding hopper. A material plate is arranged at the bottom of the measuring hopper, and a material plate driving part is arranged on one side of the measuring hopper to control the opening or closing of the bottom of the measuring hopper by the material plate.
3. The reed tooth barrel grinding particle filling system according to claim 1, characterized in that: A material guiding groove is further arranged between the bottom of the quantitative hopper and the measuring hopper. The width of the material guiding groove gradually decreases towards the side close to the measuring hopper, and the width dimension of the material guiding groove above the measuring hopper is smaller than the width dimension of the upper opening of the measuring hopper.
4. The reed tooth barrel grinding particle filling system according to claim 3, characterized in that: A vibrating feeding frame is arranged at the bottom of the material guiding groove.
5. The reed tooth barrel grinding particle filling system according to claim 2, characterized in that: A shock-absorbing base is further arranged between the lower side of the measuring hopper and the loading frame. An L-shaped support plate is arranged between the measuring hopper and the shock-absorbing base, and a connecting plate is arranged inside the L-shaped support plate to connect between the inner wall of the L-shaped support plate and the measuring hopper.
6. The reed tooth barrel grinding particle filling system according to claim 1, wherein: A material barrel stop rod is arranged on the conveying frame on the opposite side of the loading frame. A conveyor belt is arranged inside the conveying frame, and a telescopic driving part is arranged outside the conveying frame to drive the material barrel stop rod to move telescopically on the conveying frame perpendicular to the conveying direction of the conveyor belt.