Material distribution device feed opening structure, material distribution trolley and material distribution production line

By setting up an adjustment mechanism on the kiln head bin to change the position of the material falling into the kiln head bin, the problem of unsmooth discharge of the kiln head bin is solved, and uniform feeding is achieved and product pass rate is improved.

CN222938228UActive Publication Date: 2025-06-03TUNGHSU AZURE RENEWABLE ENERGY CO LTD
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Patent Information

Application Number
CN202422065860.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-23
Publication Date
2025-06-03
Estimated Expiration
2034-08-23

AI Technical Summary

Technical Problem

The inclination angles of the silo walls on both sides of the kiln head silo are different, resulting in unsmooth discharge, prone to mixing retention, funnel flow or arch flow, which in turn affects the normal operation of the kiln feeder.

Method used

A cloth device is designed to cut the outlet structure, and the position of material falling into the kiln head bin is adjusted by setting up an adjustment mechanism, including a baffle and a lining plate, so that the material falls more on the steeper second blanking surface, and reduce the accumulation of material on the slower first blanking surface.

Benefits of technology

It effectively avoids the formation of funnel flow or arch flow in the kiln head bin, reduces the situation of blockage and unsmooth feeding, ensures uniform feeding, reduces the need for manual cleaning, and improves the product's pass rate and feeding efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a material distribution device, and discloses a material distribution device feed opening structure which is used for being arranged above a kiln head bin, the kiln head bin forms a first blanking face and a second blanking face which are oppositely arranged, the included angle between the first blanking face and the vertical direction is larger than the included angle between the second blanking face and the vertical direction, and the material distribution device feed opening structure comprises a feed opening, the discharging opening is used for conveying materials to the kiln head bin through the material distributing device. The adjusting mechanism is arranged below the discharging opening so that the materials can be guided to fall to the side where the second falling face is located. The utility model further discloses a material distributing vehicle and a material distributing production line, the material discharging opening structure of the material distributing device can guarantee constant-speed feeding, the material blocking frequency is reduced, the situation that the product percent of pass is reduced due to the fact that blocked materials are not cleared away in time when being manually cleared away is avoided, time and labor are saved, and the feeding efficiency and the product percent of pass are improved.
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Description

Technical Field

[0001] The present disclosure relates to a cloth device, and particularly to a structure of a discharge opening of a cloth device, a cloth truck and a cloth production line. Background Art

[0002] During the daily batching of the kiln head bin, a cloth truck is arranged above the kiln head bin for cloth feeding. The cloth truck feeds along the length direction of the kiln head bin. Currently, there are the following problems with cloth feeding by the cloth truck:

[0003] After the cloth truck feeds the material, it is found that the cloth in the direction perpendicular to the length of the kiln head bin, that is, the transverse direction, is relatively wide, covering the entire transverse position of the kiln head bin. However, the inclination angles of the two side walls of the kiln head bin in the transverse direction are different. The inclination of one side wall of the kiln head bin is larger, and the lower part is tightly connected to the feeder, with smooth material discharge. While the inclination of the other side wall is smaller, the slope is gentler, and the material discharge is not smooth, often sticking to the material, resulting in the retention of the mixed material, causing funnel flow or arch flow and other material blocking situations in the entire kiln head bin, further leading to unsmooth feeding of the kiln furnace feeder, and even occasional material interruption, and it is frequent. Especially in rainy days, due to funnel flow or arch flow and material sticking to the bin wall, manual participation is required for treatment, which is time-consuming and laborious. If not treated in time, it will also affect production.

[0004] In view of this, it is necessary to design a new structure of the discharge opening of a cloth device that can overcome the above technical problems and effectively solve or alleviate the above technical problems. Summary of the Utility Model

[0005] The basic technical problem to be solved by the present disclosure is to provide a structure of a discharge opening of a cloth device, which can change the position where the material falls into the kiln head bin, reduce the situations of material blocking and unsmooth feeding, ensure uniform feeding, reduce manual cleaning, save labor, and at the same time avoid the problem that the unsmooth treatment of material blocking by manual labor affects the product qualification rate, improve the product qualification rate, and improve the feeding efficiency.

[0006] Furthermore, the technical problem to be solved by the present disclosure is to provide a cloth truck, which can automatically feed the kiln head bin and automatically move above the kiln head bin, and at the same time change the position where the material falls into the kiln head bin, reduce the situations of material blocking and unsmooth feeding, ensure uniform feeding, reduce manual cleaning, save labor, and at the same time avoid the problem that the unsmooth treatment of material blocking by manual labor affects the product qualification rate, improve the product qualification rate, and improve the feeding efficiency.

[0007] Furthermore, the technical problem to be solved by the present disclosure is to provide a fabric production line that can automatically feed the kiln head bin and automatically move above the kiln head bin, while changing the position where the material falls into the kiln head bin, reducing the situations of material blockage and unsmooth feeding, ensuring uniform feeding speed, reducing manual cleaning, saving labor, and at the same time avoiding the problem that the un-timely manual treatment of material blockage affects the product qualification rate, improving the product qualification rate, and improving the feeding efficiency.

[0008] To solve the above technical problem, an embodiment of the present disclosure provides a structure of the discharge opening of a feeding device. The discharge opening structure is used to be arranged above the kiln head bin. The kiln head bin forms a first material falling surface and a second material falling surface that are oppositely arranged. The angle between the first material falling surface and the vertical direction is greater than the angle between the second material falling surface and the vertical direction. The discharge opening structure includes:

[0009] A discharge opening, which is used for the feeding device to convey materials to the kiln head bin;

[0010] An adjusting mechanism, which is arranged below the discharge opening to be able to guide the materials to fall towards the side where the second material falling surface is located.

[0011] In some embodiments, the direction of the first material falling surface relative to the second material falling surface is the first direction. The adjusting mechanism includes a baffle. The baffle is arranged below one side of the discharge opening in the first direction. The baffle forms an inclined angle with the vertical direction, so that the materials at the discharge opening biased towards the first direction can flow along the baffle towards the side where the second material falling surface is located.

[0012] In some embodiments, the angle between the baffle and the vertical direction is less than the angle between the first material falling surface and the vertical direction.

[0013] In some embodiments, the difference range between the angle between the baffle and the vertical direction and the angle between the first material falling surface and the vertical direction is 0° to 20°.

[0014] In some embodiments, the adjusting mechanism further includes a lining plate, and the lining plate is arranged on the contact surface where the baffle contacts the materials.

[0015] In some embodiments, it further includes an angle adjusting structure. The baffle is connected to the discharge opening through the angle adjusting mechanism to be able to adjust the size of the inclined angle between the baffle and the vertical direction.

[0016] In some embodiments, the angle adjusting mechanism includes a rotating shaft and a locking member. The baffle is rotatably connected to the discharge opening through the rotating shaft, and the locking member is arranged on the rotating shaft to be used for limiting the rotation angle between the baffle and the discharge opening.

[0017] In some embodiments, the baffle is a telescopic baffle.

[0018] Based on the technical solution of the blanking port structure of the above-mentioned cloth feeding device, the present disclosure further provides a cloth feeding vehicle, which includes a cloth feeding frame, a material conveying mechanism, and a moving mechanism. The material conveying mechanism conveys materials to the material cavity of the cloth feeding frame. The bottom of the material cavity forms the blanking port structure of the cloth feeding device in any of the above technical solutions. The cloth feeding frame is movably arranged above the kiln head bin through the moving mechanism.

[0019] Based on the technical solution of the above-mentioned cloth feeding vehicle, the present disclosure further provides a cloth feeding production line, which includes the cloth feeding vehicle in any of the above technical solutions.

[0020] Through the above technical solution, the present disclosure enables the material to flow towards the second blanking surface through the adjusting mechanism, which can avoid the situation that more materials fall onto the relatively gentle first blanking surface, causing the material to form a funnel flow or an arch flow in the kiln head bin or sticking to the first blanking surface, avoiding the unsmooth feeding of the kiln head bin by the blanking port, ensuring uniform feeding, reducing the number of blockages, and avoiding the situation that the product qualification rate decreases due to untimely cleaning during manual cleaning of blockages, saving time and effort, and improving the feeding efficiency and the product qualification rate. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] In order to more clearly illustrate the technical solutions in the embodiments of the present disclosure or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present disclosure. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0022] Figure 1 is a schematic structural diagram of the blanking port structure of the cloth feeding device disclosed in the embodiment of the present disclosure;

[0023] Figure 2 is a schematic structural diagram of the cloth feeding vehicle disclosed in the embodiment of the present disclosure;

[0024] Figure 3 is a schematic structural diagram of the baffle disclosed in the embodiment of the present disclosure.

[0025] Description of the reference numerals:

[0026] 1. Blanking port; 2. Adjusting mechanism; 21. Baffle; 22. Lining plate; 3. Angle adjusting mechanism; 31. Rotating shaft; 32. Locking member; 4. Cloth feeding frame; 5. Material conveying mechanism; 6. Moving mechanism; 7. Kiln head bin; 71. First blanking surface; 72. Second blanking surface. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0027] The embodiments of the present disclosure will be further described in detail below in conjunction with the accompanying drawings and examples. The following detailed description of the examples and the drawings are used to exemplarily illustrate the principles of the present disclosure, but cannot be used to limit the scope of the present disclosure. The present disclosure can be implemented in many different forms, not limited to the specific embodiments disclosed herein, but including all technical solutions falling within the scope of the claims.

[0028] The present disclosure provides these embodiments to make the present disclosure thorough and complete, and to fully convey the scope of the present disclosure to those skilled in the art. It should be noted that: unless otherwise specifically stated, the relative arrangements of components and steps, the compositions of materials, numerical expressions and values set forth in these embodiments should be construed as merely exemplary, rather than as limitations.

[0029] It should be noted that in the description of the present disclosure, unless otherwise specified, the meaning of "a plurality" is greater than or equal to two; the orientation or positional relationship indicated by terms such as "upper", "lower", "left", "right", etc. is only for the convenience of describing the present disclosure and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be construed as a limitation of the present disclosure. When the absolute position of the object being described changes, the relative positional relationship may also change accordingly.

[0030] In addition, the "first", "second" and similar terms used in the present disclosure do not denote any order, quantity or importance, but are only used to distinguish different parts. "Vertical" is not strictly vertical, but within the allowable error range. Terms such as "including" or "comprising" mean that the elements before this term cover the elements listed after this term, and do not exclude the possibility of also covering other elements.

[0031] It should also be noted that in the description of the present disclosure, unless otherwise clearly defined and limited, the terms "mounted", "connected" and "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be directly connected, or indirectly connected through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms in the present disclosure can be understood according to specific circumstances. When it is described that a specific device is located between a first device and a second device, there may or may not be an intermediate device between the specific device and the first device or the second device.

[0032] All terms used in the present disclosure have the same meaning as understood by those of ordinary skill in the art to which the present disclosure pertains, unless otherwise specifically defined. It should also be understood that terms defined in a general dictionary, such as those, should be construed as having a meaning consistent with their meaning in the context of the relevant art, and should not be interpreted in an idealized or overly formal sense, unless specifically defined as such here.

[0033] Techniques, methods, and devices that are known to those of ordinary skill in the relevant art may not be discussed in detail, but where appropriate, the techniques, methods, and devices should be regarded as part of the specification.

[0034] As Figure 1 shown, a basic embodiment of the present disclosure provides a structure for the discharge opening of a cloth-feeding device. The structure for the discharge opening of the cloth-feeding device is used to be arranged above the kiln head bin 7. The kiln head bin 7 forms a first material dropping surface 71 and a second material dropping surface 72 that are oppositely arranged. For example, the kiln head bin 7 extends in the east-west direction, and the first material dropping surface 71 and the second material dropping surface 72 are on both sides of the kiln head bin 7 in the north-south direction. The angle between the first material dropping surface 71 and the vertical direction is greater than the angle between the second material dropping surface 72 and the vertical direction, that is, the second material dropping surface 72 is steeper than the first material dropping surface 71. The second material dropping surface 72 is more inclined towards the vertical plane compared to the first material dropping surface 71. It is easier for the material to slide when falling onto the second material dropping surface 72, and it is not easy to accumulate or block the material. The discharge opening 1 is used for the cloth-feeding device to convey the material to the kiln head bin 7. For example, the discharge opening 1 can be arranged opposite to the kiln head bin 7, and the discharge opening 1 is arranged above the kiln head bin 7 to feed the kiln head bin 7. An adjusting mechanism 2 is arranged below the discharge opening 1. The adjusting mechanism 2 can guide the material coming out of the discharge opening 1 to fall towards the side where the second material dropping surface 72 is located. Among them, the second material dropping surface 72 is steeper than the first material dropping surface 71. Therefore, it is less likely to block the material on the side where the material falls onto the second material dropping surface 72, and it is possible to avoid the situation where a large amount of material falls onto the gentler first material dropping surface 71, causing the material to form a funnel flow or an arch flow in the kiln head bin 7 or sticking to the first material dropping surface 71, avoiding the unsmooth feeding of the kiln head bin 7 by the discharge opening 1, ensuring uniform feeding, reducing the number of blockages, and avoiding the situation where the product qualification rate decreases due to untimely cleaning during manual cleaning of blockages, saving time and effort, and improving the feeding efficiency and the product qualification rate.

[0035] In some embodiments, as Figure 1 shown, the direction of the first material dropping surface 71 relative to the second material dropping surface 72 is the first direction. For example Figure 1The right direction shown, i.e., the direction close to the first discharging surface 71, is the first direction. The adjusting mechanism 2 includes a baffle 21. The baffle 21 is arranged below one side of the discharging port 1 in the first direction. The baffle 21 forms an inclined angle with the vertical direction, so that the material at the discharging port 1 that is biased towards the first direction can flow along the baffle 21 to one side of the second discharging surface 72. For example, the kiln head bin 7 extends in the east-west direction, the first discharging surface 71 and the second discharging surface 72 are respectively on both sides of the north-south direction of the kiln head bin 7, the first direction is the south side close to the first discharging surface 71, and the baffle 21 is arranged below the side wall on the south side of the discharging port 1. Since the baffle 21 has an inclined angle with the vertical direction, this inclined angle can make the end of the baffle 21 far from the discharging port 1 face the second discharging surface 72. In this way, the material falling from the discharging port 1 onto the baffle 21 can flow in the direction of the second discharging surface 72, which can avoid the situation that more materials fall on the relatively gentle first discharging surface 71, causing the material to form a funnel flow or an arch flow in the kiln head bin 7 or sticking to the first discharging surface 71, avoiding the unsmooth feeding of the discharging port 1 to the kiln head bin 7, ensuring uniform feeding, reducing the number of blockages, and avoiding the situation that the product qualification rate decreases due to untimely cleaning during manual cleaning of blockages. It saves time and effort and improves the feeding efficiency and the product qualification rate.

[0036] In some embodiments, such as Figure 1 shown, the angle between the baffle 21 and the vertical direction is smaller than the angle between the first discharging surface 71 and the vertical direction. The angle between the baffle 21 and the vertical direction being smaller than the angle between the first discharging surface 71 and the vertical direction makes the baffle 21 steeper than the first discharging surface 71, so that all the materials falling from the discharging port 1 onto the baffle 21 flow towards the second discharging surface 72, and fewer materials fall on the first discharging surface 71. The second discharging surface 72 is steeper than the first discharging surface 71. Therefore, it can avoid the situation that more materials fall on the relatively gentle first discharging surface 71, causing the material to form a funnel flow or an arch flow in the kiln head bin 7 or sticking to the first discharging surface 71, avoiding the unsmooth feeding of the discharging port 1 to the kiln head bin 7, ensuring uniform feeding, reducing the number of blockages, and avoiding the situation that the product qualification rate decreases due to untimely cleaning during manual cleaning of blockages. It saves time and effort and improves the feeding efficiency and the product qualification rate.

[0037] In some embodiments, such as Figure 1As shown, the difference between the angle of the baffle 21 with the vertical direction and the angle of the first blanking surface 71 with the vertical direction is 0° to 20°, making the baffle 21 steeper than the first blanking surface 71. When the material falls from the feeding port 1 onto the baffle 21, it can flow towards the second blanking surface 72. This can prevent a large amount of material from falling onto the gentler first blanking surface 71, avoiding the formation of funnel flow or arch flow of the material in the kiln head bin 7 or the sticking of the material on the first blanking surface 71, preventing the feeding of the feeding port 1 into the kiln head bin 7 from being unsmooth, ensuring uniform feeding, reducing the number of blockages, and avoiding the situation where the product qualification rate decreases due to untimely cleaning during manual cleaning of blockages. It saves time and effort, and improves the feeding efficiency and the product qualification rate. The angle of the baffle 21 with the vertical direction needs to be set according to the actual situation, but it is necessary to ensure that the angle of the baffle 21 with the vertical direction is less than 90° so that the baffle 21 can guide the material coming out of the feeding port 1 to fall towards the side where the second blanking surface 72 is located.

[0038] In some embodiments, as Figure 1 shown, the adjusting mechanism 2 further includes a lining plate 22. The lining plate 22 is arranged on the contact surface where the baffle 21 contacts the material. For example, the lining plate 22 can be a lining plate made of PVC material, and the baffle 21 can be a baffle made of stainless steel material, so that the baffle 21 has sufficient mechanical strength. The PVC lining plate 22 can prevent the material from directly contacting the stainless steel baffle and causing material contamination. When the baffle 21 is arranged at the lower end of the feeding port 1, a plastic plate can be laid on the kiln head bin 7 to prevent the risk of iron filings falling into the kiln head bin 7 and contaminating the material during the installation of the baffle 21.

[0039] In some embodiments, as Figures 1 to 3 shown, the baffle 21 is connected to the lower end of the feeding port 1 through an angle adjusting mechanism 3. The angle adjusting mechanism 3 can adjust the inclination angle of the baffle 21 with the vertical direction, and different models of kiln head bins 7 and first blanking surfaces 71 with different inclination angles can be used, improving the applicability of the feeding port of the cloth feeding device.

[0040] In some embodiments, as Figure 3As shown, the angle adjustment mechanism 3 includes a rotating shaft 31 and a locking member 32. The baffle 21 is rotatably connected to the blanking port 1 through the rotating shaft 31, enabling the baffle 21 to adjust the inclination angle with respect to the vertical direction. The locking member 32 is provided on the rotating shaft 31. For example, the locking member 32 can be a nut and the threads provided on both sides of the rotating shaft 31. The rotating shaft 31 penetrates through the blanking port 1 on the same side as the first blanking surface 71 and protrudes from the blanking port 1 at both ends. The part of the rotating shaft 31 protruding from the blanking port 1 is provided with threads and nuts that cooperate with the threads. The baffle 21 is rotatably arranged on the rotating shaft 31. When the angle of rotation of the baffle 21 makes the angle between the baffle 21 and the vertical direction less than the angle between the first blanking surface 71 and the vertical direction, the rotating shaft 31 is locked by the nuts at both ends of the rotating shaft 31, thereby fixing the baffle 21. Ensure that during the flow of materials through the baffle 21 towards the second blanking surface 72, the baffle 21 does not shake, which can prevent the situation where a large amount of materials fall onto the relatively gentle first blanking surface 71, causing the materials to form a funnel flow or an arch flow in the kiln head bin 7 or sticking to the first blanking surface 71, avoiding the unsmooth feeding of the kiln head bin 7 through the blanking port 1, ensuring uniform feeding, reducing the number of blockages, and avoiding the situation where the product qualification rate decreases due to untimely cleaning during manual cleaning of blockages. It saves time and effort, and improves the feeding efficiency and the product qualification rate.

[0041] In some embodiments, as Figure 3 shown, the baffle 21 can be a telescopic baffle. By adjusting the length of the baffle 21, the final falling position of the materials guided by the baffle 21 can be changed, and thus different models of kiln head bins 7 can be matched, reducing the number of blockages. For example, when the length between the first blanking surface 71 and the second blanking surface 72 of the kiln head bin 7 is relatively long, the baffle 21 is a telescopic baffle, and the baffle 21 is extended, so that the final falling position of the materials guided by the baffle 21 can be more biased towards the side where the second blanking surface 72 is located. Ensure that the materials flow through the baffle 21 towards the second blanking surface 72, which can prevent the situation where a large amount of materials fall onto the relatively gentle first blanking surface 71, causing the materials to form a funnel flow or an arch flow in the kiln head bin 7 or sticking to the first blanking surface 71, avoiding the unsmooth feeding of the kiln head bin 7 through the blanking port 1, ensuring uniform feeding, reducing the number of blockages, and avoiding the situation where the product qualification rate decreases due to untimely cleaning during manual cleaning of blockages. It saves time and effort, and improves the feeding efficiency and the product qualification rate.

[0042] Based on the blanking port structure of the cloth feeding device mentioned in the above technical solution of the present disclosure, the present disclosure further provides a cloth feeding vehicle, as Figure 2As shown in the figure, it includes a fabric rack 4, a material feeding mechanism 5, and a moving mechanism 6. The material feeding mechanism 5 conveys materials to the material chamber 41 of the fabric rack 4. At the bottom of the material chamber 41, there is a blanking port structure of the fabric device in any of the above technical solutions. The fabric rack 4 is movably arranged above the kiln head bin 7 through the moving mechanism 6. Among them, the fabric rack 4 includes a fabric box and a fabric support for supporting the fabric box. The material feeding mechanism 5 is arranged on the fabric support. The material feeding mechanism 5 may include multiple rollers arranged coaxially, a conveyor belt sleeved on the multiple rollers, and a conveyor belt driving member for driving the conveyor belt to rotate. The conveyor belt driving member is arranged on the rollers to drive the rollers to rotate. The roller close to the fabric rack 4 penetrates through the side of the fabric rack 4, so that the conveyor belt is connected to the inside of the fabric rack 4. A blanking port structure of the fabric device is arranged below the fabric box. The moving mechanism 6 includes rollers symmetrically arranged on both sides of the fabric support and a roller driving member for driving the rollers to rotate. Guide rails can be arranged along the length direction of the first blanking surface 71 and the second blanking surface 72 on both sides of the kiln head bin 7. The guide rails are arranged in cooperation with the rollers, so that while the fabric rack 4 can move above the kiln head bin 7 through the moving mechanism 6, the materials can be conveyed into the fabric box through the conveyor belt and then fall into the blanking port structure of the fabric device. The blanking port structure of the fabric device makes the materials flow towards the direction of the second blanking surface 72 through the baffle 21. On the one hand, it does not require manual feeding and movement, saving manpower. On the other hand, it ensures that the materials flow towards the direction of the second blanking surface 72 through the baffle 21, which can avoid the situation that because more materials fall on the slower first blanking surface 71, the materials form a funnel flow or an arch flow in the kiln head bin 7 or stick to the first blanking surface 71, avoiding the unsmooth feeding of the kiln head bin 7 by the blanking port 1, ensuring uniform feeding, reducing the number of blockages, and avoiding the situation that when manually cleaning the blockage, the untimely cleaning leads to a decrease in the product qualification rate, saving time and effort, and improving the feeding efficiency and the product qualification rate.

[0043] On the basis of the fabric truck mentioned in the above technical solution of the present disclosure, the present disclosure further provides a fabric production line, including the fabric truck in any of the above technical solutions. On the one hand, it does not require manual feeding and movement, saving manpower. On the other hand, it ensures that the materials flow towards the direction of the second blanking surface 72 through the baffle 21, which can avoid the situation that because more materials fall on the slower first blanking surface 71, the materials form a funnel flow or an arch flow in the kiln head bin 7 or stick to the first blanking surface 71, avoiding the unsmooth feeding of the kiln head bin 7 by the blanking port 1, ensuring uniform feeding, reducing the number of blockages, and avoiding the situation that when manually cleaning the blockage, the untimely cleaning leads to a decrease in the product qualification rate, saving time and effort, and improving the feeding efficiency and the product qualification rate.

[0044] In order to facilitate a more profound understanding of the technical concept and advantages of the blanking port structure of the fabric device, the fabric truck, and the fabric production line of the present disclosure, the following is combined with Figures 1 to 3Describe the relatively preferred features of the present disclosure, the relatively comprehensive structure of the discharging opening of the fabric device, the structure of the fabric truck, and the structure form of the fabric production line.

[0045] Such as Figures 1 to 3As shown, the discharging opening structure of the cloth feeding device is arranged above the kiln head bin 7. Among them, the kiln head bin 7 forms a first falling surface 71 and a second falling surface 72 which are oppositely arranged. The kiln head bin 7 extends in the east-west direction. The first falling surface 71 and the second falling surface 72 are on both sides of the kiln head bin 7 in the north-south direction. The angle between the first falling surface 71 and the vertical direction is greater than the angle between the second falling surface 72 and the vertical direction, that is, the second falling surface 72 is steeper than the first falling surface 71. The discharging opening 1 is arranged opposite to the kiln head bin 7. The discharging opening 1 is arranged above the kiln head bin 7 to convey materials to the kiln head bin 7. An adjusting mechanism 2 is arranged below the discharging opening 1. Among them, the adjusting mechanism 2 includes a baffle 21 and a lining plate 22. The lining plate 22 is arranged on the contact surface where the baffle 21 contacts the material. The lining plate 22 can be a lining plate made of PVC material. The baffle 21 can be a baffle made of stainless steel material. The PVC lining plate 22 can prevent the material from directly contacting the stainless steel material and causing the material to be contaminated. When the baffle 21 is arranged at the lower end of the discharging opening 1, a plastic plate can be laid on the kiln head bin 7 to prevent iron filings from falling into the kiln head bin 7 and contaminating the material when the baffle 21 is added to the discharging opening 1. The baffle 21 is arranged below the side wall on the south side of the discharging opening 1. Since there is an inclined angle between the baffle 21 and the vertical direction, this inclined angle can make the end of the baffle 21 away from the discharging opening 1 face the second falling surface 72, so that the material falling from the discharging opening 1 onto the baffle 21 flows in the direction of the second falling surface 72. The angle between the baffle 21 and the vertical direction is less than the angle between the first falling surface 71 and the vertical direction. The angle of the baffle 21 in the vertical direction being less than the angle between the first falling surface 71 and the vertical direction makes the baffle 21 steeper than the first falling surface 71, so that the material falling from the discharging opening 1 onto the baffle 21 all flows towards the second falling surface 72. The difference between the angle between the baffle 21 and the vertical direction and the angle between the first falling surface 71 and the vertical direction is 0° to 20°, making the baffle 21 steeper than the first falling surface 71. The baffle 21 is connected to the lower end of the discharging opening 1 through an angle adjusting mechanism 3. The angle adjusting mechanism 3 can adjust the size of the inclined angle between the baffle 21 and the vertical direction, and can be used with different models of kiln head bins 7 and first falling surfaces 71 with different inclined angles, improving the applicability of the discharging opening of the cloth feeding device. The angle adjusting mechanism 3 includes a rotating shaft 31 and a locking member 32. The baffle 21 is rotatably connected to the discharging opening 1 through the rotating shaft 31, realizing that the baffle 21 can adjust the inclined angle with the vertical direction. The locking member 32 is arranged on the rotating shaft 31. For example, the locking member 32 can be a nut and the threads arranged on both sides of the rotating shaft 31. The rotating shaft 31 penetrates through the discharging opening 1 on the same side as the first falling surface 71 and both ends protrude from the discharging opening 1. The part of the rotating shaft 31 protruding from the discharging opening 1 is provided with threads and nuts matching the threads. The baffle 21 is rotatably arranged on the rotating shaft 31. When the angle of rotation of the baffle 21 makes the angle between the baffle 21 and the vertical direction less than the angle between the first falling surface 71 and the vertical direction,The nuts at both ends of the rotating shaft 31 fix the baffle plate 21. The baffle plate 21 can be a telescopic baffle plate. When the length between the first material dropping surface 71 and the second material dropping surface 72 of the kiln head bin 7 is relatively long, the length of the baffle plate 21 can be flexibly adjusted according to the interval between the first material dropping surface 71 and the second material dropping surface 72, ensuring that the material flows towards the second material dropping surface 72 through the baffle plate 21. This can avoid the situation where a large amount of material falls onto the relatively gentle first material dropping surface 71, causing the material to form a funnel flow or an arch flow in the kiln head bin 7 or sticking to the first material dropping surface 71, avoiding the unsmooth feeding of the kiln head bin 7 by the feeding port 1, ensuring uniform feeding, reducing the number of blockages, and avoiding the situation where the product qualification rate decreases due to untimely cleaning during manual cleaning of blockages. It saves time and effort, and improves the feeding efficiency and the product qualification rate.

[0046] As can be seen from the above description of the present disclosure, the present disclosure enables the material to flow towards the second material dropping surface 72 through the adjusting mechanism 2, which can avoid the situation where a large amount of material falls onto the relatively gentle first material dropping surface 71, causing the material to form a funnel flow or an arch flow in the kiln head bin 7 or sticking to the first material dropping surface 71, avoiding the unsmooth feeding of the kiln head bin 7 by the feeding port 1, ensuring uniform feeding, reducing the number of blockages, and avoiding the situation where the product qualification rate decreases due to untimely cleaning during manual cleaning of blockages. It saves time and effort, and improves the feeding efficiency and the product qualification rate.

[0047] So far, the embodiments of the present disclosure have been described in detail. To avoid obscuring the concept of the present disclosure, some details well known in the art have not been described. Those skilled in the art can fully understand how to implement the technical solutions disclosed herein based on the above description.

[0048] Although some specific embodiments of the present disclosure have been described in detail by way of examples, those skilled in the art should understand that the above examples are only for the purpose of illustration and not for limiting the scope of the present disclosure. Those skilled in the art should understand that the above embodiments can be modified or partial technical features can be equivalently replaced without departing from the scope and spirit of the present disclosure. In particular, as long as there is no structural conflict, the various technical features mentioned in each embodiment can be combined in any way.

Claims

1. A material distribution device discharge port structure, the material distribution device discharge port structure is used to be arranged above a kiln head bin (7), the kiln head bin (7) forms a first discharge surface (71) and a second discharge surface (72) arranged opposite to each other, the angle between the first discharge surface (71) and the vertical direction is greater than the angle between the second discharge surface (72) and the vertical direction, characterized in that: include: A material discharge port (1), wherein the material discharge port (1) is used for a material distribution device to deliver materials to the kiln head bin (7); An adjusting mechanism (2), wherein the adjusting mechanism (2) is arranged below the discharge port (1) so as to guide the material to fall toward the side where the second discharge surface (72) is located.

2. The material distributing device discharge port structure according to claim 1, characterized in that: The direction of the first blanking surface (71) relative to the second blanking surface (72) is a first direction, and the adjustment mechanism (2) comprises a baffle (21), and the baffle (21) is arranged below the side of the blanking port (1) in the first direction, and the baffle (21) forms an inclined angle with the vertical direction, so that the material whose blanking port (1) is biased towards the first direction can flow along the baffle (21) to the side where the second blanking surface (72) is located.

3. The material distributing device discharge port structure according to claim 2, characterized in that: The included angle between the baffle plate (21) and the vertical direction is smaller than the included angle between the first blanking surface (71) and the vertical direction.

4. The material distributing device discharge port structure according to claim 3, characterized in that: The difference between the angle between the baffle plate (21) and the vertical direction and the angle between the first blanking surface (71) and the vertical direction is in the range of 0° to 20°.

5. The material distributing device discharge port structure according to claim 2, characterized in that: The regulating mechanism (2) further comprises an inner lining plate (22), wherein the inner lining plate (22) is arranged on a contact surface between the baffle plate (21) and the material.

6. The material distributing device discharge port structure according to claim 2, characterized in that: It also comprises an angle adjustment mechanism (3), and the baffle plate (21) is connected to the feed opening (1) via the angle adjustment mechanism (3), so as to be able to adjust the size of the inclined angle between the baffle plate (21) and the vertical direction.

7. The material distributing device discharge port structure according to claim 6, characterized in that: The angle adjustment mechanism (3) comprises a rotating shaft (31) and a locking member (32); the baffle (21) is rotatably connected to the discharge port (1) via the rotating shaft (31); and the locking member (32) is arranged on the rotating shaft (31) to limit the rotation angle between the baffle (21) and the discharge port (1).

8. The material distributing device discharge port structure according to claim 2, characterized in that: The baffle (21) is a telescopic baffle.

9. A material distributing vehicle, characterized in that: The invention comprises a material distribution rack (4), a feeding mechanism (5), and a moving mechanism (6); the feeding mechanism (5) transports materials to a material cavity (41) of the material distribution rack (4); a material distribution device discharge port structure according to any one of claims 1 to 8 is formed at the bottom of the material cavity (41); and the material distribution rack (4) is movably arranged above the kiln head bin (7) through the moving mechanism (6).

10. A fabric production line, characterized in that: Including the cloth cart as described in claim 9.