A stereoscopic textile fabric storage rack
By using a conveyor belt system and a liquid control structure, the problem of existing textile storage racks requiring different heights to place materials has been solved, enabling convenient storage and retrieval at the same height and preventing materials from falling off.
Patent Information
- Application Number
- CN202411914649.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-24
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2044-12-24
AI Technical Summary
Existing textile storage racks require materials to be placed at different heights when the storage quantity changes, which is inconvenient for placing and retrieving textiles.
The system employs a conveyor belt system within a protective casing. Through a liquid storage tank and a liquid discharge/return control structure, the direction of the conveyor belt is adjusted using a gravity storage tank and a pump, enabling the storage and retrieval of materials at the same height.
This allows for the continuous placement and removal of textiles at the same height, preventing materials from tilting or falling and improving the ease of use of the storage rack.
Smart Images

Figure CN119683225B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the technical field of textile storage, and in particular to a three-dimensional textile storage rack. Background Technology
[0002] Yarn is a type of textile product made from various textile fibers processed to a certain fineness. It is used for weaving, rope making, thread making, knitting, and embroidery. It is divided into short fiber yarn and continuous filament yarn. The original meaning of textiles comes from the general term for spinning and weaving. However, with the continuous development and improvement of the textile knowledge system and discipline system, especially after the emergence of nonwoven textile materials and three-dimensional composite weaving technology, it is no longer just traditional hand spinning and weaving, but also includes nonwoven technology and modern three-dimensional weaving technology.
[0003] Chinese patent CN108725955A discloses a textile fabric roll-up and storage rack, including a locking groove, an LED digital display screen, a protective sleeve, a fixing rod, a storage groove, a frame plate, support legs, a first connecting plate, a locking block, a support rod, a vent hole, a rotating handle, a locking groove, a top locking plate, a buckle, a connecting frame, a threaded column, an internally threaded tube, a connecting groove, and a second connecting plate. This invention, by setting protective sleeves around the fixed rods, prevents the fabric from being contaminated by dust and moisture during the rolling and storage process, and prevents the fabric from being damaged by friction during transportation. Furthermore, by setting LED digital displays at the top of each rolled-up fabric, it distinguishes each different stored fabric, making it easier to find and record fabrics compared to the conventional method of finding and retrieving fabrics based on pattern and color. This allows warehouse maintenance personnel to more easily manage the entire warehouse storage. However, the aforementioned related technologies have the following drawbacks: existing storage racks require placing materials at different heights when the quantity of textiles stored changes, which is inconvenient. Therefore, a three-dimensional textile storage rack is proposed. Summary of the Invention
[0004] In order to continuously place materials at a certain height, the present invention provides a three-dimensional textile storage rack.
[0005] This invention provides a three-dimensional textile storage rack, employing the following technical solution: It includes a protective outer shell, with four conveyor wheels rotatably inserted into the inner walls of both sides of the protective shell. These four conveyor wheels, connected to one inner wall of the protective shell, are driven by a conveyor belt. A liquid storage tank is installed inside the protective shell, located between two conveyor belts. Multiple holding frames are arranged between the two conveyor belts. A block is slidably fixed to the upper end of each of the left and right sides of the holding frames. A vertical frame is slidably fitted onto the outer surface of each block, and the block and the vertical frame are elastically connected. A concentric shaft is rotatably inserted into the side of the vertical frame away from the holding frame, and the other end of the concentric shaft rotatably passes through an adjacent conveyor belt. A pull rope is fixed to the upper surface of the block, and a rib is fixed to the other end of the pull rope. A right-angle bent tube is fixedly inserted into the upper surface of the vertical frame. The pull rope and the connected rib are located inside the adjacent right-angle bent tube, and the rib is elastically connected to the connected right-angle bent tube. A stop bar is fixed to the side of the rib located outside the right-angle bent tube near the holding frame.
[0006] A baffle is installed above the liquid storage tank. A bracket is slidably inserted into the upper surface of the middle part of the baffle. The bracket is fixed to the inner wall of the protective shell. Liquid storage rings are fixed to the inner walls of both sides of the protective shell. Two liquid storage chambers are opened inside the liquid storage rings. A sealing ring soft strip is rotatably inserted into the other side of the liquid storage rings. Two connecting bends are installed above the liquid storage tank. The two ends of the connecting bends are fixedly connected to the two liquid storage rings respectively. A liquid discharge and return control structure is connected to the upper surface of the liquid storage tank. The upper surfaces of the two connecting bends are connected to the liquid discharge and return control structure. A motor is installed on the inner wall of the left side of the protective shell. A soft wheel is damped and contacted on the bottom surface of the baffle. The soft wheel is coaxially installed with the output end of the motor. The liquid discharge and return control structure is connected to the output end of the motor. A gravity storage tank is installed at the end of the concentric shaft away from the holding frame. The other end of the gravity storage tank is fixedly inserted through the adjacent sealing ring soft strip. The gravity storage tank is connected to the inside of the liquid storage chamber.
[0007] Optionally, the liquid discharge and return control structure includes a fixed plate and a misaligned plate. The fixed plate and the misaligned plate are in coaxial closed contact. The misaligned plate is coaxially connected to the output end of the motor. Two pumps are installed through the misaligned plate at the end closest to the fixed plate. A hose is connected to the end of the two pumps away from the fixed plate. The other end of the hose is connected to the liquid storage tank.
[0008] Optionally, the fixed plate has two arc-shaped liquid cavities on the side near the misaligned plate, and two liquid guides are fixedly inserted into the other side of the fixed plate. The two liquid guides are respectively connected to the upper surface of the two connecting bends and are respectively connected to the two arc-shaped liquid cavities.
[0009] Optionally, the outlet ends of the two pumps are set opposite to the pumping ends, the two pumps are evenly distributed in a circumferential array around the axis of the fixed disk, and the two arc-shaped liquid chambers are evenly distributed in a circumferential array around the axis of the staggered disk.
[0010] Optionally, the width at both ends of the baffle is less than the distance between the baffle and the adjacent right-angle bent tube, and the distance between the ribs on both sides of the same holding frame is greater than the length of the baffle.
[0011] Optionally, the upper surface of the baffle is provided with a mating groove, and the insert is slidably inserted into the inside of the mating groove. The front-to-back distance of one end of the insert inside the mating groove is less than the length of the mating groove.
[0012] Optionally, the container is an isosceles trapezoid with an arc-shaped lower end, and multiple containers are distributed at equal intervals between two conveyor belts. The conveyor belts, sealing ring soft belts, and liquid storage rings are all rectangles with rounded corners, and the conveyor belts, sealing ring soft belts, and liquid storage rings are coaxially arranged.
[0013] Optionally, a counterweight bar is fixed to the bottom surface of the holding frame, the connecting bend is set in a right-angled U-shape, the distance between the ribs on both sides of the same holding frame is less than the length between the inner walls of the U-shape of the connecting bend, and the two connecting bends are symmetrically distributed front and back around the vertical central axis of the conveyor belt.
[0014] Optionally, the upper front end of the protective shell is provided with a right-angle material discharge slot, and a matching bent sealing plate is rotatably inserted into the inside of the right-angle material discharge slot. The bent sealing plate is located above the front of the baffle.
[0015] Optionally, the two liquid storage chambers inside the liquid storage ring are located at the two vertical ends of the liquid storage ring, and the end of the liquid storage ring that mates with the sealing annular soft strip has both the inner and outer ring sides bent toward the sealing annular soft strip side.
[0016] In summary, the present invention has the following beneficial technical effects:
[0017] 1. This invention, by setting up a liquid storage chamber, a pull rope, a prism rod, a stop bar, and a gravity storage tank, fills the liquid storage chamber located at the front of the liquid storage ring with liquid, and fills the gravity storage tank connected to the front liquid storage chamber with liquid. At the same time, liquid is drawn from the connected gravity storage tank through the liquid storage chamber located at the rear. This causes the conveyor belt to have a downward rotation tendency under the gravity of the front gravity storage tank. When the material in the holding frame has not reached a certain level, the corresponding stop bar moves downward and contacts the stop frame, so that the stop frame supports the holding frame. As more material is put into the holding frame, the holding frame drives the block to move downward, gradually pulling the pull rope and prism rod, and gradually moving the stop bar to the front of the stop frame. When enough material is put into the holding frame, the stop bar and the stop frame are misaligned and then move downward, so that the stop bar corresponding to the upper holding frame contacts the stop frame, and material can continue to be put into the holding frame at the same height.
[0018] 2. This invention, by setting up arc-shaped liquid chambers, pumps, and flexible wheels, controls the motors to drive the misalignment disc to rotate half a revolution when the material feeding and storage states need to be changed. This controls the two pumps to alternately connect with the two arc-shaped liquid chambers. Since the suction and extraction ends of the two pumps are installed oppositely, when material needs to be discharged, the liquid storage chamber located on the front side is in a liquid-filled state, causing the container frame on the front side of the conveyor belt to tend to move downwards. The baffle can block the baffle when it is located at the rear. When material needs to be picked up, the flexible wheels and misalignment disc are controlled to rotate half a revolution, changing the liquid feeding and filling positions of the two pumps, so that the liquid storage chamber located on the front is in a liquid feeding state. The liquid storage chamber at the rear is filled with liquid, filling the gravity storage tank behind the conveyor belt and extracting the liquid from the gravity storage tank in front of the conveyor belt. This causes the container behind the conveyor belt to move downwards, while the container in front of the conveyor belt moves upwards. At the same time, the rotating soft wheel pushes the baffle forward. The bottom of the baffle can block the baffle at the front of the container containing material. When the material in the container is taken out, the baffle moves backward to the maximum distance and is misaligned with the baffle, causing the container below to move upwards. This allows for continuous material taking at the same height.
[0019] 3. By setting a counterweight bar, the container frame is an isosceles trapezoid with an arc at the bottom. With the counterweight bar, the container frame can ensure that the opening of the container frame is always facing upward when it rotates with the conveyor belt, effectively preventing the container frame from tilting and causing the material to fall when the conveyor belt rotates. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall structure in an embodiment of the present invention;
[0021] Figure 2 This is a schematic diagram of the internal structure of the protective outer shell in an embodiment of the present invention;
[0022] Figure 3 This is a schematic diagram of the connection between the holding frame and the counterweight strip in an embodiment of the present invention;
[0023] Figure 4 This is a top view schematic diagram of some structures in an embodiment of the present invention;
[0024] Figure 5 This is a schematic diagram of the connection between the sealing annular soft strip and the liquid storage in an embodiment of the present invention;
[0025] Figure 6 This is a schematic diagram of the connection between the block and the frame in an embodiment of the present invention;
[0026] Figure 7 This is a schematic diagram of the connection between the mating groove and the insert in an embodiment of the present invention;
[0027] Figure 8 This is a schematic diagram of the connection between the pull rope and the prism rod in an embodiment of the present invention;
[0028] Figure 9 This is an embodiment of the present invention. Figure 6 Enlarged schematic diagram of the structure at point A in the middle;
[0029] Figure 10 This is a schematic diagram of the connection between the pump and the misalignment plate in an embodiment of the present invention.
[0030] Reference numerals: 1. Protective outer shell; 2. Conveyor wheel; 3. Conveyor belt; 4. Liquid storage tank; 5. Container frame; 6. Vertical frame; 7. Block; 8. Concentric shaft; 9. Pull rope; 10. Rib; 11. Right-angle bend pipe; 12. Stop bar; 13. Stop frame; 14. Insert frame; 15. Liquid storage ring; 16. Connecting bend pipe; 17. Sealing ring soft strip; 18. Liquid outlet and return control structure; 181. Fixed plate; 182. Offset plate; 183. Pump; 184. Hose; 185. Arc-shaped liquid cavity; 186. Liquid passage frame; 19. Motor; 20. Soft wheel; 21. Gravity storage tank; 22. Liquid storage cavity; 23. Matching groove; 24. Counterweight bar; 25. Right-angle discharge chute; 26. Bending sealing plate. Detailed Implementation
[0031] The following is in conjunction with the appendix Figures 1-10 The present invention will be described in further detail below.
[0032] This invention discloses a three-dimensional textile storage rack. For example... Figures 1-10As shown, the device includes a protective outer shell 1. Four conveyor wheels 2 are rotatably inserted into the inner walls of both the left and right sides of the protective outer shell 1. These four conveyor wheels 2, connected to one inner wall of the protective outer shell 1, are driven by a conveyor belt 3. A liquid storage tank 4 is installed inside the protective outer shell 1, containing a fluid liquid. The liquid storage tank 4 is located between two conveyor belts 3. Multiple holding frames 5 are arranged between the two conveyor belts 3. A block 7 is slidably fixed to the upper end of each of the left and right sides of the holding frames 5. A vertical frame 6 is slidably fitted onto the outer surface of each block 7. The block 7 and the vertical frame 6 are elastically connected. Under the elastic connection with the vertical frame 6, the block 7 tends to push against the inner top wall of the vertical frame 6. A concentric shaft 8 is rotatably inserted into the side of the vertical frame 6 away from the holding frames 5. The other end of the concentric shaft 8 rotatably passes through an adjacent conveyor belt 3. A pull rope 9 is fixed to the upper surface of the block 7, and a rib 10 is fixed to the other end of the pull rope 9. A right-angle bent tube 11 is fixedly inserted into the upper surface of the upright frame 6. The pull rope 9 and the connected rib 10 are located inside the adjacent right-angle bent tube 11. The upper end of the right-angle bent tube 11 is bent horizontally backward. The rib 10 is elastically connected to the connected right-angle bent tube 11. The rib 10, which is elastically connected to the right-angle bent tube 11, has a tendency to move backward and has a tendency to pull the pull rope 9 to tighten. As the material inside the holding frame 5 increases, the holding frame 5 gradually moves the block 7 downward relative to the connected upright frame 6 under the gravity of the material. The pull rope 9 gradually pulls the rib 10 into the right-angle bent tube 11. A stop bar 12 is fixed to the side of the rib 10 located outside the right-angle bent tube 11 near the holding frame 5.
[0033] A baffle 13 is installed above the storage tank 4. A right-angle discharge chute 25 is opened at the upper front end of the protective shell 1. A matching bent sealing plate 26 is rotatably inserted into the inside of the right-angle discharge chute 25. The bent sealing plate 26 is located above and in front of the baffle 13. When the bent sealing plate 26 is opened upward, materials can be placed into or removed from the holding frame 5 inside the protective shell 1. A bracket 14 is slidably inserted into the upper surface of the middle part of the baffle 13. A mating groove 23 is opened on the upper surface of the baffle 13. The bracket 14 is slidably inserted into the inside of the mating groove 23. The front-to-back distance of the bracket 14 at one end inside the mating groove 23 is less than the length of the mating groove 23. The bracket 14 is fixed to the inner wall of the protective shell 1. The width at both ends is less than the distance between the baffle 12 and the adjacent right-angle bend 11. The distance between the ribs 10 on both sides of the same holding frame 5 is greater than the length of the baffle 13. When the insert 14 contacts the front inner wall of the mating groove 23, the baffle 13 is located at the rear. When enough material is placed inside the holding frame 5, the rib 10 is pulled into the right-angle bend 11, causing the baffle 12 and the baffle 13 to be misaligned. When the insert 14 contacts the rear inner wall of the mating groove 23, the baffle 13 is located at the front. When there is no material in the holding frame 5, the baffle 12 is located at the rear, and the baffle 12 and the baffle 13 are misaligned. Liquid storage rings 15 are fixed on the inner walls of both the left and right sides of the protective shell 1. The interior of container 15 has two liquid storage chambers 22. A sealing ring 17 is rotatably inserted into the other side of the liquid storage ring 15. The container frame 5 is an isosceles trapezoid with an arc-shaped lower end. Multiple container frames 5 are evenly distributed between two conveyor belts 3. The conveyor belts 3, the sealing ring 17, and the liquid storage ring 15 are all rectangles with rounded corners. The conveyor belts 3, the sealing ring 17, and the liquid storage ring 15 are coaxially arranged. The sealing ring 17 can rotate synchronously with the conveyor belts 3. Two connecting bends 16 are provided above the liquid storage tank 4. The two ends of the connecting bends 16 are fixedly connected to the two liquid storage rings 15 respectively. A counterweight 24 is fixed to the bottom surface of the container frame 5. The container 5 can be kept open and facing upwards when it moves with the conveyor belt 3. The connecting bend 16 is set in a right-angled U-shape. The distance between the ribs 10 on both sides of the same container 5 is less than the length between the U-shaped inner walls of the connecting bend 16. The two connecting bends 16 are symmetrically distributed front and back around the vertical central axis of the conveyor belt 3. The two liquid storage chambers 22 inside the liquid storage ring 15 are located at the two vertical ends of the liquid storage ring 15. The end of the liquid storage ring 15 that cooperates with the sealing ring soft strip 17 is bent towards the sealing ring soft strip 17 on both the inner and outer ring sides, so that a sealing structure similar to a sealing gasket is set between the sealing ring soft strip 17 and the liquid storage ring 15, which can effectively prevent the internal medium from rotating when the sealing ring soft strip 17 rotates.
[0034] The upper surface of the liquid storage tank 4 is connected to the liquid discharge and return control structure 18. The upper surfaces of the two connecting bends 16 are also connected to the liquid discharge and return control structure 18. The left inner wall of the protective shell 1 is equipped with a motor 19. The bottom surface of the baffle 13 has a damping contact with a soft wheel 20. The soft wheel 20 is coaxially mounted with the output end of the motor 19. The liquid discharge and return control structure 18 is connected to the output end of the motor 19. The motor 19 can control the soft wheel 20 to rotate half a revolution in both directions.
[0035] The liquid discharge and return control structure 18 includes a fixed plate 181 and a misaligned plate 182. The fixed plate 181 and the misaligned plate 182 are in coaxial closed contact. The misaligned plate 182 is coaxially connected to the output end of the motor 19. Two arc-shaped liquid cavities 185 are formed on the side of the fixed plate 181 near the misaligned plate 182. Two liquid guides 186 are fixedly inserted into the other side of the fixed plate 181. The two liquid guides 186 are respectively connected to the upper surface of two connecting bends 16 and respectively connected to the two arc-shaped liquid cavities 185. Two pumps are installed through the misaligned plate 182 near the fixed plate 181. 183. Two pumps 183 are connected to a hose 184 at one end away from the fixed plate 181. The other end of the hose 184 is connected to the liquid storage tank 4. The outlet end and the pumping end of the two pumps 183 are set opposite to each other. The two pumps 183 are evenly distributed in a circular array around the axis of the fixed plate 181. The two arc-shaped liquid chambers 185 are evenly distributed in a circular array around the axis of the misaligned plate 182. When the misaligned plate 182 rotates, it changes the arc-shaped liquid chambers 185 connected to the two pumps 183. One pump 183 draws liquid from the liquid storage tank 4, and the other pump 183 draws liquid into the liquid storage tank 4.
[0036] A gravity storage tank 21 is installed at the end of the concentric shaft 8 away from the holding frame 5. The other end of the gravity storage tank 21 is fixedly inserted through the adjacent sealing annular soft belt 17. The gravity storage tank 21 is connected to the inside of the liquid storage chamber 22. After the gravity storage tank 21 is filled with gravity medium, the gravity tension on one side of the conveyor belt 3 can be increased. By controlling the filling of medium into the gravity storage tank 21 inside one side of the conveyor belt 3, the medium can be extracted from the gravity storage tank 21 inside the other side, and the rotation direction of the conveyor belt 3 can be controlled. When liquid medium is filled into the gravity storage tank 21 on the front side of the conveyor belt 3, the front side of the conveyor belt 3 tends to rotate downward. When liquid medium is filled into the gravity storage tank 21 behind the conveyor belt 3, the front side of the conveyor belt 3 tends to rotate upward.
[0037] The working principle is as follows: Liquid is added to the storage tank 4. When discharge is required, the motor 19 drives the misalignment plate 182 to rotate, controlling the pump 183 with the liquid outlet on the right end to connect with the arc-shaped liquid cavity 185 in front. The liquid in the storage tank 4 is filled into the storage cavity 22 in front through the arc-shaped liquid cavity 185 and the corresponding connecting bend 16. At the same time, another pump 183 draws liquid from the storage cavity 22 in the rear through the corresponding connecting bend 16 and fills the gravity storage tank 21 connected to the storage cavity 22 in front. The liquid storage chamber 22 draws liquid from the connected gravity storage tank 21, causing the conveyor belt 3 to rotate downwards under the gravity of the front gravity storage tank 21. When the material in the container 5 has not reached a certain level, the corresponding baffle 12 moves downwards and contacts the baffle 13, causing the baffle 13 to support the container 5. As more material is put into the container 5, the container 5 drives the block 7 to move downwards, gradually pulling the rope 9 and the ridge bar 10, causing the baffle 12 to gradually move in front of the baffle 13. When enough material is put into the container 5... Then, the baffle 12 and the baffle 13 are misaligned and move downwards, so that the baffle 12 corresponding to the upper holding frame 5 contacts the baffle 13, allowing materials to continue to be placed into the holding frame 5 at the same height. When material needs to be removed, the control soft wheel 20 and the misalignment plate 182 are rotated half a turn, changing the position of the two pumps 183 for pumping and filling, so that the front liquid storage chamber 22 is in the pumping state and the rear liquid storage chamber 22 is in the filling state, filling the gravity storage tank 21 behind the conveyor belt 3 with liquid, and filling the gravity storage tank 21 in front of the conveyor belt 3 with liquid. The liquid in 1 is extracted, causing the container 5 behind the conveyor belt 3 to tend to move downwards. The conveyor belt 3 causes the container 5 in front to tend to move upwards. At the same time, when the soft wheel 20 rotates, it pushes the baffle 13 forward. The bottom surface of the baffle 13 can block the baffle bar 12 at the front of the container 5 containing the material. When the material in the container 5 is taken out, the baffle bar 12 moves backward to the maximum distance and is misaligned with the baffle 13, causing the container 5 below to move upwards. Material can be continuously taken out at the same height.
[0038] The above are all preferred embodiments of the present invention and are not intended to limit the scope of protection of the present invention. Therefore, all equivalent changes made in accordance with the structure, shape and principle of the present invention should be covered within the scope of protection of the present invention.
Claims
1. A stereotextile storage rack comprising a protective housing (1), characterized in that: The left and right two side inner walls of the protective shell (1) are rotatably inserted with four conveying wheels (2), the four conveying wheels (2) connected with one side inner wall of the protective shell (1) are driven through a conveying belt (3), a liquid storage tank (4) is installed in the protective shell (1), the liquid storage tank (4) is located between the two conveying belts (3), a plurality of containing frames (5) are arranged between the two conveying belts (3), square blocks (7) are slidably fixed to the upper ends of the left and right sides of the containing frames (5), vertical frames (6) are slidably sleeved on the outer surfaces of the square blocks (7), the square blocks (7) and the vertical frames (6) are elastically connected, concentric shafts (8) are rotatably inserted into one side of the vertical frames (6) away from the containing frames (5), the other ends of the concentric shafts (8) rotatably penetrate through the adjacent conveying belts (3), pull ropes (9) are fixed to the upper surfaces of the square blocks (7), the other ends of the pull ropes (9) are fixed with edge rods (10), right-angle bent pipes (11) are fixedly inserted into the upper surfaces of the vertical frames (6), the pull ropes (9) and the edge rods (10) connected therewith are located in the interiors of the adjacent right-angle bent pipes (11), the edge rods (10) and the right-angle bent pipes (11) connected therewith are elastically connected, one end of the edge rods (10) located outside the right-angle bent pipes (11) is fixed with a stop rod (12) close to one side of the containing frames (5); A blocking frame (13) is arranged above the liquid storage tank (4), an insertion frame (14) is slidably inserted into the upper surface of the middle part of the blocking frame (13), the insertion frame (14) is fixed to the inner wall of the protective shell (1), liquid storage rings (15) are fixed to the left and right two side inner walls of the protective shell (1), two liquid storage cavities (22) are formed in the interiors of the liquid storage rings (15), blocking annular soft belts (17) are rotatably inserted into the other sides of the liquid storage rings (15), two communication bent pipes (16) are arranged above the liquid storage tank (4), the two ends of the communication bent pipes (16) are fixedly connected with the two liquid storage rings (15) respectively, a liquid outlet and liquid return control structure (18) is installed in communication with the upper surface of the liquid storage tank (4), the upper surfaces of the two communication bent pipes (16) are installed in communication with the liquid outlet and liquid return control structure (18), a motor (19) is installed on the left side inner wall of the protective shell (1), a soft wheel (20) is in damping contact with the bottom surface of the blocking frame (13), the soft wheel (20) is coaxially installed with the output end of the motor (19), the liquid outlet and liquid return control structure (18) is connected with the output end of the motor (19), a gravity storage barrel (21) is installed at the end of the concentric shaft (8) away from the containing frame (5), the other end of the gravity storage barrel (21) penetrates through the adjacent blocking annular soft belt (17) in a fixed manner, the gravity storage barrel (21) is in communication with the interior of the liquid storage cavity (22). The liquid outlet return control structure (18) comprises a fixed disc (181) and a staggered disc (182), the fixed disc (181) is coaxially closed in contact with the staggered disc (182), the staggered disc (182) is coaxially connected with the output end of the motor (19), two suction pumps (183) are installed through the end of the staggered disc (182) close to the fixed disc (181), the other end of the two suction pumps (183) is communicatedly installed with a hose (184), and the other end of the hose (184) is communicatedly installed with the liquid storage tank (4). Two arc-shaped liquid cavities (185) are formed in the side of the fixed disc (181) close to the staggered disc (182), two liquid passing frames (186) are fixedly inserted into the other side of the fixed disc (181), the upper surfaces of the two liquid passing frames (186) are communicatedly installed with the two communicating elbow pipes (16) respectively, and the two liquid passing frames (186) are communicated with the two arc-shaped liquid cavities (185) respectively. The liquid outlet end of the two suction pumps (183) is arranged opposite to the liquid suction end, the two suction pumps (183) are evenly distributed in the circumferential array of the axis of the fixed disc (181), and the two arc-shaped liquid cavities (185) are evenly distributed in the circumferential array of the axis of the staggered disc (182).
2. A three-dimensional textile storage holder according to claim 1, wherein: The width of the two ends of the blocking frame (13) is less than the distance between the blocking rod (12) and the adjacent right-angle bent pipe (11), and the distance between the two ridge rods (10) located on the two sides of the same containing frame (5) is greater than the length of the blocking frame (13).
3. A three-dimensional textile storage holder according to claim 1, wherein: A matching groove (23) is formed in the upper surface of the blocking frame (13), the inserting frame (14) is slidingly inserted into the matching groove (23), and the front-to-back distance of the inserting frame (14) at one end in the matching groove (23) is less than the length of the matching groove (23).
4. The three-dimensional textile storage holder of claim 1, wherein: The containing frame (5) is in the shape of an isosceles trapezoid with an arc-shaped lower end, a plurality of containing frames (5) are evenly distributed between the two conveying belts (3), the shapes of the conveying belt (3), the blocking annular soft belt (17) and the liquid storage ring (15) are all rectangular with rounded corners, and the conveying belt (3), the blocking annular soft belt (17) and the liquid storage ring (15) are coaxially arranged.
5. The three-dimensional textile storage holder of claim 1, wherein: The containing frame (5) is fixed with a counterweight strip (24) on the bottom surface, the communicating elbow pipe (16) is arranged in a right-angle U shape, the distance between the two ridge rods (10) located on the two sides of the same containing frame (5) is less than the length between the U-shaped inner walls of the communicating elbow pipe (16), and the two communicating elbow pipes (16) are symmetrically distributed in front of and behind the vertical central axis of the conveying belt (3).
6. The three-dimensional textile storage holder of claim 1, wherein: A right-angle discharging groove (25) is formed in the front upper end of the protective shell (1), a matching bent closure plate (26) is rotatably inserted into the right-angle discharging groove (25), and the bent closure plate (26) is located above the blocking frame (13).
7. The three-dimensional textile storage holder of claim 1, wherein: The two liquid storage cavities (22) in the liquid storage ring (15) are located at the two vertical ends of the liquid storage ring (15), and the end of the liquid storage ring (15) matched with the blocking annular soft belt (17) is bent to one side of the blocking annular soft belt (17) on the inner and outer ring sides.
Citation Information
Patent Citations
Textile fabric rolling storage rack
CN108725955A
Spindle counterweight screening three-dimensional storage warehouse
CN115158940A
Sand core cooling three-dimensional storage warehouse and method
CN116513683A