Gel material mixing equipment
By introducing belt conveyors, material tanks, electric control cabinets and mixers into the gel material mixing equipment, combining conveying components and diversion components, and using a computer timing system to achieve automated control, the problem of inaccurate measurement by traditional sensors is solved, and production efficiency and equipment stability are improved.
Patent Information
- Application Number
- CN202511078932.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-02
- Publication Date
- 2025-10-21
AI Technical Summary
Existing gel material mixing equipment relies on traditional weighing sensors and metering sensors for material measurement, which has problems such as complex installation, susceptibility to environmental interference, high equipment failure rate and low degree of automation, especially in open-air environments.
The system consists of a belt conveyor, a material tank, an electric control cabinet and a mixer, combined with a conveying component and a diversion component. The computer timing system records the material on-off time and flow rate, realizing automatic control of material batching and metering, avoiding long-distance wiring and environmental interference.
It realizes automatic batching and metering that works stably in open air environment, reduces manual intervention, improves production efficiency and the degree of automation of equipment, and ensures uniform distribution of materials and uninterrupted production.
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Figure CN120815464A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of building materials, in particular to a gel material mixing device. Background Art
[0002] With the world's increasing attention to environmental protection and sustainable development, the construction industry is actively exploring low-carbon, environmentally friendly building material solutions. Gel materials, as a green and low-carbon building material, have attracted attention due to their excellent performance and environmental protection characteristics. They can not only effectively reduce carbon emissions, but also use industrial waste as raw materials to achieve resource recycling, which is in line with the development trend of green transformation in the construction industry.
[0003] However, existing gel material mixing equipment mostly relies on traditional weighing sensors and metering sensors for material measurement, which has the following disadvantages: First, long-distance wiring not only increases installation costs, but is also easily interfered with by external environmental factors, resulting in inaccurate measurement. Second, traditional equipment has high requirements for the operating environment and is easily affected by moisture and corrosion in open-air environments, resulting in a high equipment failure rate. In addition, it has a low degree of automation, complex operation, frequent manual intervention, and low production efficiency, which seriously restricts the application of equipment in complex environments and the improvement of production efficiency.
[0004] Therefore, those skilled in the art have proposed a gel material mixing device to solve the problems raised in the background art.
[0005] The above information disclosed in this background technology is only for enhancing understanding of the background technology of the present invention and therefore it may contain information that does not constitute the prior art that is already known to a person of ordinary skill in the art. Summary of the Invention
[0006] In order to solve the above technical problems, the present invention provides a gel material mixing device to solve the problem that gel material mixing devices in the prior art mostly rely on traditional weighing sensors and metering sensors for material metering.
[0007] To achieve the above-mentioned purpose, the present invention provides a gel material mixing equipment, including a belt conveyor, a material tank, an electric control cabinet and a mixer, wherein a connecting pipe is provided in the material tank, a conveying pipe is provided in the material tank, a rotating shaft is rotatably connected in the conveying pipe, a spiral blade is fixedly connected to the rotating shaft, a first motor is fixedly connected to the material tank, a feeding port and an external feeding port are fixedly connected to the side of the belt conveyor, a conveying assembly is provided at the end of the conveying pipe, the conveying assembly includes a reducing pipe provided at the end of the conveying pipe, a connecting end is provided on the reducing pipe, a closing member is provided on the reducing pipe, the closing member is used to control the on-off of the material, the closing member includes a first closing member and a second closing member, the first closing member is used to control the on-off of the paste material type, and the second closing member is used to control the on-off of the powder material type;
[0008] The first closing member includes a first cylinder and a movable plate driven by the first cylinder. The end of the reduced diameter pipe is fixedly connected to a receiving frame. The movable plate slides along the receiving frame to open and close the outlet of the reduced diameter pipe.
[0009] The second closing member includes a connecting seat fixedly connected to the reducing tube, a valve is hinged on the connecting seat, and a tension spring is provided on the valve, and the tension spring pulls the valve to rotate to open and close the outlet.
[0010] Preferably, the output end of the first motor is fixedly connected to the rotating shaft, and a plurality of the discharge ports are provided and are evenly distributed in the horizontal direction.
[0011] Preferably, the mixer includes a support leg fixedly connected to the bottom of the mixer, a mixing shaft is rotatably connected inside the mixer, a second motor is fixedly connected to the mixer, and a discharge port is provided on the mixer.
[0012] Preferably, the output end of the second motor is fixedly connected to the stirring shaft, and two stirrers are provided and are symmetrically arranged.
[0013] Preferably, the connecting end is fixedly connected to the delivery pipe in the first closing member, and movably connected to the delivery pipe in the second closing member, and the second closing member includes a pipe clamp sleeved on the end of the delivery pipe and the connecting end.
[0014] Preferably, the first closing member further comprises a bracket fixedly connected to the reducing tube, the first cylinder is fixedly connected to the bracket, the flap descends vertically along the receiving frame when closed, and the bottom surface of the flap is sealed against the outlet plane of the reducing tube.
[0015] Preferably, in the second closing member, the rotation axis of the valve is perpendicular to the falling direction of the material, and the tension springs are symmetrically arranged on both sides of the valve.
[0016] Preferably, the belt conveyor is provided with a flow guide component, and the flow guide component includes a shell fixedly connected to the belt conveyor, an inverted V-plate is fixedly connected to the shell, and holes are provided on the shell.
[0017] Preferably, the guide assembly further comprises a hinge shaft rotatably connected to the shell, a guide plate is fixedly connected to the hinge shaft, and a second cylinder is rotatably connected to the inner side wall of the shell.
[0018] Preferably, the piston end of the second cylinder is rotatably connected to the bottom of the guide plate, and the end of the guide plate is attached to the inverted V-plate.
[0019] Compared with the prior art, the present invention has the following beneficial effects:
[0020] 1. The present invention sets a conveying component, uses two closing parts adapted for paste and powder materials, records the time from the opening to the closing of the flap and the valve through a computer timing system, and combines the start and close of the first motor, and determines the average flow rate of the material in the conveying pipe. According to the set time and the flow rate of the material, the amount of material conveyed is calculated. No complex weighing sensor or metering sensor is required, and the installation complexity and environmental interference problems caused by long-distance wiring are avoided. The channel timing method has strong adaptability to the type of material and environmental conditions, and can work stably even in open-air environments. Computer timing and automatic control realize automatic batching and metering, reduce manual intervention, and improve production efficiency.
[0021] 2. The present invention realizes efficient diversion and continuous transportation of materials by setting up a guide component, which significantly improves production efficiency. Its inverted V-plate and adjustable guide plate structure can guide materials into two adjacent mixers in sequence, so that the entire unit can achieve uninterrupted production, improve production efficiency, ensure uniform distribution of materials, avoid accumulation or waste, and the cylinder-driven guide plate can flexibly adjust the diversion direction to adapt to different production needs.
[0022] The above summary is for illustrative purposes only and is not intended to be limiting in any way. In addition to the illustrative aspects, embodiments and features described above, further aspects, embodiments and features of the present invention will be readily apparent by reference to the accompanying drawings and the following detailed description. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 This is a schematic diagram of the overall structure of a gel material mixing device according to an embodiment of the present invention;
[0024] Figure 2 This is a cross-sectional view of a gel material mixing device according to an embodiment of the present invention;
[0025] Figure 3 A cross-sectional view of a partial structure of a conveying component of a gel material mixing device according to an embodiment of the present invention;
[0026] Figure 4 This is a structural schematic diagram of another part of a conveying assembly of a gel material mixing device according to an embodiment of the present invention;
[0027] Figure 5 It is a cross-sectional view of another part of the structure of a conveying assembly of a gel material mixing device according to an embodiment of the present invention;
[0028] Figure 6 This is a cross-sectional view of the front view of a flow guide assembly of a gel material mixing device according to an embodiment of the present invention;
[0029] Figure 7It is a cross-sectional view of the side surface of a flow guide component of a gel material mixing equipment in an embodiment of the present invention.
[0030] In the figure: 1. Belt conveyor; 2. Material tank; 21. Connecting pipe; 22. Conveying pipe; 23. Rotating shaft; 24. Spiral blade; 25. First motor; 3. Feeding port; 4. External feeding port; 5. Electric control cabinet; 6. Mixer; 61. Support leg; 62. Mixing shaft; 63. Second motor; 64. Discharge port; 7. Conveying assembly; 71. Reduced diameter pipe; 711. Connecting end; 72. Bracket; 73. First cylinder; 74. Flap; 75. Receiver; 76. Pipe clamp; 77. Connecting seat; 78. Valve; 79. Tension spring; 8. Guide assembly; 81. Housing; 82. Inverted V-plate; 83. Hole; 84. Hinge shaft; 85. Guide plate; 86. Second cylinder. DETAILED DESCRIPTION
[0031] The following will be combined with the accompanying drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only some embodiments of the present invention, not all embodiments. It should be noted that the drawings are schematic and not to scale. For the sake of clarity and convenience, the relative sizes and proportions of the parts shown in the drawings are exaggerated or reduced in size, and any sizes are only illustrative and not restrictive.
[0032] Example 1:
[0033] See also Figure 1 - Figure 7As shown, a gel material mixing device includes a belt conveyor 1, a material tank 2, an electric control cabinet 5 and a mixer 6. A connecting pipe 21 is provided in the material tank 2, a conveying pipe 22 is provided in the material tank 2, a rotating shaft 23 is rotatably connected in the conveying pipe 22, a spiral blade 24 is fixedly connected to the rotating shaft 23, a first motor 25 is fixedly connected to the material tank 2, a feeding port 3 and an external feeding port 4 are fixedly connected to the side of the belt conveyor 1, a conveying assembly 7 is provided at the end of the conveying pipe 22, and the conveying assembly 7 includes a reducing pipe 71 provided at the end of the conveying pipe 22, a connecting end 711 is provided on the reducing pipe 71, and a closing member is provided on the reducing pipe 71, which is used to control the material. The material is on and off, and the closing component includes a first closing component and a second closing component. The first closing component is used to control the on and off of the paste material type, and the second closing component is used to control the on and off of the powder material type. The belt conveyor 1 is used to transport the material to the material tank 2 or the mixer 6, providing stable material transportation, ensuring that the material can accurately and continuously enter the subsequent processing link. The material tank 2 is used to store and temporarily store the material to provide a temporary storage space for the material, which is convenient for subsequent transportation and mixing operations. The connecting pipe 21 is used to transport the material to the conveying pipe 22, and the conveying pipe 22 is used to transport the material from the material tank 2 to the mixer 6. It serves as the main channel for material transportation to ensure that the material can smoothly reach the mixer 6. The rotating shaft 23 and the spiral blade 24 cooperate to rotate in the conveying pipe 22 to push the material forward. The rotation of the spiral blade 24 realizes the continuous conveying of the material to avoid the accumulation or blockage of the material during the conveying process. The first motor 25 is used to drive the rotating shaft 23 and the spiral blade 24 to rotate, provide power for material conveying, and ensure the stability and continuity of the conveying process. The discharge port 3 and the external feeding port 4 are respectively used to add the main material and the auxiliary material, providing a variety of material addition methods to meet the needs of different formulas. The electric control cabinet 5 is used to centrally control the operation of the equipment, realize the automatic control of the motor, cylinder and other components, and improve the operation efficiency and operation convenience of the equipment. Advantages: The mixer 6 is used to mix and stir the materials to ensure that the materials are fully mixed during the stirring process, thereby improving the uniformity and quality of the gel material. The reducing tube 71 is a structure at the end of the conveying pipe 22, which is used to reduce the diameter of the material outlet. By reducing the outlet diameter, the flow rate of the material can be increased, making it easier to control, and providing an installation position for the closing component to facilitate precise control of the material on and off. The connecting end 711 is used to connect the conveying pipe 22 and the closing component. In the first closing component, it is fixedly connected to the conveying pipe 22 to ensure the stability of the structure. In the second closing component, it is movably connected to the conveying pipe 22 and fixed by a pipe clamp 76 to facilitate installation and disassembly.
[0034] The first closing member includes a first cylinder 73 and a flap 74 driven by the first cylinder 73. The end of the reducing tube 71 is fixedly connected to a receiving frame 75. The flap 74 slides along the receiving frame 75 to open and close the outlet of the reducing tube 71. The first cylinder 73 is used to drive the flap 74 to move. Through the telescopic action of the first cylinder 73, the flap 74 is driven to slide along the receiving frame 75 to realize the opening and closing of the outlet of the reducing tube 71, providing sufficient power to ensure that the flap 74 can fit tightly against the outlet of the reducing tube 71 to achieve sealing. The flap 74 is used to control the outlet of the reducing tube 71 The opening and closing of the movable plate 74 is achieved by sliding along the receiving frame 75 under the drive of the first cylinder 73 to open or close the outlet of the reducing tube 71. When closed, the bottom surface of the movable plate 74 is sealed with the outlet plane of the reducing tube 71 to prevent material leakage, forcibly cut off the viscous paste, and prevent the paste from sticking and causing loose closure. The receiving frame 75 provides a sliding track for the movable plate 74, guiding the movable plate 74 to move along a predetermined trajectory, ensuring that the movable plate 74 can accurately open and close the outlet of the reducing tube 71, and cooperates with the bracket 72 to provide a stable support structure for the first cylinder 73 and the movable plate 74.
[0035] Specifically, the output end of the first motor 25 is fixedly connected to the rotating shaft 23 , and a plurality of discharge ports 3 are provided and evenly distributed in the horizontal direction.
[0036] Furthermore, the mixer 6 includes a support leg 61 fixedly connected to the bottom of the mixer 6, a stirring shaft 62 is rotatably connected inside the mixer 6, a second motor 63 is fixedly connected to the mixer 6, and a discharge port 64 is provided on the mixer 6. The support leg 61 is used to support the mixer 6, the stirring shaft 62 is used to stir the material, the second motor 63 provides power to the stirring shaft 62, and the discharge port 64 is used to discharge the mixed material.
[0037] Furthermore, the output end of the second motor 63 is fixedly connected to the stirring shaft 62 , and two stirrers 6 are provided and are symmetrically arranged.
[0038] Furthermore, the connecting end 711 is fixedly connected to the conveying pipe 22 in the first closing member. The first closing member also includes a bracket 72 fixedly connected to the reducing tube 71. The first cylinder 73 is fixedly connected to the bracket 72. When the movable plate 74 is closed, it descends vertically along the receiving frame 75, and the bottom surface of the movable plate 74 is sealed and fitted with the outlet plane of the reducing tube 71. The bracket 72 is used to provide fixed support for the first cylinder 73 to ensure that the first cylinder 73 remains stable during operation and to avoid displacement of the cylinder position due to external force or vibration.
[0039] As can be seen from the above, the material is transported to the material tank 2 through the belt conveyor 1, and the rotating shaft 23 and the spiral blade 24 rotate under the drive of the first motor 25 to transport the material from the material tank 2 to the mixer 6 through the conveying pipe 22. During the conveying process, the guide component 8 drives the guide plate 85 to rotate through the second cylinder 86 to ensure that the material is evenly distributed and smoothly enters the conveying pipe 22. When it is necessary to convey the paste material, the first cylinder 73 in the first closing member drives the movable plate 74 to slide along the receiving frame 75, opening or closing the outlet of the reducing pipe 71, and controlling the on and off of the paste material. After the material enters the mixer 6, the stirring shaft 62 rotates under the drive of the second motor 63 to mix and stir the material. After the stirring is completed, the mixed gel material is discharged through the discharge port 64.
[0040] Example 2:
[0041] See also Figure 4 - Figure 5 As shown, this embodiment is basically the same as the previous embodiment, with the difference being that the second closing member includes a connecting seat 77 fixedly connected to the reducing tube 71, and a valve 78 is hinged on the connecting seat 77. The valve 78 is provided with a tension spring 79, and the tension spring 79 pulls the valve 78 to rotate to open and close the outlet. The connecting seat 77 is used to provide an installation position for the valve 78. The connecting seat 77 serves as the hinge point of the valve 78, so that it can rotate about the connecting seat 77. The valve 78 is used to control the on and off of the outlet of the reducing tube 71. Under the action of the tension spring 79, the valve 78 rotates about the connecting seat 77 to open or close the outlet of the reducing tube 71. When powder material needs to be conveyed, the valve 78 opens and the material passes through. When the conveying needs to be stopped, the valve 78 closes to prevent material leakage. The tension spring 79 is used to provide rotational power for the valve 78, and the valve 78 is pulled to rotate by elastic force to realize the opening and closing of the outlet of the reducing tube 71, ensuring that the valve 78 can respond quickly and accurately, thereby improving the sensitivity of material control.
[0042] Specifically, the connecting end 711 is movably connected to the delivery pipe 22 in the second closing member. The second closing member includes a pipe clamp 76 that is sleeved on the end of the delivery pipe 22 and the connecting end 711. The pipe clamp 76 is used to fix the connecting end 711 and the delivery pipe 22. In the second closing member, the connecting end 711 and the delivery pipe 22 are fixed together by clamping, ensuring the firmness and stability of the connection, facilitating installation and disassembly, and facilitating maintenance and replacement of parts.
[0043] Furthermore, in the second closing member, the rotation axis of the valve 78 is perpendicular to the falling direction of the material, and the tension springs 79 are symmetrically arranged on both sides of the valve 78.
[0044] As can be seen from the above, the material is conveyed to the material tank 2 through the belt conveyor 1 and is conveyed to the mixer 6 through the conveying pipe 22. The valve 78 is hinged on the reducing pipe 71 through the connecting seat 77. The tension springs 79 are symmetrically arranged on both sides of the valve 78. The valve 78 is rotated and opened and closed by the traction of the tension spring 79, thereby controlling the on and off of the powder material. The connecting end 711 is movably connected to the conveying pipe 22 in the second closing member and fixed by the pipe clamp 76 to ensure the stability of the connection. After the material enters the mixer 6, the stirring shaft 62 rotates under the drive of the second motor 63 to mix and stir the material. After the stirring is completed, the mixed gel material is discharged through the discharge port 64.
[0045] By setting up the conveying component 7, and by adapting two closing parts for paste and powder materials, the time from the opening to the closing of the material from the flap 74 and the valve 78 is recorded by a computer timing system, and combined with the opening and closing of the first motor 25, and by determining the average flow rate of the material in the conveying pipe 22, the amount of material conveyed is calculated according to the set time and the flow rate of the material. No complicated weighing sensor or metering sensor is required, and the installation complexity and environmental interference problems caused by long-distance wiring are avoided. The channel timing method has strong adaptability to the type of material and environmental conditions, and can work stably even in an open-air environment. Computer timing and automatic control realize automatic batching and metering, reduce manual intervention, and improve production efficiency.
[0046] Example 3:
[0047] See also Figure 6 - Figure 7 As shown, this embodiment is basically the same as the previous embodiment, with the difference that a guide assembly 8 is provided on the belt conveyor 1, and the guide assembly 8 includes a shell 81 fixedly connected to the belt conveyor 1, an inverted V-plate 82 fixedly connected to the shell 81, and a hole 83 is provided on the shell 81. The shell 81 serves as the main structure of the guide assembly 8, and provides an installation position for the inverted V-plate 82, the guide plate 85, the cylinder and other components to ensure the structural stability of the entire guide assembly 8, protect the internal components, and prevent material leakage or external interference. The inverted V-plate 82 is used to guide the flow direction of the material and has an inverted V-shaped structure. It can evenly divert the material to both sides and cooperate with the guide plate 85 to further optimize the distribution of the material so that it can evenly enter the mixer 6. The hole 83 is used as the outlet of the material on the belt conveyor 1 to ensure that the material can smoothly flow into the shell 81.
[0048] Specifically, the guide assembly 8 further includes a hinge shaft 84 rotatably connected to the housing 81, a guide plate 85 is fixedly connected to the hinge shaft 84, and a second cylinder 86 is rotatably connected to the inner wall of the housing 81, and the hinge shaft 84 is connected to the guide plate 85 and enables it to rotate.
[0049] The hinge shaft 84 serves as the rotation center of the guide plate 85, ensuring that the guide plate 85 can rotate flexibly and providing a connection point for the second cylinder 86 so that it can drive the guide plate 85 to move. The guide plate 85 is used to adjust the flow direction and distribution of the material. It can rotate around the hinge shaft 84 through the drive of the second cylinder 86, and cooperate with the inverted V-plate 82 to adjust the flow direction of the material as needed. The material can be introduced into two adjacent mixers 6 in turn. The end of the guide plate 85 is attached to the inverted V-plate 82 to ensure that the material can pass smoothly. The second cylinder 86 is used to drive the guide plate 85 to move. Through the telescopic action of the cylinder, the guide plate 85 is driven to rotate around the hinge shaft 84, thereby realizing dynamic adjustment of the material flow direction.
[0050] Furthermore, the piston end of the second cylinder 86 is rotatably connected to the bottom of the guide plate 85 , and the end of the guide plate 85 is attached to the inverted V-plate 82 .
[0051] As can be seen from the above, the material is transported to the top of the guide assembly 8 by the belt conveyor 1, and the material falls freely into the shell 81 of the guide assembly 8 through the hole 83. The second cylinder 86 is in a retracted state. When the material needs to be introduced into the mixer 6 on one side, the second cylinder 86 is extended. The second cylinder 86 pushes the guide plate 85 to rotate around the hinge shaft 84 through the hinge shaft 84, so that the material flows into the designated mixer 6 under the guidance of the guide plate 85 and the inverted V plate 82. If the material needs to be introduced into the mixer 6 on the other side, the second cylinder 86 is extended again. The guide plate 85 rotates in the opposite direction around the hinge shaft 84, and the material flows into the mixer 6 on the other side through the inverted V plate 82, realizing efficient diversion and continuous transportation of the material, and significantly improving production efficiency. The inverted V plate 82 and the adjustable guide plate 85 structure can guide the material into the two adjacent mixers 6 in sequence, so that the entire unit can achieve uninterrupted production, improve production efficiency, ensure uniform distribution of materials, avoid accumulation or waste, and the cylinder-driven guide plate 85 can flexibly adjust the diversion direction to meet different production needs.
[0052] All standard parts used in the present invention are commercially available, and special-shaped parts can be customized according to the description in the specification and drawings. The specific connection methods of each part adopt conventional means such as bolts, rivets, and welding that are mature in the prior art. The machinery, parts, and equipment all adopt conventional models in the prior art. In addition, the circuit connections adopt conventional connection methods in the prior art and will not be described in detail here. Any matters not described in detail in this specification belong to the prior art known to professionals skilled in the art.
[0053] In the drawings of the embodiments disclosed in the present invention, only the structures involved in the embodiments disclosed in the present invention are involved. Other structures can refer to the general design. In the absence of conflict, the same embodiment and different embodiments of the present invention can be combined with each other.
[0054] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A gel material mixing device, characterized in that: The invention comprises a belt conveyor (1), a material tank (2), an electric control cabinet (5) and a mixer (6); a connecting pipe (21) is provided in the material tank (2); a conveying pipe (22) is provided in the material tank (2); a rotating shaft (23) is rotatably connected in the conveying pipe (22); a spiral blade (24) is fixedly connected to the rotating shaft (23); a first motor (25) is fixedly connected to the material tank (2); a feeding port (3) and an external feeding port (4) are fixedly connected to the side of the belt conveyor (1); The end of the conveying pipe (22) is provided with a conveying assembly (7), the conveying assembly (7) includes a reducing pipe (71) provided at the end of the conveying pipe (22), the reducing pipe (71) is provided with a connecting end (711), the reducing pipe (71) is provided with a closing member, the closing member is used to control the on-off of materials, the closing member includes a first closing member and a second closing member, the first closing member is used to control the on-off of paste materials, and the second closing member is used to control the on-off of powder materials; The first closing member comprises a first cylinder (73) and a movable plate (74) driven by the first cylinder (73); the end of the reducing tube (71) is fixedly connected to a receiving frame (75); the movable plate (74) slides along the receiving frame (75) to open and close the outlet of the reducing tube (71); The second closing member comprises a connecting seat (77) fixedly connected to the reducing tube (71); a valve (78) is hinged on the connecting seat (77); a tension spring (79) is provided on the valve (78); and the tension spring (79) pulls the valve (78) to rotate and open and close the outlet.
2. The gel material mixing device according to claim 1, characterized in that: The output end of the first motor (25) is fixedly connected to the rotating shaft (23), and a plurality of the discharge openings (3) are provided and are evenly distributed in the horizontal direction.
3. The gel material mixing device according to claim 2, characterized in that: The mixer (6) comprises a support leg (61) fixedly connected to the bottom of the mixer (6), a mixing shaft (62) is rotatably connected inside the mixer (6), a second motor (63) is fixedly connected to the mixer (6), and a discharge port (64) is provided on the mixer (6).
4. The gel material mixing device according to claim 3, characterized in that: The output end of the second motor (63) is fixedly connected to the stirring shaft (62), and two stirrers (6) are provided and are symmetrically arranged.
5. The gel material mixing device according to claim 1, characterized in that: The connecting end (711) is fixedly connected to the delivery pipe (22) in the first closing member, and the connecting end (711) is movably connected to the delivery pipe (22) in the second closing member, and the second closing member includes a pipe clamp (76) sleeved on the end of the delivery pipe (22) and the connecting end (711).
6. The gel material mixing device according to claim 1, characterized in that: The first closing member further comprises a bracket (72) fixedly connected to the reducing tube (71), the first cylinder (73) being fixedly connected to the bracket (72), the movable plate (74) vertically descending along the receiving frame (75) when closed, and the bottom surface of the movable plate (74) being in sealing contact with the outlet plane of the reducing tube (71).
7. The gel material mixing device according to claim 1, characterized in that: In the second closing member, the rotation axis of the valve (78) is perpendicular to the falling direction of the material, and the tension springs (79) are symmetrically arranged on both sides of the valve (78).
8. The gel material mixing device according to claim 1, characterized in that: The belt conveyor (1) is provided with a flow guide assembly (8), the flow guide assembly (8) comprising a housing (81) fixedly connected to the belt conveyor (1), an inverted V-plate (82) fixedly connected inside the housing (81), and a hole (83) provided on the housing (81).
9. The gel material mixing device according to claim 8, characterized in that: The guide assembly (8) further comprises a hinge shaft (84) rotatably connected to the housing (81), a guide plate (85) being fixedly connected to the hinge shaft (84), and a second cylinder (86) being rotatably connected to the inner side wall of the housing (81).
10. The gel material mixing device according to claim 9, characterized in that: The piston end of the second cylinder (86) is rotatably connected to the bottom of the guide plate (85), and the end of the guide plate (85) is attached to the inverted V-plate (82).