Ecological cement-based iron tailing mixture preparation device
By designing an ecological cement base iron tailings mixture preparation device, multi-directional movement and stirring of the mixing cylinder is achieved using multi-directional fusion units, the problems of low preparation efficiency and insufficient mixing of existing devices are solved, and the effect of efficient preparation and improving the quality of roadbed materials is achieved.
Patent Information
- Application Number
- CN202510503023.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-22
- Publication Date
- 2025-05-23
- Estimated Expiration
- 2045-04-22
AI Technical Summary
Due to the limited range of stirring shafts in the existing mixing devices, the diameter of the stirring box should not be too large. There are few roadbed materials prepared in a single time, and the preparation efficiency is not high, making it difficult to meet the requirements of roadbed base construction for material strength and preparation efficiency.
An ecological cement base iron tailings mixture preparation device is designed, including an L-shaped load-bearing seat, a mixing cylinder, a locking oscillation unit, a collection box and a multi-directional fusion unit. The multi-directional fusion unit realizes the rotation, lateral reciprocating movement and longitudinal stirring of the mixing cylinder by supporting the drive assembly, moving the mixing assembly and synchronous horizontal push assembly, thereby improving the mixing efficiency.
The device can prepare more mixtures at one time to ensure full mixing of mixtures, improve production efficiency, and improve the quality of roadbed materials.
Smart Images

Figure CN120022787A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of mixing equipment, in particular to a device for preparing an ecological cement-based iron tailings mixture. Background Art
[0002] Iron tailings, as raw materials for base construction, can not only solve various problems caused by large-scale storage of iron tailings, but also solve the problem of large demand for raw materials in highway construction. Since the particles of iron tailings sand are generally fine and belong to fine sand, and the road base has high force requirements, iron tailings sand does not form a restraining force during the roadbed rolling process, which easily causes the flow of particles and is difficult to be compacted, and the strength does not meet the requirements. Therefore, some inorganic binders are generally used in the process of road base construction. The iron tailings and inorganic binders are evenly mixed to form roadbed materials.
[0003] The existing mixing device has a limited stirring range of the stirring shaft. If the stirring effect is to be guaranteed, the diameter of the mixing box should not be too large. This results in a small amount of roadbed material that can be prepared by the mixing box at a single time and low preparation efficiency. Therefore, in view of the above situation, it is urgent to develop an ecological cement-based iron tailings mixture preparation device to overcome the shortcomings in current practical applications. Summary of the invention
[0004] The purpose of the present invention is to provide an ecological cement-based iron tailings mixture preparation device to solve the problems raised in the above-mentioned background technology.
[0005] To achieve the above object, the present invention provides the following technical solutions: An ecological cement-based iron tailings mixture preparation device comprises: an L-shaped load-bearing seat and a mixing cylinder, wherein the mixing cylinder is arranged on the outer side of the L-shaped load-bearing seat, and a delivery pipe is fixedly connected to the cylinder wall at the top end of the mixing cylinder, and a recovery pipe is fixedly connected to the cylinder wall at the bottom end; a locking oscillation unit, which is arranged around the outer side of the bottom end of the L-shaped load-bearing seat and is connected to the L-shaped load-bearing seat for supporting the L-shaped load-bearing seat; a collection box, which is arranged between the recovery pipe and the L-shaped load-bearing seat and is clamped with the locking oscillation unit for receiving and storing the mixture; a multi-directional fusion unit, which is arranged between the L-shaped load-bearing seat and the mixing cylinder, is connected to the L-shaped load-bearing seat, and is connected to the locking oscillation unit, and is used to cooperate with the L-shaped load-bearing seat to support the mixing cylinder and realize the rotation of the mixing cylinder, and can also drive the mixing cylinder to perform lateral reciprocating motion. And synchronously realize longitudinal reciprocating stirring of the material located inside the mixing cylinder; wherein, the multi-directional fusion unit comprises: a supporting and driving component, a mobile stirring and mixing component and a synchronous transverse pushing component, the supporting and driving component is arranged between the mixing cylinder and the L-shaped load-bearing seat, and is connected to the L-shaped load-bearing seat, and is used to cooperate with the L-shaped load-bearing seat to realize the support of the mixing cylinder and realize the self-rotation of the mixing cylinder, the supporting and driving component is connected to the mobile stirring and mixing component, and the mobile stirring and mixing component is connected to the inside of the mixing cylinder, and is used to realize the stirring and mixing of the material located inside the mixing cylinder, and cooperate with the supporting and driving component to simultaneously perform transverse movement and lifting, the mobile stirring and mixing component is also connected to the synchronous transverse pushing component arranged on the L-shaped load-bearing seat, and the synchronous transverse pushing component is connected to the mixing cylinder, and is used to cooperate with the mobile stirring and mixing component to drive the supporting and driving component to realize the transverse reciprocating motion of the mixing cylinder, and synchronously drive the locking oscillation unit to realize the vibration of the L-shaped load-bearing seat.
[0006] As a further solution of the present invention: the supporting and driving assembly includes: a supporting plate, a limiting horizontal plate, an energy transmission motor, an energy driving rod, an energy transmission component and an eccentric wheel. The supporting plate is arranged around the outside of the mixing cylinder and is rotatably connected to the mixing cylinder. The inner sides of both ends are slidably connected with limiting horizontal plates fixedly connected to the L-shaped load-bearing seat, and are connected to the locking oscillation unit. The outside of the mixing cylinder is provided with an energy transmission motor fixedly connected to the supporting plate, and the output end of the energy transmission motor is fixedly connected to the energy driving rod. The energy driving rod is connected to the mixing cylinder through an energy transmission component, which is used to cooperate with the energy transmission motor to realize the self-rotation of the mixing cylinder. The outside of the energy driving rod is also fixedly connected with an eccentric wheel abutting against the mobile stirring assembly, which is used to cooperate with the energy transmission motor to drive the mobile stirring assembly to realize serpentine motion in lateral movement.
[0007] As a further solution of the present invention: the supporting and driving assembly also includes: a driving gear, a closed ring frame, a driven gear and an inner wall shovel plate. The closed ring frame is rotatably connected to the inner wall of the top end of the mixing cylinder. The mixing cylinder is located between the closed ring frame and the driving rod and has an opening on the shell wall. The closed ring frame is fixedly connected to a plurality of inner wall shovel plates that abut the inner wall of the mixing cylinder. A driven gear is fixedly connected to the outside of the closed ring frame. The driven gear is meshed with the driving gear fixedly connected to the outside of the driving rod, so as to cooperate with the driving rod to realize the cleaning of the inner wall of the mixing cylinder by the inner wall shovel plate.
[0008] As a further solution of the present invention: the mobile mixing assembly includes: a directional guide frame, a push-control slide, a positioning guide plate, a central control slide seat, a support column, a mixing rod, a positioning guide rod, a serpentine slide, a guide slide foot, a push-pull plate, a T-shaped slide rail, a lifting seat and a driving motor. The directional guide frame is symmetrically arranged on the outside of the energy transmission motor and is fixedly connected to the support plate. A push-control slide board abutting against the eccentric rotating wheel is slidably connected between the directional guide frames on both sides. The push-control slide board is arranged on the outside of the top end of the mixing cylinder. A central control slide seat is arranged on the outside of the push-control slide board. The central control slide seat is slidably connected to the positioning guide plate fixedly connected to the outside of the top end of the push-control slide board. Guide slide feet are fixedly connected on both sides of the central control slide seat. The other end of the guide slide foot is slidably connected to the serpentine slide groove arranged on the wall of the directional guide frame, which is used to cooperate with the lateral movement of the push-control slide board to realize the longitudinal reciprocating motion of the central control slide seat. Positioning guide rods are also fixedly connected to the outer sides of both ends of the plate, and the positioning guide rods are slidably connected to the wall of the directional guide frame, and a spring is fixedly connected between the directional guide frame and the push-control slide plate, and a driving motor is fixedly connected to the inner side of the central control slide seat, and the output end of the driving motor is fixedly connected to the support column, and the other end of the support column passes to the inner side of the mixing cylinder, and a plurality of mixing rods are fixedly connected to the rod wall on the inner side of the mixing cylinder, which are used to cooperate with the driving motor to realize the stirring and mixing of the materials located inside the mixing cylinder, and a lifting seat connected to the synchronous horizontal pushing assembly is also provided on the outer side of the push-control slide plate, and the lifting seat is slidably connected to the T-shaped slide rail fixedly connected to the outer side of the directional guide frame, and a push-pull plate is provided between the lifting seat and the push-control slide plate, one end of the push-pull plate is rotatably connected to the lifting seat, and the other end is rotatably connected to the push-control slide plate, which is used to cooperate with the movement of the push-control slide plate to realize the driving of the synchronous horizontal pushing assembly.
[0009] As a further solution of the present invention: the synchronous transverse thrust assembly includes: an energy stabilizing box, a synchronous guide frame, an energy transmission pipe, a transverse thrust control pipe, a connecting plate, a transverse thrust control member, a synchronous plate, an energy transmission rod, a limit guide block and an energy control piston. The energy stabilizing box is fixedly connected and arranged on the outer side of the top end of the L-shaped load-bearing seat, a synchronous plate is arranged between the energy stabilizing box and the lifting seat, a synchronous guide frame is symmetrically arranged between the synchronous plate and the lifting seat, the synchronous guide frame is fixedly connected to the synchronous plate, and is slidably connected to the lifting seat to realize the synchronous lifting of the lifting seat and the synchronous plate, a plurality of energy transmission pipes fixedly connected to the energy stabilizing box are arranged on the outer side of the other end of the synchronous plate, an energy control piston is slidably connected to the inner side of the energy transmission pipe, and a fixed connection between the energy control piston and the synchronous plate is arranged. An energy transmission rod is fixedly connected, and a limiting slide groove is arranged on the rod wall of the energy transmission rod. A limiting guide block fixedly connected to the energy transmission pipe is slidingly connected inside the limiting slide groove, which is used to cooperate with the movement of the synchronous plate to realize the lifting and lowering of the energy control piston inside the energy transmission pipe. A transverse push control pipe is also fixedly connected to the box wall of the energy stabilizing box, and a transverse push control member is slidingly connected inside the other end of the transverse push control pipe, and the other end of the transverse push control member is fixedly connected to a connecting plate arranged on the outer side of the bottom end of the mixing cylinder, a spring is fixedly connected between the connecting plate and the L-shaped load-bearing seat, and the connecting plate is slidingly connected to an annular groove arranged on the cylinder wall at the bottom end of the mixing cylinder, which is used to cooperate with the lifting and lowering of the energy control piston to realize the lateral reciprocating motion of the mixing cylinder.
[0010] As a further solution of the present invention: the locking oscillation unit includes: a limit card seat, a locking base, an inductive energy transmission component, an energy transmission chamber, a lifting control tube and a lifting control component. The locking base is slidably connected to the outer side of the bottom end of the L-shaped load-bearing seat. The limit card seat is symmetrically arranged between the mixing cylinder and the L-shaped load-bearing seat, and is fixedly connected to the L-shaped load-bearing seat. Energy transmission chambers are arranged on the inner sides of the L-shaped load-bearing seats on both sides. Several lifting control tubes fixedly connected to the L-shaped load-bearing seats are arranged between the L-shaped load-bearing seat and the locking base. One end of the lifting control tube is connected to the energy transmission chamber, and the other end is slidably connected to the inner side with a lifting control component fixedly connected to the L-shaped load-bearing seat. The energy transmission chamber is also connected to the support plate through the inductive energy transmission component, which is used to cooperate with the lifting and lowering of the support plate to drive the air flow inside the energy transmission chamber to realize the vibration of the L-shaped load-bearing seat.
[0011] As a further solution of the present invention: the inductive energy transmission assembly includes: an energy transmission tube, an energy transmission frame, a guide plate, an energy transmission rod and an energy transmission part. The energy transmission frame is arranged on the outer side of the top end of the limit card seat, and is slidably connected to the guide plate fixedly connected to the limit card seat. An energy transmission rod is arranged between the energy transmission frame and the support plate. One end of the energy transmission rod is rotatably connected to the support plate, and the other end is rotatably connected to the energy transmission frame. A plurality of energy transmission tubes fixedly connected to the limit card seat are arranged between the energy transmission frame and the limit card seat. An energy transmission part fixedly connected to the energy transmission frame is slidably connected on the inner side of the energy transmission tube, which is used to cooperate with the lifting and lowering of the support plate to realize the flow of air inside the energy transmission cavity.
[0012] Compared with the prior art, the present invention has the following beneficial effects: When the device is running, the material enters the inner side of the mixing cylinder along the delivery pipe, and the supporting and driving component drives the mixing cylinder to rotate, and at the same time can clean the inner wall of the mixing cylinder. The supporting and driving component can also drive the mobile stirring and mixing component to perform horizontal and vertical reciprocating motion at the same time. The mobile stirring and mixing component can stir and mix the material inside the mixing cylinder. With its own movement and the rotation of the mixing cylinder, the material inside the mixing cylinder can be fully mixed, so that the equipment can prepare more mixed materials at one time. The mobile stirring and mixing component can also drive the synchronous horizontal pushing component during operation, and the synchronous horizontal pushing component can drive the supporting and driving component. The component performs lateral reciprocating motion. The supporting and driving component can drive the mixing cylinder to perform lateral reciprocating motion on the one hand, and can drive the locking oscillation unit to realize the longitudinal vibration of the L-shaped load-bearing seat on the other hand, thereby further improving the equipment's ability to mix materials. The present application sets a multi-directional fusion unit and cooperates with the locking oscillation unit to simultaneously realize the lateral reciprocating motion and longitudinal reciprocating motion of the stirring device, and the lateral reciprocating motion and longitudinal vibration of the mixing cylinder, so that the equipment can prepare more mixtures at one time, and ensure the adequacy of the mixing of the mixture, ensure production efficiency, and ensure the quality of the roadbed materials. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Figure 1 This is a schematic diagram of the structure of the device for preparing iron tailings mixture for ecological cement base.
[0014] Figure 2 This is a cross-sectional view of the device for preparing the iron tailings mixture for the ecological cement base.
[0015] Figure 3 This is a schematic diagram of the structure of the support and driving components in the ecological cement base iron tailings mixture preparation device.
[0016] Figure 4 This is a cross-sectional view of the support and driving components in the ecological cement-based iron tailings mixture preparation device.
[0017] Figure 5 This is a schematic diagram of the structure of the mobile mixing component in the ecological cement base iron tailings mixture preparation device.
[0018] Figure 6 This is a cross-sectional view of the mobile mixing component in the ecological cement base iron tailings mixture preparation device.
[0019] Figure 7 This is a schematic diagram of the structure of the synchronous horizontal push component in the ecological cement base iron tailings mixture preparation device.
[0020] Figure 8 This is a partial structural schematic diagram of the synchronous transverse movement component in the ecological cement base iron tailings mixture preparation device.
[0021] Fig. 9 This is a schematic diagram of the structure of the locked oscillation unit in the preparation device of the iron tailings mixture for the ecological cement base.
[0022] Fig.10 It is a cross-sectional view of the locked oscillation unit in the preparation device of the iron tailings mixture for the ecological cement base.
[0023] Fig.11 This is a cross-sectional view of the limit bracket in the ecological cement base iron tailings mixture preparation device.
[0024] In the figure: 1-L-shaped load-bearing seat, 2-mixing cylinder, 3-dispensing pipe, 4-locking oscillation unit, 5-collection box, 6-recovery pipe, 7-multi-directional fusion unit, 8-support driving component, 9-mobile mixing component, 10-synchronous horizontal pushing component, 11-support plate, 12-limiting horizontal plate, 13-energy transmission motor, 14-drive rod, 15-energy transmission part, 16-driving gear, 17-eccentric wheel, 18-closed ring frame, 19-driven gear, 20-inner wall shovel plate, 21-directional guide frame, 22-push control slide plate, 23-positioning guide plate, 24-central control slide seat, 25-support column, 26-mixing rod, 27- Positioning guide rod, 28-snake slide, 29-guide slide foot, 30-push-pull plate, 31-T-type slide rail, 32-lifting seat, 33-drive motor, 34-energy stabilizing box, 35-synchronous guide frame, 36-energy transmission pipe, 37-transverse push control pipe, 38-connecting plate, 39-transverse push control part, 40-synchronous plate, 41-energy transmission rod, 42-limiting guide block, 43-energy control piston, 44-limiting clamp seat, 45-locking base, 46-energy guide pipe, 47-energy transmission frame, 48-guide plate, 49-energy transmission rod, 50-energy transmission cavity, 51-energy guide part, 52-lifting control pipe, 53-lifting control part, 54-arc clamp block. DETAILED DESCRIPTION
[0025] The technical solution of the present application is further described in detail below in conjunction with specific implementation methods.
[0026] The embodiments of the present application are described in detail below, and examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present application, and cannot be understood as limiting the present application.
[0027] See also Figure 1 and Figure 2In one embodiment of the present invention, an ecological cement-based iron tailings mixture preparation device includes: an L-shaped load-bearing seat 1 and a mixing cylinder 2, wherein the mixing cylinder 2 is arranged outside the L-shaped load-bearing seat 1, and a delivery pipe 3 is fixedly connected to the top wall of the mixing cylinder 2, and a recovery pipe 6 is fixedly connected to the bottom wall of the mixing cylinder 2; a locking oscillation unit 4 is arranged around the outside of the bottom end of the L-shaped load-bearing seat 1, and is connected to the L-shaped load-bearing seat 1, and is used to realize the L-shaped load-bearing seat 1. Support; collection box 5, the collection box 5 is arranged between the recovery pipe 6 and the L-shaped load-bearing seat 1, and is connected with the locking oscillation unit 4 to realize the reception and storage of the mixed material; multi-directional fusion unit 7, the multi-directional fusion unit 7 is arranged between the L-shaped load-bearing seat 1 and the mixing cylinder 2, is connected to the L-shaped load-bearing seat 1, and is connected to the locking oscillation unit 4, and is used to cooperate with the L-shaped load-bearing seat 1 to realize the support of the mixing cylinder 2, and realize the rotation of the mixing cylinder 2, and can also drive the mixing cylinder 2 to move horizontally The multi-directional fusion unit 7 comprises: a supporting and driving component 8, a mobile mixing component 9 and a synchronous horizontal pushing component 10. The supporting and driving component 8 is arranged between the mixing cylinder 2 and the L-shaped load-bearing seat 1 and is connected to the L-shaped load-bearing seat 1 to cooperate with the L-shaped load-bearing seat 1 to support the mixing cylinder 2 and realize the self-rotation of the mixing cylinder 2. The supporting and driving component 8 is connected to the mobile mixing component 9, and the mobile mixing component 9 is connected to the mobile mixing component 9. The component 9 is connected to the inner side of the mixing cylinder 2, and is used to achieve stirring and mixing of the materials inside the mixing cylinder 2, and cooperate with the supporting and driving component 8 to simultaneously move horizontally and lift. The mobile mixing component 9 is also connected to the synchronous horizontal pushing component 10 arranged on the L-shaped load-bearing seat 1. The synchronous horizontal pushing component 10 is connected to the mixing cylinder 2, and is used to cooperate with the mobile mixing component 9 to drive the supporting and driving component 8 to achieve the lateral reciprocating motion of the mixing cylinder 2, and synchronously drive the locking oscillation unit 4 to achieve the vibration of the L-shaped load-bearing seat 1.
[0028] In this embodiment, when the device is running, the material enters the inner side of the mixing cylinder 2 along the delivery pipe 3, and the supporting and driving component 8 drives the mixing cylinder 2 to rotate, and at the same time, the inner wall of the mixing cylinder 2 can be cleaned. The supporting and driving component 8 can also drive the mobile stirring and mixing component 9 to perform horizontal and vertical reciprocating motions at the same time. The mobile stirring and mixing component 9 can stir and mix the material located inside the mixing cylinder 2, and cooperate with its own movement and the rotation of the mixing cylinder 2, so that the material located inside the mixing cylinder 2 can be fully mixed, so that the equipment can prepare more mixed materials at one time. The mobile stirring and mixing component 9 can also drive the synchronous horizontal pushing component 10 during operation, and the synchronous horizontal pushing component 10 The supporting and driving component 8 can be driven to perform lateral reciprocating motion. On the one hand, the supporting and driving component 8 can drive the mixing cylinder 2 to perform lateral reciprocating motion, and on the other hand, it can drive the locking oscillation unit 4 to realize the longitudinal vibration of the L-shaped load-bearing seat 1, further improving the equipment's ability to mix materials. The present application sets a multi-directional fusion unit 7, which cooperates with the locking oscillation unit 4 to simultaneously realize the lateral reciprocating motion and longitudinal reciprocating motion of the stirring device, and can also simultaneously realize the lateral reciprocating motion and longitudinal vibration of the mixing cylinder 2, so that the equipment can prepare more mixed materials at one time, and ensure the sufficiency of the mixed materials, ensure the production efficiency, and ensure the quality of the roadbed materials; Wherein, electromagnetic valves are fixedly connected to the inner sides of the delivery pipe 3 and the recovery pipe 6 , and the collection box 5 is located directly below the recovery pipe 6 .
[0029] In one embodiment of the present invention, please refer to Figure 3 and Figure 4 The supporting and driving assembly 8 comprises: a supporting plate 11, a limiting transverse plate 12, an energy transmission motor 13, an energy driving rod 14, an energy transmission member 15 and an eccentric rotating wheel 17. The supporting plate 11 is arranged around the outer side of the mixing cylinder 2 and is rotatably connected to the mixing cylinder 2. The inner sides of both ends are slidably connected with limiting transverse plates 12 fixedly connected to the L-shaped load-bearing seat 1, and are connected to the locking oscillation unit 4. The outer side of the mixing cylinder 2 is provided with an energy transmission motor 13 fixedly connected to the supporting plate 11. The output end of the energy transmission motor 13 is fixedly connected to the energy driving rod 14. The energy driving rod 14 is connected to the mixing cylinder 2 through the energy transmission member 15, which is used to cooperate with the energy transmission motor 13 to realize the rotation of the mixing cylinder 2. The outer side of the energy driving rod 14 is also fixedly connected with an eccentric rotating wheel 17 abutting against the mobile stirring assembly 9, which is used to cooperate with the energy transmission motor 13 to drive the mobile stirring assembly 9 to realize serpentine motion in lateral movement.
[0030] In this embodiment, the energy transmission motor 13 is fixedly connected to the outside of the top of the support plate 11, and the output end of the energy transmission motor 13 is fixedly connected to the driving rod 14. The energy transmission member 15 includes a pulley fixedly connected to the driving rod 14 and the outside of the mixing cylinder 2. The pulleys are connected by belts. The limiting cross plate 12 cooperates with the L-shaped load-bearing seat 1 to support the support plate 11, and the support plate 11 can support the mixing cylinder 2. The energy transmission motor 13 drives the driving rod 14 to rotate, and the driving rod 14 drives the mixing cylinder 2 to rotate by itself through the pulley and the belt. The driving rod 14 can also synchronously The eccentric wheel 17 is driven to rotate. During the rotation of the eccentric wheel 17, the mobile mixing component 9 can be driven to realize serpentine motion in the lateral movement. In conjunction with the self-rotation of the mixing cylinder 2, the material located inside the mixing cylinder 2 can be fully stirred. By setting the supporting driving component 8, the L-shaped load-bearing seat 1 can be cooperated to complete the support of the mixing cylinder 2, and the self-rotation of the mixing cylinder 2 can be realized, and the mobile mixing component 9 can be synchronously driven to realize serpentine motion in the lateral movement, so that the mixture located inside the mixing cylinder 2 can be fully mixed, which is beneficial to improving the quality of the roadbed material.
[0031] In one embodiment of the present invention, the supporting and driving assembly 8 also includes: a driving gear 16, a closed ring frame 18, a driven gear 19 and an inner wall shovel plate 20. The closed ring frame 18 is rotatably connected to the inner wall of the top end of the mixing cylinder 2. The mixing cylinder 2 is located between the closed ring frame 18 and the driving rod 14 and has an opening on the shell wall. The closed ring frame 18 is fixedly connected with a plurality of inner wall shovel plates 20 that abut against the inner wall of the mixing cylinder 2. A driven gear 19 is fixedly connected to the outer side of the closed ring frame 18. The driven gear 19 is meshed with the driving gear 16 fixedly connected to the outer side of the driving rod 14, and is used to cooperate with the driving rod 14 to realize the cleaning of the inner wall of the mixing cylinder 2 by the inner wall shovel plate 20.
[0032] In this embodiment, the inner and outer sides of the closed ring frame 18 are respectively fixedly connected with an inner wall shovel plate 20 and a driven gear 19. The inner wall shovel plates 20 are equidistantly distributed in a ring shape, and the longitudinal section is an L-shaped structure. The driving rod 14 drives the driving gear 16 to rotate, and the driving gear 16 cooperates with the driven gear 19 to drive the closed ring frame 18 to rotate. The closed ring frame 18 drives the inner wall shovel plate 20 to rotate synchronously, and the inner wall shovel plate 20 is used to clean the inner wall of the mixing cylinder 2 to prevent the material from adhering to the inner wall of the mixing cylinder 2, so that the material located on the inner side of the mixing cylinder 2 can be more comprehensively stirred. By arranging the closed ring frame 18 and the inner wall shovel plate 20, the inner wall of the mixing cylinder 2 can be cleaned in cooperation with the rotation of the driving rod 14, which is beneficial to improving the adequacy of the equipment in mixing the materials and avoiding the occurrence of material residues after discharging.
[0033] In one embodiment of the present invention, please refer to Figure 5 and Figure 6The mobile mixing assembly 9 includes: a directional guide frame 21, a push control slide 22, a positioning guide plate 23, a central control slide 24, a support column 25, a mixing rod 26, a positioning guide rod 27, a serpentine slide 28, a guide slide 29, a push-pull plate 30, a T-shaped slide rail 31, a lifting seat 32 and a driving motor 33. The directional guide frame 21 is symmetrically arranged on the outside of the energy transmission motor 13 and is fixedly connected to the support plate 11. The directional guide frames 21 on both sides are slidably connected to each other with a push control slide abutting against the eccentric rotating wheel 17. 22, the push-control slide 22 is arranged on the outer side of the top of the mixing cylinder 2, and a central control slide 24 is arranged on the outer side of the push-control slide 22. The central control slide 24 is slidably connected to a positioning guide plate 23 fixedly connected to the outer side of the top of the push-control slide 22. Guide slide feet 29 are fixedly connected on both sides of the central control slide 24. The other end of the guide slide foot 29 is slidably connected to a serpentine slide groove 28 arranged on the wall of the directional guide frame 21, which is used to cooperate with the lateral movement of the push-control slide 22 to realize the longitudinal reciprocating motion of the central control slide 24. The push-control slide The outer sides of both ends of the mixing cylinder 22 are also fixedly connected with positioning guide rods 27, which are slidably connected to the wall of the directional guide frame 21, and a spring is fixedly connected between the directional guide frame 21 and the push control slide plate 22. A driving motor 33 is fixedly connected to the inner side of the central control slide seat 24, and the output end of the driving motor 33 is fixedly connected to the support column 25. The other end of the support column 25 is connected to the inner side of the mixing cylinder 2. A plurality of mixing rods 26 are fixedly connected to the rod wall inside the mixing cylinder 2, which are used to cooperate with the driving motor 33 to realize For the stirring and mixing of the materials inside the mixing cylinder 2, a lifting seat 32 connected to the synchronous horizontal pushing assembly 10 is further provided on the outer side of the push-control slide plate 22. The lifting seat 32 is slidably connected to a T-shaped slide rail 31 fixedly connected to the outer side of the directional guide frame 21. A push-pull plate 30 is provided between the lifting seat 32 and the push-control slide plate 22. One end of the push-pull plate 30 is rotatably connected to the lifting seat 32, and the other end is rotatably connected to the push-control slide plate 22, so as to cooperate with the movement of the push-control slide plate 22 to realize the driving of the synchronous horizontal pushing assembly 10.
[0034] In this embodiment, the driving motor 33 is fixedly connected to the inner side of the central control slide 24, the bottom output end of the driving motor 33 is fixedly connected to the support column 25, and a plurality of mixing rods 26 are fixedly connected to the outer side of the support column 25. During the rotation of the eccentric wheel 17, the push-control slide 22 can be pushed, and the spring arranged between the directional guide frame 21 and the push-control slide 22 can be cooperated to realize the reciprocating motion of the push-control slide 22. The push-control slide 22 cooperates with the positioning guide plate 23 to drive the central control slide 24 to move synchronously laterally, and the central control slide 24 drives the guide slide foot 29 to move synchronously. The guide slide foot 29 cooperates with the serpentine slide 28 to realize the up and down reciprocating motion of the central control slide 24, and the central control slide 24 drives the driving motor 33 to move synchronously. The driving motor 33 drives the mixing rod 26 to rotate through the support column 25 to stir and mix the material located inside the mixing cylinder 2. During the lateral movement of the push-control slide plate 22, it can cooperate with the push-pull plate 30 to drive the lifting seat 32 to reciprocate up and down along the T-shaped slide rail 31. The lifting seat 32 completes the driving of the synchronous horizontal pushing component 10. By setting up a mobile mixing component 9, the central control slide 24 can be driven to reciprocate laterally, and the up and down reciprocating motion of the central control slide 24 can be realized during the lateral movement, so that the mixing rod 26 can stir the material located inside the mixing cylinder 2 in multiple directions, and can also synchronously realize the driving of the synchronous horizontal pushing component 10 during the movement of the push-control slide plate 22, thereby greatly improving the adequacy of the equipment in mixing materials.
[0035] In one embodiment of the present invention, please refer to Figure 7 and Figure 8The synchronous transverse thrust assembly 10 includes: an energy stabilizing box 34, a synchronous guide frame 35, an energy transmission pipe 36, a transverse thrust control pipe 37, a connecting plate 38, a transverse thrust control member 39, a synchronous plate 40, an energy transmission rod 41, a limit guide block 42 and an energy control piston 43. The energy stabilizing box 34 is fixedly connected to the outer side of the top end of the L-shaped load-bearing seat 1, a synchronous plate 40 is arranged between the energy stabilizing box 34 and the lifting seat 32, and a synchronous guide frame 35 is symmetrically arranged between the synchronous plate 40 and the lifting seat 32. The synchronous guide frame 35 is fixedly connected to the synchronous plate 40 and is slidably connected to the lifting seat 32 to achieve synchronous lifting of the lifting seat 32 and the synchronous plate 40. A plurality of energy transmission pipes 36 fixedly connected to the energy stabilizing box 34 are arranged on the outer side of the other end of the synchronous plate 40, and an energy control piston 43 is slidably connected to the inner side of the energy transmission pipe 36. The energy control piston 43 is slidably connected to the synchronous plate 40. An energy transmission rod 41 is fixedly connected between the step plates 40, and a limiting slide groove is arranged on the rod wall of the energy transmission rod 41. A limiting guide block 42 fixedly connected to the energy transmission pipe 36 is slidably connected inside the limiting slide groove, which is used to cooperate with the movement of the synchronous plate 40 to realize the lifting and lowering of the energy control piston 43 inside the energy transmission pipe 36. A horizontal push control pipe 37 is also fixedly connected to the box wall of the energy stabilizing box 34, and a horizontal push control member 39 is slidably connected inside the other end of the horizontal push control pipe 37. The other end of the horizontal push control member 39 is fixedly connected to a connecting plate 38 arranged on the outer side of the bottom end of the mixing cylinder 2. A spring is fixedly connected between the connecting plate 38 and the L-shaped load-bearing seat 1. The connecting plate 38 is slidably connected to an annular groove arranged on the cylinder wall at the bottom end of the mixing cylinder 2, which is used to cooperate with the lifting and lowering of the energy control piston 43 to realize the lateral reciprocating motion of the mixing cylinder 2.
[0036] In this embodiment, the transverse push control member 39 includes a first piston slidably connected to the inner side of the transverse push control tube 37 and a first push rod fixedly connected to the first piston. The other end of the first push rod is fixedly connected to the connecting plate 38. A positioning plate is fixedly connected to the top of the connecting plate 38. The positioning plate is slidably connected to the annular groove arranged on the bottom wall of the mixing cylinder 2. During the lifting process of the lifting seat 32, the synchronous guide frame 35 drives the synchronous plate 40 to be lifted and lowered synchronously. The synchronous plate 40 cooperates with the energy transmission rod 41 to drive the energy control piston 43 to move inside the energy transmission tube 36, driving the air inside the energy stabilizing box 34 to enter the inside of the transverse push control tube 37 to realize the movement of the first piston. The first piston cooperates with the connecting plate 38 through the first push rod to realize the lateral reciprocating motion of the mixing cylinder 2, further improving the efficiency of the equipment in mixing materials. By setting the synchronous transverse push assembly 10, the reciprocating motion of the mixing cylinder 2 can be realized in cooperation with the operation of the mobile mixing assembly 9, so that the material inside the mixing cylinder 2 is tumbled, thereby improving the adequacy of the equipment in mixing materials.
[0037] In one embodiment of the present invention, please refer to Fig. 9 and Fig.10The locking oscillation unit 4 includes: a limit card seat 44, a locking base 45, an inductive energy transmission component, an energy transmission cavity 50, a lifting control tube 52 and a lifting control member 53. The locking base 45 is slidably connected to the outer side of the bottom end of the L-shaped load-bearing seat 1. The limit card seat 44 is symmetrically arranged between the mixing cylinder 2 and the L-shaped load-bearing seat 1, and is fixedly connected to the L-shaped load-bearing seat 1. Energy transmission cavities 50 are arranged on the inner sides of the L-shaped load-bearing seats 1 on both sides. A plurality of lifting control tubes 52 fixedly connected to the L-shaped load-bearing seat 1 are arranged between the L-shaped load-bearing seat 1 and the locking base 45. One end of the lifting control tube 52 is connected to the energy transmission cavity 50, and the other end is slidably connected to the inner side thereof. The lifting control member 53 fixedly connected to the L-shaped load-bearing seat 1 is provided. The energy transmission cavity 50 is also connected to the support plate 11 through the inductive energy transmission component, which is used to cooperate with the lifting and lowering of the support plate 11 to drive the air flow inside the energy transmission cavity 50 to realize the vibration of the L-shaped load-bearing seat 1.
[0038] In this embodiment, the lifting control component 53 includes a second piston slidably connected to the inner side of the lifting control tube 52 and a second push rod fixedly connected to the second piston. The other end of the second push rod is fixedly connected to the locking base 45. During the movement of the support plate 11, the inductive energy transmission component can be driven. The inductive energy transmission component can realize the flow of air inside the energy transmission chamber 50, and drive the air inside the energy transmission chamber 50 into the inner side of the lifting control tube 52. In cooperation with the second piston and the locking base 45, the up and down reciprocating motion of the L-shaped load-bearing seat 1 is realized, and then the vibration of the mixing cylinder 2 is realized, thereby improving the mixing effect of the equipment on the materials.
[0039] In one embodiment of the present invention, the inductive energy transmission assembly includes: an energy conducting tube 46, an energy transmission frame 47, a guide plate 48, an energy transmission rod 49 and an energy conducting member 51. The energy transmission frame 47 is arranged on the outer side of the top end of the limit card seat 44, and is slidably connected to the guide plate 48 fixedly connected to the limit card seat 44. An energy transmission rod 49 is arranged between the energy transmission frame 47 and the support plate 11. One end of the energy transmission rod 49 is rotatably connected to the support plate 11, and the other end is rotatably connected to the energy transmission frame 47. A plurality of energy conducting tubes 46 fixedly connected to the limit card seat 44 are arranged between the energy transmission frame 47 and the limit card seat 44. An energy conducting member 51 fixedly connected to the energy transmission frame 47 is slidably connected on the inner side of the energy conducting tube 46, which is used to cooperate with the lifting and lowering of the support plate 11 to realize the flow of air inside the energy transmission cavity 50.
[0040] In this embodiment, the energy guiding member 51 includes a third piston slidably connected to the outside of the energy guiding tube 46 and a third push rod fixedly connected to the third piston. The other end of the third push rod is fixedly connected to the energy transmission frame 47. Both ends of the energy transmission rod 49 are rotatably connected to the support plate 11 and the energy transmission frame 47 through a rotating rod. During the lateral movement of the support plate 11, the energy transmission rod 49 can cooperate with the energy transmission frame 47 to move up and down along the guide plate 48. The energy transmission frame 47 drives the third piston to move inside the energy guiding tube 46, thereby realizing the flow of air inside the energy transmission cavity 50, and then realizing the vibration of the L-shaped load-bearing seat 1. By setting an inductive energy transmission component, the movement of the support plate 11 can be cooperated to realize the vibration of the mixing cylinder 2, thereby improving the mixing effect of the equipment and ensuring the quality of the roadbed material.
[0041] In one embodiment of the present invention, please refer to Fig.11 An arc-shaped block 54 is slidably connected to the shell wall on the opposite side of the limit card seat 44 on both sides, and a spring is fixedly connected between the arc-shaped block 54 and the limit card seat 44. The arc-shaped block 54 is engaged with the positioning groove set on the outer wall of the collection box 5, and the arc-shaped block 54 and the positioning groove are set one by one.
[0042] The preparation device for the ecological cement base iron tailings mixture can, by setting the multi-directional fusion unit 7 and cooperating with the locking oscillation unit 4, simultaneously achieve the horizontal reciprocating motion and vertical reciprocating motion of the stirring device, and can also simultaneously achieve the horizontal reciprocating motion and vertical vibration of the mixing cylinder 2, so that the equipment can prepare more mixtures at one time, ensure the sufficiency of the mixture mixing, ensure the production efficiency, and ensure the quality of the subgrade materials. By setting the supporting driving component 8, it can cooperate with the L-shaped bearing seat 1 to complete the support of the mixing cylinder 2, can also realize the self-rotation of the mixing cylinder 2, and can synchronously drive the moving stirring and mixing component 9 to achieve a serpentine motion during horizontal movement, so that the mixture inside the mixing cylinder 2 can be fully mixed, which is beneficial to improving the quality of the subgrade materials. By setting the closed ring frame 18 and the inner wall scraper plate 20, it can cooperate with the rotation of the energy driving rod 14 to complete the cleaning of the inner wall of the mixing cylinder 2, which is beneficial to improving the sufficiency of the material mixing by the equipment and can avoid material residue after discharging. By setting the moving stirring and mixing component 9, it can drive the central control sliding seat 24 to perform horizontal reciprocating motion, and realize the up-and-down reciprocating motion of the central control sliding seat 24 during the horizontal movement, so that the mixing rod 26 can stir the materials inside the mixing cylinder 2 in multiple directions, and can also synchronously drive the synchronous horizontal pushing component 10 during the movement of the pushing control slide plate 22, greatly improving the sufficiency of the material mixing by the equipment. By setting the synchronous horizontal pushing component 10, it can cooperate with the operation of the moving stirring and mixing component 9 to achieve the reciprocating motion of the mixing cylinder 2, so that the materials inside the mixing cylinder 2 are tumbled, thereby improving the sufficiency of the material mixing by the equipment. By setting the locking oscillation unit 4, during the movement of the supporting plate 11, it can drive the induction energy transmission component, and the induction energy transmission component can realize the air flow inside the energy transmission cavity 50 and drive the air inside the energy transmission cavity 50 to enter the inside of the lifting control tube 52, and cooperate with the second piston and the locking base 45 to achieve the up-and-down reciprocating motion of the L-shaped bearing seat 1, and further realize the vibration of the mixing cylinder 2, thereby improving the mixing effect of the equipment on the materials.
[0043] The above are only the preferred embodiments of the present invention. It should be noted that for those skilled in the art, without departing from the concept of the present invention, several deformations and improvements can be made, which should also be regarded as the protection scope of the present invention, and these will not affect the implementation effect of the present invention and the practicality of the patent.
Claims
1. An ecological cement-based iron tailings mixture preparation device, characterized in that: include: An L-shaped load-bearing seat and a mixing cylinder, wherein the mixing cylinder is arranged outside the L-shaped load-bearing seat, and a delivery pipe is fixedly connected to the top wall of the mixing cylinder, and a recovery pipe is fixedly connected to the bottom wall of the mixing cylinder; A locking oscillation unit is arranged around the outside of the bottom end of the L-shaped load-bearing seat and connected to the L-shaped load-bearing seat to support the L-shaped load-bearing seat; A collection box, which is arranged between the recovery pipe and the L-shaped load-bearing seat and is connected with the locking vibration unit to receive and store the mixed material; The multi-directional fusion unit is arranged between the L-shaped load-bearing seat and the mixing cylinder, connected to the L-shaped load-bearing seat, and connected to the locking oscillation unit, and is used to cooperate with the L-shaped load-bearing seat to support the mixing cylinder and realize the rotation of the mixing cylinder, and can also drive the mixing cylinder to perform lateral reciprocating motion, and simultaneously realize longitudinal reciprocating stirring of the material located inside the mixing cylinder; Among them, the multi-directional fusion unit includes: a supporting and driving component, a mobile stirring and mixing component and a synchronous transverse pushing component. The supporting and driving component is arranged between the mixing cylinder and the L-shaped load-bearing seat, and is connected to the L-shaped load-bearing seat, and is used to cooperate with the L-shaped load-bearing seat to support the mixing cylinder and realize the rotation of the mixing cylinder. The supporting and driving component is connected to the mobile stirring and mixing component, and the mobile stirring and mixing component is connected to the inner side of the mixing cylinder, and is used to realize the stirring and mixing of the materials located inside the mixing cylinder, and cooperate with the supporting and driving component to simultaneously perform transverse movement and lifting. The mobile stirring and mixing component is also connected to the synchronous transverse pushing component arranged on the L-shaped load-bearing seat, and the synchronous transverse pushing component is connected to the mixing cylinder, and is used to cooperate with the mobile stirring and mixing component to drive the supporting and driving component to realize the lateral reciprocating motion of the mixing cylinder, and synchronously drive the locking oscillation unit to realize the vibration of the L-shaped load-bearing seat.
2. The ecological cement-based iron tailings mixture preparation device according to claim 1, characterized in that: The supporting and driving assembly comprises: a supporting plate, a limiting horizontal plate, an energy transmission motor, an energy driving rod, an energy transmission component and an eccentric rotating wheel. The supporting plate is arranged around the outer side of the mixing cylinder and is rotatably connected to the mixing cylinder. The inner sides of both ends are slidably connected with limiting horizontal plates fixedly connected to the L-shaped load-bearing seat, and are connected to the locking oscillation unit. The outer side of the mixing cylinder is provided with an energy transmission motor fixedly connected to the supporting plate, and the output end of the energy transmission motor is fixedly connected to the energy driving rod. The energy driving rod is connected to the mixing cylinder through an energy transmission component for cooperating with the energy transmission motor to realize the self-rotation of the mixing cylinder. The outer side of the energy driving rod is also fixedly connected with an eccentric rotating wheel abutting against the mobile stirring and mixing assembly, which is used to cooperate with the energy transmission motor to drive the mobile stirring and mixing assembly to realize serpentine motion in lateral movement.
3. The ecological cement-based iron tailings mixture preparation device according to claim 2, characterized in that: The supporting and driving assembly also includes: a driving gear, a closed ring frame, a driven gear and an inner wall shovel plate. The closed ring frame is rotatably connected to the inner wall of the top end of the mixing cylinder. The mixing cylinder is located between the closed ring frame and the driving rod and has an opening on its shell wall. The closed ring frame is fixedly connected to a plurality of inner wall shovel plates that abut against the inner wall of the mixing cylinder. A driven gear is fixedly connected to the outer side of the closed ring frame. The driven gear is meshed with the driving gear fixedly connected to the outer side of the driving rod, so as to cooperate with the driving rod to realize the cleaning of the inner wall of the mixing cylinder by the inner wall shovel plate.
4. The ecological cement-based iron tailings mixture preparation device according to claim 3 is characterized in that: The movable mixing assembly comprises: a directional guide frame, a push-control slide plate, a positioning guide plate, a central control slide seat, a support column, a mixing rod, a positioning guide rod, a serpentine slide, a guide slide foot, a push-pull plate, a T-shaped slide rail, a lifting seat and a driving motor. The directional guide frame is symmetrically arranged on the outside of the energy transmission motor and is fixedly connected to the support plate. A push-control slide plate abutting against the eccentric rotating wheel is slidably connected between the directional guide frames on both sides. The push-control slide plate is arranged on the outside of the top end of the mixing cylinder. A central control slide seat is arranged on the outside of the push-control slide plate. The central control slide seat is slidably connected to the positioning guide plate fixedly connected to the outside of the top end of the push-control slide plate. Guide slide feet are fixedly connected on both sides of the central control slide seat. The other end of the guide slide foot is slidably connected to the serpentine slide groove arranged on the wall of the directional guide frame, so as to cooperate with the lateral movement of the push-control slide plate to realize the longitudinal reciprocating motion of the central control slide seat. A positioning guide rod is fixedly connected, and the positioning guide rod is slidingly connected to the wall of the directional guide frame. A spring is fixedly connected between the directional guide frame and the push-control slide plate. A driving motor is fixedly connected to the inner side of the central control slide seat, and the output end of the driving motor is fixedly connected to the support column, and the other end of the support column passes to the inner side of the mixing cylinder. A plurality of mixing rods are fixedly connected to the rod wall located on the inner side of the mixing cylinder, and are used to cooperate with the driving motor to achieve stirring and mixing of the materials located on the inner side of the mixing cylinder. A lifting seat connected to the synchronous horizontal pushing assembly is also provided on the outer side of the push-control slide plate, and the lifting seat is slidably connected to the T-shaped slide rail fixedly connected to the outer side of the directional guide frame. A push-pull plate is provided between the lifting seat and the push-control slide plate, and one end of the push-pull plate is rotatably connected to the lifting seat, and the other end is rotatably connected to the push-control slide plate, and is used to cooperate with the movement of the push-control slide plate to achieve driving of the synchronous horizontal pushing assembly.
5. The ecological cement-based iron tailings mixture preparation device according to claim 4, characterized in that: The synchronous transverse thrust assembly includes: an energy stabilizing box, a synchronous guide frame, an energy transmission pipe, a transverse thrust control pipe, a connecting plate, a transverse thrust control member, a synchronous plate, an energy transmission rod, a limit guide block and an energy control piston. The energy stabilizing box is fixedly connected to the outside of the top end of the L-shaped load-bearing seat, a synchronous plate is arranged between the energy stabilizing box and the lifting seat, a synchronous guide frame is symmetrically arranged between the synchronous plate and the lifting seat, the synchronous guide frame is fixedly connected to the synchronous plate, and is slidably connected to the lifting seat to realize the synchronous lifting of the lifting seat and the synchronous plate, a plurality of energy transmission pipes fixedly connected to the energy stabilizing box are arranged on the outside of the other end of the synchronous plate, an energy control piston is slidably connected to the inner side of the energy transmission pipe, and a fixed connection is arranged between the energy control piston and the synchronous plate An energy transmission rod, a limiting slide groove is arranged on the rod wall of the energy transmission rod, a limiting guide block fixedly connected to the energy transmission pipe is slidingly connected inside the limiting slide groove, and is used to cooperate with the movement of the synchronous plate to realize the lifting and lowering of the energy control piston inside the energy transmission pipe; a transverse push control pipe is also fixedly connected to the box wall of the energy stabilizing box, and a transverse push control member is slidingly connected inside the other end of the transverse push control pipe, and the other end of the transverse push control member is fixedly connected to a connecting plate arranged on the outer side of the bottom end of the mixing cylinder, a spring is fixedly connected between the connecting plate and the L-shaped load-bearing seat, and the connecting plate is slidingly connected to an annular groove arranged on the cylinder wall at the bottom end of the mixing cylinder, and is used to cooperate with the lifting and lowering of the energy control piston to realize the lateral reciprocating motion of the mixing cylinder.
6. The ecological cement-based iron tailings mixture preparation device according to claim 2, characterized in that: The locking oscillation unit includes: a limit card seat, a locking base, an inductive energy transmission component, an energy transmission chamber, a lifting control tube and a lifting control part. The locking base is slidably connected to the outer side of the bottom end of the L-shaped load-bearing seat. The limit card seat is symmetrically arranged between the mixing cylinder and the L-shaped load-bearing seat and is fixedly connected to the L-shaped load-bearing seat. Energy transmission chambers are arranged on the inner sides of the L-shaped load-bearing seats on both sides. Several lifting control tubes fixedly connected to the L-shaped load-bearing seats are arranged between the L-shaped load-bearing seat and the locking base. One end of the lifting control tube is connected to the energy transmission chamber, and the other end is slidably connected to the inner side of the lifting control part fixedly connected to the L-shaped load-bearing seat. The energy transmission chamber is also connected to the support plate through the inductive energy transmission component, which is used to cooperate with the lifting and lowering of the support plate to drive the air flow inside the energy transmission chamber to realize the vibration of the L-shaped load-bearing seat.
7. The ecological cement-based iron tailings mixture preparation device according to claim 6 is characterized in that: The inductive energy transmission assembly includes: an energy transmission tube, an energy transmission frame, a guide plate, an energy transmission rod and an energy transmission part. The energy transmission frame is arranged on the outer side of the top end of the limit card seat and is slidably connected to the guide plate fixedly connected to the limit card seat. An energy transmission rod is arranged between the energy transmission frame and the support plate. One end of the energy transmission rod is rotatably connected to the support plate, and the other end is rotatably connected to the energy transmission frame. A plurality of energy transmission tubes fixedly connected to the limit card seat are arranged between the energy transmission frame and the limit card seat. An energy transmission part fixedly connected to the energy transmission frame is slidably connected on the inner side of the energy transmission tube, which is used to cooperate with the lifting and lowering of the support plate to realize the flow of air inside the energy transmission cavity.
Citation Information
Patent Citations
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