A hanging type horizontal support structure and a defoaming mixer using the same
By adopting a hanging cross-mount structure and cross-arrangement design of multiple spindles in the defoaming mixer, the bearing is subjected to improved stress, solving the problems of bearing fatigue and short service life in the prior art, and achieving a more stable and efficient defoaming and stirring process.
Patent Information
- Application Number
- CN202411657710.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-20
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2044-11-20
AI Technical Summary
When existing defoaming mixers perform defoaming and stirring with a large amount of stirring for a long time, the bearings of the barrel and the transverse support are prone to fatigue, deformation and cracks due to the long-term bearing of large weight, which affects the rotation stability and service life.
A hanging horizontal support structure is adopted, and a horizontal support is fixedly arranged through the bottom of the rotation shaft seat, and several mounting parts (spindles) are arranged on the horizontal support for hanging. The material bucket is hung at the bottom end of the spindle. The support structure includes first and second bearings, and these bearings are arranged around the spindle to support the cross bearing.
It improves the stress of the support structure, extends the service life of the bearing, improves the use effect of the cross-mount structure, ensures the stability of the material barrel during the rotation and rotation, and improves the overall performance of the defoaming mixer.
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Figure CN119158477B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of deaeration and stirring equipment, in particular to a hanging type horizontal support structure and a deaeration and stirring machine using the structure. Background Art
[0002] Deaerator is a mixing equipment for basic materials. Through high-speed rotation and self-rotation of the equipment, combined with appropriate vacuum environment, different components of fluids, slurries, and powders are fully mixed evenly without stratification and bubbles, meeting the high quality requirements of the mixing process. Deaerator is widely used in electronic industry slurry, food, biomedicine, cosmetics, ink, coating, color paste, chemical slurry, aerospace scientific research materials, nano-level new materials and other industries, involving composite fluids, semi-fluids, nanofluids and other fields.
[0003] An existing deaerator mixer includes a body, a main shaft is rotatably mounted inside the body, a first driving mechanism for driving the main shaft to rotate is arranged at the bottom, a transverse support is fixedly mounted on the top of the main shaft, a barrel for placing materials is rotatably mounted on the transverse support, and a second driving mechanism for driving the barrel to rotate is also arranged on the transverse support. During the use of the deaerator mixer, the main shaft is driven to rotate by the first driving mechanism, so that the transverse support and the barrel rotate synchronously, which helps to make the barrel revolve around the axis of the main shaft as the rotation center, and at the same time, the barrel is driven to rotate by the second driving mechanism, which helps to achieve the deaerator mixing process of the material inside the barrel.
[0004] In the above-mentioned deaerator, the barrel and the cross support are supported by bearings. However, as the processing capacity of the deaerator increases, the existing deaerator usually needs to meet the deaerator and mixing requirements of large mixing capacity (hundreds of kilograms). However, when the deaerator is performing deaerator and mixing for a long time with a large mixing capacity, the barrel and the cross support bear a large weight of material for a long time, so the bearing will be subjected to a large load for a long time, which can easily lead to fatigue, deformation and cracking of the bearing, which will seriously affect the bearing capacity and service life of the bearing, and then cause the barrel and the cross support to rotate unsteadily, vibrate or shake, and affect the normal use of the deaerator. At the same time, for a deaerator of the hundred-kilogram level, the weight of a single barrel material feeding barrel reaches the hundred-kilogram level. The traditional mixer rotary cup is arranged at an angle, and it is also a big problem to ensure that the barrel is placed obliquely into the rotary cup and to ensure concentricity and alignment. For a mixer with a rotary cup supported at both ends, the upper and lower barrels can only be operated from the side to ensure that the barrel and the rotary cup are concentric, and the alignment is more difficult. For a 100-kilogram degassing mixer, a large amount of material is mixed at a time. The temperature of the material rises greatly during the mixing process. The outer side of the barrel is wrapped with a rotating cup, which forms a thermal barrier to the heat dissipation of the material. It is also difficult to arrange a cooling device, and the heat dissipation and temperature control of the material are also great problems. Summary of the invention
[0005] In order to improve the stress condition of the bearing, thereby ensuring the bearing's load-bearing capacity and service life, and further ensuring the use effect of the deaerator, the present application provides a hanging cross support structure and a deaerator using the structure.
[0006] The present application provides a hanging type horizontal support structure and a deaerator mixer using the structure, which adopts the following technical solution:
[0007] A hanging type cross support structure includes a revolving shaft seat, a cross support is fixedly arranged at the bottom of the revolving shaft seat, and the cross support is arranged in a hanging type, a plurality of mounting parts are rotatably arranged on the cross support, and the number of the mounting parts is at least two, and the plurality of mounting parts are arranged in a circular array around the axis of the revolving shaft seat, a material barrel is hung on each of the mounting parts, and a supporting structure for supporting the mounting parts is arranged inside the cross support.
[0008] By adopting the above technical solution, the use of the suspended transverse support and the barrel helps to improve the stress condition of the support structure, thereby helping to ensure the bearing capacity and service life of the support structure, and further helping to ensure the use effect of the transverse support structure. The position setting of several mounting parts helps to offset and balance the rotational centrifugal forces generated by several barrels during the rotation of the barrel, thereby helping to further improve the stress condition of the support structure, further ensuring the bearing capacity and service life of the support structure, and further ensuring the use effect of the transverse support structure.
[0009] In a specific possible implementation scheme, the mounting member is a main shaft, the main shaft is rotatably arranged on the transverse support, and a plurality of the main shafts are arranged crosswise with each other, and the material barrel is suspended at the bottom end of the main shaft;
[0010] The support structure includes a first bearing and a second bearing. The first bearing and the second bearing are spaced apart and sleeved on the circumferential periphery of the main shaft, and both the first bearing and the second bearing are connected to the transverse support.
[0011] By adopting the above technical solution, the position setting and arrangement of several main shafts are utilized to help the rotational centrifugal forces generated by several barrels to offset and balance each other during the rotation of the barrels, thereby helping to further improve the stress conditions of the first bearing and the second bearing, further ensuring the load-bearing capacity and service life of the first bearing and the second bearing, and further ensuring the use effect of the cross support structure.
[0012] In a specific possible implementation manner, a connecting shaft is fixedly provided at the bottom of the transverse support.
[0013] In a specific feasible implementation scheme, a central rotating shaft is rotatably arranged on the revolving shaft seat, and the central rotating shaft passes through the revolving shaft seat, a central bevel gear is arranged at the bottom end of the central rotating shaft, a spur gear is arranged at the top end of each main shaft, and a plurality of transmission components for connecting the central bevel gear and the spur gear are arranged on the cross support seat.
[0014] By adopting the above technical solution, the transmission assembly is used to help realize the transmission connection between the central bevel gear and the spur gear, thereby helping to realize the transmission connection between the central shaft and the main shaft, and further helping to use the central shaft to drive the main shaft and the barrel to rotate.
[0015] In a specific possible implementation scheme, the transmission assembly includes a transition shaft, a transition bevel gear and a transition spur gear. The transition shaft is rotatably arranged on the cross support, the transition bevel gear is fixedly mounted on the transition shaft and meshes with the center bevel gear, and the transition spur gear is fixedly mounted on the transition shaft and meshes with the spur gear.
[0016] By adopting the above technical scheme, when the center shaft rotates, the meshing of the transition bevel gear and the center bevel gear helps to make the transition bevel gear rotate synchronously, thereby helping to drive the transition shaft and the transition spur gear to rotate synchronously, and the meshing of the spur gear and the transition spur gear helps to make the spur gear rotate synchronously, thereby helping to drive the rotation of the main shaft and the barrel, and helping to realize the self-rotation of the barrel.
[0017] In a specific possible implementation scheme, the bottom end of each main shaft is connected to a connecting flange, a plurality of mounting clips are arranged on the connecting flange, and a plurality of mounting clips for the mounting clips to be engaged are arranged on the circumferential outer wall of the barrel.
[0018] By adopting the above technical solution, the setting of the mounting buckle and the mounting clamp ring helps to achieve a detachable connection between the barrel and the connecting flange, thereby helping to improve the convenience of the barrel disassembly and installation process.
[0019] A defoaming mixer using the above-mentioned hanging cross support structure includes a chassis, an upper mounting plate and a lower mounting plate are arranged inside the chassis at intervals, the top of the cross support is fixedly arranged on the bottom surface of the upper mounting plate, the revolution shaft seat is rotatably connected to the upper mounting plate, and a revolution drive assembly is arranged on the lower mounting plate. The revolution drive assembly is used to drive the material barrel to revolve around the central axis of the revolution shaft seat, the upper mounting plate is provided with a rotation drive assembly for driving the material barrel to rotate, and a vacuum assembly for evacuating the interior of the material barrel is arranged inside the chassis.
[0020] By adopting the above technical solution, the revolution drive assembly helps to drive the cross support structure to rotate, thereby helping to drive the barrel to revolve around the central axis of the revolution shaft seat, and the rotation drive assembly helps to drive the central shaft to rotate, thereby helping to drive the barrel to rotate around the central axis of the main shaft, thereby helping to stir the material inside the barrel by the centrifugal force generated by the revolution and rotation of the barrel. The vacuum assembly helps to vacuum the inside of the barrel, thereby helping to remove bubbles generated by the material during the mixing process. The hanging arrangement of the barrel and the cross support helps to improve the stress conditions of the first bearing and the second bearing, thereby helping to ensure the load-bearing capacity and service life of the first bearing and the second bearing, thereby helping to ensure the stability of the barrel during the revolution and rotation, and ensuring the use effect of the degassing mixer.
[0021] In a specific feasible implementation scheme, the revolving drive assembly includes a revolving drive motor, a first driving wheel, a first driven wheel and a first synchronous belt, the connecting shaft is coaxially arranged with the revolving shaft seat, the connecting shaft passes through the lower mounting plate and is rotatably connected to the lower mounting plate, the revolving drive motor is arranged on the lower mounting plate, the first driving wheel is arranged on the output shaft of the revolving drive motor, the first driven wheel is arranged on the connecting shaft, and the first synchronous belt is sleeved on the outer rings of the first driving wheel and the first driven wheel.
[0022] By adopting the above technical solution, the use of the revolving drive motor helps to drive the first driving wheel to rotate, thereby helping to drive the connecting shaft to rotate synchronously through the first synchronous belt and the first driven wheel, and then helps to drive the cross support to rotate synchronously, which helps to make the barrel revolve around the central axis of the revolving shaft seat.
[0023] In a specific feasible implementation scheme, the self-rotation drive assembly includes a self-rotation drive motor, a second driving wheel, a second driven wheel and a second synchronous belt, the self-rotation drive motor is arranged on the upper mounting plate, the second driving wheel is arranged on the output shaft of the self-rotation drive motor, the second driven wheel is arranged on the central rotating shaft, and the second synchronous belt is sleeved on the outer rings of the second driving wheel and the second driven wheel.
[0024] By adopting the above technical solution, the self-rotating driving motor helps to drive the second driving wheel to rotate, thereby helping to drive the central rotating shaft to rotate synchronously through the second synchronous belt and the second driven wheel, and further helping to make the barrel rotate around the central axis of the main shaft.
[0025] In a specific feasible implementation scheme, the vacuum pump assembly includes a vacuum pump and a vacuum pump pipeline, a first through hole is arranged inside the central rotating shaft, a second through hole connected to the interior of the barrel is arranged inside the main shaft, the first through hole and the second through hole are connected by a pipeline, the vacuum pump is fixedly arranged inside the chassis, one end of the vacuum pump pipeline is connected to the vacuum pump, and the other end of the vacuum pump pipeline is connected to the central rotating shaft and connected to the first through hole.
[0026] By adopting the above technical solution, a vacuum pump is used to help vacuum the inside of the barrel through the vacuum pipeline, the first through hole and the second through hole, thereby helping to remove bubbles generated during the mixing process of the material.
[0027] In summary, the present application includes at least one of the following beneficial technical effects:
[0028] 1. The present application helps to improve the stress conditions of the first bearing and the second bearing through the hanging arrangement of the cross support and the barrel, thereby helping to ensure the load-bearing capacity and service life of the first bearing and the second bearing, and further helping to ensure the use effect of the cross support structure.
[0029] 2. The present application sets the positions and arrangements of several main shafts, which helps to balance the rotational centrifugal forces generated by several barrels during the rotation of the barrels, thereby helping to further improve the stress conditions of the first bearing and the second bearing, further ensuring the load-bearing capacity and service life of the first bearing and the second bearing, and further ensuring the use effect of the cross support structure. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Figure 1 It is a schematic diagram of the overall structure of the hanging cross support structure in this application.
[0031] Figure 2 It is a partial cross-sectional view showing the internal structure of the spindle.
[0032] Figure 3 It is a partial cross-sectional view showing the internal structure of the central shaft.
[0033] Figure 4 It is a partial structural diagram that reflects the specific structure of the transmission component.
[0034] Figure 5 It is a schematic diagram of the internal structure of the defoaming mixer in this application.
[0035] Description of the reference numerals: 1. Revolution shaft seat; 2. Horizontal support; 3. Main shaft; 4. Material barrel; 5. First bearing; 6. Second bearing; 7. Center shaft; 8. Center bevel gear; 9. Spur gear; 10. Transmission assembly; 101. Transition shaft; 102. Transition bevel gear; 103. Transition spur gear; 11. Connecting flange; 12. Mounting buckle; 13. Mounting snap ring; 14. Chassis; 15. Upper mounting plate; 16. Lower mounting plate; 17. Revolution drive Driving assembly; 171, revolution drive motor; 172, first driving wheel; 173, first driven wheel; 174, first synchronous belt; 18, rotation drive assembly; 181, rotation drive motor; 182, second driving wheel; 183, second driven wheel; 184, second synchronous belt; 19, vacuum assembly; 191, vacuum pump; 192, vacuum pipeline; 20, first through hole; 21, second through hole; 22, rotary joint; 23, connecting shaft. DETAILED DESCRIPTION
[0036] The present application is further described in detail below in conjunction with the accompanying drawings.
[0037] The present application embodiment discloses a hanging type horizontal support structure, referring to Figure 1 and Figure 2 , including a revolving shaft seat 1, a transverse support seat 2 is fixedly installed at the bottom of the revolving shaft seat 1, and a plurality of mounting parts are tiltably and rotatably installed on the transverse support seat 2, the number of the mounting parts is at least two, and in this embodiment, the mounting part is a main shaft 3, the number of the main shaft 3 is set to two, and the two main shafts 3 are arranged in a ring array around the axis of the revolving shaft seat 1 and are arranged crosswise with each other.
[0038] Reference Figure 1 and Figure 2 A supporting structure is provided inside the transverse support 2, and the supporting structure includes a first bearing 5 and a second bearing 6. The first bearing 5 and the second bearing 6 are sleeved on the circumferential side wall of the main shaft 3 at intervals, and the first bearing 5 and the second bearing 6 are fixedly connected to the transverse support 2. A connecting flange 11 is fixedly installed at the bottom end of each main shaft 3, and a material barrel 4 is detachably installed on the connecting flange 11. A plurality of mounting buckles 12 are installed on the connecting flange 11, and a mounting snap ring 13 is integrally formed on the circumferential outer wall of the material barrel 4.
[0039] Reference Figure 3 and Figure 4 The bottom of the horizontal support 2 is fixedly connected with a connecting shaft 23, and the connecting shaft 23 is coaxially arranged with the revolving shaft seat 1. A central rotating shaft 7 is installed axially through the revolving shaft seat 1, and the central rotating shaft 7 is rotatably connected with the revolving shaft seat 1. A central bevel gear 8 is fixedly installed at the bottom of the central rotating shaft 7, and a spur gear 9 is fixedly installed at the top of each rotating shaft. Two sets of transmission components 10 are arranged on the horizontal support 2.
[0040] Reference Figure 3 and Figure 4 Each transmission assembly 10 includes a transition shaft 101, a transition bevel gear 102 and a transition spur gear 103. The transition shaft 101 is rotatably mounted on the cross support 2 and is located between the center bevel gear 8 and the spur gear 9. The transition bevel gear 102 is fixedly sleeved on the transition shaft 101 and meshes with the center bevel gear 8. The transition spur gear 103 is fixedly sleeved on the transition shaft 101 and meshes with the spur gear 9.
[0041] The present application also discloses a deaerator mixer using the above-mentioned hanging horizontal support structure. Figure 5 , including a chassis 14, inside which an upper mounting plate 15 and a lower mounting plate 16 are fixed in sequence from top to bottom, the top of the transverse support 2 is fixedly mounted on the bottom surface of the upper mounting plate 15, and the revolving shaft seat 1 is rotatably connected to the upper mounting plate 15.
[0042] Reference Figure 5 The lower mounting plate 16 is provided with a revolution drive assembly 17, which includes a revolution drive motor 171, a first driving wheel 172, a first driven wheel 173 and a first synchronous belt 174. The connecting shaft 23 penetrates the lower mounting plate 16 and is rotatably connected to the lower mounting plate 16. The revolution drive motor 171 is fixedly mounted on the lower mounting plate 16, the first driving wheel 172 is fixedly sleeved on the output shaft of the revolution drive motor 171, the first driven wheel 173 is fixedly sleeved on the connecting shaft 23 and is located on the same horizontal plane as the first driving wheel 172, and the first synchronous belt 174 is sleeved on the outer rings of the first driving wheel 172 and the first driven wheel 173.
[0043] Reference Figure 5 A self-rotation driving assembly 18 is provided on the upper mounting plate 15, and the self-rotation driving assembly 18 includes a self-rotation driving motor 181, a second driving wheel 182, a second driven wheel 183 and a second synchronous belt 184. The self-rotation driving motor 181 is fixedly mounted on the upper mounting plate 15, the second driving wheel 182 is fixedly sleeved on the output shaft of the self-rotation driving motor 181, the second driven wheel 183 is fixedly sleeved on the central rotating shaft 7 and is located on the same horizontal plane as the second driving wheel 182, and the second synchronous belt 184 is sleeved on the outer rings of the second driving wheel 182 and the second driven wheel 183.
[0044] Reference Figure 1 and Figure 5 During the use of the deaerator, the operator puts the material to be processed into the barrel 4, and connects the barrel 4 to the connecting flange 11 by installing the buckle 12, thereby completing the placement of the barrel 4.
[0045] Reference Figure 4 and Figure 5After the material barrel 4 is placed, the operator starts the revolution drive motor 171, and the output shaft of the revolution drive motor 171 drives the first driving wheel 172 to rotate, thereby driving the connecting shaft 23 to rotate synchronously through the transmission of the first synchronous belt 174 and the first driven wheel 173, and then the cross support 2 rotates with the central axis of the revolution shaft seat 1 as the rotation axis, so that the two material barrels 4 revolve around the central axis of the revolution shaft seat 1.
[0046] At the same time, the operator starts the self-rotating drive motor 181, and the output shaft of the self-rotating drive motor 181 drives the second driving wheel 182 to rotate, thereby driving the center shaft 7 to rotate synchronously through the transmission of the second synchronous belt 184 and the second driven wheel 183. When the center shaft 7 rotates, the center bevel gear 8 drives the transition bevel gear 102 to rotate synchronously, thereby driving the transition shaft 101 and the transition spur gear 103 to rotate synchronously. The transition spur gear 103 drives the spur gear 9 to rotate synchronously while rotating, and then drives the main shaft 3 and the barrel 4 to rotate, so that the two barrels 4 rotate around the central axis of the main shaft 3, which helps to stir the material inside the barrel 4 by using the centrifugal force generated by the revolution and rotation of the barrel 4.
[0047] Reference Figure 2 and Figure 5 In the process of simultaneous revolution and rotation of the two barrels 4, the hanging installation of the cross support 2 and the two barrels 4 helps to improve the stress conditions of the first bearing 5 and the second bearing 6, thereby helping to ensure the load-bearing capacity and service life of the first bearing 5 and the second bearing 6, and further helping to ensure the stability of the barrel 4 during the revolution and rotation, thereby ensuring the use effect of the defoaming mixer.
[0048] Reference Figure 2 and Figure 3 A first through hole 20 is opened inside the central rotating shaft 7 along its own axial direction, and a second through hole 21 is opened inside the main shaft 3 and on the connecting flange 11. The second through hole 21 is arranged along the axial direction of the main shaft 3 and is connected with the inside of the barrel 4. The first through hole 20 and the second through hole 21 are connected through a pipeline.
[0049] Reference Figure 3 and Figure 5 A vacuum pumping assembly 19 is also provided on the upper mounting plate 15. The vacuum pumping assembly 19 includes a vacuum pump 191 and a vacuum pumping pipeline 192. The vacuum pump 191 is fixedly mounted on the upper mounting plate 15. One end of the vacuum pumping pipeline 192 is fixedly connected to the vacuum pump 191. A rotary joint 22 is installed on the top of the central rotating shaft 7. The rotary joint 22 is connected to the first through hole 20. The other end of the vacuum pumping pipeline 192 is connected to the rotary joint 22.
[0050] Reference Figure 5While the barrel 4 is rotating, the operator starts the vacuum pump 191, and the vacuum pump 191 evacuates the inside of the barrel 4 through the vacuum pipeline 192, thereby helping to remove bubbles generated during the mixing process of the material, and further helping to achieve the degassing and mixing process of the material in the barrel 4.
[0051] The implementation principle of the embodiment of the present application is: during the use of the degassing mixer, the operator puts the material to be processed into the barrel 4, and connects the barrel 4 to the connecting flange 11 by installing the buckle 12, thereby completing the placement of the barrel 4.
[0052] After the material barrel 4 is placed, the operator starts the revolution drive motor 171, and the output shaft of the revolution drive motor 171 drives the first driving wheel 172 to rotate, thereby driving the connecting shaft 23 to rotate synchronously through the transmission of the first synchronous belt 174 and the first driven wheel 173, and then the cross support 2 rotates with the central axis of the revolution shaft seat 1 as the rotation axis, so that the two material barrels 4 revolve around the central axis of the revolution shaft seat 1.
[0053] At the same time, the operator starts the self-rotating drive motor 181, and the output shaft of the self-rotating drive motor 181 drives the second driving wheel 182 to rotate, thereby driving the center shaft 7 to rotate synchronously through the transmission of the second synchronous belt 184 and the second driven wheel 183. When the center shaft 7 rotates, the center bevel gear 8 drives the transition bevel gear 102 to rotate synchronously, thereby driving the transition shaft 101 and the transition spur gear 103 to rotate synchronously. The transition spur gear 103 drives the spur gear 9 to rotate synchronously while rotating, and then drives the main shaft 3 and the barrel 4 to rotate, so that the two barrels 4 rotate around the central axis of the main shaft 3, which helps to stir the material inside the barrel 4 by using the centrifugal force generated by the revolution and rotation of the barrel 4.
[0054] During the simultaneous revolution and rotation of the two barrels 4, the hanging installation of the cross support 2 and the two barrels 4 helps to improve the stress conditions of the first bearing 5 and the second bearing 6, thereby helping to ensure the load-bearing capacity and service life of the first bearing 5 and the second bearing 6, and further helping to ensure the stability of the barrels 4 during the revolution and rotation, thereby ensuring the use effect of the defoaming mixer.
[0055] While the barrel 4 is rotating, the operator starts the vacuum pump 191, and the vacuum pump 191 vacuums the inside of the barrel 4 through the vacuum pipe 192, the first through hole 20 and the second through hole 21, thereby helping to remove bubbles generated during the mixing process of the material, and further helping to achieve the degassing and mixing process of the material in the barrel 4.
[0056] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereto. Therefore, any equivalent changes made according to the structure, shape, and principle of the present application should be included in the protection scope of the present application.
Claims
1. A hanging type horizontal support structure, characterized in that: The invention comprises a revolving shaft seat (1), a transverse support seat (2) is fixedly provided at the bottom of the revolving shaft seat (1), and the transverse support seat (2) is suspended, a plurality of mounting parts are rotatably provided on the transverse support seat (2), and the number of the mounting parts is at least two, and the plurality of mounting parts are arranged in a circular array around the axis of the revolving shaft seat (1), and a material barrel (4) is suspended on each of the mounting parts, and a supporting structure for supporting the mounting parts is provided inside the transverse support seat; the mounting part is a main shaft (3), and the main shaft (3) is rotatably provided on the transverse support seat (2), and a plurality of the main shafts (3) are arranged crosswise with each other around the axis of the revolving shaft seat (1), and the material barrel (4) is suspended at the bottom end of the main shaft (3); a central rotating shaft (7) is rotatably provided on the revolving shaft seat (1), and a central bevel gear (8) is provided at the bottom end of the central rotating shaft (7), and each of the main shafts (3) is provided with a central bevel gear (8). ) are provided with a spur gear (9) at the top end, and the transverse support (2) is provided with a plurality of transmission components (10) for connecting the central bevel gear (8) and the spur gear (9) in transmission; the transmission component (10) comprises a transition shaft (101), a transition bevel gear (102) and a transition spur gear (103); the transition shaft (101) is rotatably arranged on the transverse support (2), the transition bevel gear (102) is fixedly sleeved on the transition shaft (101) and meshed with the central bevel gear (8), and the transition spur gear (103) is fixedly sleeved on the transition shaft (101) and meshed with the spur gear (9); the bottom end of each of the main shafts (3) is connected with a connecting flange (11), and a plurality of mounting buckles (12) are provided on the connecting flange (11); a plurality of mounting snap rings (13) for the mounting buckles (12) to be engaged are provided on the circumferential outer wall of the barrel (4).
2. A hanging type horizontal support structure according to claim 1, characterized in that: The support structure comprises a first bearing (5) and a second bearing (6), wherein the first bearing (5) and the second bearing (6) are spaced apart and sleeved on the circumferential periphery of the main shaft (3), and the first bearing (5) and the second bearing (6) are both connected to the transverse support (2).
3. The hanging type horizontal support structure according to claim 1, characterized in that: A connecting shaft (23) is fixedly arranged at the bottom of the transverse support (2).
4. A degassing mixer, using the hanging type horizontal support structure described in any one of claims 1 to 3, characterized in that: The invention comprises a chassis (14), wherein an upper mounting plate (15) and a lower mounting plate (16) are arranged inside the chassis (14) at intervals, the top of the transverse support (2) is fixedly arranged on the bottom surface of the upper mounting plate (15), the revolving shaft seat (1) is rotatably connected to the upper mounting plate (15), the lower mounting plate (16) is provided with a revolving driving assembly (17), the revolving driving assembly (17) is used to drive the material barrel (4) to revolve around the central axis of the revolving shaft seat (1), the upper mounting plate (15) is provided with a self-rotating driving assembly (18) for driving the material barrel (4) to rotate, and the inside of the chassis (14) is provided with a vacuuming assembly (19) for vacuuming the inside of the material barrel (4).
5. A deaerator according to claim 4, characterized in that: The revolving driving assembly (17) comprises a revolving driving motor (171), a first driving wheel (172), a first driven wheel (173) and a first synchronous belt (174); the connecting shaft (23) is coaxially arranged with the revolving shaft seat (1); the connecting shaft (23) passes through the lower mounting plate (16) and is rotatably connected to the lower mounting plate (16); the revolving driving motor (171) is arranged on the lower mounting plate (16); the first driving wheel (172) is arranged on the output shaft of the revolving driving motor (171); the first driven wheel (173) is arranged on the connecting shaft (23); and the first synchronous belt (174) is sleeved on the outer rings of the first driving wheel (172) and the first driven wheel (173).
6. A deaerator according to claim 4, characterized in that: The self-rotation drive assembly (18) comprises a self-rotation drive motor (181), a second driving wheel (182), a second driven wheel (183) and a second synchronous belt (184); the self-rotation drive motor (181) is arranged on an upper mounting plate (15); the second driving wheel (182) is arranged on an output shaft of the self-rotation drive motor (181); the second driven wheel (183) is arranged on a central rotating shaft (7); and the second synchronous belt (184) is sleeved on the outer rings of the second driving wheel (182) and the second driven wheel (183).
7. A deaerator according to claim 4, characterized in that: The vacuum pumping assembly (19) comprises a vacuum pump (191) and a vacuum pumping pipeline (192); a first through hole (20) is arranged inside the central rotating shaft (7); a second through hole (21) connected to the inside of the barrel (4) is arranged inside the main shaft (3); the first through hole (20) and the second through hole (21) are connected via a pipeline; the vacuum pump (191) is fixedly arranged inside the chassis (14); one end of the vacuum pumping pipeline (192) is connected to the vacuum pump (191); and the other end of the vacuum pumping pipeline (192) is connected to the central rotating shaft (7) and is connected to the first through hole (20).
Citation Information
Patent Citations
A frame-type planetary transverse support structure and a homogenizer using the structure
CN218795401U