Rolling mill for machining aluminum-titanium alloy products and driving transmission assembly of rolling mill
By designing the movable interlocking assembly and the downward drive assembly in the drive transmission assembly of the rolling mill for aluminum-titanium alloy product processing, the synchronous fixation of the reducer, energy-saving motor and gearbox is achieved, solving the problem of cumbersome installation in the prior art, and improving the installation efficiency and fixing fastness.
Patent Information
- Application Number
- CN202510371147.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-27
- Publication Date
- 2025-06-24
AI Technical Summary
The existing rolling mill drive transmission components for aluminum-titanium alloy products need to be fixed one by one during installation, which is cumbersome to operate, resulting in low installation efficiency and high working strength.
A drive transmission assembly is designed, in which a movable interlock assembly is provided on the reducer, which drives the movable interlock assembly to move through the downward drive assembly to achieve the fixing of the energy-saving motor. The assembly includes a driving carrier plate, a rotary ring, a load-bearing connecting plate and a fixed lock strip. The rotary ring drives the load-bearing connecting plate and a fixed lock strip to achieve synchronous fixation of the reducer, an energy-saving motor and the gear box.
It realizes rapid installation of drive transmission components, simplifies operating procedures, improves installation efficiency, reduces working strength, and ensures firm fixation of components.
Smart Images

Figure CN120190218A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of rolling mills, and in particular to a rolling mill for processing aluminum-titanium alloy products and a driving transmission component thereof. Background Art
[0002] When processing aluminum-titanium alloy products, it is necessary to use a rolling mill to roll the raw materials to make them plastically deformed to meet production needs. In order to comply with the production needs of energy conservation and emission reduction, existing rolling mills for processing aluminum-titanium alloy products usually use energy-saving motors to drive the rollers to work, that is, the energy-saving motors, reducers, and gear boxes form a drive transmission assembly to drive the rollers to rotate. The use of energy-saving motors makes the entire rolling mill unit more energy-efficient. However, when assembling the drive transmission assembly with the rolling mill stand, each component in the assembly needs to be fixed separately, which is cumbersome to operate and cannot achieve rapid installation of the drive transmission assembly. In addition, the installation efficiency of the staff is low and the work intensity is high. Summary of the invention
[0003] The object of the present invention is to provide a rolling mill and a driving transmission assembly thereof for processing aluminum-titanium alloy products, so as to solve the problems raised in the above-mentioned background technology.
[0004] To achieve the above object, the present invention provides the following technical solutions: A driving transmission assembly for processing aluminum-titanium alloy products, comprising a reducer, an energy-saving motor and a gear box, wherein the energy-saving motor is mounted on the reducer, the gear box is connected to the reducer, a movable interlocking assembly is provided on the reducer, the energy-saving motor is mounted on the reducer, and the energy-saving motor is fixed by the movable interlocking assembly; A threaded sleeve is fixedly arranged at the upper end of the reducer, and a downward drive assembly is installed at the threaded sleeve. The downward drive assembly drives the movable interlocking assembly to move to fix the energy-saving motor.
[0005] Preferably, the downward drive assembly comprises a drive carrier plate and a rotating ring, the drive carrier plate is provided with a bearing, and the bearing is matched with a threaded column; The threaded column is matched with the threaded sleeve, and the receiving strips are symmetrically fixedly arranged on the driving carrier, and the lower end of the receiving strips is installed with a movable plug rod.
[0006] Preferably, a connecting block is fixedly provided at one end of the movable insertion rod, a linkage plate is fixedly provided at the other end, and the connecting block is connected to a rotating ring.
[0007] Preferably, a rotating support column is symmetrically fixedly arranged on the reducer, and a rotating ring is sleeved on the rotating support column; The rotating ring is symmetrically and fixedly provided with connecting strips, and the connecting strips are provided with matching cavity holes; Preferably, a first fitting column is inserted into the fitting cavity hole close to the connecting carrier block. An adaptor frame is fixedly arranged on the first fitting column, and the adaptor frame is hinged to the connecting carrier block; A second fitting column is inserted into the fitting cavity hole on the other connecting strip board. A movable connecting block is fixedly arranged on the second fitting column.
[0008] Preferably, the lower end of the speed reducer is symmetrically and fixedly provided with a machine body bottom plate, and support insertion holes are formed in the machine body bottom plate; Load-bearing columns are also symmetrically and fixedly arranged on both sides of the speed reducer; A fitting carrier plate is fixedly arranged on the energy-saving motor; The lower end of the gear box is fixedly provided with a support positioning seat. Fitting convex frames are symmetrically and fixedly arranged on the support positioning seat, and locking channels are arranged on the fitting convex frames.
[0009] Preferably, the movable interlocking assembly includes a load-bearing connecting plate and a fixed locking bar. The load-bearing connecting plate is installed on the load-bearing column, and a load-bearing support column is fixedly arranged on the load-bearing connecting plate; A fixed fitting sleeve is arranged on the load-bearing support column. When the fixed fitting sleeve fixes the energy-saving motor, it is sleeved on the fitting carrier plate; A connecting channel is arranged on the load-bearing connecting plate. A connecting insertion rod is inserted into the connecting channel. A connecting bearing plate is fixedly arranged on the connecting insertion rod, and the connecting bearing plate is hinged to the movable connecting block; The lower end of the linkage plate is connected with a fixed locking bar. A linkage channel is arranged on the fixed locking bar. A linkage plate is inserted into the linkage channel. And fitting locking rods are symmetrically and fixedly arranged on the fixed locking bar, and the fitting locking rods are inserted into the support insertion holes.
[0010] A rolling mill for processing aluminum-titanium alloy products includes a machine table. An installation plate frame is fixedly arranged on the machine table. A rolling roll is installed on the installation plate frame. A positioning component is arranged on the machine table, and the speed reducer and the gear box are positioned through the positioning component; An auxiliary fixing mechanism is installed on the positioning component. The auxiliary fixing mechanism is driven through the movable interlocking assembly to fix the speed reducer and the gear box on the machine table; The auxiliary fixing mechanism can also assist in supporting and fixing the energy-saving motor.
[0011] Preferably, the positioning component includes a first positioning ring sleeve and a second positioning ring sleeve. The first positioning ring sleeve cooperates with the machine body bottom plate to realize the positioning of the speed reducer, Cooperating locking channels are symmetrically formed on both sides of the first positioning ring sleeve. And a bearing block is fixedly arranged at one end of the first positioning ring sleeve. Support carrier rods are symmetrically arranged on both sides of the bearing block; The second positioning collar cooperates with the support positioning seat to position the gearbox. The gearbox is connected to the rolling mill, and on both sides of one end of the second positioning collar, mating guide holes are symmetrically provided.
[0012] Preferably, the auxiliary fixing mechanism includes movable connecting plates, support bars, and movable load bars. There are two movable connecting plates, which are respectively installed on both sides of the first positioning collar. Driving columns are fixedly arranged on the movable connecting plates, and the driving columns are inserted into the mating locking channels. One end of the movable connecting plate is provided with a mating through hole, and a support load rod is inserted into the mating through hole. A connecting spring is sleeved on the support load rod. At one end of the movable connecting plate close to the support load rod, a mating connecting plate is further provided. A plugging column is arranged on the mating connecting plate, and the plugging column is connected to a support bar. The support bar is movably installed on the bearing block. A support groove is provided at the upper end of the support bar, a limiting insertion rod is arranged at the lower end, and U-shaped inclined plates are symmetrically and fixedly arranged on the support bar. The plugging column is inserted into the U-shaped inclined plates. A mating locking block is arranged at the other end of the movable connecting plate. A connecting bar frame is arranged on the movable connecting plate below the mating locking block. A movable load rod is hinged on the connecting bar frame, and the other end of the movable load rod is hinged to a movable load bar. Mating guide rods are symmetrically and fixedly arranged on the movable load bar. The mating guide rods are inserted into the mating guide holes, and a limiting pressure plate is also fixedly arranged on the movable load bar.
[0013] Compared with the prior art, the beneficial effects of the present invention are as follows: The structure of the present invention is reasonably arranged and has strong functionality, with the following advantages: 1. When installing the driving transmission assembly, the speed reducer and the gearbox are positioned on the machine table. The speed reducer is connected to the energy-saving motor, and the gearbox is connected to the rolling mill. Then, by rotating the threaded column, the driving carrier plate can be moved downward to synchronously fix the speed reducer, the energy-saving motor, and the gearbox, without the need for individual fixing operations, which is very convenient and fast, with simple operation, saving time and effort.
[0014] 2. When the driving carrier plate moves downward, it will drive the rotating ring to rotate. Then, under the action of the rotating ring, it will drive the bearing connecting plate to move so that the fixed mating sleeve on the bearing connecting plate is sleeved on the mating carrier plate to fix the energy-saving motor. At the same time, under the action of the rotating ring, it will also drive the linkage plate to move. As the linkage plate moves, it will drive the fixed locking bar to move, and then the mating locking rod on the fixed locking bar is inserted into the mating locking channel to fix the speed reducer.
[0015] 3. When the mating lock rod moves, it will push the driving column to move, thereby driving the movable connecting plate to move. As the movable connecting plate moves, it will drive the support bar to move upward, so that the support bar is also sleeved on the mating carrier plate, further strengthening the fixation of the energy-saving motor. As the movable connecting plate moves, the mating lock block will be inserted into the locking channel to fix the gearbox. And as the movable connecting plate moves, under the action of the movable carrier rod, it will drive the movable carrier bar to move, so that the limit pressing plate on the movable carrier bar presses on the support positioning seat to strengthen the fixation of the gearbox. Description of the Drawings
[0016] Figure 1 It is a schematic diagram of the first perspective of the assembly of the rolling mill and the drive transmission component.
[0017] Figure 2 It is a schematic diagram of the second perspective of the assembly of the rolling mill and the drive transmission component.
[0018] Figure 3 It is Figure 1 An enlarged schematic diagram of part A in
[0019] Figure 4 It is a schematic diagram of the assembly of the rolling mill.
[0020] Figure 5 It is a schematic diagram of the structure of the rolling mill.
[0021] Figure 6 It is a schematic diagram of the assembly of the drive transmission component.
[0022] Figure 7 It is a schematic diagram of the connection of the speed reducer, the energy-saving motor and the gearbox.
[0023] Figure 8 It is a schematic diagram of the first perspective of the assembly of the drive carrier plate, the rotating ring, the bearing connecting plate and the fixed lock bar.
[0024] Figure 9 It is a schematic diagram of the second perspective of the assembly of the drive carrier plate, the rotating ring, the bearing connecting plate and the fixed lock bar.
[0025] Figure 10 It is a schematic diagram of the first perspective of the assembly of the movable connecting plate.
[0026] Figure 11 It is a schematic diagram of the second perspective of the assembly of the movable connecting plate.
[0027] In the figure: 1, machine table; 11, mounting plate frame; 12, rolling roller; 13, first positioning ring sleeve; 14, matching lock channel; 15, bearing block; 16, matching socket; 17, supporting bearing rod; 18, second positioning ring sleeve; 19, matching guide hole; 2, reducer; 21, threaded sleeve; 22, machine body bottom plate; 23, supporting socket; 24, bearing column; 25, rotating bearing column; 26, limit block; 3, energy-saving motor; 31, matching carrier plate; 4, gear box; 41, supporting positioning seat; 42, matching convex frame; 43, locking channel; 5, driving carrier plate; 51, bearing; 52, threaded column; 53, receiving strip; 54, movable connecting hole; 55, movable plug rod; 56, connecting carrier block; 57, linkage plate; 6, rotating ring; 61, connecting strip plate ;62, matching cavity hole;63, first matching column;64, connecting frame;65, second matching column;66, movable connecting block;7, load-bearing connecting plate;71, supporting through hole;72, loading supporting column;73, fixed matching sleeve;74, connecting channel;75, connecting plug rod;76, connecting supporting plate;8, fixed locking strip;81, linkage channel;82, matching locking rod;9, movable connecting plate;91, driving column;92, matching through hole;93, connecting spring;94, matching connecting plate;95, plug-in column;96, supporting strip;961, supporting groove;962, limiting plug rod;963, U-shaped inclined plate;97, matching locking block;98, connecting strip frame;981, movable load rod;99, movable load strip;991, matching guide rod;992, limiting pressure plate. DETAILED DESCRIPTION
[0028] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0029] The present invention provides a technical solution: like Figure 6 As shown, a driving transmission assembly for processing aluminum-titanium alloy products includes a reducer 2, an energy-saving motor 3 and a gear box 4. The energy-saving motor 3 is installed on the reducer 2, and the gear box 4 is connected to the reducer 2. The reducer 2 is provided with a movable interlocking assembly. The energy-saving motor 3 is installed on the reducer 2, and the energy-saving motor 3 is fixed by the movable interlocking assembly. A threaded sleeve 21 is fixedly provided on the upper end of the reducer 2, and a downward driving assembly is installed at the threaded sleeve 21. The downward driving assembly drives the movable interlocking assembly to move to fix the energy-saving motor 3.
[0030] like Figure 8 and Figure 9As shown, the downward driving assembly includes a driving carrier plate 5 and a rotating ring 6, a bearing 51 is installed on the driving carrier plate 5, the bearing 51 is matched with a threaded column 52, the threaded column 52 cooperates with the threaded sleeve 21, and a receiving strip 53 is symmetrically fixedly arranged on the driving carrier plate 5, a movable plug rod 55 is installed at the lower end of the receiving strip 53, and a movable connecting hole 54 is opened on the receiving strip 53, and the movable connecting hole 54 cooperates with the movable plug rod 55.
[0031] like Figure 8 and Figure 9 As shown, a connecting block 56 is fixedly provided at one end of the movable insert rod 55 , and a linkage plate 57 is fixedly provided at the other end, and the connecting block 56 is connected to the rotating ring 6 .
[0032] like Figure 6 , Figure 7 and Figure 9 As shown, a rotating support column 25 is symmetrically fixedly provided on the reducer 2, a rotating ring 6 is sleeved on the rotating support column 25, a connecting strip 61 is symmetrically fixedly provided on the rotating ring 6, a matching cavity hole 62 is provided on the connecting strip 61, a first matching column 63 is inserted in the matching cavity hole 62 close to the connecting support block 56, a connecting frame 64 is fixedly provided on the first matching column 63, the connecting frame 64 is hinged to the connecting support block 56, a second matching column 65 is inserted in the matching cavity hole 62 on the other connecting strip 61, a movable connecting block 66 is fixedly provided on the second matching column 65, and a limiting block 26 is provided on the rotating support column 25, which limits the rotating ring 6.
[0033] like Figure 7 As shown, a body bottom plate 22 is symmetrically fixedly provided at the lower end of the reducer 2, a support socket 23 is provided on the body bottom plate 22, bearing columns 24 are symmetrically fixedly provided on both sides of the reducer 2, a matching carrier plate 31 is fixedly provided on the energy-saving motor 3, a support positioning seat 41 is fixedly provided at the lower end of the gear box 4, matching protrusions 42 are symmetrically fixedly provided on the support positioning seat 41, and a locking channel 43 is provided on the matching protrusion 42.
[0034] like Figure 6 , Figure 8 and Figure 9As shown, the movable interlock assembly includes a load-bearing connecting plate 7 and a fixed locking bar 8. The load-bearing connecting plate 7 is installed on the load-bearing column 24, and a load-bearing support column 72 is fixedly arranged on the load-bearing connecting plate 7. A fixed mating sleeve 73 is arranged on the load-bearing support column 72. When the fixed mating sleeve 73 fixes the energy-saving motor 3, it is sleeved on the mating load disc 31. A connecting channel 74 is arranged on the load-bearing connecting plate 7, and a connecting plug rod 75 is inserted into the connecting channel 74. A connecting support plate 76 is fixedly arranged on the connecting plug rod 75, and the connecting support plate 76 is hinged to the movable connecting block 66. The lower end of the linkage plate 57 is connected to a fixed locking bar 8. A linkage channel 81 is arranged on the fixed locking bar 8, and the linkage plate 57 is inserted into the linkage channel 81. And two mating locking rods 82 are symmetrically and fixedly arranged on the fixed locking bar 8, and the mating locking rods 82 are inserted into the support jacks 23. A support through hole 71 is formed in the load-bearing connecting plate 7, and the support through hole 71 cooperates with the load-bearing column 24.
[0035] As Figure 1 and Figure 2 As shown, a rolling mill for processing aluminum-titanium alloy products includes a machine table 1. An installation plate frame 11 is fixedly arranged on the machine table 1, and a rolling roll 12 is installed on the installation plate frame 11. A positioning assembly is arranged on the machine table 1 to position the speed reducer 2 and the gear box 4 through the positioning assembly. An auxiliary fixing mechanism is installed on the positioning assembly, and the auxiliary fixing mechanism is driven by a movable interlock assembly to fix the speed reducer 2 and the gear box 4 on the machine table 1. The auxiliary fixing mechanism can also assist in supporting and fixing the energy-saving motor 3.
[0036] As As Figure 1 、 Figure 4 and Figure 5 As shown, the positioning assembly includes a first positioning ring sleeve 13 and a second positioning ring sleeve 18. The first positioning ring sleeve 13 cooperates with the body bottom plate 22 to position the speed reducer 2. Two mating locking channels 14 are symmetrically opened on both sides of the first positioning ring sleeve 13, and a bearing block 15 is fixedly arranged at one end of the first positioning ring sleeve 13. Two support load rods 17 are symmetrically arranged on both sides of the bearing block 15. The second positioning ring sleeve 18 cooperates with the support positioning seat 41 to position the gear box 4. The gear box 4 is connected to the rolling roll 12, and two mating guide holes 19 are symmetrically opened on both sides of one end of the second positioning ring sleeve 18.
[0037] As Figure 1 、 Figure 3 、 Figure 10 and Figure 11As shown, the auxiliary fixing mechanism includes movable connecting plates 9, support bars 96 and movable carrier bars 99. There are two movable connecting plates 9, which are respectively installed on both sides of the first positioning ring sleeve 13. A driving column 91 is fixedly arranged on the movable connecting plate 9. The driving column 91 is inserted into the mating locking channel 14. A mating through hole 92 is formed at one end of the movable connecting plate 9. A support carrier rod 17 is inserted into the mating through hole 92. A connecting spring 93 is sleeved on the support carrier rod 17, and both ends of the connecting spring 93 are respectively fixed on the bearing block 15 and the movable connecting plate 9.
[0038] As Figure 2 , Figure 3 , Figure 5 and Figure 11 As shown, a mating connecting plate 94 is further arranged at one end of the movable connecting plate 9 close to the support carrier rod 17. An insertion column 95 is arranged on the mating connecting plate 94. The insertion column 95 is connected with a support bar 96. The support bar 96 is movably installed on the bearing block 15. A support groove 961 is formed at the upper end of the support bar 96, and a limiting insertion rod 962 is arranged at the lower end. A mating insertion hole 16 is formed on the bearing block 15. The mating insertion hole 16 is matched with the limiting insertion rod 962. U-shaped inclined plates 963 are symmetrically and fixedly arranged on the support bar 96. The insertion column 95 is inserted into the U-shaped inclined plates 963, and the insertion column 95 is in contact with the inner wall of the U-shaped inclined plates 963. A mating locking block 97 is arranged at the other end of the movable connecting plate 9. A connecting bar frame 98 is arranged on the movable connecting plate 9 below the mating locking block 97. A movable carrier rod 981 is hinged on the connecting bar frame 98. The other end of the movable carrier rod 981 is hinged with a movable carrier bar 99. Mating guide rods 991 are symmetrically and fixedly arranged on the movable carrier bar 99. The mating guide rods 991 are inserted into the mating guide holes 19. A limiting pressing plate 992 is also fixedly arranged on the movable carrier bar 99.
[0039] Position the speed reducer 2 on the machine table 1 through the first positioning collar 13, and also position the gearbox 4 on the machine table 1 through the second positioning collar 18. When fixing the speed reducer 2, the gearbox 4 and the energy-saving motor 3, rotate the threaded column 52. Under the action of the thread, the threaded column 52 moves downward, thereby driving the driving carrier plate 5 to move downward. As the driving carrier plate 5 moves downward, it will drive the connecting carrier block 56 to move downward, and then drive the rotating ring 6 to rotate. That is, the connecting frame 64 rotates downward and drives the movable insertion rod 55 to move. As the connecting frame 64 rotates downward, the movable connecting block 66 will rotate upward. As the movable connecting block 66 rotates upward, it will drive the connecting bearing plate 76 to move upward, thereby driving the bearing connecting plate 7 to move towards the speed reducer 2, so that the fixed mating sleeve 73 on the bearing connecting plate 7 is sleeved on the mating carrier plate 31, realizing the fixation of the energy-saving motor 3. As the movable insertion rod 55 moves, it will also drive the linkage plate 57 to move. As the linkage plate 57 moves, it will drive the fixed locking bar 8 to move, so that the mating locking rod 82 on the fixed locking bar 8 is inserted into the mating locking groove 14 to realize the fixation of the speed reducer 2. When the mating locking rod 82 is inserted into the mating locking groove 14, it will contact the driving column 91, thereby pushing the driving column 91 to move, causing the movable connecting plate 9 to move away from the first positioning collar 13. As the movable connecting plate 9 moves, under the cooperation of the insertion column 95 and the U-shaped inclined plate 963, it will drive the support bar 96 to move upward, so that the mating carrier plate 31 is inserted into the support groove 961, further strengthening the support and fixation of the energy-saving motor 3. In addition, when the movable connecting plate 9 moves, it will also cause the mating locking block 97 to be inserted into the locking channel 43 to realize the fixation of the gearbox 4. At the same time, under the action of the movable carrier rod 981, it will drive the movable carrier bar 99 to move towards the second positioning collar 18, so that the limit pressure plate 992 presses on the support positioning seat 41, strengthening the fixation of the gearbox 4, fully ensuring the firmness of the installation of the drive transmission component, and the operation is simple, convenient and fast. It can realize the synchronous fixation and unlocking of the speed reducer 2, the energy-saving motor 3 and the gearbox 4. When disassembling, only need to rotate the threaded column 52 in the reverse direction.
[0040] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A drive transmission assembly for processing aluminum-titanium alloy products, comprising a reducer, an energy-saving motor and a gear box, wherein the energy-saving motor is mounted on the reducer, and the gear box is connected to the reducer, characterized in that: The reducer is provided with a movable interlocking assembly, the energy-saving motor is installed on the reducer, and the energy-saving motor is fixed by the movable interlocking assembly; A threaded sleeve is fixedly arranged at the upper end of the reducer, and a downward drive assembly is installed at the threaded sleeve. The downward drive assembly drives the movable interlocking assembly to move to fix the energy-saving motor.
2. The drive transmission assembly for processing aluminum-titanium alloy products according to claim 1, characterized in that: The downward drive assembly comprises a drive carrier plate and a rotating ring, the drive carrier plate is provided with a bearing, and the bearing is matched with a threaded column; The threaded column is matched with the threaded sleeve, and the receiving strips are symmetrically fixedly arranged on the driving carrier, and the lower end of the receiving strips is installed with a movable plug rod.
3. The drive transmission assembly for processing aluminum-titanium alloy products according to claim 2, characterized in that: A connecting block is fixedly arranged at one end of the movable plug rod, a linkage plate is fixedly arranged at the other end, and the connecting block is connected with a rotating ring.
4. The drive transmission assembly for processing aluminum-titanium alloy products according to claim 3, characterized in that: The reducer is symmetrically and fixedly provided with a rotating support column, and a rotating ring is sleeved on the rotating support column; The rotating ring is symmetrically and fixedly provided with connecting strips, and the connecting strips are provided with matching cavity holes.
5. The drive transmission assembly for processing aluminum-titanium alloy products according to claim 4, characterized in that: A first matching column is inserted into the matching cavity hole close to the connection carrier block, a connection frame is fixedly arranged on the first matching column, and the connection frame is hinged to the connection carrier block; A second matching column is inserted into the matching cavity hole on the other connecting strip plate, and a movable connecting block is fixedly arranged on the second matching column.
6. The drive transmission assembly for processing aluminum-titanium alloy products according to claim 5, characterized in that: The lower end of the reducer is symmetrically fixed with a body bottom plate, and the body bottom plate is provided with a support socket; The two sides of the reducer are also symmetrically fixed with bearing columns; A matching carrier plate is fixedly arranged on the energy-saving motor; A supporting and positioning seat is fixedly arranged at the lower end of the gear box, a matching convex frame is symmetrically fixedly arranged on the supporting and positioning seat, and a locking channel is arranged on the matching convex frame.
7. The drive transmission assembly for processing aluminum-titanium alloy products according to claim 6, characterized in that: The movable interlocking assembly includes a load-bearing connecting plate and a fixed locking strip, wherein the load-bearing connecting plate is installed on the load-bearing column, and a load-bearing supporting column is fixedly arranged on the load-bearing connecting plate; The supporting column is provided with a fixed matching sleeve, which is sleeved on the matching carrier plate when it plays a fixing role on the energy-saving motor; A connecting channel is provided on the bearing connecting plate, a connecting rod is inserted in the connecting channel, a connecting support plate is fixedly provided on the connecting rod, and the connecting support plate is hinged with the movable connecting block; The lower end of the linkage plate is connected with a fixed lock bar, a linkage channel is arranged on the fixed lock bar, a linkage plate is inserted in the linkage channel, and a matching lock rod is symmetrically fixedly arranged on the fixed lock bar, and the matching lock rod is inserted in the support socket.
8. A rolling mill for processing aluminum-titanium alloy products, comprising a machine platform, a mounting plate frame is fixedly arranged on the machine platform, and a roller is mounted on the mounting plate frame, characterized in that: The rolling mill is equipped with a drive transmission assembly according to any one of claims 1 to 7; The machine is provided with a positioning component, through which the reducer and the gear box are positioned; The positioning assembly is provided with an auxiliary fixing mechanism, which is driven by a movable interlocking assembly to fix the reducer and the gear box on the machine platform; The auxiliary fixing mechanism can also provide auxiliary support and fixation for the energy-saving motor.
9. A rolling mill for processing aluminum-titanium alloy products according to claim 8, characterized in that: The positioning assembly includes a first positioning ring sleeve and a second positioning ring sleeve, wherein the first positioning ring sleeve cooperates with the bottom plate of the machine body to realize the positioning of the reducer. The first positioning ring sleeve is symmetrically provided with matching lock paths on both sides, and a bearing block is fixedly provided at one end of the first positioning ring sleeve, and supporting bearing rods are symmetrically provided on both sides of the bearing block; The second positioning ring sleeve cooperates with the supporting positioning seat to realize the positioning of the gear box, and the gear box is connected to the roller, and matching guide holes are symmetrically opened on both sides of one end of the second positioning ring sleeve.
10. A rolling mill for processing aluminum-titanium alloy products according to claim 9, characterized in that: The auxiliary fixing mechanism includes an active connecting plate, a supporting bar and an active carrying bar. There are two active connecting plates, which are respectively installed on both sides of the first positioning ring sleeve. A driving column is fixedly arranged on the active connecting plate, and the driving column is inserted into the matching lock track. A matching through hole is provided at one end of the movable connecting plate, a supporting rod is inserted into the matching through hole, and a connecting spring is sleeved on the supporting rod; A matching connecting plate is also provided on one end of the movable connecting plate close to the supporting rod, and a plug-in column is provided on the matching connecting plate, and the plug-in column is connected to a supporting bar; The support bar is movably installed on the bearing block, a support groove is provided at the upper end of the support bar, a limited insertion rod is provided at the lower end, and a U-shaped inclined plate is symmetrically fixedly provided on the support bar, a plug-in column is inserted in the U-shaped inclined plate, a matching locking block is provided at the other end of the movable connecting plate, a connecting bar frame is provided on the movable connecting plate at the lower side of the matching locking block, a movable carrying rod is hinged on the connecting bar frame, and a movable carrying bar is hinged on the other end of the movable carrying rod; The movable carrier bar is symmetrically and fixedly provided with matching guide rods, the matching guide rods are inserted into the matching guide holes, and the movable carrier bar is also fixedly provided with a limiting pressure plate.