An Additive Intelligent Manufacturing Device and Preparation Process for Titanium Alloy
By setting up multiple components to use, the additive intelligent manufacturing device can produce multiple models of titanium alloy workpieces, solving the problem that existing devices can only produce the same model, reducing manufacturing costs and improving processing stability.
Patent Information
- Application Number
- CN201911230778.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2019-12-05
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2039-12-05
AI Technical Summary
The existing additive intelligent manufacturing devices can only produce the same model of titanium alloy workpieces and cannot be adjusted according to actual production needs, resulting in high manufacturing costs and large space occupancy.
By setting up processing tables, positioning frames, forward and reverse motors, screw sleeves, lifting support plates, double-headed screws, moving slots, bearing plates, guide grooves, storage grooves, guide rods, bearing seats, fixing frames and fixed shafts, the production of various types of titanium alloy workpieces is realized.
The height of the manufacturing device is adjusted according to production needs, the problem of production of workpieces of the same type is solved, the stability and rotation convenience of the processing table are improved, and the manufacturing cost is reduced.
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Figure CN111215627B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of intelligent additive technology, and specifically to a titanium alloy additive intelligent manufacturing device and preparation process. Background Art
[0002] In modern industry, titanium alloy workpieces have been used on a large scale in the fields of aviation and aerospace, and additive intelligent manufacturing devices are required in the production process of titanium alloy workpieces. Existing additive intelligent manufacturing devices can only produce the same type of titanium alloy workpieces during the processing process. Different types of titanium alloy workpieces require different additive intelligent manufacturing methods. In addition, multiple additive intelligent manufacturing methods also occupy a large space and require multiple operators to operate, which greatly increases the manufacturing cost. Summary of the Invention
[0003] The purpose of the present invention is to provide a titanium alloy additive intelligent manufacturing device and preparation process, which has the advantage of producing various types of titanium alloy workpieces and solves the problem that additive intelligent manufacturing devices can only produce titanium alloy workpieces of the same type.
[0004] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a titanium alloy additive intelligent manufacturing device and preparation process, comprising a base, both sides of the top surface of the base are longitudinally fixedly connected to support plates, the top of the support plate is transversely fixedly connected to a top plate, a rotating motor is fixedly connected to the center of the top surface of the top plate, the bottom of the rotating motor shaft is fixedly connected to a rotating shaft through a coupling, the bottom of the rotating shaft is fixedly connected to a bearing ring plate, a bearing ring groove is provided at the center of the outer ring surface of the bearing ring plate, a bearing rod is fixedly connected to the top of the inner side surface of the support plate, the inner side of the bearing rod extends to the inner cavity of the bearing ring groove and is in sliding contact with the inner cavity of the bearing ring groove, The left and right sides of the center of the top surface of the carrying ring plate are respectively penetrated by a storage box and a cleaning box, and the bottoms of the storage box and the cleaning box are fixedly connected with a stacking tube and a cleaning rod respectively, and the surfaces of both sides of the stacking tube and the cleaning rod are fixedly connected with a ranging sensor, and an electric telescopic rod is provided on both sides at the center of the bottom surface of the top plate, and the bottom of the electric telescopic rod is fixedly connected with the storage box and the cleaning box respectively. A processing table is placed on the surface of the top of the base and between the two support plates, and a placement groove is provided at the center of the top surface of the processing table, and a positioning frame is fixedly connected to the center of the left surface of the base, and a forward and reverse motor is penetrated on the right side of the positioning frame;
[0005] The center of the top surface of the base is provided with a movable slot on both sides, the bottom of the inner cavity of the movable slot is connected to the receiving slot, and guide slots are provided on both sides of the bottom of the inner cavity of the receiving slot. The centers of the two sides of the inner cavity of the receiving slot are fixedly connected with bearing seats, and the center of the inner cavity of the receiving slot is vertically fixedly connected with a bearing plate. The left side of the forward and reverse motor shaft is fixedly connected with a double-headed screw through a coupling, and the left side of the double-headed screw passes through the processing table and the bearing plate from right to left in sequence and extends to the inner cavity of the bearing seat and is movably connected to the inner cavity of the bearing seat through a bearing. Both sides of the surface of the double-headed screw are sleeved with A screw sleeve, a guide rod is fixedly connected to the center of the bottom surface of the screw sleeve, the bottom of the guide rod extends to the inner cavity of the guide groove and is in sliding contact with the inner cavity of the guide groove, a fixed frame is fixedly connected to both sides of the center of the top surface of the screw sleeve and the center of the bottom surface of the processing table, a fixed shaft is longitudinally penetrated by the inner cavity of the fixed frame, a lifting support plate is horizontally arranged on the side corresponding to the two fixed shafts, and a control panel is inlaid on the surface of the left side of the left support plate, and the output end of the control panel is electrically connected to the forward and reverse motor, the rotating motor, the electric telescopic rod, the storage box, the cleaning chassis and the ranging sensor respectively.
[0006] Preferably, the inner ring of the screw sleeve is in sliding contact with the surface of the double-headed screw, a bearing hole is provided through the bearing plate, the surface of the double-headed screw is in sliding contact with the inner cavity of the bearing hole, the screw threads on both sides of the double-headed screw surface have opposite rotation directions, and the screw threads on the double-headed screw surface are provided between the inner side of the bearing seat and the outer side of the bearing plate.
[0007] Preferably, a lifting groove is provided on the inner surface of the support plate, and limiting slide grooves are provided on both sides of the outer side of the inner cavity of the lifting groove. The surfaces on both sides of the processing table are fixedly connected with lifting limit plates, and the outer side of the lifting limit plates extends to the inner cavity of the lifting groove and is in sliding contact with the inner cavity of the lifting groove. Limiting sliding rods are fixedly connected on both sides of the outer side of the lifting limit plates, and the outer side of the limiting sliding rods extends to the inner cavity of the limiting slide groove and is in sliding contact with the inner cavity of the limiting slide groove.
[0008] Preferably, a rotation hole is formed through the front and rear sides of the inner cavity of the fixed frame, the surface of the fixed shaft is in sliding contact with the inner cavity of the rotation hole, and the front and back surfaces of the fixed shaft are fixedly connected to the limit baffle.
[0009] Preferably, a rotating hole for use with the rotating motor is opened through the center of the top surface of the top plate, and the inner diameter of the rotating hole is larger than the outer diameter of the rotating shaft of the rotating motor and the coupling.
[0010] Preferably, a placement groove is provided on the surface of the bottom of the top plate and located on the outer circle of the rotating hole, and a limit ring groove is provided at the center of both sides of the inner cavity of the placement groove. The top of the electric telescopic rod extends to the inner cavity of the placement groove and is in sliding contact with the inner cavity of the placement groove. The tops of the two side surfaces of the electric telescopic rod are fixedly connected with hanging rods, and the outer side of the hanging rod extends to the inner cavity of the limit ring groove and is in sliding contact with the inner cavity of the limit ring groove.
[0011] Preferably, lifting holes for use with the storage box and the cleaning chassis are provided on both sides of the center of the top surface of the bearing ring plate, and the inner ring of the lifting holes is in sliding contact with the surface of the storage box and the cleaning chassis.
[0012] Preferably, a titanium alloy additive intelligent manufacturing device and preparation process, the production steps are as follows:
[0013] A) When the titanium alloy workpiece is thin, the control panel is used to control the forward and reverse motors to rotate forward, causing the double-headed screw to rotate forward, driving the two screw sleeves to run towards each other on the surface of the double-headed screw, causing the inner side of the lifting support plate to tilt up, lifting the fixed frame at the bottom of the processing table, and driving the processing table to rise. After the lifting support plate is in a vertical state, the forward and reverse motors are controlled to stop running;
[0014] B) Use the control panel to control the electric telescopic rod to extend, drive the storage box and cleaning chassis to descend, so that the distance between the cleaning rod and the accumulation tube and the processing table is reduced to the required distance, and then control the electric telescopic rod to stop running;
[0015] C) Use the control panel to control the operation of the material storage box and the distance sensor, and spray the material inside from the accumulation pipe into the placement groove. After spraying, the material storage box stops running and controls the electric telescopic rod on it to retract and control the operation of the cleaning chassis, driving the cleaning rod to rotate, and further process the titanium alloy workpiece produced after spraying. During the processing, the electric telescopic rod retracts or extends under the action of the distance sensor through the change of the height of the titanium alloy for fine processing. The rotary motor can be controlled to rotate to drive the bearing ring plate to rotate, thereby achieving all-round processing of the titanium alloy workpiece.
[0016] Compared with the prior art, the present invention has the following beneficial effects:
[0017] 1. The present invention can adjust the height according to production needs by setting a processing table, a positioning frame, a forward and reverse motor, a screw sleeve, a lifting support plate, a double-headed screw, a movable notch, a load-bearing plate, a guide groove, a storage groove, a guide rod, a bearing seat, a fixed frame and a fixed shaft. In this way, the additive intelligent manufacturing device can produce various types of titanium alloy workpieces, which solves the problem that the additive intelligent manufacturing device can only produce the same type of titanium alloy workpieces due to the inability to adjust according to actual production needs during use. The present invention is worthy of promotion.
[0018] 2. The present invention can effectively support the double-headed screw through the cooperation of the bearing plate and the bearing seat, and can limit the processing table through the cooperation of the lifting groove, the limiting slide groove, the lifting limiting plate and the limiting slide rod, thereby improving the stability of the processing table's up and down movement. The rotating hole facilitates the rotation of the fixed shaft, and the limiting baffle can limit the fixed shaft to prevent the fixed shaft from escaping from the fixed frame. The rotating hole facilitates the rotation of the rotating motor shaft, and the cooperation of the placement groove, the limiting ring groove and the hanging rod can limit the electric telescopic rod, and at the same time facilitate the rotation of the electric telescopic rod. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a schematic diagram of the structure of the present invention;
[0020] Figure 2 This is a cross-sectional view of the base structure of the present invention;
[0021] Figure 3 This is a cross-sectional view of the processing table structure of the present invention;
[0022] Figure 4 This is a top view of the fixed frame structure of the present invention;
[0023] Figure 5 A partial side view of the support plate structure of the present invention;
[0024] Figure 6 This is a bottom sectional view of the top plate structure of the present invention.
[0025] In the figure: 1 base, 2 processing table, 3 lifting limit plate, 4 positioning frame, 5 forward and reverse motor, 6 support plate, 7 cleaning rod, 8 bearing rod, 9 top plate, 10 bearing ring groove, 11 cleaning chassis, 12 rotating shaft, 13 rotating motor, 14 electric telescopic rod, 15 storage box, 16 bearing ring plate, 17 stacking tube, 18 distance measuring sensor, 19 control panel, 20 screw sleeve, 21 lifting support plate, 22 double-headed screw, 23 moving slot, 24 bearing plate, 25 guide groove, 26 storage slot, 27 guide rod, 28 bearing seat, 29 fixed frame, 30 placement groove, 31 limiting slide groove, 32 lifting groove, 33 limiting ring groove, 34 placement groove, 35 fixed shaft. DETAILED DESCRIPTION
[0026] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. 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 making creative efforts are within the scope of protection of the present invention.
[0027] See also Figure 1-6, a titanium alloy additive intelligent manufacturing device and preparation process, including a base 1, both sides of the top surface of the base 1 are longitudinally fixedly connected to support plates 6, the top of the support plate 6 is transversely fixedly connected to a top plate 9, the center of the top surface of the top plate 9 is fixedly connected to a rotating motor 13, the bottom of the rotating shaft of the rotating motor 13 is fixedly connected to a rotating shaft 12 through a coupling, a rotating hole for use with the rotating motor 13 is opened through the center of the top surface of the top plate 9, the inner diameter of the rotating hole is larger than the outer diameter of the rotating shaft of the rotating motor 13 and the coupling, and the rotation of the rotating shaft of the rotating motor 13 is facilitated by the rotating hole, the bottom of the rotating shaft 12 is fixedly connected to a bearing ring plate 16, and a bearing ring groove 10 is opened at the center of the outer ring surface of the bearing ring plate 16, and the inner surface of the support plate 6 is fixedly connected to the bearing ring groove 10. The top is fixedly connected to a load-bearing rod 8, the inner side of the load-bearing rod 8 extends to the inner cavity of the load-bearing ring groove 10 and is in sliding contact with the inner cavity of the load-bearing ring groove 10, and the left and right sides of the center of the top surface of the load-bearing ring plate 16 are respectively penetrated with a storage box 15 and a cleaning chassis 11, and both sides of the center of the top surface of the load-bearing ring plate 16 are penetrated with a lifting through hole for use with the storage box 15 and the cleaning chassis 11. The inner circle of the lifting through hole is in sliding contact with the surface of the storage box 15 and the cleaning chassis 11. The bottom of the storage box 15 and the cleaning chassis 11 are respectively fixedly connected with a stacking tube 17 and a cleaning rod 7, and the surfaces on both sides of the stacking tube 17 and the cleaning rod 7 are fixedly connected with a distance sensor 18. Electric telescopic rods 1 are provided on both sides of the center of the bottom surface of the top plate 9 4. The bottom of the electric telescopic rod 14 is fixedly connected to the storage box 15 and the cleaning chassis 11 respectively. A placement groove 34 is provided on the surface of the bottom of the top plate 9 and is located on the outer ring of the rotating hole. A limit ring groove 33 is provided at the center of both sides of the inner cavity of the placement groove 34. The top of the electric telescopic rod 14 extends to the inner cavity of the placement groove 34 and is in sliding contact with the inner cavity of the placement groove 34. The top of the two side surfaces of the electric telescopic rod 14 is fixedly connected with a hanging rod, and the outer side of the hanging rod extends to the inner cavity of the limit ring groove 33 and is in sliding contact with the inner cavity of the limit ring groove 33. By matching the placement groove 34, the limit ring groove 33 and the hanging rod, the electric telescopic rod 14 can be limited, and the rotation of the electric telescopic rod 14 is facilitated. The surface of the top of the base 1 is located between the two support plates 6. A processing table 2 is placed, and a lifting groove 32 is provided on the surface of the inner side of the support plate 6. Limiting grooves 31 are provided on both sides of the outer side of the inner cavity of the lifting groove 32. The surfaces of both sides of the processing table 2 are fixedly connected with lifting limit plates 3. The outer side of the lifting limit plates 3 extends to the inner cavity of the lifting groove 32 and is in sliding contact with the inner cavity of the lifting groove 32. The two sides of the outer side of the lifting limit plates 3 are fixedly connected with limiting slide rods. The outer side of the limiting slide rods extends to the inner cavity of the limiting slide groove 31 and is in sliding contact with the inner cavity of the limiting slide groove 31. The processing table 2 can be limited by the cooperation of the lifting groove 32, the limiting slide groove 31, the lifting limit plate 3 and the limiting slide rod, thereby improving the stability of the processing table 2 in moving up and down. A placement groove 30 is provided at the center of the top surface of the processing table 2.A positioning frame 4 is fixedly connected to the center of the left side surface of the base 1, and a forward and reverse motor 5 is provided on the right side of the positioning frame 4;
[0028] A movable slot 23 is provided on both sides of the center of the top surface of the base 1. The bottom of the inner cavity of the movable slot 23 is connected to a receiving slot 26. Guide slots 25 are provided on both sides of the bottom of the inner cavity of the receiving slot 26. The centers of both sides of the inner cavity of the receiving slot 26 are fixedly connected to bearing seats 28. The center of the inner cavity of the receiving slot 26 is vertically fixedly connected to a bearing plate 24. The left side of the rotating shaft of the forward and reverse motor 5 is fixedly connected to a double-headed screw 22 through a coupling. The left side of the double-headed screw 22 passes through the processing table 2 and the bearing plate 24 from right to left and extends to the inner cavity of the bearing seat 28. It is movably connected to the inner cavity of the bearing seat 28 through a bearing. Screw sleeves 20 are provided on both sides of the surface of the double-headed screw 22. The inner ring of the screw sleeve 20 is connected to the double-headed screw 2 2 is in sliding contact, a bearing hole is provided on the bearing plate 24, the surface of the double-headed screw 22 is in sliding contact with the inner cavity of the bearing hole, the screw teeth on both sides of the double-headed screw 22 are in opposite rotation directions, the screw teeth on the surface of the double-headed screw 22 are opened between the inner side of the bearing seat 28 and the outer side of the bearing plate 24, and the double-headed screw 22 can be effectively supported by the cooperation of the bearing plate 24 and the bearing seat 28. A guide rod 27 is fixedly connected to the center of the bottom surface of the screw sleeve 20, and the bottom of the guide rod 27 extends to the inner cavity of the guide groove 25 and is in sliding contact with the inner cavity of the guide groove 25. A fixing frame 29 is fixedly connected to both sides of the center of the top surface of the screw sleeve 20 and the center of the bottom surface of the processing table 2. The inner cavity is longitudinally penetrated by a fixed shaft 35, and a lifting support plate 21 is transversely provided on one side corresponding to the two fixed shafts 35. By arranging the processing table 2, the positioning frame 4, the forward and reverse motor 5, the screw sleeve 20, the lifting support plate 21, the double-headed screw 22, the movable notch 23, the bearing plate 24, the guide groove 25, the receiving groove 26, the guide rod 27, the bearing seat 28, the fixed frame 29 and the fixed shaft 35, the height can be adjusted according to the production requirements, so that the additive intelligent manufacturing device can produce various types of titanium alloy workpieces, which solves the problem that the additive intelligent manufacturing device can only produce the same type of titanium alloy workpieces due to the inability to adjust according to the actual production needs when in use. The problem of parts is worth promoting. A rotating hole is provided on the front and rear sides of the inner cavity of the fixed frame 29. The surface of the fixed shaft 35 is in sliding contact with the inner cavity of the rotating hole. The front surface and the back surface of the fixed shaft 35 are fixedly connected to the limiting baffle. Both sides of the lifting support plate 21 are sleeved on the surface of the fixed shaft 35. The rotating hole facilitates the rotation of the fixed shaft 35. The limiting baffle can limit the fixed shaft 35 to prevent the fixed shaft 35 from detaching from the fixed frame 29. The surface on the left side of the left support plate 6 is inlaid with a control panel 19. The output ends of the control panel 19 are electrically connected to the forward and reverse motor 5, the rotating motor 13, the electric telescopic rod 14, the storage box 15, the cleaning chassis 11 and the ranging sensor 18 respectively.
[0029] When used, a titanium alloy additive intelligent manufacturing device and preparation process, the production steps are as follows:
[0030] A) When the titanium alloy workpiece is relatively thin, the control panel 19 is used to control the forward and reverse motors 5 to rotate forward, causing the double-headed screw 22 to rotate forward, driving the two screw sleeves 20 to move toward each other on the surface of the double-headed screw 22, causing the inner side of the lifting support plate 21 to tilt, lifting the fixed frame 29 at the bottom of the processing table 2, and driving the processing table 2 to rise. After the lifting support plate 21 is in a vertical state, the forward and reverse motors 5 are controlled to stop running;
[0031] B) Using the control panel 19, the electric telescopic rod 14 is extended, driving the storage box 15 and the cleaning chassis 11 to descend, so that the distance between the cleaning rod 7 and the accumulation tube 17 and the processing table 2 is reduced to the required distance, and then the electric telescopic rod 14 is controlled to stop operating;
[0032] C) The control panel 19 is used to control the operation of the material storage box 15 and the distance sensor 18, and the material therein is ejected from the accumulation tube 17 into the placement groove 30. After the ejection, the material storage box 15 is stopped, and the electric telescopic rod 14 on it is controlled to retract. The operation of the cleaning chassis 11 is controlled to drive the cleaning rod 7 to rotate, and the titanium alloy workpiece produced after the ejection is further processed. During the processing, the electric telescopic rod 14 retracts or extends under the action of the distance sensor 18 according to the change in the height of the titanium alloy, and fine processing is performed. The rotary motor 13 can be controlled to rotate to drive the bearing ring plate 16 to rotate, so that the titanium alloy workpiece can be processed in all directions.
[0033] All kinds of components used in this application document are standard parts and can be purchased on the market. The specific connection methods of each part adopt conventional means such as mature bolts, rivets and welding in the existing technology. The machinery, parts and electrical equipment all adopt conventional models in the existing technology. The equipment appearing in this document is powered by 380V voltage, and the circuit connection adopts the conventional connection method in the existing technology, which will not be described in detail here.
[0034] To sum up: the titanium alloy additive intelligent manufacturing device and preparation process solves the problem that the additive intelligent manufacturing device can only produce titanium alloy workpieces of the same type by setting up a processing table 2, a positioning frame 4, a forward and reverse motor 5, a screw sleeve 20, a lifting support plate 21, a double-headed screw 22, a movable slot 23, a load-bearing plate 24, a guide groove 25, a storage slot 26, a guide rod 27, a bearing seat 28, a fixed frame 29 and a fixed shaft 35.
[0035] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A titanium alloy additive intelligent manufacturing device, comprising a base, characterized in that: The two sides of the top surface of the base are longitudinally fixedly connected with support plates, the top of the support plate is transversely fixedly connected with a top plate, the center of the top surface of the top plate is fixedly connected with a rotating motor, the bottom of the rotating motor shaft is fixedly connected with a rotating shaft through a coupling, the bottom of the rotating shaft is fixedly connected with a bearing ring plate, a bearing ring groove is provided at the center of the outer ring surface of the bearing ring plate, a bearing rod is fixedly connected to the top of the inner surface of the support plate, the inner side of the bearing rod extends to the inner cavity of the bearing ring groove and is in sliding contact with the inner cavity of the bearing ring groove, and the left and right sides of the center of the top surface of the bearing ring plate are respectively penetrated A material storage box and a cleaning chassis are provided through the base, and the bottoms of the material storage box and the cleaning chassis are fixedly connected with a stacking tube and a cleaning rod respectively, and the surfaces on both sides of the stacking tube and the cleaning rod are fixedly connected with distance measuring sensors, and electric telescopic rods are provided on both sides at the center of the bottom surface of the top plate, and the bottoms of the electric telescopic rods are fixedly connected with the material storage box and the cleaning chassis respectively, and a processing table is placed on the surface of the top of the base and between the two support plates, and a placement groove is provided at the center of the top surface of the processing table, and a positioning frame is fixedly connected to the center of the left surface of the base, and a forward and reverse motor is penetrated on the right side of the positioning frame; The cam is provided with a toothed groove on both sides of the center of the top surface of the base, and the bottom of the inner cavity of the toothed groove is connected to the receiving groove. The guide grooves are provided on both sides of the inner cavity of the receiving groove. The centers of the two sides of the inner cavity of the receiving groove are fixedly connected to the bearing seats, and the center of the inner cavity of the receiving groove is vertically fixedly connected to the supporting plate. The left side of the forward and reverse motor shaft is fixedly connected to the double-headed screw through a coupling, and the left side of the double-headed screw passes through the processing table and the supporting plate from right to left and extends to the inner cavity of the bearing seat and is movably connected to the inner cavity of the bearing seat through a bearing. Both sides of the surface of the double-headed screw are provided with screw sleeves, and the center of the bottom surface of the screw sleeve is fixedly connected to a guide rod, and the bottom of the guide rod extends to the inner cavity of the guide groove and is in sliding contact with the inner cavity of the guide groove. The center of the top surface of the screw sleeve and both sides of the center of the bottom surface of the processing table are fixedly connected to a fixing frame, and the inner cavity of the fixing frame is longitudinally penetrated. A fixed shaft is provided through it, and a lifting support plate is horizontally provided on one side corresponding to the two fixed shafts, and a control panel is inlaid on the surface of the left side of the left support plate, and the output end of the control panel is electrically connected to the forward and reverse motor, the rotating motor, the electric telescopic rod, the storage box, the cleaning chassis and the ranging sensor respectively; a rotating hole for use with the rotating motor is provided at the center of the top surface of the top plate, and the inner diameter of the rotating hole is larger than the outer diameter of the rotating motor shaft and the coupling; a placement groove is provided on the surface of the bottom of the top plate and at the outer circle of the rotating hole, and a limiting ring groove is provided at the center of both sides of the inner cavity of the placement groove, the top of the electric telescopic rod extends to the inner cavity of the placement groove and is in sliding contact with the inner cavity of the placement groove, and the tops of the two side surfaces of the electric telescopic rod are fixedly connected to hanging rods, and the outer side of the hanging rod extends to the inner cavity of the limit ring groove and is in sliding contact with the inner cavity of the limit ring groove; a lifting groove is provided on the surface of the inner side of the support plate 2. The titanium alloy additive intelligent manufacturing device according to claim 1, characterized in that: The inner ring of the screw sleeve is in sliding contact with the surface of the double-headed screw, and a bearing hole is provided on the bearing plate. The surface of the double-headed screw is in sliding contact with the inner cavity of the bearing hole. The screw threads on both sides of the double-headed screw surface have opposite rotation directions, and the screw threads on the double-headed screw surface are provided between the inner side of the bearing seat and the outer side of the bearing plate.
3. The titanium alloy additive intelligent manufacturing device according to claim 1, characterized in that: Limiting slide grooves are provided on both sides of the outer side of the inner cavity of the lifting groove, and the surfaces on both sides of the processing table are fixedly connected with lifting limit plates, and the outer side of the lifting limit plates extends to the inner cavity of the lifting groove and is in sliding contact with the inner cavity of the lifting groove. Limiting sliding rods are fixedly connected on both sides of the outer side of the lifting limit plates, and the outer side of the limiting sliding rods extends to the inner cavity of the limiting slide groove and is in sliding contact with the inner cavity of the limiting slide groove.
4. The titanium alloy additive intelligent manufacturing device according to claim 1, characterized in that: Rotation holes are formed on the front and rear sides of the inner cavity of the fixed frame. The surface of the fixed shaft is in sliding contact with the inner cavity of the rotation hole. The front and back surfaces of the fixed shaft are fixedly connected to the limit baffle.
5. The titanium alloy additive intelligent manufacturing device and preparation process according to claim 1, characterized in that: Both sides of the center of the top surface of the bearing ring plate are penetrated by lifting holes used in conjunction with the storage box and the cleaning chassis, and the inner rings of the lifting holes are in sliding contact with the surfaces of the storage box and the cleaning chassis.
6. The preparation process of a titanium alloy additive intelligent manufacturing device according to any one of claims 1 to 5, characterized in that: The production steps are as follows: A) When the titanium alloy workpiece to be produced is thin, the control panel is used to control the forward and reverse motors to rotate forward, causing the double-headed screw to rotate forward, driving the two screw sleeves to move towards each other on the surface of the double-headed screw, causing the inner side of the lifting support plate to tilt up, lifting the fixed frame at the bottom of the processing table, driving the processing table to rise. When the lifting support plate is in a vertical state, the forward and reverse motors are controlled to stop running; B) Use the control panel to control the electric telescopic rod to extend, driving the storage box and cleaning chassis to descend, so that the distance between the cleaning rod and the accumulation tube and the processing table is reduced to the required distance, and then control the electric telescopic rod to stop running; C) Use the control panel to control the operation of the material storage box and the distance sensor, and spray the material inside from the accumulation pipe into the placement groove. After spraying, the material storage box stops running, and the electric telescopic rod on it is controlled to retract. The operation of the cleaning chassis is controlled to drive the cleaning rod to rotate, and the titanium alloy workpiece produced after the spraying is further processed. During the processing, the electric telescopic rod retracts or extends under the action of the distance sensor due to the change in the height of the titanium alloy for fine processing. The rotary motor can be controlled to rotate to drive the rotation of the bearing ring plate, so that the titanium alloy workpiece can be processed in all directions.
Citation Information
Patent Citations
Intelligent titanium alloy additive manufacturing device
CN210966981U