Method for solving feeding layering of sponge titanium press
By using a steel frame cart and mixer during the loading process of the sponge titanium press, combined with the auxiliary feeding mechanism and the control mixing mechanism, the problems of layering and low production efficiency of the sponge titanium press are solved, and a more efficient production process and a more complete mixing effect are achieved.
Patent Information
- Application Number
- CN202510318113.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-18
- Publication Date
- 2025-05-27
Smart Images

Figure CN120041684A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the field of titanium sponge hydraulic presses and is also applicable to hydraulic presses for other purposes, in particular to a method for solving the problem of material stratification in titanium sponge presses. Background Art
[0002] The traditional method of feeding titanium sponge hydraulic presses is to use a steel frame trolley to transport the hopper. This mechanism can easily destroy the evenly mixed raw materials during transportation, causing the raw materials to stratify, thus affecting the composition uniformity and yield rate of the alloy ingots.
[0003] In the prior art, before mixing the titanium sponge, it is first crushed to make the particles of the titanium sponge uniform in size, and then the crushed titanium sponge is transported to the mixer. When the output is large, this transportation method will increase the complexity and time cost of the process, thereby reducing production efficiency, and multiple material transportations require more energy, including electricity and mechanical equipment operating energy consumption, which increases production costs. When the titanium sponge is crushed, dust is formed, and the titanium sponge dust particles are tiny and easily inhaled into the lungs. Long-term inhalation of these dusts can cause damage to the respiratory system, such as causing lung inflammation or fibrosis. In the prior art, when mixing the titanium sponge, the internal stirring shaft is mixed in a single manner, thereby failing to effectively provide sufficient stirring power, resulting in low stirring efficiency, which in turn causes the titanium sponge to be unable to be fully and evenly dispersed during the mixing process, thereby reducing production efficiency.
[0004] Therefore, a method for solving the stratification of sponge titanium press feeding is proposed to solve the above problems. Summary of the invention
[0005] In view of this, the technical problem to be solved by the present invention is to propose a method for solving the stratification of sponge titanium press feeding, so as to solve the problem that the prior art transports the crushed sponge titanium to the mixer, and when the output is large, this transportation method will increase the complexity and time cost of the process, thereby reducing production efficiency. When the sponge titanium is mixed, the internal stirring shaft has a single mixing function, which cannot effectively provide sufficient stirring power, resulting in low stirring efficiency.
[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: A method for solving the stratification of material feeding in a titanium sponge press, comprising: a steel frame trolley, wherein the servo reduction motor group drives the steel frame trolley to move, a mixer is arranged above the steel frame trolley, and the mixer is driven to rotate by the reduction motor group, the interior of the steel frame trolley is arranged in a synchronous belt system, and the synchronous belt system drives the mixer to move, a linear guide rail is arranged on the side of the mixer close to the reduction motor group, and further comprising an auxiliary feeding mechanism and a control stirring mechanism, wherein the auxiliary feeding mechanism is arranged on the top surface of the steel frame trolley, and the control stirring mechanism is arranged inside the mixer; The auxiliary feeding mechanism is used to crush the titanium sponge entering the mixer into uniform sizes; The control stirring mechanism is used to control the stirring of the titanium sponge inside the mixer.
[0007] As an improvement, the auxiliary feeding mechanism includes a support plate, which is fixedly connected to the top surface of the steel frame trolley, the top surface of the support plate is fixedly connected to a first auxiliary frame, the side surface of the first auxiliary frame is fixedly connected to a second auxiliary frame, the bottom surface of the second auxiliary frame is fixedly connected to the second auxiliary frame, the top surface of the second auxiliary frame is fixedly connected to a feed port, the internal rotation of the first auxiliary frame is connected to a first bevel gear group, and the first bevel gear group is driven to rotate by a motor, and the first bevel gear group is fixedly connected to a rotating column at one end close to the second auxiliary frame.
[0008] As an improvement, a sliding rod is provided on the arc surface of the rotating column, and the end of the rotating column close to the first bevel gear group is slidably connected to the third bevel gear group, and the third bevel gear group is slidably connected to the outer surface of the sliding rod, and the end of the rotating column away from the first bevel gear group is fixedly connected to the fourth bevel gear group, the other end of the third bevel gear group is fixedly connected to the first roller, and the other end of the fourth bevel gear group is fixedly connected to the second roller.
[0009] As an improvement, the first bevel gear set is fixedly connected to a first pawl at one end away from the rotating column, the outer surface of the first pawl is meshed with a first ratchet, and the first ratchet is rotatably connected to the inside of the first auxiliary frame, the first ratchet is fixedly connected to a second bevel gear set at one end away from the first pawl, and the second bevel gear set is fixedly connected to an auxiliary cylinder at one end away from the first ratchet, an arc groove is provided inside the auxiliary cylinder, the inside of the auxiliary cylinder is slidably connected to the first cylinder, the first cylinder is fixedly connected to an n-type auxiliary block at one end away from the auxiliary cylinder, and the first roller is rotatably connected to the inside of the n-type auxiliary block.
[0010] As an improvement, the top surface of the n-type auxiliary block is fixedly connected with a telescopic plate, and the other end of the telescopic plate is fixedly connected to the top surface of the inner wall of the second auxiliary frame, the interior of the feed port is fixedly connected by a dust suction pipe, the interior of the dust suction pipe is rotatably connected with fan blades, and a belt is transmission-connected between the end of the rotating column away from the first bevel gear group and the fan blades.
[0011] As an improvement, the controlled stirring mechanism includes a rotating shaft, and the rotating shaft is driven to rotate by motor 2, and the rotating shaft is driven to rotate by motor 2, the rotating shaft passes through the interior of the mixer and is rotatably connected, and a cavity is opened inside the rotating shaft, the inner wall of the mixer is fixedly connected with a first disc, and the mixer passes through and is rotatably connected to the interior of the first disc, the interior of the first disc is fixedly connected with a gear ring, and an auxiliary gear is rotatably connected to a side of the first disc close to the gear ring, and the auxiliary gear is meshed with the gear ring.
[0012] As an improvement, the side of the auxiliary gear away from the first disc is fixedly connected to the stirring shaft, the side of the gear ring close to the stirring shaft is rotatably connected to the auxiliary circular plate, and the stirring shaft and the rotating shaft are rotatably connected inside the auxiliary circular plate, and the other end of the rotating shaft is fixedly connected to a second pawl, the outer surface of the second pawl is meshed with a second ratchet, and the outer surface of the second ratchet is provided with a wedge block.
[0013] As an improvement, a connecting plate is fixedly connected to the top surface of the steel frame trolley, an air bag is fixedly connected to the top surface of the connecting plate, and a dispersant is filled inside the air bag, and a connecting pipe is fixedly connected between the air bag and the rotating shaft.
[0014] The method for solving the stratification of the material feeding of the titanium sponge press comprises the following steps: Step 1: Put the titanium sponge to be mixed into the feed port, then the motor 1 drives the first bevel gear set to rotate clockwise, and then drives the first roller and the second roller to rotate, thereby squeezing and crushing the titanium sponge to be mixed; Step 2: When the first bevel gear set rotates, the fan blades arranged inside the dust collection pipe are driven to rotate, thereby collecting the dust generated during feeding and crushing of the titanium sponge; Step 3: The crushed titanium sponge is in a state of uniform particle size, and then flows into the mixer through the chute body for mixing. The mixer is driven by the synchronous belt system, and the reduction motor unit drives the mixer to rotate, so that mixing can be achieved while moving.
[0015] Compared with the prior art, the present invention provides a method for solving the stratification of sponge titanium press feeding, which has the following beneficial effects: 1. The auxiliary feeding mechanism arranged on the side of the steel frame trolley can reduce the transportation link of the crushed titanium sponge to the mixer, thereby greatly shortening the time of the entire production process and improving production efficiency. The counterclockwise rotation of the first bevel gear set drives the first pawl and the auxiliary cylinder to rotate, thereby adjusting the size of the crushed titanium sponge. The free adjustment of the particle size of the titanium sponge can make the crushing process more flexible and efficient, without the need for additional operations such as secondary crushing or screening, thereby saving time and labor costs, and further improving production efficiency. The particle size of the crushed titanium sponge is consistent, which can further prevent the stratification of the titanium sponge.
[0016] 2. The rotation of the rotating column drives the fan blades inside the dust collection pipe to rotate, thereby collecting the sponge titanium dust generated when the sponge titanium is crushed. By absorbing the dust and recycling it, the sponge titanium can be recovered, reducing resource waste and preventing dust from splashing, further maintaining the cleanliness of the production environment, reducing the risk of workers inhaling dust, and ensuring the health of workers.
[0017] 3. Through the rotation of the auxiliary gear, the stirring shaft is driven to perform eccentric stirring inside the mixer. Compared with the single stirring in the prior art, the eccentric stirring can generate centripetal force and centrifugal force. This special stirring method can push the titanium sponge to the bottom and side wall of the container more effectively to achieve more complete mixing. In addition, the eccentric stirring can achieve more efficient mixing at a lower speed, which means that it can consume less energy, thereby reducing energy use. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a three-dimensional side view of the overall structure of the present invention; Figure 2 This is a schematic diagram of the auxiliary feeding mechanism structure of the present invention; Figure 3 This is a schematic diagram of the internal structure of the second auxiliary frame of the present invention; Figure 4 For the present invention Figure 3 A schematic diagram of the structure enlargement in the middle; Figure 5 This is a schematic diagram of the internal structure of the auxiliary cylinder of the present invention; Figure 6 This is a schematic diagram of the connection relationship structure of the dust suction pipe of the present invention; Figure 7 This is a schematic diagram of the internal structure of the mixer of the present invention; Figure 8 This is a schematic diagram of the gear ring connection structure of the present invention; Fig. 9 It is a schematic diagram of the second pawl connection relationship structure of the present invention.
[0019] In the figure: 1. Mixer; 11. Timing belt system; 12. Steel frame trolley; 2. Auxiliary feeding mechanism; 21. Support plate; 22. First auxiliary frame; 23. Second auxiliary frame; 24. Chute body; 25. First bevel gear set; 26. First ratchet; 27. First ratchet; 28. Second bevel gear set; 29. Auxiliary cylinder; 210. First cylinder; 211. N-type auxiliary block; 212. Telescopic plate; 213. Rotating column; 214. Third bevel gear set; 215. Fourth bevel gear set; 216. First roller; 217. Second roller; 218. Feed port; 219. Dust suction pipe; 3. Control stirring mechanism; 31. Rotating shaft; 32. First disc; 33. Gear ring; 34. Auxiliary gear; 35. Stirring shaft; 36. Auxiliary circular plate; 37. Second ratchet pawl; 38. Second ratchet wheel; 39. Air bag; 310. Connecting pipe; 311. Connecting plate. DETAILED DESCRIPTION
[0020] 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.
[0021] The present invention is further described in detail below based on the accompanying drawings and embodiments.
[0022] Embodiment 1 Please refer to Figures 1 to 6 As shown: In order to solve the problems mentioned in the technical solution, the embodiment of the present application provides a method for solving the stratification of sponge titanium press feeding, including: a steel frame trolley 12, and a servo reduction motor group drives the steel frame trolley 12 to move, a mixer 1 is arranged above the steel frame trolley 12, and the mixer 1 is driven to rotate by the reduction motor group, the interior of the steel frame trolley 12 is arranged in a synchronous belt system 11, and the synchronous belt system 11 drives the mixer 1 to move, and a linear guide rail is arranged on the side of the mixer 1 close to the reduction motor group, and also includes an auxiliary feeding mechanism 2 and a control stirring mechanism 3, the auxiliary feeding mechanism 2 is arranged on the top surface of the steel frame trolley 12, and the control stirring mechanism 3 is arranged inside the mixer 1; The auxiliary feeding mechanism 2 is used to crush the titanium sponge entering the mixer 1 into uniform sizes; The auxiliary feeding mechanism 2 includes a support plate 21, which is fixedly connected to the top surface of the steel frame trolley 12, the top surface of the support plate 21 is fixedly connected to the first auxiliary frame 22, the side of the first auxiliary frame 22 is fixedly connected to the second auxiliary frame 23, the bottom surface of the second auxiliary frame 23 is fixedly connected to the second auxiliary frame 23, the top surface of the second auxiliary frame 23 is fixedly connected to the feed port 218, the internal rotation of the first auxiliary frame 22 is connected to the first bevel gear set 25, and the first bevel gear set 25 is driven to rotate by motor 1, and the end of the first bevel gear set 25 close to the second auxiliary frame 23 is fixedly connected to the rotating column 213.
[0023] A sliding rod is provided on the arc surface of the rotating column 213, and the end of the rotating column 213 close to the first bevel gear group 25 is slidably connected to the third bevel gear group 214, and the third bevel gear group 214 is slidably connected to the outer surface of the sliding rod, and the end of the rotating column 213 away from the first bevel gear group 25 is fixedly connected to the fourth bevel gear group 215, the other end of the third bevel gear group 214 is fixedly connected to the first roller 216, and the other end of the fourth bevel gear group 215 is fixedly connected to the second roller 217.
[0024] The first bevel gear set 25 is fixedly connected to the first pawl 26 at one end away from the rotating column 213, and the outer surface of the first pawl 26 is meshed with the first ratchet 27, and the first ratchet 27 is rotatably connected to the inside of the first auxiliary frame 22, and the first ratchet 27 is fixedly connected to the second bevel gear set 28 at one end away from the first pawl 26, and the second bevel gear set 28 is fixedly connected to the auxiliary cylinder 29 at one end away from the first ratchet 27, and the auxiliary cylinder 29 has an arc groove inside, and the auxiliary cylinder 29 is slidably connected to the first cylinder 210 inside, and the first cylinder 210 is fixedly connected to the n-type auxiliary block 211 at one end away from the auxiliary cylinder 29, and the first roller 216 is rotatably connected to the inside of the n-type auxiliary block 211.
[0025] The top surface of the n-type auxiliary block 211 is fixedly connected to a telescopic plate 212, and the other end of the telescopic plate 212 is fixedly connected to the top surface of the inner wall of the second auxiliary frame 23. The interior of the feed port 218 is fixedly connected to a dust suction pipe 219, and the interior of the dust suction pipe 219 is rotatably connected to fan blades, and a belt is connected to the fan blades through the end of the rotating column 213 away from the first bevel gear set 25.
[0026] Wherein: the servo reduction motor group drives the steel frame trolley 12 to move, the mixer 1 is driven to rotate by the reduction motor group, a linear guide rail is arranged on the side of the mixer 1 close to the reduction motor group, the first pawl 26 cannot drive the first ratchet 27 to rotate when rotating clockwise, the first pawl 26 drives the first ratchet 27 to rotate when rotating counterclockwise, a sliding rod is arranged on the arc surface of the rotating column 213, an arc groove is opened inside the auxiliary cylinder 29, the first cylinder 210 slides inside the auxiliary cylinder 29 through the arc groove, the internal rotation of the dust suction pipe 219 is connected with fan blades, and a belt is connected between the end of the rotating column 213 away from the first bevel gear group 25 and the fan blades.
[0027] Compared with the comparative document, through the implementation of this embodiment, by means of the auxiliary feeding mechanism 2 arranged on the side of the steel frame trolley 12, the transportation link of transporting the crushed titanium sponge to the mixer 1 can be reduced, thereby greatly shortening the time of the entire production process and improving production efficiency. The particle size of the crushed titanium sponge is consistent, which can further prevent the stratification of titanium sponge.
[0028] For further examples, please refer to Figures 7 to 9 As shown: The control stirring mechanism 3 is used to control the stirring of the titanium sponge inside the mixer 1 .
[0029] The control stirring mechanism 3 includes a rotating shaft 31, and the rotating shaft 31 is driven to rotate by the motor 2. The rotating shaft 31 penetrates and is rotatably connected to the inside of the mixer 1, and a cavity is opened inside the rotating shaft 31. A first disc 32 is fixedly connected to the inner wall of the mixer 1, and the mixer 1 penetrates and is rotatably connected to the inside of the first disc 32. A gear ring 33 is fixedly connected to the inside of the first disc 32. An auxiliary gear 34 is rotatably connected to a side of the first disc 32 close to the gear ring 33 at an eccentric position, and the auxiliary gear 34 is meshed with the gear ring 33.
[0030] The side of the auxiliary gear 34 away from the first disc 32 is fixedly connected to the stirring shaft 35, and the side of the gear ring 33 close to the stirring shaft 35 is rotatably connected to the auxiliary circular plate 36, and the stirring shaft 35 and the rotating shaft 31 are rotatably connected inside the auxiliary circular plate 36, and the other end of the rotating shaft 31 is fixedly connected to the second pawl 37, the outer surface of the second pawl 37 is meshed with the second ratchet 38, and the outer surface of the second ratchet 38 is provided with a wedge block.
[0031] The top surface of the steel frame trolley 12 is fixedly connected with a connecting plate 311 , the top surface of the connecting plate 311 is fixedly connected with an air bag 39 , and the inside of the air bag 39 is filled with a dispersant, and a connecting pipe 310 is fixedly connected between the air bag 39 and the rotating shaft 31 .
[0032] Wherein: a monitoring device is arranged inside the mixer 1 for monitoring the dispersion of the titanium sponge inside the mixer 1, the rotating shaft 31 is driven to rotate by the second motor, the second pawl 37 is arranged between the second motor and the rotating shaft 31, a cavity is opened inside the rotating shaft 31, a wedge block is arranged on the outer surface of the second ratchet 38, the second pawl 37 cannot drive the second ratchet 38 to rotate when rotating clockwise, and the second pawl 37 drives the second ratchet 38 to rotate when rotating counterclockwise, the airbag 39 is filled with a dispersant, and the monitoring device can drive the second motor to rotate counterclockwise.
[0033] Compared with the comparative document, through the implementation of this embodiment, the auxiliary gear 34 is rotated to drive the stirring shaft 35 to perform eccentric stirring inside the mixer 1. Compared with the single stirring in the prior art, the eccentric stirring can generate centripetal force and centrifugal force. This special stirring method can push the titanium sponge to the bottom and side walls of the container more effectively, thereby achieving more thorough mixing.
[0034] Embodiment 2 The method for solving the stratification of the material feeding of the titanium sponge press comprises the following steps: Step 1: Put the titanium sponge to be mixed into the feed port 218, and then the motor 1 drives the first bevel gear set 25 to rotate clockwise, and then drives the first roller 216 and the second roller 217 to rotate, thereby squeezing and crushing the titanium sponge to be mixed; Step 2: When the first bevel gear set 25 rotates, the fan blades arranged inside the dust suction pipe 219 are driven to rotate, thereby collecting the dust generated during the feeding and crushing of the titanium sponge; Step 3: The crushed titanium sponge is in a state of uniform particle size, and then flows into the mixer 1 through the chute body 24 for mixing, and the mixer 1 is driven to move by the synchronous belt system 11, and the reduction motor unit drives the mixer 1 to rotate, so as to achieve mixing while moving.
[0035] Everything in the above example works like this: The following is the working process of the auxiliary feeding mechanism 2 for crushing the titanium sponge entering the mixer 1 into uniform size: When in use, the staff puts the sponge titanium raw material into the feed port 218 and starts the motor 1 at the same time to drive the first bevel gear set 25 to rotate clockwise. The rotation of the first bevel gear set 25 drives the rotating column 213 fixedly connected thereto to rotate. The rotation of the rotating column 213 drives the third bevel gear set 214 and the fourth bevel gear set 215 fixedly connected thereto to rotate, thereby driving the first roller 216 and the second roller 217 to rotate, thereby crushing the sponge titanium raw material to make its particle size uniform, thereby preventing it from being stratified. Since the internal rotation of the dust suction pipe 219 is connected with fan blades, and the rotating column 213 is connected to the fan blades at one end away from the first bevel gear set 25 by a belt, that is, the rotation of the first bevel gear set 25 drives the fan blades to rotate at the same time, thereby collecting the dust generated during the feeding and crushing of the sponge titanium, thereby recovering the sponge titanium, reducing resource waste, and preventing dust from splashing, further maintaining the cleanliness of the production environment, and reducing the risk of dust inhalation by staff, thereby protecting the health of workers. When the particle size of the titanium sponge needs to be changed due to work requirements, the first bevel gear set 25 is driven by the motor 1 to rotate counterclockwise, and the first bevel gear set 25 rotates counterclockwise to drive the first pawl 26 fixedly connected thereto to rotate, and the first pawl 26 rotates to drive the first ratchet 27 meshing therewith to rotate, and the first ratchet 27 rotates to drive the second bevel gear set 28 fixedly connected thereto to rotate, and the second bevel gear set 28 rotates to drive the auxiliary cylinder 29 fixedly connected thereto to rotate. Since an arc groove is provided inside the auxiliary cylinder 29, and the first cylinder 210 slides inside the auxiliary cylinder 29 through the arc groove, that is, the rotation of the auxiliary cylinder 29 drives the first cylinder 210 to move, and then drives the n-type auxiliary block 211 and the first roller 216 to rotate, thereby controlling the particle size of the titanium sponge. Adjusting the particle size of the titanium sponge can make the crushing process more flexible and efficient, without the need for additional operations such as secondary crushing or screening, thereby saving time and labor costs, and further improving production efficiency. Subsequently, the crushed titanium sponge is transported to the inside of the mixer 1 through the chute body 24.
[0036] Please refer to the above working process Figures 1 to 6 .
[0037] The following is the working process of controlling the stirring mechanism 3 to control the stirring of the titanium sponge in the mixer 1: When in use, as is known from the above, the mixer 1 is filled with crushed titanium sponge, and then the motor 2 drives the shaft 31 and the first disc 32 to rotate clockwise. Since the internal rotation of the first disc 32 is connected with the auxiliary gear 34, and the auxiliary gear 34 is meshed with the gear ring 33, that is, the shaft 31 rotates while driving the auxiliary gear 34 and the stirring shaft 35 to rotate together, thereby performing eccentric mixing inside the mixer 1. Compared with the single stirring in the prior art, the eccentric stirring can generate centripetal force and centrifugal force. This special stirring method can push the titanium sponge more effectively to the bottom and side wall of the container to achieve more sufficient mixing, and the mixer 1 is driven to rotate by the reduction motor group and the synchronous belt system 11 drives the mixer 1 to move, thereby achieving mixing while moving, so that the raw materials are fully mixed and the uniformity of the raw materials when being loaded is ensured. Since the mixer 1 is provided with a monitoring device inside to monitor the dispersion of the titanium sponge inside the mixer 1, when the titanium sponge inside the mixer 1 is too aggregated at the monitoring position, the motor 2 drives the rotating shaft 31 to rotate counterclockwise, and the rotating shaft 31 rotates counterclockwise to drive the second pawl 37 fixedly connected thereto to rotate, and the rotation of the second pawl 37 drives the second ratchet 38 meshing therewith to rotate. Since the outer surface of the second ratchet 38 is provided with a wedge-shaped block, and the airbag 39 is located below the second ratchet 38, the rotation of the second ratchet 38 can drive the wedge-shaped block to rotate. The block squeezes the airbag 39, because the airbag 39 is filled with dispersant, and the airbag 39 is fixedly connected to the rotating shaft 31, that is, the dispersant in the airbag 39 can be squeezed into the rotating shaft 31 through the squeezing of the second ratchet 38, and then input into the interior of the mixer 1 through the rotating shaft 31. The dispersant interacts with the surface of the sponge titanium particles and can reduce the attraction between the particles, thereby promoting uniform dispersion of the particles. This uniform dispersion helps prevent the sponge titanium from forming agglomerates during the mixing process, thereby reducing the occurrence of stratification.
[0038] Please refer to the above working process Figures 7 to 9 .
[0039] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device. In the absence of further restrictions, the elements defined by the sentence "including one..." do not exclude the existence of other identical elements in the process, method, article or device including the elements.
[0040] Although 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 the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A device for solving the stratification of sponge titanium press feeding, comprising: A steel frame trolley (12), wherein the servo reduction motor group drives the steel frame trolley (12) to move, a mixer (1) is arranged above the steel frame trolley (12), and the mixer (1) is driven to rotate by the reduction motor group, a synchronous belt system (11) is arranged inside the steel frame trolley (12), and the synchronous belt system (11) drives the mixer (1) to move, and a linear guide rail is arranged on a side of the mixer (1) close to the reduction motor group, characterized in that it also includes an auxiliary feeding mechanism (2) and a control stirring mechanism (3), wherein the auxiliary feeding mechanism (2) is arranged on the top surface of the steel frame trolley (12), and the control stirring mechanism (3) is arranged inside the mixer (1); The auxiliary feeding mechanism (2) is used to crush the titanium sponge entering the mixer (1) into uniform sizes; The control stirring mechanism (3) is used to control the stirring of the titanium sponge inside the mixer (1).
2. The device for solving the stratification of materials in a titanium sponge press according to claim 1 is characterized in that: The auxiliary feeding mechanism (2) comprises a support plate (21), wherein the support plate (21) is fixedly connected to the top surface of the steel frame trolley (12), the top surface of the support plate (21) is fixedly connected to a first auxiliary frame (22), the side surface of the first auxiliary frame (22) is fixedly connected to a second auxiliary frame (23), the bottom surface of the second auxiliary frame (23) is fixedly connected to the second auxiliary frame (23), the top surface of the second auxiliary frame (23) is fixedly connected to a feeding port (218), the interior of the first auxiliary frame (22) is rotatably connected to a first bevel gear set (25), and the first bevel gear set (25) is driven to rotate by a motor 1, and one end of the first bevel gear set (25) close to the second auxiliary frame (23) is fixedly connected to a rotating column (213).
3. The device for solving the stratification of material feeding in a titanium sponge press according to claim 2 is characterized in that: A sliding rod is provided on the arc surface of the rotating column (213); an end of the rotating column (213) close to the first bevel gear set (25) is slidably connected to the third bevel gear set (214), and the third bevel gear set (214) is slidably connected to the outer surface of the sliding rod; an end of the rotating column (213) away from the first bevel gear set (25) is fixedly connected to the fourth bevel gear set (215); the other end of the third bevel gear set (214) is fixedly connected to the first roller (216); and the other end of the fourth bevel gear set (215) is fixedly connected to the second roller (217).
4. The device for solving the stratification of the material in the titanium sponge press according to claim 3 is characterized in that: One end of the first bevel gear set (25) away from the rotating column (213) is fixedly connected to a first pawl (26); an outer surface of the first pawl (26) is meshed with a first ratchet (27), and the first ratchet (27) is rotatably connected to the inside of the first auxiliary frame (22); one end of the first ratchet (27) away from the first pawl (26) is fixedly connected to a second bevel gear set (28); one end of the second bevel gear set (28) away from the first ratchet (27) is fixedly connected to an auxiliary cylinder (29); an arc groove is provided inside the auxiliary cylinder (29); the inside of the auxiliary cylinder (29) is slidably connected to a first cylinder (210); one end of the first cylinder (210) away from the auxiliary cylinder (29) is fixedly connected to an n-type auxiliary block (211), and the first roller (216) is rotatably connected to the inside of the n-type auxiliary block (211).
5. The device for solving the stratification of materials in a titanium sponge press according to claim 4 is characterized in that: The top surface of the n-type auxiliary block (211) is fixedly connected to a telescopic plate (212), and the other end of the telescopic plate (212) is fixedly connected to the top surface of the inner wall of the second auxiliary frame (23); the interior of the feed port (218) is fixedly connected to a dust suction pipe (219), the interior of the dust suction pipe (219) is rotatably connected to a fan blade, and a belt is transmission-connected between the end of the rotating column (213) away from the first bevel gear set (25) and the fan blade.
6. The device for solving the stratification of materials in a titanium sponge press according to claim 1 is characterized in that: The control stirring mechanism (3) comprises a rotating shaft (31), and the rotating shaft (31) is driven to rotate by a second motor. The rotating shaft (31) penetrates and is rotatably connected to the interior of the mixer (1), and a cavity is provided inside the rotating shaft (31). A first disc (32) is fixedly connected to the inner wall of the mixer (1), and the mixer (1) penetrates and is rotatably connected to the interior of the first disc (32). A gear ring (33) is fixedly connected to the interior of the first disc (32), and an auxiliary gear (34) is rotatably connected to a side of the first disc (32) close to the gear ring (33), and the auxiliary gear (34) is meshed with the gear ring (33).
7. The device for solving the problem of material stratification in a titanium sponge press according to claim 6, characterized in that: The auxiliary gear (34) is fixedly connected to a stirring shaft (35) on a side away from the first disc (32), the gear ring (33) is rotatably connected to an auxiliary circular plate (36) on a side close to the stirring shaft (35), and the stirring shaft (35) and the rotating shaft (31) are rotatably connected inside the auxiliary circular plate (36), and the other end of the rotating shaft (31) is fixedly connected to a second pawl (37), the outer surface of the second pawl (37) is meshed with a second ratchet (38), and the outer surface of the second ratchet (38) is provided with a wedge block.
8. The device for solving the problem of material stratification in a titanium sponge press according to claim 7, characterized in that: The top surface of the steel frame trolley (12) is fixedly connected to a connecting plate (311), the top surface of the connecting plate (311) is fixedly connected to an air bag (39), and a dispersant is contained inside the air bag (39), and a connecting pipe (310) is fixedly connected between the air bag (39) and the rotating shaft (31).
9. A method for solving the problem of stratification of materials in a titanium sponge press, applied to a device for solving the problem of stratification of materials in a titanium sponge press as described in claims 1-8, characterized in that: The following steps are involved: Step 1: The titanium sponge to be mixed is fed into the feed port (218), and then the motor 1 drives the first bevel gear set (25) to rotate clockwise, and then drives the first roller (216) and the second roller (217) to rotate, thereby squeezing and crushing the titanium sponge to be mixed; Step 2: The first bevel gear set (25) rotates while driving the fan blades provided inside the dust collection pipe (219) to rotate, thereby collecting dust generated during feeding and crushing of the titanium sponge; Step 3: The crushed titanium sponge particles are in a state of uniform particle size, and then flow into the mixer (1) through the chute body (24) for mixing. The mixer (1) is driven to move by the synchronous belt system (11), and the reduction motor unit drives the mixer (1) to rotate, so that mixing is achieved while moving.